EP4491979A1 - Icemaker and refrigerator - Google Patents
Icemaker and refrigerator Download PDFInfo
- Publication number
- EP4491979A1 EP4491979A1 EP23767068.2A EP23767068A EP4491979A1 EP 4491979 A1 EP4491979 A1 EP 4491979A1 EP 23767068 A EP23767068 A EP 23767068A EP 4491979 A1 EP4491979 A1 EP 4491979A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- tray
- ice
- ice making
- liquid
- supply
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C1/00—Producing ice
- F25C1/22—Construction of moulds; Filling devices for moulds
- F25C1/25—Filling devices for moulds
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C1/00—Producing ice
- F25C1/22—Construction of moulds; Filling devices for moulds
- F25C1/24—Construction of moulds; Filling devices for moulds for refrigerators, e.g. freezing trays
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C5/00—Working or handling ice
- F25C5/02—Apparatus for disintegrating, removing or harvesting ice
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C5/00—Working or handling ice
- F25C5/02—Apparatus for disintegrating, removing or harvesting ice
- F25C5/04—Apparatus for disintegrating, removing or harvesting ice without the use of saws
- F25C5/08—Apparatus for disintegrating, removing or harvesting ice without the use of saws by heating bodies in contact with the ice
- F25C5/10—Apparatus for disintegrating, removing or harvesting ice without the use of saws by heating bodies in contact with the ice using hot refrigerant; using fluid heated by refrigerant
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D23/00—General constructional features
- F25D23/02—Doors; Covers
- F25D23/04—Doors; Covers with special compartments, e.g. butter conditioners
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D23/00—General constructional features
- F25D23/12—Arrangements of compartments additional to cooling compartments; Combinations of refrigerators with other equipment, e.g. stove
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D29/00—Arrangement or mounting of control or safety devices
- F25D29/005—Mounting of control devices
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C1/00—Producing ice
- F25C1/04—Producing ice by using stationary moulds
- F25C1/045—Producing ice by using stationary moulds with the open end pointing downwards
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C2400/00—Auxiliary features or devices for producing, working or handling ice
- F25C2400/04—Ice guide, e.g. for guiding ice blocks to storage tank
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C2400/00—Auxiliary features or devices for producing, working or handling ice
- F25C2400/06—Multiple ice moulds or trays therefor
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C2400/00—Auxiliary features or devices for producing, working or handling ice
- F25C2400/08—Auxiliary features or devices for producing, working or handling ice for different type of ice
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C2400/00—Auxiliary features or devices for producing, working or handling ice
- F25C2400/10—Refrigerator units
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C2400/00—Auxiliary features or devices for producing, working or handling ice
- F25C2400/14—Water supply
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C2600/00—Control issues
- F25C2600/04—Control means
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25C—PRODUCING, WORKING OR HANDLING ICE
- F25C2700/00—Sensing or detecting of parameters; Sensors therefor
- F25C2700/12—Temperature of ice trays
Definitions
- the present disclosure relates to an ice making device and a refrigerator.
- a refrigerator is a home appliance for storing food at a low temperature in a storage space that is covered by a refrigerator door.
- the refrigerator is configured to keep stored food in an optimal state by cooling the inside of the storage space using cold air generated through heat exchange with a refrigerant circulating in a refrigeration cycle.
- the refrigerator may be placed independently in a kitchen or a living room or may be accommodated in a kitchen cabinet.
- the refrigerator is gradually becoming larger and more multi-functional in accordance with the change in dietary life and the trend of higher quality products. Refrigerators including various structures and convenience devices that take user convenience into consideration are being released.
- the automatic ice maker includes an ice making chamber for forming ice, an evaporator disposed at an upper side of the ice making chamber, a water tray disposed at a lower side of the ice making chamber and rotatably supported on a support shaft, an ice making water tank assembled at a lower side of the water tray, a supply pump connected to one side of the ice making water tank, a guide member disposed at one side of the ice making water tank and being rotatable, and an ice storage compartment for storing ice.
- water is supplied from a supply pump while the water tray closes a space of the ice making chamber, and the water supplied to the ice making cell may be cooled by an evaporator.
- high-temperature gas is supplied to the evaporator to heat the ice making cell, and at the same time, the water tray is tilted downward, and in a process of tilting the water tray downward, the guide member is rotated to cover an upper side of the water tray.
- the present embodiment provides an ice making device and a refrigerator capable of generating different types of ice.
- one embodiment provides an ice making device and a refrigerator in which an ice separation can be performed simultaneously on a plurality of trays.
- one embodiment provides an ice making device and a refrigerator in which different types of ice can be stored separately.
- an ice making device may include an ice maker provided in an ice making chamber and configured to generate ice.
- the ice making device may further include a cooler configured to cool the ice maker.
- the ice making device may further include a liquid supplier configured to supply liquid (e.g., water) to the ice maker in an ice making process.
- liquid e.g., water
- the ice making device may further include an ice separation assembly configured to separate ice from the ice maker in an ice separation process.
- the ice making device may further include a controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly.
- the ice maker may include a first tray including a first ice making cell.
- the ice maker may further include a second tray including a second ice making cell.
- a type of ice generated in the first ice making cell may be different from a type of ice generated in the second ice making cell.
- the controller may control an ice making of one tray of the first tray and the second tray to be delayed from an ice making of other tray of the first tray and the second tray.
- An ice making time of the one tray may be less than an ice making time of the other tray.
- the controller may control the liquid supplier so that a liquid supply start time of the one tray is delayed from a liquid supply start time of the other tray.
- the controller may control the liquid supplier so that a liquid supply to the one tray starts when a first reference time elapses after a liquid supply to the other tray starts.
- the controller may control the liquid supplier so that when a second reference time elapses after a liquid supply to the one tray starts, liquid supply to the trays is ended.
- the ice making device may further include a temperature sensor for detecting a temperature of at least one of the first tray or the second tray.
- the controller may control the liquid supplier so that a liquid supply to the one tray starts when a temperature detected by the temperature sensor is less than a first reference temperature after a liquid supply to the other tray starts.
- the controller may control the liquid supplier so that a liquid supply to the trays stops, when a temperature detected by the temperature sensor is lower than a second reference temperature after a liquid supply to the one tray starts.
- the controller may control the liquid supplier so that a supply amount of liquid per unit time to one tray is less than a supply amount of liquid per unit time to the other tray.
- the controller may control the liquid supplier so that a liquid supply time of the one tray is less than a liquid supply time of the other tray.
- the controller may control the liquid supplier so that a number of times of a liquid supply to the one tray is less than a number of times of a liquid supply to the other tray.
- the controller may control the cooler so that a timing of a supply of a cooling power to the one tray is delayed from a timing of a supply of a cooling power to the other tray.
- the controller may control the cooler so that a supply of a cooling power to the one tray starts when a first reference time elapses after a supply of a cooling power to the other tray starts.
- the controller may control the cooler a supply of a cooling power to the trays stops when a first reference time elapses after a supply of a cooling power to the one tray starts.
- the controller may control the cooler so that a supply amount of a cooling power per unit time to the one tray is less than a supply amount of a cooling power per unit time to the other tray.
- the controller may control the cooler so that a supply time of a cooling power to the one tray is less than a supply time of a cooling power to the other tray.
- the controller may control the cooler so that a number of times of a supply of a cooling power to the one tray is less than a number of times of a supply of a cooling power to the other tray.
- the controller may operate the ice separation assembly to separate ice from each of the first tray and the second tray.
- an ice making device may include an ice maker provided in an ice making chamber and configured to generate ice.
- the ice making device may further include a cooler configured to cool the ice maker.
- the ice making device may further include a liquid supplier configured to supply liquid to the ice maker in an ice making process.
- the ice making device may further include an ice separation assembly configured to separate ice from the ice maker in an ice separation process.
- the ice making device may further include a controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly.
- the ice maker may include a first tray including a first ice making cell.
- the ice maker may further include a second tray including a second ice making cell.
- a type of ice generated in the first ice making cell may be different from a type of ice generated in the second ice making cell.
- the controller After starting to a supply of a cooling power or starting to a supply of liquid to each of the first tray and the second tray, the controller is configured to control the liquid supplier or the cooler to stop a supply of a cooling power or a supply of liquid of one tray of the first tray and the second tray.
- the controller may operate the ice separation assembly to separate ice from each of the first tray and the second tray when an ice making of other tray of the first tray and the second tray is completed.
- the controller may stop a supply of liquid or a supply of a cooling power of one tray of the first tray and the second tray when a first reference time elapses after an ice making of each of the first and second trays starts.
- the controller may stop a supply of liquid or a supply of a cooling power of the other tray when a second reference time elapses after a supply of liquid or a supply of a cooling power of the one tray is ended.
- the ice making device may further include a temperature sensor for detecting a temperature of at least one of the first tray or the second tray.
- the controller may stop a supply of liquid or a supply of a cooling power of one tray of the first tray and the second tray.
- a supply of liquid or a supply of a cooling power of the one tray After a supply of liquid or a supply of a cooling power of the one tray is ended, if a temperature detected by the temperature sensor is lower than a second reference temperature, a supply of liquid or a supply of a cooling power of the other tray may be ended.
- a refrigerator may include a cabinet having a storage chamber.
- the refrigerator may include a door that opens and closes the storage chamber, and an ice making chamber provided in the door or the cabinet.
- the refrigerator may further include an ice maker provided in the ice making chamber and configured to generate ice.
- the refrigerator may further include a cooler configured to cool the ice maker.
- the refrigerator may further include a liquid supplier configured to supply liquid to the ice maker in an ice making process.
- the refrigerator may further include an ice separation assembly configured to separate ice from the ice maker in an ice separation process.
- the refrigerator may include a controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly.
- the ice maker may include a first tray including a first ice making cell.
- the ice maker may further include a second tray including a second ice making cell.
- the controller may control an ice making of one tray of the first tray and the second tray to be delayed from an ice making of other tray of the first tray and the second tray.
- a type of ice generated in the first ice making cell may be different from a type of ice generated in the second ice making cell.
- different types of ice can be generated, and thereby user can use various types of ice.
- an ice separation process is performed when an ice making is completed in a plurality of trays, so ice in a perfect shape can be generated and a malfunction of an ice separation can be prevented.
- an ice separation time can be reduced and a malfunction of an ice separation can be reduced.
- a cycle for generating ice for one time may be reduced. If a cycle is reduced, an amount of ice generated per day or for a set time may increase.
- first, second, A, B, (a) and (b) may be used.
- Each of the terms is merely used to distinguish the corresponding component from other components, and does not delimit an essence, an order or a sequence of the corresponding component. It should be understood that when one component is “connected”, “coupled”, “joined” or “supported” to another component, the former may be directly connected, coupled, jointed or supported to the latter or may be “connected”, coupled", “joined” or “supported” to the latter with a third component interposed therebetween.
- the present invention relates to a cooling device.
- the cooling device may include a refrigerator including at least one refrigerating chamber.
- the cooling device may include a freezer including at least one freezing chamber.
- the freezer may include an ice making device.
- a component or a control method of the ice making device may be applied to the cooling device.
- the cooling device may include a storage chamber (e.g., main body) in which an item is stored.
- the cooling device may include a door that opens and close the storage chamber.
- the cooling device may include an ice making device.
- the cooling device may include an ice making chamber.
- the ice making chamber may be defined as a space in which at least a portion of an ice maker.
- the ice making chamber may be disposed in the storage chamber and/or the door.
- the cooling device may include an ice maker.
- an ice making device may include some or all of a tray defining an ice making cell that is a space in which liquid is phase-changed into ice, a cooler for supplying cold to the ice making cell, a liquid supplier for supplying liquid to the ice making cell, and a controller.
- the ice making device may further include an ice separation assembly.
- the tray may include a first tray.
- the tray may further include a second tray.
- the first tray and the second tray may generate different types of ice.
- the liquid supplier may independently supply liquid to each of the first tray and the second tray.
- the liquid supplier may be configured to simultaneously supply liquid to the first tray and the second tray.
- the liquid supplier may be movably configured to supply liquid to one of the first tray and the second tray and then supply liquid to other of the first tray and the second tray after change a position of the liquid supplier.
- each of the first tray and the second tray may be configured to be movable, and the first tray may move toward the liquid supplier to receive liquid, and then the second tray may move toward the liquid supplier to receive liquid.
- the cooling device may include a cooler.
- the cooler is a source that supplies cold and/or heat, and may be referred to as a cold source and/or a heat source.
- the cooler may include a heat exchanger.
- the cooler may cool the ice making chamber.
- the cooler may cool and heat the ice making chamber.
- the heat exchanger may include at least one of a pipe to supply the cold and/or heat, a refrigerant pipe through which refrigerant flows, an evaporator refrigerant pipe through which refrigerant flows, or a thermoelectric element to supply the cold and/or heat.
- the evaporator may be located adjacent to or in contact with the tray. Alternatively, cold air cooled by the cooler may be supplied to the tray and liquid is phase-changed into ice in the ice making cell.
- the cooler may cool the first tray.
- the cooler may cool the second tray.
- the cooler may cool the first tray and the second tray independently or simultaneously.
- the cooler may optionally include a valve for controlling a flow of refrigerant, a fan for flowing cold air, or a damper for controlling a flow of cold air within the two spaces.
- the controller may adjust a cooling power of the cooler.
- the cooling power of the cooler may be an output of a thermoelectric element, an amount of cold supplied to the tray, or an output or a frequency of the compressor or an amount of refrigerant flowing into an evaporator.
- the cold may include at least cold air.
- the ice separation assembly includes at least one of a heater for heating the tray, a pusher for pressing at least a portion of the tray, a refrigerant pipe through which refrigerant flows to heat the tray, a liquid supply assembly for supplying liquid to an outside of the tray, or a driver for moving at least a portion of the tray.
- the ice separation assembly may separate ice from each of the first tray and the second tray independently or simultaneously separate ice from the first tray and the second tray.
- a power of a driver is transmitted simultaneously to the first tray and the second tray, heat from a heater or a refrigerant pipe is transmitted simultaneously to the first tray and the second tray, or liquid is transmitted simultaneously to the first tray and the second tray.
- FIG. 1 is a perspective view of an ice making device according to the present embodiment.
- FIG. 2 is a front view showing a door of an ice making device in an opened state according to the present embodiment.
- FIG. 3 is a cross-sectional view showing an inside of an ice making device according to the present embodiment.
- FIG. 4 is a diagram showing an inside of an ice making device according to the present embodiment.
- an ice making device 1 of this embodiment may be installed independently to generate ice.
- the ice making device 1 may include a cabinet 10 that forms an external shape.
- the ice making device 1 may further include a door 20 connected to the cabinet 10.
- the cabinet 10 may include an ice making chamber 12 that generates ice.
- the cabinet 10 may further include a storage chamber 13 where ice is stored.
- the ice making chamber 12 and the storage chamber 13 may be partitioned by a partition member.
- the ice making chamber 12 and the storage chamber 13 may be communicated through a communication hole in the partition member.
- the ice making chamber 12 and the storage chamber 13 may be communicated without a partition member.
- the ice making chamber 12 may include the storage chamber 13, or the storage chamber 13 may include the ice making chamber 12.
- the cabinet 10 may include a front opening 102.
- the door 20 may open and close the front opening 102.
- the door 20 may open and close the front opening 102 by rotating.
- a user can access the storage chamber 13 through the front opening 102.
- the user can take out ice stored in the storage chamber 13 to an outside through the front opening 102.
- the ice making device 1 may further include an ice maker 40 located in the ice making chamber 12.
- Ice generated in the ice maker 40 may fall from the ice maker 40 and be stored in the storage chamber 13.
- the cabinet 10 may further include an inner case 101 defining the ice making chamber 12.
- the cabinet 10 may further include an outer case 110 disposed outside the inner case 101.
- an insulating material may be provided between the inner case 101 and the outer case 100.
- the inner case 101 may additionally define the storage chamber 13.
- the ice making chamber 12 may be formed at one side of the inner case 101.
- the ice maker 40 may be located close to a rear wall 101a of the inner case 101.
- usability of the storage chamber 13 can be increased.
- ice generated by the ice maker 40 may fall in a direction closer to the door 20.
- the cabinet 10 may further include a machine room 18 divided from the storage chamber 13.
- the machine room 18 may be located at one side of the storage chamber 13.
- a portion of the storage chamber 13 may be located between the ice making chamber 12 and the machine room 18.
- a volume of the storage chamber 13 may be greater than a volume of the ice making chamber 12 and a volume of the machine room 18.
- the machine room 18 may be placed outside the inner case 101.
- the inner case 101 may include a bottom wall 104 that forms a bottom of the storage chamber 13.
- the machine room 18 may be located at one side of the bottom wall 104.
- the bottom wall 104 may be provided with a drain hole 105 for discharging liquid.
- a portion of a cooler may be located in the machine room 18.
- the cooler may be a refrigerant cycle for circulating refrigerant.
- the cooler may include a compressor 183, a condenser 184, an expander (not shown), or a heat exchanger 50.
- the heat exchanger 50 may be an evaporator through which refrigerant flows.
- the heat exchanger 50 may be an evaporator through which refrigerant flows.
- the refrigerant cycle may be capable of switching refrigerant passage using a valve. That is, refrigerant compressed in the compressor 183 may flow directly to the condenser 184 or to the evaporator by switching of refrigerant passage. Although not limited, refrigerant from the compressor 183 may flow to the evaporator during an ice separation process.
- the compressor 183 and the condenser 184 may be located in the machine room 18.
- the machine room 18 may be provided with a condenser fan 185 to allow air to pass through the condenser 184.
- the condenser fan 185 may be disposed between the condenser 184 and the compressor 183.
- a front grille 180 in which an air hole 182 is formed may be provided at a front of the cabinet 10.
- a plurality of air holes 182 may be formed in the front grille 180.
- the front grille 180 may be located at one side of the front opening 102. When the door 20 closes the front opening 102, the door 20 may cover a portion of the front grille 180.
- the heat exchanger 50 may include refrigerant pipes through which refrigerant flows. At least a portion of the heat exchanger 50 may be located in the ice making chamber 12.
- At least a portion of the heat exchanger 50 may be in contact with the ice maker 40. That is, liquid supplied to the ice maker 40 may be phase-changed into ice by low-temperature refrigerant flowing through the heat exchanger 50.
- the heat exchanger 50 may be located adjacent to the ice maker 40.
- a cooling type in which the heat exchanger 50 directly contacts the ice maker 40 to generate ice can be referred to as a direct cooling type.
- air that has heat-exchanged with the heat exchanger 50 is supplied to the ice maker 40, and liquid in the ice maker 40 can be phase-changed into ice by the cooling air.
- a cooling type of generating ice by supplying cooling air can be called an indirect cooling type or an air cooling type.
- the indirect cooling type it is possible that the heat exchanger 50 is not located in the ice making chamber 12.
- a guide duct that guides cooling air heat-exchanged with the heat exchanger 50 to the ice making chamber 12 may be additionally provided.
- the ice maker 40 may generate a single type of ice or at least two different types of ice.
- the ice maker 40 generates at least two different types of ice.
- the ice maker may include a tray assembly.
- the tray assembly may include a tray that defines a space in which an ice making cell is formed.
- the tray assembly may include a tray case to which the tray is connected and/or coupled and/or joined and/or supported.
- the present invention describes using a tray.
- the present invention may also include embodiments understood by replacing a tray assembly instead of the tray.
- the tray case may include a first tray case (e.g., tray cover) connected and/or coupled and/or supported and/or jointed to a first portion of the tray.
- the tray case may include a second tray case (e.g., tray supporter) connected and/or coupled and/or supported and/or jointed to a second portion of the tray.
- the ice maker 40 may include a first tray assembly 410 for generating a first type of first ice I1.
- the ice maker 40 may further include a second tray assembly 450 for generating a second type of second ice I2 different from the first type.
- the first ice I1 and the second ice I2 may differ in one or more of shape, size, transparency, etc.
- the first ice I1 is polygonal ice
- the second ice I2 is spherical ice.
- the storage chamber may include a first storage space 132.
- the storage chamber may further include a second storage space 134.
- Ice generated in the first tray assembly 410 may be stored in the first storage space 132. Ice generated in the second tray assembly 450 may be stored in the second storage space 134.
- the second storage space 134 may be defined by the ice bin 14. That is, an internal space of the ice bin 14 may serve as the second storage space 134.
- the ice bin 14 may be fixed or detachably coupled to the inner case 101.
- the ice bin 14 may also be referred to as a partition member that divides the storage chamber 13 into the first storage space 132 and the second storage space 134.
- a volume of the first storage space 132 may be greater than a volume of the second storage space 134.
- a size of the first ice I1 stored in the first storage space 132 may be smaller than a size of the second ice I2 stored in the second storage space 134.
- a front surface of the ice bin 14 may be arranged to be spaced apart from a rear side of the front opening 102.
- a bottom surface of the ice bin 14 may be spaced apart from a bottom wall 104 of the storage chamber 13.
- the first ice I1 may be located at one side of the ice bin 14.
- the first ice I1 may also be located at another side of the ice bin 14.
- the first ice I1 stored in the first storage space 132 may surround the ice bin 14.
- a bottom wall 104 of the storage chamber 13 may form a floor of the second storage space 134.
- a bottom wall 104 of the storage chamber 13 may be positioned lower than one end 102a of the front opening 102.
- a bottom surface of the ice bin 14 may be positioned higher than one end 102a of the front opening 102.
- the ice bin 14 may be located adjacent to one surface (left surface in the drawing) of left and right surfaces of the inner case 101.
- the second tray assembly 450 may be located adjacent to the one surface. Accordingly, ice separated from the second tray assembly 450 may be stored in the second storage space 134 of the ice bin 14. Ice separated from the first tray assembly 410 may be stored in the first storage space 132 outside the second storage space 134.
- the cabinet 10 may further include an opening cover 16.
- the opening cover 16 may be rotatably provided to the inner case 101.
- the opening cover 16 may cover one side of the front opening 102.
- the opening cover 16 can be received in the storage chamber 13 when the door 20 is closed. When the door 20 is opened, other end of the opening cover 16 may be rotated with respect to one end so that the other end protrudes to an outside of the storage chamber 13.
- the opening cover 16 may be elastically supported by, for example, an elastic member (not shown). When the door 20 is opened, the opening cover 16 can be rotated by the elastic member.
- the opening cover 16 may be formed in a convex shape toward the door 20. Accordingly, although not limited, the first ice may be filled in the first storage space 132 up to one end 16a of the opening cover 16.
- the cabinet 10 may further include a guide 70 that guides ice separated from the ice maker 40 to the storage chamber 13.
- the guide 70 may be arranged to be spaced apart from the ice maker 40.
- the guide 70 may guide a first ice I1 separated from the first tray assembly 410.
- the guide 70 may guide a second ice I2 separated from the second tray assembly 450.
- the guide 70 may include a first guide 710.
- the guide 70 may further include a second guide 730.
- the first ice I1 separated from the first tray assembly 410 may fall onto the first guide 710. First ice I1 may be moved to the first storage space 132 by the first guide 710.
- the second ice I2 separated from the second tray assembly 450 may fall onto the second guide 730. Second ice I2 may be moved to the second storage space 134 by the second guide 730.
- One end of the ice bin 14 may be positioned adjacent to one end of the second guide 730 so that the second ice I2 is moved to the second storage space 134.
- the ice making device 1 may further include a partition plate 80 to prevent the first ice and the second ice that fall onto the guide 70 from being mixed.
- the partition plate 80 extends in a vertical direction or in a horizontal direction and may be coupled to the guide 70 or the ice maker 40.
- FIG. 5 is a diagram showing a liquid supply passage in an ice making device according to the present invention.
- FIGS. 6 and 7 are perspective views showing liquid being supplied to an ice maker.
- the ice making device 1 may include a liquid supply passage for guiding liquid supplied from a liquid source 302 to the ice maker 40.
- the liquid source e.g., water source
- the liquid source may include a faucet or a liquid tank provided at an inside and/or outside of the ice making device.
- the liquid supply passage may include a first passage 303 connected to the liquid source 302.
- a liquid supply valve 304 may be provided in the first passage 303. By operating the liquid supply valve 304, a supply of liquid from the liquid source 302 to the ice making device 1 can be controlled. A supply flow rate when liquid is supplied to the ice making device 1 can be controlled by operating the liquid supply valve 304.
- the liquid supply passage may further include a second passage 305 connected to the liquid supply valve 304.
- the second passage 305 may be connected to a filter 306.
- the filter 306 may be located in the machine room 18.
- the liquid supply passage may further include a third passage 308 that guides liquid that has passed through the filter 306.
- the cooling device may include a supply component to supply liquid to the ice making device.
- the supply component may include a liquid supply assembly.
- the supply component may supply liquid to an ice maker (e.g., tray) from a liquid source (e.g., a faucet or a liquid tank provided at an inside and/or outside of an ice making device).
- the liquid supply assembly may include a pipe through which the liquid flows.
- liquid supplied from the liquid supply assembly may be supplied to a liquid supplier, which will be described later.
- the ice making device 1 may further include a liquid supply assembly 320.
- the liquid supply assembly 320 may be connected to the third passage 308.
- the liquid supply assembly 320 can supply liquid to the ice maker 40 during a liquid supply process.
- the supply component may include a liquid supplier.
- the supplier may supply liquid supplied from the liquid supply assembly to an ice maker (e.g., tray).
- the liquid supplier may include a sub liquid supplier.
- the sub liquid supplier may include a pipe through which the liquid flows.
- the sub liquid supplier may include a nozzle.
- the sub liquid supplier may further include a pump.
- the sub liquid supplier may include a sub_first liquid supplier.
- the sub liquid supplier may include a sub_second liquid supplier.
- the ice making device 1 may further include a liquid supplier 330.
- the liquid supplier 330 may supply liquid to the ice maker 40 during an ice making process.
- the liquid supplier 330 can store liquid supplied from the liquid supply assembly 320 and supply liquid to the ice maker 40.
- the liquid supply assembly 320 may be referred to as a first liquid supply assembly.
- the liquid supplier 330 may be referred to as a second liquid supply assembly.
- the liquid supply assembly 320 may be located at one side of the ice maker 40. Liquid supplied from the liquid supply assembly 320 may fall onto the ice maker 40.
- the liquid supplier 330 may be located at another side of the ice maker 40.
- the liquid supplier 330 may be spaced apart from the liquid supply assembly 320.
- the liquid supplier 330 can store liquid supplied from the liquid supply assembly 320 and supply liquid to the ice maker 40.
- a dotted line shows a flow of liquid supplied from the liquid supply assembly 320
- a solid line shows a flow of liquid supplied from the liquid supplier 330.
- the liquid supplier 330 may include a liquid storage 350 in which liquid is stored.
- the liquid storage may include a wall to form a space to store the liquid.
- the ice maker 40 may include one or more through holes 426 through which liquid passes. Liquid supplied from the liquid supply assembly 320 and dropped toward the ice maker 40 may be stored in the liquid storage 350 after passing through the through hole 426.
- the guide 70 may be provided with a plurality of through holes through which liquid passing through the ice maker 40 passes.
- liquid supplied from the liquid supply assembly 320 falls to one side of the ice maker 40, passes through the ice maker 40, and then may be stored in the liquid storage 350.
- the liquid storage 350 may be provided with a liquid level detector 356 that detects a liquid level. When a liquid level of the liquid storage 350 detected by the liquid level detector 356 reaches a reference liquid level, the liquid supply valve 304 may be turned off.
- a process from when the liquid supply valve 304 is turned on to when the liquid supply valve 304 is turned off may be referred to as a liquid supply process.
- the liquid supply valve 304 may be turned off when a liquid level of the liquid storage 350 detected by the liquid level detector 356 reaches a reference liquid level.
- the liquid supplier 330 may further include liquid pumps 360 and 362 for pumping liquid stored in the liquid storage 350.
- liquid stored in the liquid storage 350 may be pumped by the liquid pumps 360 and 362 and supplied to the ice maker 40.
- the liquid pumps 360 and 362 may include a first pump 360.
- the liquid pumps may further include a second pump 362.
- first pump 360 When the first pump 360 operates, liquid may be supplied to the first tray assembly 410.
- second pump 362 When the second pump 362 operates, liquid may be supplied to the second tray assembly 450.
- the first pump 360 and the second pump 362 may operate independently. Pumping capacities of the first pump 360 and the second pump 362 may be the same or different. A pumping capacity of each of the first pump 360 and the second pump 362 may be variable.
- the liquid supplier 330 may further include first connection pipes 352 and 354 connecting each of the pumps 360 and 362 and the liquid storage 350.
- the first connection pipes 352 and 354 may be connected to the liquid storage 350 at the same or similar height to a bottom of the liquid storage 350.
- the liquid supplier 330 may further include a sub_first liquid supplier 380 for supplying liquid pumped by the first pump 360 to the first tray assembly 410.
- the liquid supplier 330 may further include a sub_second liquid supplier 382 for supplying liquid pumped by the second pump 362 to the second tray assembly 450.
- the sub_first liquid supplier 380 may supply liquid to the first tray assembly 410 from one side of the first tray assembly 410.
- the sub_second liquid supplier 382 may supply liquid to the second tray assembly 450 from one side of the second tray assembly 450.
- the sub_first liquid supplier 380 and the sub_second liquid supplier 382 may be located at one side of the guide 70.
- the liquid supplier 330 may further include second connection pipes 370 and 372 connecting each of the pumps 360 and 362 and each of the sub liquid suppliers 380 and 382.
- Liquid supplied from the sub_first liquid supplier 380 to the first tray assembly 410 may be used to generate ice. Liquid that falls again from the first tray assembly 410 may be stored in the liquid storage 350 after passing through the guide 70.
- Liquid supplied from the sub_second liquid supplier 382 to the second tray assembly 450 may be used to generate ice. Liquid that falls again from the second tray assembly 450 may be stored in the liquid storage 350 after passing through the guide 70.
- a drain pipe 360 may be connected to the liquid storage 350.
- the drain pipe 360 may extend through the drain hole 105 into the machine room 18.
- the machine room 18 may be provided with a drain tube 362 connected to the drain pipe 360.
- the drain tube 362 can finally discharge liquid to an outside of the ice making device 1.
- FIGS. 8 and 9 are perspective views showing an ice maker and a heat exchanger according to the present embodiment.
- FIG. 10 is a diagram showing an arrangement of a first tray and a second tray.
- FIG. 11 is a control block diagram of an ice making device of the present invention.
- FIG. 12 is a cross-sectional view showing a process of supplying liquid from a liquid supplier to an ice maker during an ice making process.
- the heat exchanger 50 may contact the ice maker 40.
- the heat exchanger 50 may be located at one side of the ice maker 40.
- the ice maker 40 may include a first tray assembly 410 and a second tray assembly 450 as described above.
- the first tray assembly 410 and the second tray assembly 450 may be arranged in a horizontal direction. It is also possible for the first tray assembly 410 and the second tray assembly 450 to be arranged in a vertical direction.
- the first tray assembly 410 and the second tray assembly 450 may be installed in the cabinet 10 while being connected to each other. That is, the first tray assembly 410 and the second tray assembly 450 can be modularized.
- first tray assembly 410 and the second tray assembly 450 may be installed in the cabinet 10 in a separated state.
- the first tray assembly 410 and the second tray assembly 450 may be positioned close to each other in a horizontal direction.
- the first tray assembly 410 may include a first ice making cell 440.
- an ice making cell refers to a space where ice is generated.
- One ice may be generated in one ice making cell.
- the first tray assembly 410 may include a first tray.
- the first tray may include a first one tray 420.
- the first tray may further include a first another tray 430 coupled to the first one tray 420.
- the first tray may form a plurality of first ice making cells 440.
- a plurality of first another trays 430 may be coupled to the first one tray 420.
- the first ice making cell 440 may be defined by one cell or by a plurality of cells.
- the first ice making cell 440 may include a first one cell 441 and a first another cell 442.
- the first one cell may be one of a first lower cell and a first upper cell.
- the first another cell may be another one of the first lower cell and the first upper cell.
- the first one cell may be one of a first left cell or a first right cell.
- the first another cell may be another one of the first left cell and the first right cell.
- the first one cell 441 may be formed by the first one tray 420.
- the first another cell 442 may be formed by the first another tray 430.
- the first one tray 420 may form a plurality of first one cells 441.
- Each of the plurality of first another trays 430 may form a first another cell 442.
- a plurality of first ice making cells 440 may be formed.
- the first one tray 420 may include a first opening 423.
- the first opening 423 communicates with the first one cell 441.
- a number of first openings 423 may be equal to a number of first ice making cells 440.
- the first one cell 441 may form another portion of an appearance of the first ice.
- the first another cell 442 may form a portion of an appearance of the first ice.
- first another tray 430 After the first another tray 430 is coupled to the first one tray 420, separation of the first another tray 430 from the first one tray 420 may be restricted.
- Liquid supplied from the sub_first liquid supplier 380 may pass through the first opening 423 and be supplied to the first ice making cell 440. Accordingly, the first opening 423 may serve as a liquid supply opening during an ice making process.
- a portion of liquid supplied to the first ice making cell 440 may fall to a lower part of the first tray assembly 410 through the first opening 423. Accordingly, the first opening 423 may serve as a liquid outlet opening during an ice making process.
- Ice generated in the first ice making cell 440 may be separated from the first tray assembly 410 through the first opening 423 in an ice separation process. Accordingly, the first opening 423 may serve as an ice outlet opening during an ice separation process.
- Each of the first one cell 441 and the first another cell 442 may be formed, for example, in a hexahedral shape.
- a volume of the first another cell 442 and a volume of the first one cell 441 may be the same or different.
- a perimeter (or cross-sectional area) of the first one cell 441 may be greater than a perimeter (or cross-sectional area) of the first another cell 442 so that first ice can be discharged through the first opening 423 after the first ice is generated in the first ice making cell 440.
- the first another tray 430 and the first one tray 420 are maintained in a coupled state, so that a shape of the first ice making cell 440 can be maintained.
- the heat exchanger 50 may be in contact with the first another tray 430 so that ice is firstly generated in the first another cell 442.
- the first one tray 420 may include through holes 421 and 425 through which liquid passes.
- the second tray assembly 450 may further include a second tray forming a second ice making cell 451.
- the second tray may be defined by one tray or by a plurality of trays.
- the second tray may include a second one tray 460 and a second another tray 470.
- the second one tray may be an upper tray, or a left tray.
- the second another tray 470 may be a lower tray, or a right tray. It is also possible that terms of the second one tray 460 and the second another tray 470 are opposite to each other.
- the second ice making cell 451 may be defined by one cell or by a plurality of cells.
- the second ice making cell 451 may include a second one cell 462 and a second another cell 472.
- the second one tray 460 can form the second one cell 462.
- the second another tray 470 may form the second another cell 472.
- each of the second one cell 462 and the second another cell 472 may be formed in a hemispherical shape.
- the second tray may form a plurality of second ice making cells 451.
- the second one tray 460 can form a plurality of second one cells 462.
- the second another tray 470 can form a plurality of second another cells 472.
- a portion of the first ice making cell 440 may be located at the same height as the second ice making cell 451.
- at least a portion of the first ice making cell 440 may be arranged to overlap the second ice making cell 451 in a horizontal direction.
- the second ice making cell 451 may be disposed between a rotation center C1 of the second another tray 470 and the first ice making cell 440.
- a height of one end of the first ice making cell 440 and one end of the second ice making cell 451 may be different.
- one end of the first ice making cell 440 may be positioned lower than one end of the second ice making cell 451.
- a height of the other end of the first ice making cell 440 and the other end of the second ice making cell 451 may be different.
- the other end of the first ice making cell 440 may be positioned higher than the other end of the second ice making cell 451.
- a contact surface of the second one tray 460 and the second another tray 470 may have a different height from a coupling portion of the first one tray 420 and the first another tray 430.
- a contact surface of the second one tray 460 and the second another tray 470 may be positioned higher than a coupling portion of the first one tray 420 and the first another tray 430.
- a height of the first ice making cell 440 and a height of the second ice making cell 451 may be different.
- a height of the first ice making cell 440 may be less than a height of the second ice making cell 451.
- a maximum perimeter of the first ice making cell 440 may be different from a maximum perimeter of the second ice making cell 451.
- a maximum perimeter of the first ice making cell 440 may be less than a maximum perimeter of the second ice making cell 451.
- a number of first ice making cells 440 may be different from a number of second ice making cells 451.
- a number of first ice making cells 440 may be greater than a number of second ice making cells 451.
- a volume of the first ice making cell 440 may be different from a volume of the second ice making cell 451.
- a volume of the first ice making cell 440 may be less than a volume of the second ice making cell 451.
- a sum of volumes of the plurality of first ice making cells 440 may be different from a sum of volumes of the plurality of second ice making cells 451.
- a sum of volumes of the plurality of first ice making cells 440 may be greater than a sum of volumes of the plurality of second ice making cells 451.
- the second another tray 470 may include a second opening 473.
- a liquid supply process and an ice making process may be performed in a state in which the second one tray 460 and the second another tray 470 are in contact to form the second ice making cell 451.
- Liquid supplied from the sub_second liquid supplier 382 may pass through the second opening 473 and be supplied to the second ice making cell 451. Accordingly, the second opening 473 may serve as a liquid supply opening during an ice making process.
- a portion of liquid supplied to the second ice making cell 451 may fall to a lower part of the second tray assembly 450 through the second opening 473. Accordingly, the second opening 473 may serve as a liquid outlet opening during an ice making process.
- the second another tray 470 may be moved relative to the second one tray 460.
- the first opening 423 and the second opening 473 may be located at different heights.
- the first opening 423 may be located higher than the second opening 473.
- the second tray assembly 450 may further include a case 452 supporting the second one tray 460.
- a portion of the second one tray 460 may pass through the case 452 from one side. Another portion of the second one tray 460 may be seated on the case 452.
- a driver 690 for moving the second another tray 470 may be installed on the case 452.
- the case 452 may include a circumferential portion 453.
- the circumferential portion 453 may be provided with a seating end 454.
- the seating end 454 may be seated on the first tray assembly 410.
- the seating end 454 may be seated on the first one tray 420.
- a through hole 456 through which liquid passes may be formed in the case 452
- the second tray assembly 450 may further include a supporter 480 supporting the second another tray 470.
- the supporter 480 and the second another tray 470 may be moved together.
- the supporter 480 may be movably connected to the second one tray 460.
- the supporter 480 may include a supporter opening 482a through which liquid passes.
- the supporter opening 482a may be aligned with the second opening 473.
- a diameter of the supporter opening 482a may be greater than a diameter of the second opening 473.
- the second tray assembly 450 may further include a pusher 490 for separating ice from the second another tray 470 in an ice separation process.
- the pusher 490 may be installed on the case 452.
- the pusher 490 may include a pushing column 492.
- the pushing column 492 passes through the supporter opening 482a of the supporter 480 to press the second another tray 470.
- the second another tray 470 is pressed by the pushing column 492 a shape of the second another tray 470 is deformed and the second ice may be separated from the second another tray 470.
- the second another tray 470 may be formed of a non-metallic material. In terms of ease of deformation, the second another tray 470 may be formed of a flexible material.
- the heat exchanger 50 may include a first refrigerant pipe 510 that is in contact with or adjacent to the first tray assembly 410.
- the heat exchanger 50 may further include a second refrigerant pipe 520 located adjacent to or in contact with the second tray assembly 450.
- the first refrigerant pipe 510 and the second refrigerant pipe 520 may be connected in series or in parallel.
- first refrigerant pipe 510 and the second refrigerant pipe 520 are connected in series.
- the first refrigerant pipe 510 may include a first inlet pipe 511.
- the first inlet pipe 511 may be located at one side of the first one tray 420.
- the first inlet pipe 511 may extend at a position adjacent to the driver 690.
- the first inlet pipe 511 may extend from one side of the driver 690. That is, the first inlet pipe 511 may extend in a space between the driver 690 and a rear wall 101a of the inner case 101.
- the first refrigerant pipe 510 may further include a first bent pipe 512 extending from the first inlet pipe 511.
- the first refrigerant pipe 510 may further include a first cooling pipe 513 extending from the first bent pipe 512.
- the first cooling pipe 513 may be in contact with one surface the first another tray 430. Accordingly, the first another tray 430 may be cooled by refrigerant flowing through the first cooling pipe 513.
- the first cooling pipe 513 may include a plurality of straight parts 513a.
- the first cooling pipe 513 may further include a curved shaped connection part 513b connecting ends of two adjacent straight parts 513a.
- the first inlet pipe 511 may be located adjacent to a boundary portion between the first tray assembly 410 and the second tray assembly 450.
- the first cooling pipe 513 may extend from the boundary portion in a direction away from the second tray assembly 450.
- One straight part may contact one surface of a plurality of first another trays 430.
- a plurality of straight parts 513a may be arranged at substantially the same height.
- the first refrigerant pipe 510 may further include a first connection pipe 514 extending from an end of the first cooling pipe 513.
- the first connection pipe 514 may extend to be lower in height than the first cooling pipe 513.
- the first refrigerant pipe 510 may further include a second cooling pipe 515 connected to the first connection pipe 514.
- the second cooling pipe 515 may be located lower than the first cooling pipe 513.
- the second cooling pipe 515 may contact a side surface of the first another tray 430.
- the second cooling pipe 515 may include a plurality of straight parts 515a and 515b.
- the second cooling pipe 515 may further include a curved shaped connection portion 515c connecting two adjacent straight parts 515a and 515b.
- a plurality of first another trays 430 may be arranged in a plurality of columns and rows.
- a portion of straight parts 515a may contact one side of the first another tray 430 in one row.
- another straight part 515b may contact the first another trays 430 of two adjacent rows, respectively.
- the portion of the straight part 515a may contact a first surface of a first another tray in a first row.
- another straight part 515b may contact a second surface of a first another tray in a first row and a first surface of a first another tray in a second row.
- the first refrigerant pipe 510 may further include a first discharge pipe 516.
- the first discharge pipe 516 may extend from an end of the second cooling pipe 515.
- the first discharge pipe 516 may extend toward the second tray assembly 450.
- a height of the first discharge pipe 516 may be variable in an extension direction.
- the second refrigerant pipe 520 may receive refrigerant from the first discharge pipe 516.
- a height of the first discharge pipe 516 may be variable in an extension direction.
- the second refrigerant pipe 520 may be a pipe formed integrally with the first discharge pipe 516 or may be a pipe coupled to the second discharge pipe 516.
- the second refrigerant pipe 520 may include a second inlet pipe 522 connected to the first discharge pipe 516.
- the second inlet pipe 522 may be located at an opposite side of the driver 690 in the second tray assembly 450.
- the second refrigerant pipe 520 may further include a third cooling pipe 523.
- the third cooling pipe 523 may extend from the second inlet pipe 522.
- a portion of the second refrigerant pipe 520 may be positioned higher than one end the second ice making cell 451.
- the third cooling pipe 523 may contact the second one tray 460. Therefore, the second one tray 460 may be cooled by refrigerant flowing through the third cooling pipe 523. For example, the third cooling pipe 523 may contact one surface of the second one tray 460.
- the liquid supply assembly 320 may be positioned higher than the third cooling pipe 523.
- the third cooling pipe 523 may include a plurality of straight parts 523a.
- the third cooling pipe 523 may further include a curved shaped connection part 523b connecting two adjacent straight parts 523a.
- One or more of a plurality of straight parts 523a may extend in a direction parallel to an arrangement direction of a plurality of second ice making cells 451.
- a plurality of straight parts 523a may overlap the second ice making cell 451 in a first direction.
- Some of the plurality of straight parts 523a may overlap the second opening 473 in the first direction.
- the first direction may be an arrangement direction of the second one cell and the second another cell forming a second ice making cell 451.
- the third cooling pipe 523 may be located higher than the first cooling pipe 513 and the second cooling pipe 515.
- the second refrigerant pipe 520 may further include a second bent pipe 524 extending from an end of the third cooling pipe 523. A portion of the second bent pipe 524 may extend from an end of the third cooling pipe 523 along one side of the driver 690.
- Another portion of the second bent pipe 524 may extend in another direction.
- the second refrigerant pipe 520 may further include a second discharge pipe 525 connected to the second bent pipe 524. At least a portion of the second discharge pipe 525 may extend parallel to the first inlet pipe 511.
- the second discharge pipe 525 may be located at one side of the driver 690. That is, the second discharge pipe 525 may extend in a space between the driver 690 and a rear wall 101a of the inner case 101.
- At least a portion of the second discharge pipe 525 and the first inlet pipe 511 may be arranged in the first direction.
- At least a portion of the second discharge pipe 525 may overlap the first inlet pipe 511 in the first direction. At least a portion of the second discharge pipe 525 may be located at one side of the first inlet pipe 511.
- the liquid supply assembly 320 may include a first supplier for supplying liquid to the first tray assembly 410.
- the liquid supply assembly 320 may include a second supplier for supplying liquid to the second tray assembly 450.
- the second supplier may receive liquid from the first supplier.
- the second supplier may extend from a point of the first supplier.
- the first supplier may be disposed at one side of the first refrigerant pipe 510, and the second supplier may be disposed at one side of the second refrigerant pipe 520.
- the liquid supply assembly 320 may supply liquid to the ice maker 40 during a liquid supply process.
- the liquid supply assembly 320 may supply liquid to the ice maker 40 during an ice separation process.
- the liquid supply assembly 320 can supply liquid supplied from an external liquid source 302 to the ice maker 40. Since liquid supplied from the external liquid source 302 may be liquid having normal temperature or liquid having a temperature similar to a normal temperature, liquid may be supplied from the liquid supply assembly 320 to the ice maker 40 in an ice separation process to increase a temperature of the ice maker 40.
- the ice making device 1 may further include a controller 190.
- the controller 190 may control the liquid supply valve 304 during a liquid supply process.
- the controller 190 may control one or more of the compressor 183 and the condenser fan 185 (or fan driver) in an ice making process.
- the controller 190 may control the first pump 360 and/or the second pump 362 in the ice making process.
- the controller 190 may independently control the first pump 360 and the second pump 362.
- the controller 190 may control an ice separation assembly in an ice separation process.
- the ice separation assembly may include one or more of the liquid supply assembly 320 and the refrigerant pipes 510 and 520.
- the controller 190 may control liquid discharge from the liquid supply assembly 320 by controlling the liquid supply valve 304 in an ice separation process.
- the controller 190 may control the switching valve to allow high-temperature refrigerant to flow to the refrigerant pipes 510 and 520 in the ice separation process.
- the ice making device 1 may further include a first temperature sensor 191 for detecting a temperature of the first ice making cell 440 or a temperature around the first ice making cell 440.
- the ice making device 1 may further include a second temperature sensor 192 for detecting a temperature of the second ice making cell 451 or a temperature around the second ice making cell 441.
- the controller 190 may determine whether ice making in the first tray assembly 410 is completed based on a temperature detected by the first temperature sensor 191.
- the controller 190 may determine whether ice making in the second tray assembly 450 is completed based on a temperature detected by the second temperature sensor 192.
- FIG. 13 is a flowchart for explaining a control method of an ice making device according to a first embodiment of the present invention.
- a process for generating ice may include a liquid supply process (S11).
- a process for generating ice may further include an ice making process (S12 to S17).
- a process for generating ice may further include an ice separation process (S18).
- the liquid supply valve 304 When the liquid supply process starts (S1), the liquid supply valve 304 is turned on and liquid supplied from an external liquid source 302 flows along the liquid supply passage. The liquid flowing along the liquid supply passage is supplied to the ice maker 40 through the liquid supply assembly 320.
- the liquid supplied to the ice maker 40 falls downward from the ice maker 40 and is stored in the liquid storage 350.
- the liquid supply valve 304 is turned off and the liquid supply process is completed.
- a cooler operates and low-temperature refrigerant may flow into the heat exchanger 50.
- the compressor 183 and the condenser fan 185 may be turned on (S12).
- the condenser fan 185 may also be turned on.
- the compressor 183 and the condenser fan 185 may be turned on before the ice making process and remain turned on during the ice making process.
- the valve 188 can be turned off.
- liquid may be supplied to the ice maker 40 by the liquid supplier 330.
- an ice making time in the first tray assembly 410 and an ice making time in the second tray assembly may be different.
- the ice separation assembly may operate to simultaneously separate ice from the first tray assembly 410 and the second tray assembly 450. That is, an ice separation process for the first tray assembly 410 and an ice separation process for the second tray assembly 450 may be performed simultaneously.
- an ice making completion time in the two tray assemblies must be the same or similar.
- liquid is firstly supplied to a tray assembly with a longer ice making time, so that an ice making completion time in the two tray assemblies 410 and 450 can be the same or similar.
- the controller 190 may firstly turn on the second pump 362 (S13).
- a difference between an ice making time in the second tray assembly 450 and an ice making time in the first tray assembly 410 may be stored in a memory (not shown).
- An ice making time of the first tray assembly 410 and an ice making time in the second tray assembly 450 may be determined through multiple experiments and stored in the memory.
- a difference in operating time (first reference time) of the first pump 360 and the second pump 362 may be determined.
- liquid may be supplied to the second tray assembly 450 through the sub_second liquid supplier 382.
- the second liquid supply nozzle 383 may be positioned at one side of the second tray assembly 450. Liquid sprayed from the second liquid supply nozzle 383 may be supplied to the second ice making cell 451 of the second tray assembly 450.
- Liquid sprayed from the second liquid supply nozzle 383 is supplied into the second ice making cell 451 through a supporter opening 482a of the supporter 480 and a second opening 473 of the second another tray 470.
- Liquid supplied to the second ice making cell 451 flows toward an inner one surface of the second one tray 460. A portion of liquid within the second ice making cell 451 may be frozen by the second refrigerant pipe 520. Unfrozen liquid falls downward again through the second opening 473. Liquid that falls downward through the second opening 473 is stored again in the liquid storage 350.
- the controller 190 may determine whether a first reference time t1 has elapsed after the second pump 362 is turned on (S14).
- step S14 if it is determined that a first reference time t1 has elapsed after the second pump 362 is turned on, the controller 190 may turn on the first pump 360 (S15).
- liquid may be supplied to the first tray assembly 410 through the sub_first liquid supplier 380.
- the first liquid supply nozzle 381 is disposed at one side of the first tray assembly 410. Liquid sprayed from the first liquid supply nozzle 381 is supplied to a first ice making cell 440 of the first tray assembly 410.
- Liquid sprayed from the first liquid supply nozzle 381 is supplied to the first ice making cell 440 410 through a first opening of the first one tray 420. Liquid supplied to the first ice making cell 440 flows toward one surface of the first another tray 430. A portion of liquid within the first ice making cell 440 is frozen by the first refrigerant pipe 510. Unfrozen liquid falls downward again through the first opening 423. Liquid that falls downward through the first opening 423 is stored in the liquid storage 350 again.
- ice is generated at one side of the first ice making cell 440 and grows toward another side.
- a portion of the liquid is frozen.
- air bubbles in the liquid may be discharged from the liquid.
- the second pump 362 operates firstly and when a first reference time has elapsed, the first pump 360 is turned on and the first pump 360 and the second pump 362 are operated together. That is, in the ice making process, a start time of operation (liquid supply start time) of the first pump 360 may be delayed.
- an ice making start time (or liquid supply start time) in the plurality of tray assemblies 410 and 450 may be different.
- a start of an ice making of a tray assembly having a short ice making time may be delayed.
- an ice making may start in the second tray assembly 450 first, and an ice making in the first tray assembly 410 may be delayed.
- the second ice I2 may grow from a second one tray 460 to cover one side of the second opening 423a of the second another tray 470.
- the first ice I1 may grow to an inside of the first one cell 441.
- the controller 190 may determine whether ice making is completed in the tray assembly.
- the controller 190 may determine whether a second reference time t2 has elapsed after the first pump 360 is turned on (S16).
- the second reference time may be substantially the same as an ice making time of the first tray assembly 410.
- a sum of the first and second reference times is equal to an ice making time of the second tray assembly 450.
- the controller 190 may determine whether an ice making is completed based on an ice making time of the first tray assembly 410 or an ice making time of the second tray assembly 450.
- the second reference time may be determined as a time sufficient to complete a generation of ice in each tray assembly 410 and 450.
- step S16 when it is determined that a second reference time t2 has elapsed after the first pump 360 is turned on, the controller 190 determines that an ice making process is completed and turns off the first pump 360 and the second pump 362 (S17).
- the controller 190 may perform an ice separation process (S18).
- a flow direction of refrigerant is firstly switched by the switching valve so that high-temperature refrigerant compressed in the compressor 183 may flow to the heat exchanger 50.
- High-temperature refrigerant flowing into the heat exchanger 50 may be heat exchanged with the ice maker 40.
- heat may be transferred to the ice maker 40.
- the first ice I1 may be separated from the first tray assembly 410 by the heat transferred to the ice maker 40. When the first ice I1 is separated from the first tray assembly 410, the first ice I1 may fall onto the guide 70. The first ice I1 that fell onto the guide 70 may be stored in the first storage space 132.
- the second ice I2 may be separated from at least a surface of the second one tray 460 by heat transferred to the ice maker 40.
- the driver 690 may operate to separate the second ice I2 from the second tray assembly 450.
- the second another tray 470 may be moved in a forward direction (clockwise direction with respect to FIG. 12 ).
- the second another tray 470 When the second ice I2 is separated from the second one tray 460 and second another tray 470 by high-temperature refrigerant flowing into the heat exchanger 50, the second another tray 470 may be moved while second ice I2 is supported by the second another tray 470. In this case, when the second another tray 470 moves at an angle of approximately 90 degrees, the second ice I2 may fall from the second another tray 470.
- the pusher 490 presses the second another tray 470 and the second ice I2 may be separated from the second another tray 470 and falls downward while the second another tray 470 moves to an ice separation angle.
- the second ice I2 When the second ice I2 is separated from the second tray assembly 450, the second ice I2 may fall onto the guide 70.
- the second ice I2 that fell onto the guide 70 may be stored in the second storage space 134.
- the second another tray 470 After the second another tray 470 is moved in the forward direction, the second another tray 470 is moved in a reverse direction (counterclockwise direction in the drawing) by the driver 690 and in contact with the second one tray 460.
- an ice separation process is performed when an ice making of the two tray assemblies is completed, so ice in a perfect shape may be generated and a malfunction of an ice separation may be prevented.
- an ice separation time may be reduced and a malfunction of an ice separation may be reduced. If an ice separation time is reduced, a cycle for generating ice for one time may be reduced. If a cycle is reduced, an amount of ice generated per day or for a set time may increase.
- FIG. 14 is a flowchart for explaining a control method of an ice making device according to a second embodiment of the present invention.
- the present embodiment is the same as a first embodiment in other portions, but is different in determining a timing of operating a pump and in determining a completion of an ice making. Accordingly, only characteristic portions of this embodiment will be described.
- the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process starts.
- the cooler operates to allow low-temperature refrigerant to flow into the heat exchanger 50.
- the compressor 183 and the condenser fan 185 may be turned on (S12).
- the controller 190 may firstly turn on the second pump 362 (S13).
- the controller 190 may determine whether a temperature detected by the second temperature sensor 192 is less than a first reference temperature T1 after the second pump 362 is turned on (S21).
- step S21 if it is determined that a temperature detected by the second temperature sensor 192 is less than a first reference temperature T1, the controller 190 turns on the first pump 360 (S22).
- an operating time of the first pump 360 may be determined based on a temperature detected by the second temperature sensor 192.
- the first reference temperature T1 may be determined in advance based on a difference between an ice making time of the first tray assembly 410 and an ice making time of the second tray assembly 450.
- the controller 190 determines whether a temperature detected by the first temperature sensor 191 is less than a first reference temperature T1 after the second pump 362 is turned on.
- liquid is supplied to the first tray assembly 410 through the sub_first liquid supplier 380, and an ice making may start in the first tray assembly 410.
- a start time of operation of the first pump 360 in the ice making process may be delayed.
- the controller 190 may determine whether an ice making is completed in each tray assembly.
- the controller 190 may determine whether a temperature detected by the second temperature sensor 192 is less than a second reference temperature T2 after the first pump 360 is turned on (S23).
- the second reference temperature T2 is a temperature at which an ice making is sufficiently completed in the second tray assembly 450.
- an ice making in the first tray assembly 410 may also be completed.
- the controller 190 may determine whether a temperature detected by the first temperature sensor 191 is less than a second reference temperature T2 after the first pump 360 is turned on.
- an ice making completion time of the two tray assemblies may be the same or similar due to a delay in an ice making start time. Accordingly, when a temperature detected by the first temperature sensor 191 is less than the second reference temperature T2, it may be determined that an ice making in the first tray assembly 410 is completed. An ice making in the second tray assembly 450 will also be completed.
- step S22 if it is determined that a temperature detected by the second temperature sensor 192 is less than a second reference temperature T2, the controller 190 determines that an ice making process is completed and then turns off the first pump 360 and the second pump 362 (S17).
- the controller 190 may perform an ice separation process (S18).
- FIG. 15 is a flowchart for explaining a control method of an ice making device according to a third embodiment of the present invention.
- the present embodiment is the same as a first embodiment and a second embodiment in other portions, but is different in that an ice making start time of a plurality of tray assemblies may be the same and an ice making end time (or liquid supply end time) may be different. Accordingly, only characteristic portions of this embodiment will be described.
- the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may starts.
- the cooler operates to allow low-temperature refrigerant to flow into the heat exchanger 50.
- the compressor 183 and the condenser fan 185 may be turned on (S12).
- the controller 190 may turn on the first pump 360 and the second pump 362 (S31). That is, an ice making may start simultaneously in the first and second tray assemblies 410 and 450.
- liquid is supplied to the first tray assembly 410 through the sub_first liquid supplier 380, and an ice making may start in the first tray assembly 410.
- the controller 190 may determine whether a third reference time t3 has elapsed after the first and second pumps 360 and 362 are turned on (S32).
- the controller 190 may determine whether an ice making is completed in the first tray assembly 410 while an ice making process is performed in the two tray assemblies 410 and 450.
- the controller 190 may determine that an ice making in the first tray assembly 410 is completed when a third reference time t3 has elapsed after the first pump 360 is turned on.
- the third reference time t3 may be referred to as a first end reference time.
- the third reference time t3 is an ice making time of the first tray assembly 410.
- step S21 if it is determined that a third reference time t3 has elapsed after the first and second pumps 360 and 362 are turned on, the controller 190 turns off the first pump 360 (S33).
- the controller 190 may firstly turn off a pump for supplying liquid to a tray assembly where an ice making is completed.
- the controller 190 may determine whether a fourth reference time t4 has elapsed after the first pump 360 is turned off (S34).
- step S34 if it is determined that a fourth reference time t4 has elapsed after the first pump 360 is turned off, the controller 190 may turn off the second pump 362 (S35). That is, when the controller 190 determines that an ice making of the second tray assembly 450 is completed, the controller may turn off the second pump 362.
- a sum of the third reference time t3 and the fourth reference time t4 may be an ice making time of the second tray assembly 450.
- the fourth reference time t4 may be referred to as a second end reference time.
- the controller 190 may perform an ice separation process (S18).
- FIG. 16 is a flowchart for explaining a control method of an ice making device according to a fourth embodiment of the present invention.
- the present embodiment is the same as a third embodiment in other portions, but is different in determining a timing of turning off the pump. Accordingly, only characteristic portions of this embodiment will be described.
- the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may start.
- the cooler operates to allow low-temperature refrigerant to flow into the heat exchanger 50.
- the compressor 183 and the condenser fan 185 may be turned on (S12).
- the controller 190 may turn on the first pump 360 and the second pump 362 (S31). That is, an ice making may start simultaneously in the first and second tray assemblies 410 and 450.
- liquid is supplied to the first tray assembly 410 through the sub_first liquid supplier 380, and an ice making may start in the first tray assembly 410.
- the controller 190 determines whether a temperature detected by the first temperature sensor 191 is less than the third reference temperature T3 after the first and second pumps 360 and 362 are turned on (S41).
- the third reference temperature may be referred to as a first end reference temperature for determining completion of an ice making of the first tray assembly.
- the controller 190 may determine that an ice making in the first tray assembly 410 is completed when a temperature detected by the first temperature sensor 191 is less than the third reference temperature T3 after the first and second pumps 360 and 362 are turned on.
- the controller 190 may determine that an ice making in the first tray assembly 410 is completed when a temperature detected by the second temperature sensor 192 is less than the third reference temperature T3 after the first and second pumps 360 and 362 are turned on.
- the controller 190 may determine whether an ice making is completed in the first tray assembly 410 while an ice making process is performed in the two tray assemblies 410 and 450.
- step S41 if it is determined that a temperature detected by the first temperature sensor 191 is less than the third reference temperature T3, the controller 190 turns off the first pump 360 (S42).
- the controller 190 may firstly turn off a pump for supplying liquid to a tray assembly where an ice making is completed.
- the controller 190 may determine whether a temperature detected by the second temperature sensor 192 is less than a second reference temperature T2 after the first pump 360 is turned off (S43).
- the second reference temperature T2 is a temperature at which an ice making is sufficiently completed in the second tray assembly 450.
- a temperature detected by the second temperature sensor 192 is lower than a second reference temperature T2
- step S43 if it is determined that a temperature detected by the second temperature sensor 192 is less than the second reference temperature T2, the controller 190 turns off the second pump 362 (S44).
- the controller 190 may perform an ice separation process (S18).
- FIG. 17 is a control block diagram of an ice making device according to a fifth embodiment of the present invention.
- the first refrigerant pipe 510 and the second refrigerant pipe 520 may be connected in parallel.
- An ice making device of this embodiment may further include a first valve 194 and a second valve 195 in addition to the configuration described in FIG. 10 .
- a configuration described in FIG. 10 may be applied equally or similarly to an ice making device of this embodiment.
- the first valve 194 may control a flow of refrigerant into the first refrigerant pipe 510. For example, when the first valve 194 is turned on, refrigerant may flow into the first refrigerant pipe 510. When the first valve 194 is turned off, a flow of refrigerant into the first refrigerant pipe 510 is blocked. When the first valve 194 is turned on, the first valve 194 may control a flow rate of refrigerant flowing into the first refrigerant pipe 510.
- the second valve 195 may control a flow of refrigerant into the second refrigerant pipe 520. For example, when the second valve 195 is turned on, refrigerant may flow into the second refrigerant pipe 520. When the second valve 195 is turned off, a flow of refrigerant into the second refrigerant pipe 520 is blocked. When the second valve 195 is turned on, the second valve 195 may control a flow rate of refrigerant flowing into the second refrigerant pipe 520.
- FIG. 18 is a flowchart for explaining a control method of an ice making device according to a fifth embodiment of the present invention.
- This embodiment also basically explains a method of controlling an ice making device based on a fact that ice making times of a plurality of tray assemblies are different.
- a process for generating ice may include a liquid supply process (S11).
- a process for generating ice may further include an ice making process (S51 to S57).
- a process for generating ice may further include an ice separation process (S18).
- the liquid supply valve 304 When the liquid supply process starts (S11), the liquid supply valve 304 is turned on and liquid supplied from an external liquid supply source 302 flows along the liquid supply passage. Liquid flowing along the liquid supply passage is supplied to the ice maker 40 through the liquid supply assembly 320.
- Liquid supplied to the ice maker 40 falls to a lower side of the ice maker 40 and is stored in the liquid storage 350.
- the liquid supply valve 304 is turned off and the liquid supply process is completed.
- the cooler operates to allow low-temperature refrigerant to flow into the heat exchanger 50.
- liquid may be supplied to the ice maker 40 by the liquid supplier 330.
- the controller 190 may firstly turn on the second pump 362 (S51). That is, an ice making in a second tray assembly 450 having a long ice making time may start firstly.
- controller 190 may turn on the compressor 183 and the condenser fan 185 (S52).
- the controller 190 may turn on the second valve 195 (S53).
- Steps S51 to S53 may be performed sequentially or simultaneously. An order of steps S51 to S53 can be changed.
- a difference between an ice making time in the second tray assembly 450 and an ice making time in the first tray assembly 410 may be stored in a memory (not shown).
- An ice making time of the first tray assembly 410 and an ice making time of the second tray assembly 450 may be determined through multiple experiments and stored in the memory.
- a difference in operating times (first reference time) of the first pump 360 and the second pump 362 may be determined.
- liquid is supplied to the second tray assembly 450 through the sub_second liquid supplier 382 to create ice in the second tray assembly 450.
- the controller 190 may determine whether a first reference time t1 has elapsed after the second valve 195 is turned on (S54). Alternatively, the controller 190 may determine whether a first reference time t1 has elapsed after the second pump 362 is turned on.
- step S54 if it is determined that a first reference time t1 has elapsed after the second valve 195 is turned on, the controller 190 may turn on the first pump 360 and the first valve (S55).
- liquid may be supplied to the first tray assembly 410 through the sub_first liquid supplier 380.
- the controller 190 may determine whether an ice making is completed in each tray assembly.
- the controller 190 may determine whether a second reference time t2 has elapsed after the first pump 360 or the first valve 194 is turned on (S56).
- the second reference time may be substantially the same as an ice making time of the first tray assembly 410.
- a sum of the first and second reference times is equal to an ice making time of the second tray assembly 450.
- the controller 190 may determine whether an ice making is complete based on an ice making time of the first tray assembly 410 or an ice making time of the second tray assembly 450.
- the second reference time may be determined as a time sufficient to complete a generation of ice in each of the tray assemblies 410 and 450.
- step S56 if it is determined that a second reference time t2 has elapsed after the first pump 360 or the first valve 194 is turned on, the controller 190 determines that an ice making process is completed and may turn off the first pump 360 and the second pump 362 (S57).
- the first valve 194 and the second valve 195 may be maintained in an on state. Alternatively, the first valve 194 and the second valve 195 may be turned on after being turned off.
- the controller 190 may perform an ice separation process (S18).
- FIG. 19 is a flowchart for explaining a control method of an ice making device according to a sixth embodiment of the present invention.
- the present embodiment is the same as a fifth embodiment in other portions, but is different in determining a timing of operating a pump and in determining a completion of an ice making. Accordingly, only characteristic portions of this embodiment will be described.
- a process for generating ice may include a liquid supply process (S11).
- a process for generating ice may further include an ice making process.
- a process for generating ice may further include an ice separation process (S18).
- the liquid supply valve 304 When the liquid supply process starts (S11), the liquid supply valve 304 is turned on and liquid supplied from an external liquid supply source 302 flows along the liquid supply passage. Liquid flowing along the liquid supply passage is supplied to the ice maker 40 through the liquid supply assembly 320.
- Liquid supplied to the ice maker 40 falls to a lower side of the ice maker 40 and is stored in the liquid storage 350.
- the liquid supply valve 304 is turned off and the liquid supply process is completed.
- the cooler operates to allow low-temperature refrigerant to flow into the heat exchanger 50.
- liquid may be supplied to the ice maker 40 by the liquid supplier 330.
- the controller 190 may firstly turn on the second pump 362 (S51). That is, an ice making in a second tray assembly 450 having a long ice making time may start firstly.
- controller 190 may turn on the compressor 183 and the condenser fan 185 (S52).
- the controller 190 may turn on the second valve 195 (S53).
- Steps S51 to S53 may be performed sequentially or simultaneously. An order of steps S51 to S53 can be changed.
- liquid is supplied to the second tray assembly 450 through the sub_second liquid supplier 382 to generate ice in the second tray assembly 450.
- the controller 190 determines whether a temperature detected by the second temperature sensor 192 is less than a first reference temperature T1 after the second pump 362 or the second valve 195 is turned on (S61) (determination of a starting time of the first pump).
- step S61 if it is determined that a temperature detected by the second temperature sensor 192 is less than a first reference temperature T1, the controller 190 may turn on the first pump 360 and the first valve 194 (S62).
- the controller 190 may determine whether a temperature detected by the first temperature sensor 191 is less than a first reference temperature T1 after the second pump 362 or the second valve 195 is turned on.
- liquid may be supplied to the first tray assembly 410 through the sub_first liquid supplier 380.
- the first valve 194 is turned on, refrigerant flows into the first refrigerant pipe 510 to cool the first tray assembly 410, ice is generated in the first tray assembly 410.
- the controller 190 may determine whether an ice making is completed in each tray assembly.
- the controller 190 determines whether a temperature detected by the second temperature sensor 192 is less than a second reference temperature T2 after the first pump 360 or the first valve 194 is turned on (S63).
- the second reference temperature T2 is a temperature at which an ice making is sufficiently completed in the second tray assembly 450.
- an ice making in the first tray assembly 410 may also be completed.
- the controller 190 determines whether a temperature detected by the first temperature sensor 191 is less than a second reference temperature T2 after the first pump 360 or the first valve 194 is turned on.
- An ice making time of the first tray assembly 410 is less than an ice making time of the second tray assembly 450, but due to a delay in an ice making start time (or liquid supply start time), an ice making completion time of the two tray assemblies is the same or similar. Accordingly, when a temperature detected by the second temperature sensor 192 is less than a second reference temperature T2, it may be determined that an ice making in the second tray assembly 450 is completed. An ice making in the first tray assembly 410 will also be completed.
- step S63 if it is determined that a temperature detected by the second temperature sensor 192 is less than a second reference temperature T2, the controller 190 determines that an ice making process is completed and may turn off the first pump 360 and the second pump 362 (S57).
- the first valve 194 and the second valve 195 may be maintained in an on state. Alternatively, the first valve 194 and the second valve 195 may be turned on after being turned off.
- the controller 190 may perform an ice separation process (S18).
- FIG. 20 is a flowchart for explaining a control method of an ice making device according to a seventh embodiment of the present invention.
- the present embodiment is the same as a third embodiment in other portions, but is different in that refrigerant flows by two valves. Accordingly, only characteristic portions of this embodiment will be described.
- the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may starts.
- the controller 190 may turn on the first pump 360 and the second pump 362 (S71).
- the controller 190 may turn on the compressor 183 and the condenser fan 185 (S72).
- the controller 190 may turn on the first valve 194 and the second valve 195 (S73).
- an ice making may be started simultaneously in the first and second tray assemblies 410 and 450.
- liquid may be supplied to the first tray assembly 410 through the sub_first liquid supplier 380.
- first valve 194 When the first valve 194 is turned on, refrigerant flows into the first refrigerant pipe 510 to cool the first tray assembly 410.
- liquid may be supplied to the second tray assembly 450 through the sub_second liquid supplier 382.
- the second valve 195 is turned on, refrigerant flows into the second refrigerant pipe 520 to cool the second tray assembly 450.
- the controller 190 may determine whether a third reference time t3 has elapsed after the first and second pumps 360 and 362 are turned on (S74).
- the controller 190 may determine whether an ice making is completed in the first tray assembly 410 while an ice making process is performed in the two tray assemblies 410 and 450.
- the controller 190 may determine that an ice making in the first tray assembly 410 is completed when a third reference time t3 has elapsed after the first and second pumps 360 and 362 are turned on.
- the third reference time t3 is an ice making time of the first tray assembly 410.
- step S74 if it is determined that a third reference time t3 has elapsed after the first and second pumps 360 and 362 are turned on, the controller 190 may turn off the first pump 360 and the first valve 194 (S75).
- the controller 190 may determine whether a fourth reference time t4 has elapsed after the first pump 360 or the first valve 194 is turned off (S76).
- step S76 if it is determined that a fourth reference time t4 has elapsed after the first pump 360 is turned off, the controller 190 may turns off the second pump 362 and the second valve 195. That is, when the controller 190 determines that an ice making of the second tray assembly 450 is completed, the controller turns off the second pump 362.
- a sum of the third reference time t3 and the fourth reference time t4 may be an ice making time of the second tray assembly 450.
- the controller 190 may perform an ice separation process (S18).
- FIG. 21 is a flowchart for explaining a control method of an ice making device according to an eighth embodiment of the present invention.
- the present embodiment is the same as a seventh embodiment in other portions, but is different in determining a timing of turning off a pump. Accordingly, only characteristic portions of this embodiment will be described.
- the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may start.
- the controller 190 may turn on the first pump 360 and the second pump 362 (S71).
- the controller 190 may turn on the compressor 183 and the condenser fan 185 (S72).
- the controller 190 may turn on the first valve 194 and the second valve 195 (S73).
- the controller 190 determines whether a temperature detected by the first temperature sensor 191 is less than the third reference temperature T3 after the first and second pumps 360 and 362 are turned on (S81).
- the controller 190 may determine that an ice making is completed in the first tray assembly 410 when a temperature detected by the first temperature sensor 191 is less than the third reference temperature T3 after the first and second pumps 360 and 362 are turned on.
- the controller 190 may determine that an ice making is completed in the first tray assembly 410 when a temperature detected by the second temperature sensor 191 is less than the third reference temperature T3 after the first and second pumps 360 and 362 are turned on.
- the controller 190 may determine whether an ice making is completed in the first tray assembly 410 while an ice making process is performed in the two tray assemblies 410 and 450.
- step S81 if it is determined that a temperature detected by the first temperature sensor 191 is less than the third reference temperature T3 after the first and second pumps 360 and 362 are turned on, the controller 190 turns off the first pump 360 and the first valve 194 (S82).
- the controller 190 determines whether a temperature detected by the second temperature sensor 192 is less than a second reference temperature T2 after the first pump 360 or the first valve 194 is turned off (S83).
- a temperature detected by the second temperature sensor 192 is lower than a second reference temperature T2
- step S83 if it is determined that a temperature detected by the second temperature sensor 192 is less than the second reference temperature T2, the controller 190 may turn off the second pump 362 and the second valve 194 (S77).
- the controller 190 may perform an ice separation process (S18).
- an ice making of a tray having a shorter ice making time may be delayed in a plurality of trays (or tray assemblies). For example, a start of liquid supply to a tray having a shorter ice making time may be delayed.
- an end time of liquid supply to a tray having a shorter ice making time in a plurality of trays (or tray assemblies) may be advanced.
- cooling of a tray having a shorter ice making time may be delayed in a plurality of trays (or tray assemblies). For example, a start of cooling of a tray having a shorter ice making time may be delayed.
- a cooling end time of a tray having a shorter ice making time in a plurality of trays (or tray assemblies) may be advanced.
- a supply amount of liquid per unit time between a plurality of trays may be different. For example, while a plurality of pumps operates simultaneously, a supply amount of liquid per unit time to the first tray may be less than a supply amount of liquid per unit time to the second tray. In this case, ice making completion times in the first tray and the second tray may be the same or similar. Even when multiple pumps do not operate simultaneously, a supply amount of liquid per unit time to the first tray when the first pump operates is less than a supply amount of liquid per unit time to the second tray when the second pump operates.
- multiple pumps may operate intermittently. That is, a plurality of pumps may be repeatedly turned on and tuned off. In an ice making process, an on-time times of multiple pumps may be different from each other. Alternatively, in an ice making process, a number of turns on (number of liquid supply times) between multiple pumps may be different from each other.
- an on time of a first pump corresponding to a first tray may be less than an on time of a second pump corresponding to a second tray.
- a turn-on number of a first pump corresponding to a first tray may be less than a turn-on number of a second pump corresponding to a second tray.
- a supply amount of cooling power to the plurality of trays may be different from each other.
- a supply amount of cooling power may be an amount of cooling power supplied to trays by the cooler.
- a supply amount of cooling power to a first tray may be less than a supply amount of cooling power to a second tray.
- a number of times of a supply of a cooling power to the first tray may be less than a number of times of a supply of a cooling power to the second tray.
- a time for supplying cooling power to the first tray may be less than a time for supplying cooling power to the second tray.
- the refrigerator may include some or all of the components of the ice making device 1.
- the refrigerator may include a cabinet having a storage chamber, and a door that opens and closes the storage chamber.
- An ice making chamber may be provided in the cabinet or the door.
- An ice maker 40 may be provided in the ice making chamber with the same structure or a similar form as the ice maker 40 of this embodiment.
- the cooler in the ice making device 1 may be replaced with a cooler or a refrigerant cycle that cools the storage chamber of the refrigerator.
- a guide 70, a liquid supply assembly 320, and a liquid supplier 330 provided in the ice making device 1 may also be applied to the refrigerator or may be modified in shape, size, or location to suit characteristics of the refrigerator.
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Abstract
Description
- The present disclosure relates to an ice making device and a refrigerator.
- In general, a refrigerator is a home appliance for storing food at a low temperature in a storage space that is covered by a refrigerator door. The refrigerator is configured to keep stored food in an optimal state by cooling the inside of the storage space using cold air generated through heat exchange with a refrigerant circulating in a refrigeration cycle.
- The refrigerator may be placed independently in a kitchen or a living room or may be accommodated in a kitchen cabinet.
- The refrigerator is gradually becoming larger and more multi-functional in accordance with the change in dietary life and the trend of higher quality products. Refrigerators including various structures and convenience devices that take user convenience into consideration are being released.
- An automatic ice maker is disclosed in
that is a prior art document.Japanese Registration Patent No. 5687018 - The automatic ice maker includes an ice making chamber for forming ice, an evaporator disposed at an upper side of the ice making chamber, a water tray disposed at a lower side of the ice making chamber and rotatably supported on a support shaft, an ice making water tank assembled at a lower side of the water tray, a supply pump connected to one side of the ice making water tank, a guide member disposed at one side of the ice making water tank and being rotatable, and an ice storage compartment for storing ice.
- In an ice making process, water is supplied from a supply pump while the water tray closes a space of the ice making chamber, and the water supplied to the ice making cell may be cooled by an evaporator.
- In an ice separation process, high-temperature gas is supplied to the evaporator to heat the ice making cell, and at the same time, the water tray is tilted downward, and in a process of tilting the water tray downward, the guide member is rotated to cover an upper side of the water tray.
- As the ice making cell is heated, ice is separated from the ice making cell, falls to an upper side of the guide member, and finally moves to the ice storage compartment.
- However, in the prior art, it only discloses technology for generating one type of ice, and does not disclose technology for generating different types of ice.
- The present embodiment provides an ice making device and a refrigerator capable of generating different types of ice.
- Alternatively or additionally, one embodiment provides an ice making device and a refrigerator in which an ice separation can be performed simultaneously on a plurality of trays.
- Alternatively or additionally, one embodiment provides an ice making device and a refrigerator in which different types of ice can be stored separately.
- In one embodiment, an ice making device may include an ice maker provided in an ice making chamber and configured to generate ice. The ice making device may further include a cooler configured to cool the ice maker.
- The ice making device may further include a liquid supplier configured to supply liquid (e.g., water) to the ice maker in an ice making process.
- The ice making device may further include an ice separation assembly configured to separate ice from the ice maker in an ice separation process. The ice making device may further include a controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly.
- The ice maker may include a first tray including a first ice making cell. The ice maker may further include a second tray including a second ice making cell.
- A type of ice generated in the first ice making cell may be different from a type of ice generated in the second ice making cell.
- The controller may control an ice making of one tray of the first tray and the second tray to be delayed from an ice making of other tray of the first tray and the second tray.
- An ice making time of the one tray may be less than an ice making time of the other tray.
- The controller may control the liquid supplier so that a liquid supply start time of the one tray is delayed from a liquid supply start time of the other tray.
- The controller may control the liquid supplier so that a liquid supply to the one tray starts when a first reference time elapses after a liquid supply to the other tray starts.
- The controller may control the liquid supplier so that when a second reference time elapses after a liquid supply to the one tray starts, liquid supply to the trays is ended.
- The ice making device may further include a temperature sensor for detecting a temperature of at least one of the first tray or the second tray.
- The controller may control the liquid supplier so that a liquid supply to the one tray starts when a temperature detected by the temperature sensor is less than a first reference temperature after a liquid supply to the other tray starts.
- The controller may control the liquid supplier so that a liquid supply to the trays stops, when a temperature detected by the temperature sensor is lower than a second reference temperature after a liquid supply to the one tray starts.
- The controller may control the liquid supplier so that a supply amount of liquid per unit time to one tray is less than a supply amount of liquid per unit time to the other tray.
- The controller may control the liquid supplier so that a liquid supply time of the one tray is less than a liquid supply time of the other tray.
- The controller may control the liquid supplier so that a number of times of a liquid supply to the one tray is less than a number of times of a liquid supply to the other tray.
- The controller may control the cooler so that a timing of a supply of a cooling power to the one tray is delayed from a timing of a supply of a cooling power to the other tray.
- The controller may control the cooler so that a supply of a cooling power to the one tray starts when a first reference time elapses after a supply of a cooling power to the other tray starts.
- The controller may control the cooler a supply of a cooling power to the trays stops when a first reference time elapses after a supply of a cooling power to the one tray starts.
- The controller may control the cooler so that a supply amount of a cooling power per unit time to the one tray is less than a supply amount of a cooling power per unit time to the other tray.
- The controller may control the cooler so that a supply time of a cooling power to the one tray is less than a supply time of a cooling power to the other tray.
- The controller may control the cooler so that a number of times of a supply of a cooling power to the one tray is less than a number of times of a supply of a cooling power to the other tray.
- When an ice making of the first tray or the second tray is completed, the controller may operate the ice separation assembly to separate ice from each of the first tray and the second tray.
- In another embodiment, an ice making device may include an ice maker provided in an ice making chamber and configured to generate ice. The ice making device may further include a cooler configured to cool the ice maker. The ice making device may further include a liquid supplier configured to supply liquid to the ice maker in an ice making process. The ice making device may further include an ice separation assembly configured to separate ice from the ice maker in an ice separation process. The ice making device may further include a controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly. The ice maker may include a first tray including a first ice making cell. The ice maker may further include a second tray including a second ice making cell.
- A type of ice generated in the first ice making cell may be different from a type of ice generated in the second ice making cell.
- After starting to a supply of a cooling power or starting to a supply of liquid to each of the first tray and the second tray, the controller is configured to control the liquid supplier or the cooler to stop a supply of a cooling power or a supply of liquid of one tray of the first tray and the second tray.
- The controller may operate the ice separation assembly to separate ice from each of the first tray and the second tray when an ice making of other tray of the first tray and the second tray is completed.
- The controller may stop a supply of liquid or a supply of a cooling power of one tray of the first tray and the second tray when a first reference time elapses after an ice making of each of the first and second trays starts.
- The controller may stop a supply of liquid or a supply of a cooling power of the other tray when a second reference time elapses after a supply of liquid or a supply of a cooling power of the one tray is ended.
- The ice making device may further include a temperature sensor for detecting a temperature of at least one of the first tray or the second tray.
- After an ice making of each of the first tray and the second tray starts, if a temperature detected by the temperature sensor is less than a third reference temperature, the controller may stop a supply of liquid or a supply of a cooling power of one tray of the first tray and the second tray.
- After a supply of liquid or a supply of a cooling power of the one tray is ended, if a temperature detected by the temperature sensor is lower than a second reference temperature, a supply of liquid or a supply of a cooling power of the other tray may be ended.
- In further another embodiment, a refrigerator may include a cabinet having a storage chamber. The refrigerator may include a door that opens and closes the storage chamber, and an ice making chamber provided in the door or the cabinet. The refrigerator may further include an ice maker provided in the ice making chamber and configured to generate ice.
- The refrigerator may further include a cooler configured to cool the ice maker. The refrigerator may further include a liquid supplier configured to supply liquid to the ice maker in an ice making process. The refrigerator may further include an ice separation assembly configured to separate ice from the ice maker in an ice separation process. The refrigerator may include a controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly.
- The ice maker may include a first tray including a first ice making cell. The ice maker may further include a second tray including a second ice making cell. The controller may control an ice making of one tray of the first tray and the second tray to be delayed from an ice making of other tray of the first tray and the second tray.
- A type of ice generated in the first ice making cell may be different from a type of ice generated in the second ice making cell.
- According to one embodiment, different types of ice can be generated, and thereby user can use various types of ice.
- According to one embodiment, an ice separation process is performed when an ice making is completed in a plurality of trays, so ice in a perfect shape can be generated and a malfunction of an ice separation can be prevented.
- According to one embodiment, since an ice separation process is performed simultaneously on a plurality of trays, an ice separation time can be reduced and a malfunction of an ice separation can be reduced.
- According to one embodiment, if an ice separation time is reduced, a cycle for generating ice for one time may be reduced. If a cycle is reduced, an amount of ice generated per day or for a set time may increase.
- According to one embodiment, since different types of ice can be stored separately, there is an advantage that a user can easily use different types of ice.
-
-
FIG. 1 is a perspective view of an ice making device according to the present embodiment. -
FIG. 2 is a front view showing a door of an ice making device in an opened state according to the present embodiment. -
FIG. 3 is a cross-sectional view showing an inside of an ice making device according to the present embodiment. -
FIG. 4 is a diagram showing an inside of an ice making device according to the present embodiment. -
FIG. 5 is a diagram showing a liquid supply passage in an ice making device according to the present embodiment. -
FIGS. 6 and7 are perspective views showing liquid being supplied to an ice maker. -
FIGS. 8 and9 are perspective views showing an ice maker and a heat exchanger according to the present embodiment. -
FIG. 10 is a diagram showing an arrangement of a first tray and a second tray. -
FIG. 11 is a control block diagram of an ice making device of the present invention. -
FIG. 12 is a cross-sectional view showing a process of supplying liquid from a liquid supplier to an ice maker during an ice making process. -
FIG. 13 is a flowchart for explaining a control method of an ice making device according to a first embodiment of the present invention. -
FIG. 14 is a flowchart for explaining a control method of an ice making device according to a second embodiment of the present invention. -
FIG. 15 is a flowchart for explaining a control method of an ice making device according to a third embodiment of the present invention. -
FIG. 16 is a flowchart for explaining a control method of an ice making device according to a fourth embodiment of the present invention. -
FIG. 17 is a control block diagram of an ice making device according to a fifth embodiment of the present invention. -
FIG. 18 is a flowchart for explaining a control method of an ice making device according to a fifth embodiment of the present invention. -
FIG. 19 is a flowchart for explaining a control method of an ice making device according to a sixth embodiment of the present invention. -
FIG. 20 is a flowchart for explaining a control method of an ice making device according to a seventh embodiment of the present invention. -
FIG. 21 is a flowchart for explaining a control method of an ice making device according to an eighth embodiment of the present invention. - Hereinafter, some embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. It should be noted that when components in the drawings are designated by reference numerals, the same components have the same reference numerals as far as possible even though the components are illustrated in different drawings. Further, in description of embodiments of the present disclosure, when it is determined that detailed descriptions of well-known configurations or functions disturb understanding of the embodiments of the present disclosure, the detailed descriptions will be omitted.
- Also, in the description of the embodiments of the present disclosure, the terms such as first, second, A, B, (a) and (b) may be used. Each of the terms is merely used to distinguish the corresponding component from other components, and does not delimit an essence, an order or a sequence of the corresponding component. It should be understood that when one component is "connected", "coupled", "joined" or "supported" to another component, the former may be directly connected, coupled, jointed or supported to the latter or may be "connected", coupled", "joined" or "supported" to the latter with a third component interposed therebetween.
- The present invention relates to a cooling device. The cooling device may include a refrigerator including at least one refrigerating chamber. The cooling device may include a freezer including at least one freezing chamber. The freezer may include an ice making device. A component or a control method of the ice making device may be applied to the cooling device. The cooling device may include a storage chamber (e.g., main body) in which an item is stored. The cooling device may include a door that opens and close the storage chamber. The cooling device may include an ice making device. The cooling device may include an ice making chamber. The ice making chamber may be defined as a space in which at least a portion of an ice maker. The ice making chamber may be disposed in the storage chamber and/or the door. The cooling device may include an ice maker. In this specification, an ice making device may include some or all of a tray defining an ice making cell that is a space in which liquid is phase-changed into ice, a cooler for supplying cold to the ice making cell, a liquid supplier for supplying liquid to the ice making cell, and a controller.
- The ice making device may further include an ice separation assembly.
- The tray may include a first tray. The tray may further include a second tray.
- The first tray and the second tray may generate different types of ice.
- The liquid supplier may independently supply liquid to each of the first tray and the second tray.
- The liquid supplier may be configured to simultaneously supply liquid to the first tray and the second tray. Alternatively, the liquid supplier may be movably configured to supply liquid to one of the first tray and the second tray and then supply liquid to other of the first tray and the second tray after change a position of the liquid supplier.
- Alternatively, each of the first tray and the second tray may be configured to be movable, and the first tray may move toward the liquid supplier to receive liquid, and then the second tray may move toward the liquid supplier to receive liquid.
- The cooling device may include a cooler. The cooler is a source that supplies cold and/or heat, and may be referred to as a cold source and/or a heat source. The cooler may include a heat exchanger. The cooler may cool the ice making chamber. Alternatively, the cooler may cool and heat the ice making chamber. The heat exchanger may include at least one of a pipe to supply the cold and/or heat, a refrigerant pipe through which refrigerant flows, an evaporator refrigerant pipe through which refrigerant flows, or a thermoelectric element to supply the cold and/or heat. The evaporator may be located adjacent to or in contact with the tray. Alternatively, cold air cooled by the cooler may be supplied to the tray and liquid is phase-changed into ice in the ice making cell.
- The cooler may cool the first tray. The cooler may cool the second tray. The cooler may cool the first tray and the second tray independently or simultaneously.
- The cooler may optionally include a valve for controlling a flow of refrigerant, a fan for flowing cold air, or a damper for controlling a flow of cold air within the two spaces.
- The controller may adjust a cooling power of the cooler. The cooling power of the cooler may be an output of a thermoelectric element, an amount of cold supplied to the tray, or an output or a frequency of the compressor or an amount of refrigerant flowing into an evaporator. The cold may include at least cold air.
- The ice separation assembly includes at least one of a heater for heating the tray, a pusher for pressing at least a portion of the tray, a refrigerant pipe through which refrigerant flows to heat the tray, a liquid supply assembly for supplying liquid to an outside of the tray, or a driver for moving at least a portion of the tray.
- The ice separation assembly may separate ice from each of the first tray and the second tray independently or simultaneously separate ice from the first tray and the second tray.
- For example, a power of a driver is transmitted simultaneously to the first tray and the second tray, heat from a heater or a refrigerant pipe is transmitted simultaneously to the first tray and the second tray, or liquid is transmitted simultaneously to the first tray and the second tray.
-
FIG. 1 is a perspective view of an ice making device according to the present embodiment.FIG. 2 is a front view showing a door of an ice making device in an opened state according to the present embodiment.FIG. 3 is a cross-sectional view showing an inside of an ice making device according to the present embodiment.FIG. 4 is a diagram showing an inside of an ice making device according to the present embodiment. - Referring to
FIGS. 1 to 4 , an ice making device 1 of this embodiment may be installed independently to generate ice. - The ice making device 1 may include a
cabinet 10 that forms an external shape. The ice making device 1 may further include adoor 20 connected to thecabinet 10. - The
cabinet 10 may include anice making chamber 12 that generates ice. Thecabinet 10 may further include astorage chamber 13 where ice is stored. - The
ice making chamber 12 and thestorage chamber 13 may be partitioned by a partition member. Theice making chamber 12 and thestorage chamber 13 may be communicated through a communication hole in the partition member. Alternatively, theice making chamber 12 and thestorage chamber 13 may be communicated without a partition member. - Alternatively, the
ice making chamber 12 may include thestorage chamber 13, or thestorage chamber 13 may include theice making chamber 12. - The
cabinet 10 may include afront opening 102. Thedoor 20 may open and close thefront opening 102. For example, thedoor 20 may open and close thefront opening 102 by rotating. - When the
door 20 opens thefront opening 102, a user can access thestorage chamber 13 through thefront opening 102. The user can take out ice stored in thestorage chamber 13 to an outside through thefront opening 102. - The ice making device 1 may further include an
ice maker 40 located in theice making chamber 12. - Ice generated in the
ice maker 40 may fall from theice maker 40 and be stored in thestorage chamber 13. - The
cabinet 10 may further include aninner case 101 defining theice making chamber 12. Thecabinet 10 may further include anouter case 110 disposed outside theinner case 101. - Although not shown, an insulating material may be provided between the
inner case 101 and the outer case 100. - The
inner case 101 may additionally define thestorage chamber 13. - The
ice making chamber 12 may be formed at one side of theinner case 101. - The
ice maker 40 may be located close to arear wall 101a of theinner case 101. When theice maker 40 is located close to arear wall 101a of theinner case 101, usability of thestorage chamber 13 can be increased. - To facilitate a user's access to the
storage chamber 13, ice generated by theice maker 40 may fall in a direction closer to thedoor 20. - The
cabinet 10 may further include amachine room 18 divided from thestorage chamber 13. For example, themachine room 18 may be located at one side of thestorage chamber 13. - Although not limited, a portion of the
storage chamber 13 may be located between theice making chamber 12 and themachine room 18. A volume of thestorage chamber 13 may be greater than a volume of theice making chamber 12 and a volume of themachine room 18. - The
machine room 18 may be placed outside theinner case 101. - The
inner case 101 may include abottom wall 104 that forms a bottom of thestorage chamber 13. Themachine room 18 may be located at one side of thebottom wall 104. - The
bottom wall 104 may be provided with adrain hole 105 for discharging liquid. - A portion of a cooler may be located in the
machine room 18. For example, the cooler may be a refrigerant cycle for circulating refrigerant. - The cooler may include a
compressor 183, acondenser 184, an expander (not shown), or aheat exchanger 50. Theheat exchanger 50 may be an evaporator through which refrigerant flows. Theheat exchanger 50 may be an evaporator through which refrigerant flows. - In this embodiment, the refrigerant cycle may be capable of switching refrigerant passage using a valve. That is, refrigerant compressed in the
compressor 183 may flow directly to thecondenser 184 or to the evaporator by switching of refrigerant passage. Although not limited, refrigerant from thecompressor 183 may flow to the evaporator during an ice separation process. - The
compressor 183 and thecondenser 184 may be located in themachine room 18. Themachine room 18 may be provided with acondenser fan 185 to allow air to pass through thecondenser 184. For example, thecondenser fan 185 may be disposed between thecondenser 184 and thecompressor 183. - A front grille 180 in which an
air hole 182 is formed may be provided at a front of thecabinet 10. A plurality ofair holes 182 may be formed in the front grille 180. The front grille 180 may be located at one side of thefront opening 102. When thedoor 20 closes thefront opening 102, thedoor 20 may cover a portion of the front grille 180. - The
heat exchanger 50 may include refrigerant pipes through which refrigerant flows. At least a portion of theheat exchanger 50 may be located in theice making chamber 12. - At least a portion of the
heat exchanger 50 may be in contact with theice maker 40. That is, liquid supplied to theice maker 40 may be phase-changed into ice by low-temperature refrigerant flowing through theheat exchanger 50. Alternatively, theheat exchanger 50 may be located adjacent to theice maker 40. - A cooling type in which the
heat exchanger 50 directly contacts theice maker 40 to generate ice can be referred to as a direct cooling type. - As another example, air that has heat-exchanged with the
heat exchanger 50 is supplied to theice maker 40, and liquid in theice maker 40 can be phase-changed into ice by the cooling air. A cooling type of generating ice by supplying cooling air can be called an indirect cooling type or an air cooling type. In a case of the indirect cooling type, it is possible that theheat exchanger 50 is not located in theice making chamber 12. However, a guide duct that guides cooling air heat-exchanged with theheat exchanger 50 to theice making chamber 12 may be additionally provided. - In this embodiment, the
ice maker 40 may generate a single type of ice or at least two different types of ice. - Hereinafter, it will be described as an example that the
ice maker 40 generates at least two different types of ice. - The ice maker may include a tray assembly. The tray assembly may include a tray that defines a space in which an ice making cell is formed. The tray assembly may include a tray case to which the tray is connected and/or coupled and/or joined and/or supported. In this specification, the present invention describes using a tray. However, the present invention may also include embodiments understood by replacing a tray assembly instead of the tray. The tray case may include a first tray case (e.g., tray cover) connected and/or coupled and/or supported and/or jointed to a first portion of the tray. The tray case may include a second tray case (e.g., tray supporter) connected and/or coupled and/or supported and/or jointed to a second portion of the tray. The
ice maker 40 may include afirst tray assembly 410 for generating a first type of first ice I1. Theice maker 40 may further include asecond tray assembly 450 for generating a second type of second ice I2 different from the first type. - The first ice I1 and the second ice I2 may differ in one or more of shape, size, transparency, etc.
- Hereinafter, it will be described as an example that the first ice I1 is polygonal ice, and the second ice I2 is spherical ice.
- The storage chamber may include a
first storage space 132. The storage chamber may further include a second storage space 134. - Ice generated in the
first tray assembly 410 may be stored in thefirst storage space 132. Ice generated in thesecond tray assembly 450 may be stored in the second storage space 134. - Although not limited, the second storage space 134 may be defined by the
ice bin 14. That is, an internal space of theice bin 14 may serve as the second storage space 134. Theice bin 14 may be fixed or detachably coupled to theinner case 101. - The
ice bin 14 may also be referred to as a partition member that divides thestorage chamber 13 into thefirst storage space 132 and the second storage space 134. - A volume of the
first storage space 132 may be greater than a volume of the second storage space 134. Although not limited, a size of the first ice I1 stored in thefirst storage space 132 may be smaller than a size of the second ice I2 stored in the second storage space 134. - A front surface of the
ice bin 14 may be arranged to be spaced apart from a rear side of thefront opening 102. A bottom surface of theice bin 14 may be spaced apart from abottom wall 104 of thestorage chamber 13. - Accordingly, the first ice I1 may be located at one side of the
ice bin 14. The first ice I1 may also be located at another side of theice bin 14. The first ice I1 stored in thefirst storage space 132 may surround theice bin 14. - A
bottom wall 104 of thestorage chamber 13 may form a floor of the second storage space 134. - A
bottom wall 104 of thestorage chamber 13 may be positioned lower than oneend 102a of thefront opening 102. A bottom surface of theice bin 14 may be positioned higher than oneend 102a of thefront opening 102. - The
ice bin 14 may be located adjacent to one surface (left surface in the drawing) of left and right surfaces of theinner case 101. Thesecond tray assembly 450 may be located adjacent to the one surface. Accordingly, ice separated from thesecond tray assembly 450 may be stored in the second storage space 134 of theice bin 14. Ice separated from thefirst tray assembly 410 may be stored in thefirst storage space 132 outside the second storage space 134. - When an amount of first ice stored in the
first storage space 132 increases, to prevent the first ice from being unintentionally discharged through thefront opening 102 when thedoor 20 is opened, thecabinet 10 may further include anopening cover 16. Theopening cover 16 may be rotatably provided to theinner case 101. Theopening cover 16 may cover one side of thefront opening 102. - The
opening cover 16 can be received in thestorage chamber 13 when thedoor 20 is closed. When thedoor 20 is opened, other end of theopening cover 16 may be rotated with respect to one end so that the other end protrudes to an outside of thestorage chamber 13. - The
opening cover 16 may be elastically supported by, for example, an elastic member (not shown). When thedoor 20 is opened, theopening cover 16 can be rotated by the elastic member. - The
opening cover 16 may be formed in a convex shape toward thedoor 20. Accordingly, although not limited, the first ice may be filled in thefirst storage space 132 up to oneend 16a of theopening cover 16. - When the
opening cover 16 is rotated, a portion of the first ice is drawn out of thestorage chamber 13 while being located within the convex portion of theopening cover 16, so that a user can easily obtain the first ice. - Of course, it is also possible to omit the
opening cover 16 by varying a height of oneend 102a of thefront opening 102. - The
cabinet 10 may further include aguide 70 that guides ice separated from theice maker 40 to thestorage chamber 13. - The
guide 70 may be arranged to be spaced apart from theice maker 40. Theguide 70 may guide a first ice I1 separated from thefirst tray assembly 410. Theguide 70 may guide a second ice I2 separated from thesecond tray assembly 450. - For example, the
guide 70 may include afirst guide 710. Theguide 70 may further include asecond guide 730. - The first ice I1 separated from the
first tray assembly 410 may fall onto thefirst guide 710. First ice I1 may be moved to thefirst storage space 132 by thefirst guide 710. - The second ice I2 separated from the
second tray assembly 450 may fall onto thesecond guide 730. Second ice I2 may be moved to the second storage space 134 by thesecond guide 730. - One end of the
ice bin 14 may be positioned adjacent to one end of thesecond guide 730 so that the second ice I2 is moved to the second storage space 134. - The ice making device 1 may further include a
partition plate 80 to prevent the first ice and the second ice that fall onto theguide 70 from being mixed. Thepartition plate 80 extends in a vertical direction or in a horizontal direction and may be coupled to theguide 70 or theice maker 40. -
FIG. 5 is a diagram showing a liquid supply passage in an ice making device according to the present invention.FIGS. 6 and7 are perspective views showing liquid being supplied to an ice maker. - Referring to
FIGS. 5 to 7 , the ice making device 1 may include a liquid supply passage for guiding liquid supplied from aliquid source 302 to theice maker 40. The liquid source (e.g., water source) may include a faucet or a liquid tank provided at an inside and/or outside of the ice making device. - The liquid supply passage may include a
first passage 303 connected to theliquid source 302. Aliquid supply valve 304 may be provided in thefirst passage 303. By operating theliquid supply valve 304, a supply of liquid from theliquid source 302 to the ice making device 1 can be controlled. A supply flow rate when liquid is supplied to the ice making device 1 can be controlled by operating theliquid supply valve 304. - The liquid supply passage may further include a
second passage 305 connected to theliquid supply valve 304. Thesecond passage 305 may be connected to afilter 306. For example, thefilter 306 may be located in themachine room 18. - The liquid supply passage may further include a
third passage 308 that guides liquid that has passed through thefilter 306. - The cooling device may include a supply component to supply liquid to the ice making device. Alternatively, the supply component may include a liquid supply assembly. The supply component may supply liquid to an ice maker (e.g., tray) from a liquid source (e.g., a faucet or a liquid tank provided at an inside and/or outside of an ice making device). The liquid supply assembly may include a pipe through which the liquid flows. For example, liquid supplied from the liquid supply assembly may be supplied to a liquid supplier, which will be described later. The ice making device 1 may further include a
liquid supply assembly 320. Theliquid supply assembly 320 may be connected to thethird passage 308. - The
liquid supply assembly 320 can supply liquid to theice maker 40 during a liquid supply process. - Alternatively, the supply component may include a liquid supplier. The supplier may supply liquid supplied from the liquid supply assembly to an ice maker (e.g., tray). The liquid supplier may include a sub liquid supplier. The sub liquid supplier may include a pipe through which the liquid flows. The sub liquid supplier may include a nozzle. The sub liquid supplier may further include a pump. The sub liquid supplier may include a sub_first liquid supplier. The sub liquid supplier may include a sub_second liquid supplier. The ice making device 1 may further include a
liquid supplier 330. Theliquid supplier 330 may supply liquid to theice maker 40 during an ice making process. Theliquid supplier 330 can store liquid supplied from theliquid supply assembly 320 and supply liquid to theice maker 40. - In this embodiment, the
liquid supply assembly 320 may be referred to as a first liquid supply assembly. Theliquid supplier 330 may be referred to as a second liquid supply assembly. - The
liquid supply assembly 320 may be located at one side of theice maker 40. Liquid supplied from theliquid supply assembly 320 may fall onto theice maker 40. - The
liquid supplier 330 may be located at another side of theice maker 40. - The
liquid supplier 330 may be spaced apart from theliquid supply assembly 320. Theliquid supplier 330 can store liquid supplied from theliquid supply assembly 320 and supply liquid to theice maker 40. - In
FIGS. 5 to 7 , a dotted line shows a flow of liquid supplied from theliquid supply assembly 320, and a solid line shows a flow of liquid supplied from theliquid supplier 330. - The
liquid supplier 330 may include aliquid storage 350 in which liquid is stored. The liquid storage may include a wall to form a space to store the liquid. Theice maker 40 may include one or more throughholes 426 through which liquid passes. Liquid supplied from theliquid supply assembly 320 and dropped toward theice maker 40 may be stored in theliquid storage 350 after passing through the throughhole 426. Theguide 70 may be provided with a plurality of through holes through which liquid passing through theice maker 40 passes. - In a state in which the
liquid supply valve 304 is turned on, liquid supplied from theliquid supply assembly 320 falls to one side of theice maker 40, passes through theice maker 40, and then may be stored in theliquid storage 350. - The
liquid storage 350 may be provided with aliquid level detector 356 that detects a liquid level. When a liquid level of theliquid storage 350 detected by theliquid level detector 356 reaches a reference liquid level, theliquid supply valve 304 may be turned off. - In this specification, a process from when the
liquid supply valve 304 is turned on to when theliquid supply valve 304 is turned off may be referred to as a liquid supply process. For example, theliquid supply valve 304 may be turned off when a liquid level of theliquid storage 350 detected by theliquid level detector 356 reaches a reference liquid level. - The
liquid supplier 330 may further include 360 and 362 for pumping liquid stored in theliquid pumps liquid storage 350. - In this embodiment, in an ice making process, liquid stored in the
liquid storage 350 may be pumped by the liquid pumps 360 and 362 and supplied to theice maker 40. - The liquid pumps 360 and 362 may include a
first pump 360. The liquid pumps may further include asecond pump 362. When thefirst pump 360 operates, liquid may be supplied to thefirst tray assembly 410. When thesecond pump 362 operates, liquid may be supplied to thesecond tray assembly 450. - The
first pump 360 and thesecond pump 362 may operate independently. Pumping capacities of thefirst pump 360 and thesecond pump 362 may be the same or different. A pumping capacity of each of thefirst pump 360 and thesecond pump 362 may be variable. - The
liquid supplier 330 may further include 352 and 354 connecting each of thefirst connection pipes 360 and 362 and thepumps liquid storage 350. - The
352 and 354 may be connected to thefirst connection pipes liquid storage 350 at the same or similar height to a bottom of theliquid storage 350. - The
liquid supplier 330 may further include asub_first liquid supplier 380 for supplying liquid pumped by thefirst pump 360 to thefirst tray assembly 410. - The
liquid supplier 330 may further include asub_second liquid supplier 382 for supplying liquid pumped by thesecond pump 362 to thesecond tray assembly 450. - The
sub_first liquid supplier 380 may supply liquid to thefirst tray assembly 410 from one side of thefirst tray assembly 410. - The
sub_second liquid supplier 382 may supply liquid to thesecond tray assembly 450 from one side of thesecond tray assembly 450. - The
sub_first liquid supplier 380 and thesub_second liquid supplier 382 may be located at one side of theguide 70. - The
liquid supplier 330 may further include 370 and 372 connecting each of thesecond connection pipes 360 and 362 and each of thepumps 380 and 382.sub liquid suppliers - Liquid supplied from the
sub_first liquid supplier 380 to thefirst tray assembly 410 may be used to generate ice. Liquid that falls again from thefirst tray assembly 410 may be stored in theliquid storage 350 after passing through theguide 70. - Liquid supplied from the
sub_second liquid supplier 382 to thesecond tray assembly 450 may be used to generate ice. Liquid that falls again from thesecond tray assembly 450 may be stored in theliquid storage 350 after passing through theguide 70. - A
drain pipe 360 may be connected to theliquid storage 350. Thedrain pipe 360 may extend through thedrain hole 105 into themachine room 18. Themachine room 18 may be provided with adrain tube 362 connected to thedrain pipe 360. Thedrain tube 362 can finally discharge liquid to an outside of the ice making device 1. - Hereinafter, the
ice maker 40 will be described in detail. -
FIGS. 8 and9 are perspective views showing an ice maker and a heat exchanger according to the present embodiment. -
FIG. 10 is a diagram showing an arrangement of a first tray and a second tray.FIG. 11 is a control block diagram of an ice making device of the present invention.FIG. 12 is a cross-sectional view showing a process of supplying liquid from a liquid supplier to an ice maker during an ice making process. - Referring to
FIGS. 8 to 12 , theheat exchanger 50 may contact theice maker 40. For example, theheat exchanger 50 may be located at one side of theice maker 40. - The
ice maker 40 may include afirst tray assembly 410 and asecond tray assembly 450 as described above. - The
first tray assembly 410 and thesecond tray assembly 450 may be arranged in a horizontal direction. It is also possible for thefirst tray assembly 410 and thesecond tray assembly 450 to be arranged in a vertical direction. Thefirst tray assembly 410 and thesecond tray assembly 450 may be installed in thecabinet 10 while being connected to each other. That is, thefirst tray assembly 410 and thesecond tray assembly 450 can be modularized. - As another example, the
first tray assembly 410 and thesecond tray assembly 450 may be installed in thecabinet 10 in a separated state. Thefirst tray assembly 410 and thesecond tray assembly 450 may be positioned close to each other in a horizontal direction. - The
first tray assembly 410 may include a firstice making cell 440. - In this embodiment, an ice making cell refers to a space where ice is generated. One ice may be generated in one ice making cell.
- The
first tray assembly 410 may include a first tray. The first tray may include a first onetray 420. The first tray may further include a first anothertray 430 coupled to the first onetray 420. - For example, the first tray may form a plurality of first
ice making cells 440. A plurality of first anothertrays 430 may be coupled to the first onetray 420. - The first
ice making cell 440 may be defined by one cell or by a plurality of cells. For example, the firstice making cell 440 may include a first one cell 441 and a first another cell 442. Although not limited, the first one cell may be one of a first lower cell and a first upper cell. The first another cell may be another one of the first lower cell and the first upper cell. The first one cell may be one of a first left cell or a first right cell. The first another cell may be another one of the first left cell and the first right cell. Although not limited, it is possible that terms of first one cell and first another cell are opposite to each other. - The first one cell 441 may be formed by the first one
tray 420. The first another cell 442 may be formed by the first anothertray 430. - For example, the first one
tray 420 may form a plurality of first one cells 441. Each of the plurality of first anothertrays 430 may form a first another cell 442. - Accordingly, when the plurality of first another
trays 430 are coupled to a single first onetray 420, a plurality of firstice making cells 440 may be formed. - The first one
tray 420 may include a first opening 423. The first opening 423 communicates with the first one cell 441. - A number of first openings 423 may be equal to a number of first
ice making cells 440. - The first one cell 441 may form another portion of an appearance of the first ice. The first another cell 442 may form a portion of an appearance of the first ice.
- After the first another
tray 430 is coupled to the first onetray 420, separation of the first anothertray 430 from the first onetray 420 may be restricted. - Liquid supplied from the
sub_first liquid supplier 380 may pass through the first opening 423 and be supplied to the firstice making cell 440. Accordingly, the first opening 423 may serve as a liquid supply opening during an ice making process. - A portion of liquid supplied to the first
ice making cell 440 may fall to a lower part of thefirst tray assembly 410 through the first opening 423. Accordingly, the first opening 423 may serve as a liquid outlet opening during an ice making process. - Ice generated in the first
ice making cell 440 may be separated from thefirst tray assembly 410 through the first opening 423 in an ice separation process. Accordingly, the first opening 423 may serve as an ice outlet opening during an ice separation process. - Each of the first one cell 441 and the first another cell 442 may be formed, for example, in a hexahedral shape. A volume of the first another cell 442 and a volume of the first one cell 441 may be the same or different.
- A perimeter (or cross-sectional area) of the first one cell 441 may be greater than a perimeter (or cross-sectional area) of the first another cell 442 so that first ice can be discharged through the first opening 423 after the first ice is generated in the first
ice making cell 440. - That is, during a liquid supply process, an ice making process, or an ice separation process, the first another
tray 430 and the first onetray 420 are maintained in a coupled state, so that a shape of the firstice making cell 440 can be maintained. - The
heat exchanger 50 may be in contact with the first anothertray 430 so that ice is firstly generated in the first another cell 442. - The first one
tray 420 may include through holes 421 and 425 through which liquid passes. - The
second tray assembly 450 may further include a second tray forming a secondice making cell 451. - The second tray may be defined by one tray or by a plurality of trays. For example, the second tray may include a second one
tray 460 and a second anothertray 470. Although not limited, the second one tray may be an upper tray, or a left tray. The second anothertray 470 may be a lower tray, or a right tray. It is also possible that terms of the second onetray 460 and the second anothertray 470 are opposite to each other. - The second
ice making cell 451 may be defined by one cell or by a plurality of cells. For example, the secondice making cell 451 may include a second onecell 462 and a second anothercell 472. - The second one
tray 460 can form the second onecell 462. The second anothertray 470 may form the second anothercell 472. For example, each of the second onecell 462 and the second anothercell 472 may be formed in a hemispherical shape. - For example, the second tray may form a plurality of second
ice making cells 451. Accordingly, the second onetray 460 can form a plurality of second onecells 462. The second anothertray 470 can form a plurality of second anothercells 472. - A portion of the first
ice making cell 440 may be located at the same height as the secondice making cell 451. For example, at least a portion of the firstice making cell 440 may be arranged to overlap the secondice making cell 451 in a horizontal direction. - The second
ice making cell 451 may be disposed between a rotation center C1 of the second anothertray 470 and the firstice making cell 440. - A height of one end of the first
ice making cell 440 and one end of the secondice making cell 451 may be different. For example, one end of the firstice making cell 440 may be positioned lower than one end of the secondice making cell 451. - A height of the other end of the first
ice making cell 440 and the other end of the secondice making cell 451 may be different. For example, the other end of the firstice making cell 440 may be positioned higher than the other end of the secondice making cell 451. - A contact surface of the second one
tray 460 and the second anothertray 470 may have a different height from a coupling portion of the first onetray 420 and the first anothertray 430. For example, a contact surface of the second onetray 460 and the second anothertray 470 may be positioned higher than a coupling portion of the first onetray 420 and the first anothertray 430. - A height of the first
ice making cell 440 and a height of the secondice making cell 451 may be different. For example, a height of the firstice making cell 440 may be less than a height of the secondice making cell 451. - A maximum perimeter of the first
ice making cell 440 may be different from a maximum perimeter of the secondice making cell 451. For example, a maximum perimeter of the firstice making cell 440 may be less than a maximum perimeter of the secondice making cell 451. - A number of first
ice making cells 440 may be different from a number of secondice making cells 451. For example, a number of firstice making cells 440 may be greater than a number of secondice making cells 451. - A volume of the first
ice making cell 440 may be different from a volume of the secondice making cell 451. A volume of the firstice making cell 440 may be less than a volume of the secondice making cell 451. - A sum of volumes of the plurality of first
ice making cells 440 may be different from a sum of volumes of the plurality of secondice making cells 451. For example, a sum of volumes of the plurality of firstice making cells 440 may be greater than a sum of volumes of the plurality of secondice making cells 451. - The second another
tray 470 may include asecond opening 473. - A liquid supply process and an ice making process may be performed in a state in which the second one
tray 460 and the second anothertray 470 are in contact to form the secondice making cell 451. - Liquid supplied from the
sub_second liquid supplier 382 may pass through thesecond opening 473 and be supplied to the secondice making cell 451. Accordingly, thesecond opening 473 may serve as a liquid supply opening during an ice making process. - A portion of liquid supplied to the second
ice making cell 451 may fall to a lower part of thesecond tray assembly 450 through thesecond opening 473. Accordingly, thesecond opening 473 may serve as a liquid outlet opening during an ice making process. - In an ice separation process, the second another
tray 470 may be moved relative to the second onetray 460. - The first opening 423 and the
second opening 473 may be located at different heights. For example, the first opening 423 may be located higher than thesecond opening 473. - The
second tray assembly 450 may further include acase 452 supporting the second onetray 460. - A portion of the second one
tray 460 may pass through thecase 452 from one side. Another portion of the second onetray 460 may be seated on thecase 452. - A
driver 690 for moving the second anothertray 470 may be installed on thecase 452. - The
case 452 may include acircumferential portion 453. Thecircumferential portion 453 may be provided with aseating end 454. Theseating end 454 may be seated on thefirst tray assembly 410. For example, theseating end 454 may be seated on the first onetray 420. - A through hole 456 through which liquid passes may be formed in the
case 452 - The
second tray assembly 450 may further include asupporter 480 supporting the second anothertray 470. - In a state in which the second another
tray 470 is seated on thesupporter 480, thesupporter 480 and the second anothertray 470 may be moved together. For example, thesupporter 480 may be movably connected to the second onetray 460. - The
supporter 480 may include a supporter opening 482a through which liquid passes. The supporter opening 482a may be aligned with thesecond opening 473. - A diameter of the supporter opening 482a may be greater than a diameter of the
second opening 473. - The
second tray assembly 450 may further include apusher 490 for separating ice from the second anothertray 470 in an ice separation process. For example, thepusher 490 may be installed on thecase 452. - The
pusher 490 may include a pushing column 492. When the second anothertray 470 and thesupporter 480 are moved in an ice separation process, the pushing column 492 passes through the supporter opening 482a of thesupporter 480 to press the second anothertray 470. When the second anothertray 470 is pressed by the pushing column 492, a shape of the second anothertray 470 is deformed and the second ice may be separated from the second anothertray 470. To enable deformation of the second anothertray 470, the second anothertray 470 may be formed of a non-metallic material. In terms of ease of deformation, the second anothertray 470 may be formed of a flexible material. - Meanwhile, the
heat exchanger 50 may include a firstrefrigerant pipe 510 that is in contact with or adjacent to thefirst tray assembly 410. - The
heat exchanger 50 may further include a secondrefrigerant pipe 520 located adjacent to or in contact with thesecond tray assembly 450. - The first
refrigerant pipe 510 and the secondrefrigerant pipe 520 may be connected in series or in parallel. Hereinafter, it will be described as an example that the firstrefrigerant pipe 510 and the secondrefrigerant pipe 520 are connected in series. - The first
refrigerant pipe 510 may include afirst inlet pipe 511. Thefirst inlet pipe 511 may be located at one side of the first onetray 420. Thefirst inlet pipe 511 may extend at a position adjacent to thedriver 690. Thefirst inlet pipe 511 may extend from one side of thedriver 690. That is, thefirst inlet pipe 511 may extend in a space between thedriver 690 and arear wall 101a of theinner case 101. - The first
refrigerant pipe 510 may further include a firstbent pipe 512 extending from thefirst inlet pipe 511. - The first
refrigerant pipe 510 may further include afirst cooling pipe 513 extending from the firstbent pipe 512. - The
first cooling pipe 513 may be in contact with one surface the first anothertray 430. Accordingly, the first anothertray 430 may be cooled by refrigerant flowing through thefirst cooling pipe 513. - The
first cooling pipe 513 may include a plurality ofstraight parts 513a. Thefirst cooling pipe 513 may further include a curved shapedconnection part 513b connecting ends of two adjacentstraight parts 513a. - The
first inlet pipe 511 may be located adjacent to a boundary portion between thefirst tray assembly 410 and thesecond tray assembly 450. Thefirst cooling pipe 513 may extend from the boundary portion in a direction away from thesecond tray assembly 450. - One straight part may contact one surface of a plurality of first another
trays 430. - A plurality of
straight parts 513a may be arranged at substantially the same height. - The first
refrigerant pipe 510 may further include afirst connection pipe 514 extending from an end of thefirst cooling pipe 513. Thefirst connection pipe 514 may extend to be lower in height than thefirst cooling pipe 513. - The first
refrigerant pipe 510 may further include asecond cooling pipe 515 connected to thefirst connection pipe 514. Thesecond cooling pipe 515 may be located lower than thefirst cooling pipe 513. - The
second cooling pipe 515 may contact a side surface of the first anothertray 430. - The
second cooling pipe 515 may include a plurality of 515a and 515b. Thestraight parts second cooling pipe 515 may further include a curved shapedconnection portion 515c connecting two adjacent 515a and 515b.straight parts - A plurality of first another
trays 430 may be arranged in a plurality of columns and rows. - Among a plurality of
515a and 515b, a portion ofstraight parts straight parts 515a may contact one side of the first anothertray 430 in one row. Among the plurality of 515a and 515b, anotherstraight parts straight part 515b may contact the first anothertrays 430 of two adjacent rows, respectively. - For example, the portion of the
straight part 515a may contact a first surface of a first another tray in a first row. For example, anotherstraight part 515b may contact a second surface of a first another tray in a first row and a first surface of a first another tray in a second row. - The first
refrigerant pipe 510 may further include afirst discharge pipe 516. Thefirst discharge pipe 516 may extend from an end of thesecond cooling pipe 515. Thefirst discharge pipe 516 may extend toward thesecond tray assembly 450. A height of thefirst discharge pipe 516 may be variable in an extension direction. - The second
refrigerant pipe 520 may receive refrigerant from thefirst discharge pipe 516. A height of thefirst discharge pipe 516 may be variable in an extension direction. The secondrefrigerant pipe 520 may be a pipe formed integrally with thefirst discharge pipe 516 or may be a pipe coupled to thesecond discharge pipe 516. - The second
refrigerant pipe 520 may include asecond inlet pipe 522 connected to thefirst discharge pipe 516. Thesecond inlet pipe 522 may be located at an opposite side of thedriver 690 in thesecond tray assembly 450. - The second
refrigerant pipe 520 may further include athird cooling pipe 523. Thethird cooling pipe 523 may extend from thesecond inlet pipe 522. - A portion of the second refrigerant pipe 520 (for example, the third cooling pipe 523) may be positioned higher than one end the second
ice making cell 451. - The
third cooling pipe 523 may contact the second onetray 460. Therefore, the second onetray 460 may be cooled by refrigerant flowing through thethird cooling pipe 523. For example, thethird cooling pipe 523 may contact one surface of the second onetray 460. - The
liquid supply assembly 320 may be positioned higher than thethird cooling pipe 523. - The
third cooling pipe 523 may include a plurality ofstraight parts 523a. Thethird cooling pipe 523 may further include a curved shapedconnection part 523b connecting two adjacentstraight parts 523a. - One or more of a plurality of
straight parts 523a may extend in a direction parallel to an arrangement direction of a plurality of secondice making cells 451. A plurality ofstraight parts 523a may overlap the secondice making cell 451 in a first direction. Some of the plurality ofstraight parts 523a may overlap thesecond opening 473 in the first direction. The first direction may be an arrangement direction of the second one cell and the second another cell forming a secondice making cell 451. - The
third cooling pipe 523 may be located higher than thefirst cooling pipe 513 and thesecond cooling pipe 515. - The second
refrigerant pipe 520 may further include a secondbent pipe 524 extending from an end of thethird cooling pipe 523. A portion of the secondbent pipe 524 may extend from an end of thethird cooling pipe 523 along one side of thedriver 690. - Another portion of the second
bent pipe 524 may extend in another direction. - The second
refrigerant pipe 520 may further include asecond discharge pipe 525 connected to the secondbent pipe 524. At least a portion of thesecond discharge pipe 525 may extend parallel to thefirst inlet pipe 511. Thesecond discharge pipe 525 may be located at one side of thedriver 690. That is, thesecond discharge pipe 525 may extend in a space between thedriver 690 and arear wall 101a of theinner case 101. - At least a portion of the
second discharge pipe 525 and thefirst inlet pipe 511 may be arranged in the first direction. - At least a portion of the
second discharge pipe 525 may overlap thefirst inlet pipe 511 in the first direction. At least a portion of thesecond discharge pipe 525 may be located at one side of thefirst inlet pipe 511. - Meanwhile, the
liquid supply assembly 320 may include a first supplier for supplying liquid to thefirst tray assembly 410. Theliquid supply assembly 320 may include a second supplier for supplying liquid to thesecond tray assembly 450. - The second supplier may receive liquid from the first supplier. For example, the second supplier may extend from a point of the first supplier.
- The first supplier may be disposed at one side of the first
refrigerant pipe 510, and the second supplier may be disposed at one side of the secondrefrigerant pipe 520. - In this embodiment, the
liquid supply assembly 320 may supply liquid to theice maker 40 during a liquid supply process. Theliquid supply assembly 320 may supply liquid to theice maker 40 during an ice separation process. - When ice making is completed in the
ice maker 40, theice maker 40 may be maintained at a sub-zero temperature. Theliquid supply assembly 320 can supply liquid supplied from an externalliquid source 302 to theice maker 40. Since liquid supplied from the externalliquid source 302 may be liquid having normal temperature or liquid having a temperature similar to a normal temperature, liquid may be supplied from theliquid supply assembly 320 to theice maker 40 in an ice separation process to increase a temperature of theice maker 40. - The ice making device 1 may further include a
controller 190. Thecontroller 190 may control theliquid supply valve 304 during a liquid supply process. - The
controller 190 may control one or more of thecompressor 183 and the condenser fan 185 (or fan driver) in an ice making process. - The
controller 190 may control thefirst pump 360 and/or thesecond pump 362 in the ice making process. Thecontroller 190 may independently control thefirst pump 360 and thesecond pump 362. - The
controller 190 may control an ice separation assembly in an ice separation process. For example, the ice separation assembly may include one or more of theliquid supply assembly 320 and the 510 and 520. Therefrigerant pipes controller 190 may control liquid discharge from theliquid supply assembly 320 by controlling theliquid supply valve 304 in an ice separation process. Thecontroller 190 may control the switching valve to allow high-temperature refrigerant to flow to the 510 and 520 in the ice separation process.refrigerant pipes - The ice making device 1 may further include a
first temperature sensor 191 for detecting a temperature of the firstice making cell 440 or a temperature around the firstice making cell 440. - The ice making device 1 may further include a
second temperature sensor 192 for detecting a temperature of the secondice making cell 451 or a temperature around the second ice making cell 441. - The
controller 190 may determine whether ice making in thefirst tray assembly 410 is completed based on a temperature detected by thefirst temperature sensor 191. - The
controller 190 may determine whether ice making in thesecond tray assembly 450 is completed based on a temperature detected by thesecond temperature sensor 192. - Hereinafter, a series of processes by which ice is generated in an ice maker will be described.
-
FIG. 13 is a flowchart for explaining a control method of an ice making device according to a first embodiment of the present invention. - With reference to
FIGS. 1 to 13 , a process of generating ice in the ice making device 1 will be described. - A process for generating ice may include a liquid supply process (S11). A process for generating ice may further include an ice making process (S12 to S17). A process for generating ice may further include an ice separation process (S18).
- When the liquid supply process starts (S1), the
liquid supply valve 304 is turned on and liquid supplied from an externalliquid source 302 flows along the liquid supply passage. The liquid flowing along the liquid supply passage is supplied to theice maker 40 through theliquid supply assembly 320. - The liquid supplied to the
ice maker 40 falls downward from theice maker 40 and is stored in theliquid storage 350. When a liquid level of liquid stored in theliquid storage 350 reaches a reference liquid level, theliquid supply valve 304 is turned off and the liquid supply process is completed. - After the liquid supply process is completed, an ice making process starts.
- In the ice making process, a cooler operates and low-temperature refrigerant may flow into the
heat exchanger 50. For example, thecompressor 183 and thecondenser fan 185 may be turned on (S12). Of course, thecondenser fan 185 may also be turned on. Alternatively, thecompressor 183 and thecondenser fan 185 may be turned on before the ice making process and remain turned on during the ice making process. The valve 188 can be turned off. - In the ice making process, liquid may be supplied to the
ice maker 40 by theliquid supplier 330. - In this embodiment, an ice making time in the
first tray assembly 410 and an ice making time in the second tray assembly may be different. - In this embodiment, the ice separation assembly may operate to simultaneously separate ice from the
first tray assembly 410 and thesecond tray assembly 450. That is, an ice separation process for thefirst tray assembly 410 and an ice separation process for thesecond tray assembly 450 may be performed simultaneously. - In order for an ice separation process to be performed simultaneously in the two
410 and 450, an ice making completion time in the two tray assemblies must be the same or similar.tray assemblies - In this embodiment, for example, liquid is firstly supplied to a tray assembly with a longer ice making time, so that an ice making completion time in the two
410 and 450 can be the same or similar.tray assemblies - Hereinafter, the description will be made assuming that an ice making time in the
second tray assembly 450 is greater than an ice making time in thefirst tray assembly 410. - The
controller 190 may firstly turn on the second pump 362 (S13). - A difference between an ice making time in the
second tray assembly 450 and an ice making time in thefirst tray assembly 410 may be stored in a memory (not shown). - An ice making time of the
first tray assembly 410 and an ice making time in thesecond tray assembly 450 may be determined through multiple experiments and stored in the memory. - Based on a difference in ice making time, a difference in operating time (first reference time) of the
first pump 360 and thesecond pump 362 may be determined. - When the
second pump 362 is turned on, liquid may be supplied to thesecond tray assembly 450 through thesub_second liquid supplier 382. - The second
liquid supply nozzle 383 may be positioned at one side of thesecond tray assembly 450. Liquid sprayed from the secondliquid supply nozzle 383 may be supplied to the secondice making cell 451 of thesecond tray assembly 450. - Liquid sprayed from the second
liquid supply nozzle 383 is supplied into the secondice making cell 451 through a supporter opening 482a of thesupporter 480 and asecond opening 473 of the second anothertray 470. - Liquid supplied to the second
ice making cell 451 flows toward an inner one surface of the second onetray 460. A portion of liquid within the secondice making cell 451 may be frozen by the secondrefrigerant pipe 520. Unfrozen liquid falls downward again through thesecond opening 473. Liquid that falls downward through thesecond opening 473 is stored again in theliquid storage 350. - The
controller 190 may determine whether a first reference time t1 has elapsed after thesecond pump 362 is turned on (S14). - As a result of the determination in step S14, if it is determined that a first reference time t1 has elapsed after the
second pump 362 is turned on, thecontroller 190 may turn on the first pump 360 (S15). - When the
first pump 360 operates, liquid may be supplied to thefirst tray assembly 410 through thesub_first liquid supplier 380. - The first
liquid supply nozzle 381 is disposed at one side of thefirst tray assembly 410. Liquid sprayed from the firstliquid supply nozzle 381 is supplied to a firstice making cell 440 of thefirst tray assembly 410. - Liquid sprayed from the first
liquid supply nozzle 381 is supplied to the firstice making cell 440 410 through a first opening of the first onetray 420. Liquid supplied to the firstice making cell 440 flows toward one surface of the first anothertray 430. A portion of liquid within the firstice making cell 440 is frozen by the firstrefrigerant pipe 510. Unfrozen liquid falls downward again through the first opening 423. Liquid that falls downward through the first opening 423 is stored in theliquid storage 350 again. - During the ice making process, ice is generated at one side of the first
ice making cell 440 and grows toward another side. As liquid is sprayed into the firstice making cell 440, a portion of the liquid is frozen. In a process of spraying the liquid into the first onetray 420 or the first anothertray 430, air bubbles in the liquid may be discharged from the liquid. - In this embodiment, the
second pump 362 operates firstly and when a first reference time has elapsed, thefirst pump 360 is turned on and thefirst pump 360 and thesecond pump 362 are operated together. That is, in the ice making process, a start time of operation (liquid supply start time) of thefirst pump 360 may be delayed. - In summary, an ice making start time (or liquid supply start time) in the plurality of
410 and 450 may be different. In the plurality oftray assemblies 410 and 450, a start of an ice making of a tray assembly having a short ice making time may be delayed.tray assemblies - For example, an ice making may start in the
second tray assembly 450 first, and an ice making in thefirst tray assembly 410 may be delayed. - In the ice making process, the second ice I2 may grow from a second one
tray 460 to cover one side of the second opening 423a of the second anothertray 470. In the ice making process, the first ice I1 may grow to an inside of the first one cell 441. - While performing the ice making process, the
controller 190 may determine whether ice making is completed in the tray assembly. - For example, the
controller 190 may determine whether a second reference time t2 has elapsed after thefirst pump 360 is turned on (S16). - The second reference time may be substantially the same as an ice making time of the
first tray assembly 410. Alternatively, since thesecond pump 362 operates for a sum of the first and second reference times, a sum of the first and second reference times is equal to an ice making time of thesecond tray assembly 450. - That is, the
controller 190 may determine whether an ice making is completed based on an ice making time of thefirst tray assembly 410 or an ice making time of thesecond tray assembly 450. - At this time, the second reference time may be determined as a time sufficient to complete a generation of ice in each
410 and 450.tray assembly - As a result of the determination in step S16, when it is determined that a second reference time t2 has elapsed after the
first pump 360 is turned on, thecontroller 190 determines that an ice making process is completed and turns off thefirst pump 360 and the second pump 362 (S17). - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). - When the ice separation process starts, a flow direction of refrigerant is firstly switched by the switching valve so that high-temperature refrigerant compressed in the
compressor 183 may flow to theheat exchanger 50. High-temperature refrigerant flowing into theheat exchanger 50 may be heat exchanged with theice maker 40. When high-temperature refrigerant flows into theheat exchanger 50, heat may be transferred to theice maker 40. - The first ice I1 may be separated from the
first tray assembly 410 by the heat transferred to theice maker 40. When the first ice I1 is separated from thefirst tray assembly 410, the first ice I1 may fall onto theguide 70. The first ice I1 that fell onto theguide 70 may be stored in thefirst storage space 132. - The second ice I2 may be separated from at least a surface of the second one
tray 460 by heat transferred to theice maker 40. - As time passes, or when a temperature of each tray assembly reaches a set temperature, a flow of high-temperature refrigerant to the
heat exchanger 50 may be blocked. - Next, the
driver 690 may operate to separate the second ice I2 from thesecond tray assembly 450. By operating thedriver 690, the second anothertray 470 may be moved in a forward direction (clockwise direction with respect toFIG. 12 ). - When the second ice I2 is separated from the second one
tray 460 and second anothertray 470 by high-temperature refrigerant flowing into theheat exchanger 50, the second anothertray 470 may be moved while second ice I2 is supported by the second anothertray 470. In this case, when the second anothertray 470 moves at an angle of approximately 90 degrees, the second ice I2 may fall from the second anothertray 470. - On the other hand, when the second ice I2 has been separated from the second one
tray 460 by the high-temperature refrigerant flowing into theheat exchanger 50 but has not yet been separated from the second anothertray 470, thepusher 490 presses the second anothertray 470 and the second ice I2 may be separated from the second anothertray 470 and falls downward while the second anothertray 470 moves to an ice separation angle. - When the second ice I2 is separated from the
second tray assembly 450, the second ice I2 may fall onto theguide 70. The second ice I2 that fell onto theguide 70 may be stored in the second storage space 134. - After the second another
tray 470 is moved in the forward direction, the second anothertray 470 is moved in a reverse direction (counterclockwise direction in the drawing) by thedriver 690 and in contact with the second onetray 460. - When an ice making start time of the two tray assemblies is the same, if an ice separation process is performed when an ice making is completed in the
first tray assembly 410, an ice separation process is performed before an ice making is completed in thesecond tray assembly 450. - If an ice separation process is performed at a time of completion of an ice making in the
second tray assembly 450, even if an ice separation process is performed in thefirst tray assembly 410, a malfunction of an ice separation may be occurred due to an excessive ice making in thefirst tray assembly 410. - According to this embodiment, an ice separation process is performed when an ice making of the two tray assemblies is completed, so ice in a perfect shape may be generated and a malfunction of an ice separation may be prevented.
- Additionally, since an ice separation process is performed simultaneously in the two tray assemblies, an ice separation time may be reduced and a malfunction of an ice separation may be reduced. If an ice separation time is reduced, a cycle for generating ice for one time may be reduced. If a cycle is reduced, an amount of ice generated per day or for a set time may increase.
-
FIG. 14 is a flowchart for explaining a control method of an ice making device according to a second embodiment of the present invention. - The present embodiment is the same as a first embodiment in other portions, but is different in determining a timing of operating a pump and in determining a completion of an ice making. Accordingly, only characteristic portions of this embodiment will be described.
- Referring to
FIG. 14 , the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process starts. In the ice making process, the cooler operates to allow low-temperature refrigerant to flow into theheat exchanger 50. For example, thecompressor 183 and thecondenser fan 185 may be turned on (S12). - The
controller 190 may firstly turn on the second pump 362 (S13). - When the
second pump 362 is turned on, liquid is supplied to thesecond tray assembly 450 through thesub_second liquid supplier 382, and an ice making may start in thesecond tray assembly 450. - The
controller 190 may determine whether a temperature detected by thesecond temperature sensor 192 is less than a first reference temperature T1 after thesecond pump 362 is turned on (S21). - As a result of the determination in step S21, if it is determined that a temperature detected by the
second temperature sensor 192 is less than a first reference temperature T1, thecontroller 190 turns on the first pump 360 (S22). - That is, an operating time of the
first pump 360 may be determined based on a temperature detected by thesecond temperature sensor 192. The first reference temperature T1 may be determined in advance based on a difference between an ice making time of thefirst tray assembly 410 and an ice making time of thesecond tray assembly 450. - As another example, the
controller 190 determines whether a temperature detected by thefirst temperature sensor 191 is less than a first reference temperature T1 after thesecond pump 362 is turned on. - When the
first pump 360 is operated, liquid is supplied to thefirst tray assembly 410 through thesub_first liquid supplier 380, and an ice making may start in thefirst tray assembly 410. - That is, even in this embodiment, a start time of operation of the
first pump 360 in the ice making process may be delayed. - While performing the ice making process, the
controller 190 may determine whether an ice making is completed in each tray assembly. - For example, the
controller 190 may determine whether a temperature detected by thesecond temperature sensor 192 is less than a second reference temperature T2 after thefirst pump 360 is turned on (S23). - The second reference temperature T2 is a temperature at which an ice making is sufficiently completed in the
second tray assembly 450. When an ice making in thesecond tray assembly 450 is completed, an ice making in thefirst tray assembly 410 may also be completed. - As another example, the
controller 190 may determine whether a temperature detected by thefirst temperature sensor 191 is less than a second reference temperature T2 after thefirst pump 360 is turned on. - Although an ice making time of the
first tray assembly 410 is less than an ice making time of thesecond tray assembly 450, an ice making completion time of the two tray assemblies may be the same or similar due to a delay in an ice making start time. Accordingly, when a temperature detected by thefirst temperature sensor 191 is less than the second reference temperature T2, it may be determined that an ice making in thefirst tray assembly 410 is completed. An ice making in thesecond tray assembly 450 will also be completed. - As a result of the determination in step S22, if it is determined that a temperature detected by the
second temperature sensor 192 is less than a second reference temperature T2, thecontroller 190 determines that an ice making process is completed and then turns off thefirst pump 360 and the second pump 362 (S17). - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). -
FIG. 15 is a flowchart for explaining a control method of an ice making device according to a third embodiment of the present invention. - The present embodiment is the same as a first embodiment and a second embodiment in other portions, but is different in that an ice making start time of a plurality of tray assemblies may be the same and an ice making end time (or liquid supply end time) may be different. Accordingly, only characteristic portions of this embodiment will be described.
- Referring to
FIG. 15 , the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may starts. - In the ice making process, the cooler operates to allow low-temperature refrigerant to flow into the
heat exchanger 50. For example, thecompressor 183 and thecondenser fan 185 may be turned on (S12). - The
controller 190 may turn on thefirst pump 360 and the second pump 362 (S31). That is, an ice making may start simultaneously in the first and 410 and 450.second tray assemblies - When the
first pump 360 is turned on, liquid is supplied to thefirst tray assembly 410 through thesub_first liquid supplier 380, and an ice making may start in thefirst tray assembly 410. - When the
second pump 362 is turned on, liquid is supplied to thesecond tray assembly 450 through thesub_second liquid supplier 382, and an ice making may start in thesecond tray assembly 450. - The
controller 190 may determine whether a third reference time t3 has elapsed after the first and 360 and 362 are turned on (S32).second pumps - That is, the
controller 190 may determine whether an ice making is completed in thefirst tray assembly 410 while an ice making process is performed in the two 410 and 450.tray assemblies - For example, the
controller 190 may determine that an ice making in thefirst tray assembly 410 is completed when a third reference time t3 has elapsed after thefirst pump 360 is turned on. The third reference time t3 may be referred to as a first end reference time. The third reference time t3 is an ice making time of thefirst tray assembly 410. - As a result of the determination in step S21, if it is determined that a third reference time t3 has elapsed after the first and
360 and 362 are turned on, thesecond pumps controller 190 turns off the first pump 360 (S33). - That is, the
controller 190 may firstly turn off a pump for supplying liquid to a tray assembly where an ice making is completed. - The
controller 190 may determine whether a fourth reference time t4 has elapsed after thefirst pump 360 is turned off (S34). - As a result of the determination in step S34, if it is determined that a fourth reference time t4 has elapsed after the
first pump 360 is turned off, thecontroller 190 may turn off the second pump 362 (S35). That is, when thecontroller 190 determines that an ice making of thesecond tray assembly 450 is completed, the controller may turn off thesecond pump 362. - At this time, a sum of the third reference time t3 and the fourth reference time t4 may be an ice making time of the
second tray assembly 450. The fourth reference time t4 may be referred to as a second end reference time. - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). -
FIG. 16 is a flowchart for explaining a control method of an ice making device according to a fourth embodiment of the present invention. - The present embodiment is the same as a third embodiment in other portions, but is different in determining a timing of turning off the pump. Accordingly, only characteristic portions of this embodiment will be described.
- Referring to
FIG. 16 , the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may start. - In the ice making process, the cooler operates to allow low-temperature refrigerant to flow into the
heat exchanger 50. For example, thecompressor 183 and thecondenser fan 185 may be turned on (S12). - The
controller 190 may turn on thefirst pump 360 and the second pump 362 (S31). That is, an ice making may start simultaneously in the first and 410 and 450.second tray assemblies - When the
first pump 360 is turned on, liquid is supplied to thefirst tray assembly 410 through thesub_first liquid supplier 380, and an ice making may start in thefirst tray assembly 410. - When the
second pump 362 is turned on, liquid is supplied to thesecond tray assembly 450 through thesub_second liquid supplier 382, and an ice making may start in thesecond tray assembly 450. - The
controller 190 determines whether a temperature detected by thefirst temperature sensor 191 is less than the third reference temperature T3 after the first and 360 and 362 are turned on (S41).second pumps - The third reference temperature may be referred to as a first end reference temperature for determining completion of an ice making of the first tray assembly.
- The
controller 190 may determine that an ice making in thefirst tray assembly 410 is completed when a temperature detected by thefirst temperature sensor 191 is less than the third reference temperature T3 after the first and 360 and 362 are turned on.second pumps - As another example, the
controller 190 may determine that an ice making in thefirst tray assembly 410 is completed when a temperature detected by thesecond temperature sensor 192 is less than the third reference temperature T3 after the first and 360 and 362 are turned on.second pumps - That is, the
controller 190 may determine whether an ice making is completed in thefirst tray assembly 410 while an ice making process is performed in the two 410 and 450.tray assemblies - As a result of the determination in step S41, if it is determined that a temperature detected by the
first temperature sensor 191 is less than the third reference temperature T3, thecontroller 190 turns off the first pump 360 (S42). - That is, the
controller 190 may firstly turn off a pump for supplying liquid to a tray assembly where an ice making is completed. - The
controller 190 may determine whether a temperature detected by thesecond temperature sensor 192 is less than a second reference temperature T2 after thefirst pump 360 is turned off (S43). - The second reference temperature T2 is a temperature at which an ice making is sufficiently completed in the
second tray assembly 450. - If it is determined that a temperature detected by the
second temperature sensor 192 is lower than a second reference temperature T2, it may be determined that an ice making in thesecond tray assembly 450 is completed. - As a result of the determination in step S43, if it is determined that a temperature detected by the
second temperature sensor 192 is less than the second reference temperature T2, thecontroller 190 turns off the second pump 362 (S44). - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). -
FIG. 17 is a control block diagram of an ice making device according to a fifth embodiment of the present invention. - Referring to
FIG. 17 , in an ice making device of this embodiment, the firstrefrigerant pipe 510 and the secondrefrigerant pipe 520 may be connected in parallel. - An ice making device of this embodiment may further include a
first valve 194 and asecond valve 195 in addition to the configuration described inFIG. 10 . A configuration described inFIG. 10 may be applied equally or similarly to an ice making device of this embodiment. - The
first valve 194 may control a flow of refrigerant into the firstrefrigerant pipe 510. For example, when thefirst valve 194 is turned on, refrigerant may flow into the firstrefrigerant pipe 510. When thefirst valve 194 is turned off, a flow of refrigerant into the firstrefrigerant pipe 510 is blocked. When thefirst valve 194 is turned on, thefirst valve 194 may control a flow rate of refrigerant flowing into the firstrefrigerant pipe 510. - The
second valve 195 may control a flow of refrigerant into the secondrefrigerant pipe 520. For example, when thesecond valve 195 is turned on, refrigerant may flow into the secondrefrigerant pipe 520. When thesecond valve 195 is turned off, a flow of refrigerant into the secondrefrigerant pipe 520 is blocked. When thesecond valve 195 is turned on, thesecond valve 195 may control a flow rate of refrigerant flowing into the secondrefrigerant pipe 520. -
FIG. 18 is a flowchart for explaining a control method of an ice making device according to a fifth embodiment of the present invention. - This embodiment also basically explains a method of controlling an ice making device based on a fact that ice making times of a plurality of tray assemblies are different.
- Referring to
FIG. 18 , a process for generating ice may include a liquid supply process (S11). A process for generating ice may further include an ice making process (S51 to S57). A process for generating ice may further include an ice separation process (S18). - When the liquid supply process starts (S11), the
liquid supply valve 304 is turned on and liquid supplied from an externalliquid supply source 302 flows along the liquid supply passage. Liquid flowing along the liquid supply passage is supplied to theice maker 40 through theliquid supply assembly 320. - Liquid supplied to the
ice maker 40 falls to a lower side of theice maker 40 and is stored in theliquid storage 350. When a level of liquid stored in theliquid storage 350 reaches a reference level, theliquid supply valve 304 is turned off and the liquid supply process is completed. - After the liquid supply process is completed, an ice making process starts.
- In the ice making process, the cooler operates to allow low-temperature refrigerant to flow into the
heat exchanger 50. In the ice making process, liquid may be supplied to theice maker 40 by theliquid supplier 330. - In detail, the
controller 190 may firstly turn on the second pump 362 (S51). That is, an ice making in asecond tray assembly 450 having a long ice making time may start firstly. - For example, the
controller 190 may turn on thecompressor 183 and the condenser fan 185 (S52). - The
controller 190 may turn on the second valve 195 (S53). - Steps S51 to S53 may be performed sequentially or simultaneously. An order of steps S51 to S53 can be changed.
- When the
second valve 195 is turned on, refrigerant flows into the secondrefrigerant pipe 520 to cool thesecond tray assembly 450. - A difference between an ice making time in the
second tray assembly 450 and an ice making time in thefirst tray assembly 410 may be stored in a memory (not shown). - An ice making time of the
first tray assembly 410 and an ice making time of thesecond tray assembly 450 may be determined through multiple experiments and stored in the memory. - Based on a difference in ice making time, a difference in operating times (first reference time) of the
first pump 360 and thesecond pump 362 may be determined. - When the
second pump 362 is turned on, liquid is supplied to thesecond tray assembly 450 through thesub_second liquid supplier 382 to create ice in thesecond tray assembly 450. - The
controller 190 may determine whether a first reference time t1 has elapsed after thesecond valve 195 is turned on (S54). Alternatively, thecontroller 190 may determine whether a first reference time t1 has elapsed after thesecond pump 362 is turned on. - As a result of the determination in step S54, if it is determined that a first reference time t1 has elapsed after the
second valve 195 is turned on, thecontroller 190 may turn on thefirst pump 360 and the first valve (S55). - When the
first pump 360 is turned on, liquid may be supplied to thefirst tray assembly 410 through thesub_first liquid supplier 380. - When the
first valve 194 is turned on, refrigerant flows into the firstrefrigerant pipe 510 to cool thefirst tray assembly 410, ice is generated in thefirst tray assembly 410. - While performing the ice making process, the
controller 190 may determine whether an ice making is completed in each tray assembly. - For example, the
controller 190 may determine whether a second reference time t2 has elapsed after thefirst pump 360 or thefirst valve 194 is turned on (S56). - The second reference time may be substantially the same as an ice making time of the
first tray assembly 410. Alternatively, since thesecond pump 362 operates for a sum of the first and second reference times, a sum of the first and second reference times is equal to an ice making time of thesecond tray assembly 450. - That is, the
controller 190 may determine whether an ice making is complete based on an ice making time of thefirst tray assembly 410 or an ice making time of thesecond tray assembly 450. - At this time, the second reference time may be determined as a time sufficient to complete a generation of ice in each of the
410 and 450.tray assemblies - As a result of the determination in step S56, if it is determined that a second reference time t2 has elapsed after the
first pump 360 or thefirst valve 194 is turned on, thecontroller 190 determines that an ice making process is completed and may turn off thefirst pump 360 and the second pump 362 (S57). - Since high-temperature refrigerant must flow into the
510 and 520 in an ice separation process after an ice making, therefrigerant pipes first valve 194 and thesecond valve 195 may be maintained in an on state. Alternatively, thefirst valve 194 and thesecond valve 195 may be turned on after being turned off. - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). -
FIG. 19 is a flowchart for explaining a control method of an ice making device according to a sixth embodiment of the present invention. - The present embodiment is the same as a fifth embodiment in other portions, but is different in determining a timing of operating a pump and in determining a completion of an ice making. Accordingly, only characteristic portions of this embodiment will be described.
- Referring to
FIG. 19 , a process for generating ice may include a liquid supply process (S11). A process for generating ice may further include an ice making process. A process for generating ice may further include an ice separation process (S18). - When the liquid supply process starts (S11), the
liquid supply valve 304 is turned on and liquid supplied from an externalliquid supply source 302 flows along the liquid supply passage. Liquid flowing along the liquid supply passage is supplied to theice maker 40 through theliquid supply assembly 320. - Liquid supplied to the
ice maker 40 falls to a lower side of theice maker 40 and is stored in theliquid storage 350. When a level of liquid stored in theliquid storage 350 reaches a reference level, theliquid supply valve 304 is turned off and the liquid supply process is completed. - After the liquid supply process is completed, an ice making process starts.
- In the ice making process, the cooler operates to allow low-temperature refrigerant to flow into the
heat exchanger 50. In the ice making process, liquid may be supplied to theice maker 40 by theliquid supplier 330. - In detail, the
controller 190 may firstly turn on the second pump 362 (S51). That is, an ice making in asecond tray assembly 450 having a long ice making time may start firstly. - For example, the
controller 190 may turn on thecompressor 183 and the condenser fan 185 (S52). - The
controller 190 may turn on the second valve 195 (S53). - Steps S51 to S53 may be performed sequentially or simultaneously. An order of steps S51 to S53 can be changed.
- When the
second valve 195 is turned on, refrigerant flows into the secondrefrigerant pipe 520 to cool thesecond tray assembly 450. - When the
second pump 362 is turned on, liquid is supplied to thesecond tray assembly 450 through thesub_second liquid supplier 382 to generate ice in thesecond tray assembly 450. - The
controller 190 determines whether a temperature detected by thesecond temperature sensor 192 is less than a first reference temperature T1 after thesecond pump 362 or thesecond valve 195 is turned on (S61) (determination of a starting time of the first pump). - As a result of the determination in step S61, if it is determined that a temperature detected by the
second temperature sensor 192 is less than a first reference temperature T1, thecontroller 190 may turn on thefirst pump 360 and the first valve 194 (S62). - As another example, the
controller 190 may determine whether a temperature detected by thefirst temperature sensor 191 is less than a first reference temperature T1 after thesecond pump 362 or thesecond valve 195 is turned on. - When the
first pump 360 is turned on, liquid may be supplied to thefirst tray assembly 410 through thesub_first liquid supplier 380. When thefirst valve 194 is turned on, refrigerant flows into the firstrefrigerant pipe 510 to cool thefirst tray assembly 410, ice is generated in thefirst tray assembly 410. - While performing the ice making process, the
controller 190 may determine whether an ice making is completed in each tray assembly. - For example, the
controller 190 determines whether a temperature detected by thesecond temperature sensor 192 is less than a second reference temperature T2 after thefirst pump 360 or thefirst valve 194 is turned on (S63). - The second reference temperature T2 is a temperature at which an ice making is sufficiently completed in the
second tray assembly 450. When an ice making in thesecond tray assembly 450 is completed, an ice making in thefirst tray assembly 410 may also be completed. - As another example, the
controller 190 determines whether a temperature detected by thefirst temperature sensor 191 is less than a second reference temperature T2 after thefirst pump 360 or thefirst valve 194 is turned on. - An ice making time of the
first tray assembly 410 is less than an ice making time of thesecond tray assembly 450, but due to a delay in an ice making start time (or liquid supply start time), an ice making completion time of the two tray assemblies is the same or similar. Accordingly, when a temperature detected by thesecond temperature sensor 192 is less than a second reference temperature T2, it may be determined that an ice making in thesecond tray assembly 450 is completed. An ice making in thefirst tray assembly 410 will also be completed. - As a result of the determination in step S63, if it is determined that a temperature detected by the
second temperature sensor 192 is less than a second reference temperature T2, thecontroller 190 determines that an ice making process is completed and may turn off thefirst pump 360 and the second pump 362 (S57). - Since high-temperature refrigerant must flow into the
510 and 520 in an ice separation process after an ice making, therefrigerant pipes first valve 194 and thesecond valve 195 may be maintained in an on state. Alternatively, thefirst valve 194 and thesecond valve 195 may be turned on after being turned off. - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). -
FIG. 20 is a flowchart for explaining a control method of an ice making device according to a seventh embodiment of the present invention. - The present embodiment is the same as a third embodiment in other portions, but is different in that refrigerant flows by two valves. Accordingly, only characteristic portions of this embodiment will be described.
- Referring to
FIG. 20 , the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may starts. - The
controller 190 may turn on thefirst pump 360 and the second pump 362 (S71). Thecontroller 190 may turn on thecompressor 183 and the condenser fan 185 (S72). In the ice making process, thecontroller 190 may turn on thefirst valve 194 and the second valve 195 (S73). - Accordingly, an ice making may be started simultaneously in the first and
410 and 450.second tray assemblies - When the
first pump 360 is turned on, liquid may be supplied to thefirst tray assembly 410 through thesub_first liquid supplier 380. When thefirst valve 194 is turned on, refrigerant flows into the firstrefrigerant pipe 510 to cool thefirst tray assembly 410. - When the
second pump 362 is turned on, liquid may be supplied to thesecond tray assembly 450 through thesub_second liquid supplier 382. When thesecond valve 195 is turned on, refrigerant flows into the secondrefrigerant pipe 520 to cool thesecond tray assembly 450. - The
controller 190 may determine whether a third reference time t3 has elapsed after the first and 360 and 362 are turned on (S74).second pumps - That is, the
controller 190 may determine whether an ice making is completed in thefirst tray assembly 410 while an ice making process is performed in the two 410 and 450.tray assemblies - For example, the
controller 190 may determine that an ice making in thefirst tray assembly 410 is completed when a third reference time t3 has elapsed after the first and 360 and 362 are turned on. The third reference time t3 is an ice making time of thesecond pumps first tray assembly 410. - As a result of the determination in step S74, if it is determined that a third reference time t3 has elapsed after the first and
360 and 362 are turned on, thesecond pumps controller 190 may turn off thefirst pump 360 and the first valve 194 (S75). - The
controller 190 may determine whether a fourth reference time t4 has elapsed after thefirst pump 360 or thefirst valve 194 is turned off (S76). - As a result of the determination in step S76, if it is determined that a fourth reference time t4 has elapsed after the
first pump 360 is turned off, thecontroller 190 may turns off thesecond pump 362 and thesecond valve 195. That is, when thecontroller 190 determines that an ice making of thesecond tray assembly 450 is completed, the controller turns off thesecond pump 362. - At this time, a sum of the third reference time t3 and the fourth reference time t4 may be an ice making time of the
second tray assembly 450. - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). -
FIG. 21 is a flowchart for explaining a control method of an ice making device according to an eighth embodiment of the present invention. - The present embodiment is the same as a seventh embodiment in other portions, but is different in determining a timing of turning off a pump. Accordingly, only characteristic portions of this embodiment will be described.
- Referring to
FIG. 21 , the liquid supply process is performed (S11), and after the liquid supply process is completed, an ice making process may start. - The
controller 190 may turn on thefirst pump 360 and the second pump 362 (S71). Thecontroller 190 may turn on thecompressor 183 and the condenser fan 185 (S72). In the ice making process, thecontroller 190 may turn on thefirst valve 194 and the second valve 195 (S73). - The
controller 190 determines whether a temperature detected by thefirst temperature sensor 191 is less than the third reference temperature T3 after the first and 360 and 362 are turned on (S81).second pumps - The
controller 190 may determine that an ice making is completed in thefirst tray assembly 410 when a temperature detected by thefirst temperature sensor 191 is less than the third reference temperature T3 after the first and 360 and 362 are turned on.second pumps - As another example, the
controller 190 may determine that an ice making is completed in thefirst tray assembly 410 when a temperature detected by thesecond temperature sensor 191 is less than the third reference temperature T3 after the first and 360 and 362 are turned on.second pumps - That is, the
controller 190 may determine whether an ice making is completed in thefirst tray assembly 410 while an ice making process is performed in the two 410 and 450.tray assemblies - As a result of the determination in step S81, if it is determined that a temperature detected by the
first temperature sensor 191 is less than the third reference temperature T3 after the first and 360 and 362 are turned on, thesecond pumps controller 190 turns off thefirst pump 360 and the first valve 194 (S82). - The
controller 190 determines whether a temperature detected by thesecond temperature sensor 192 is less than a second reference temperature T2 after thefirst pump 360 or thefirst valve 194 is turned off (S83). - If it is determined that a temperature detected by the
second temperature sensor 192 is lower than a second reference temperature T2, it may be determined that an ice making in thesecond tray assembly 450 is completed. - As a result of the determination in step S83, if it is determined that a temperature detected by the
second temperature sensor 192 is less than the second reference temperature T2, thecontroller 190 may turn off thesecond pump 362 and the second valve 194 (S77). - When an ice making process is completed, the
controller 190 may perform an ice separation process (S18). - In some embodiments, an ice making of a tray having a shorter ice making time may be delayed in a plurality of trays (or tray assemblies). For example, a start of liquid supply to a tray having a shorter ice making time may be delayed.
- In some other embodiments, an end time of liquid supply to a tray having a shorter ice making time in a plurality of trays (or tray assemblies) may be advanced.
- In some other embodiments, cooling of a tray having a shorter ice making time may be delayed in a plurality of trays (or tray assemblies). For example, a start of cooling of a tray having a shorter ice making time may be delayed.
- In some other embodiments, a cooling end time of a tray having a shorter ice making time in a plurality of trays (or tray assemblies) may be advanced.
- As another example, a supply amount of liquid per unit time between a plurality of trays may be different. For example, while a plurality of pumps operates simultaneously, a supply amount of liquid per unit time to the first tray may be less than a supply amount of liquid per unit time to the second tray. In this case, ice making completion times in the first tray and the second tray may be the same or similar. Even when multiple pumps do not operate simultaneously, a supply amount of liquid per unit time to the first tray when the first pump operates is less than a supply amount of liquid per unit time to the second tray when the second pump operates.
- As another example, multiple pumps may operate intermittently. That is, a plurality of pumps may be repeatedly turned on and tuned off. In an ice making process, an on-time times of multiple pumps may be different from each other. Alternatively, in an ice making process, a number of turns on (number of liquid supply times) between multiple pumps may be different from each other.
- For example, an on time of a first pump corresponding to a first tray may be less than an on time of a second pump corresponding to a second tray. Alternatively, a turn-on number of a first pump corresponding to a first tray may be less than a turn-on number of a second pump corresponding to a second tray.
- As another example, a supply amount of cooling power to the plurality of trays may be different from each other. A supply amount of cooling power may be an amount of cooling power supplied to trays by the cooler.
- For example, a supply amount of cooling power to a first tray may be less than a supply amount of cooling power to a second tray. Alternatively, a number of times of a supply of a cooling power to the first tray may be less than a number of times of a supply of a cooling power to the second tray. Alternatively, a time for supplying cooling power to the first tray may be less than a time for supplying cooling power to the second tray.
- It is also possible to apply technology applied to the ice making device to a refrigerator. That is, the refrigerator may include some or all of the components of the ice making device 1.
- First, the
ice maker 40 in the ice making device 1 can be applied to the refrigerator. The refrigerator may include a cabinet having a storage chamber, and a door that opens and closes the storage chamber. An ice making chamber may be provided in the cabinet or the door. - An
ice maker 40 may be provided in the ice making chamber with the same structure or a similar form as theice maker 40 of this embodiment. - In this embodiment, the cooler in the ice making device 1 may be replaced with a cooler or a refrigerant cycle that cools the storage chamber of the refrigerator.
- A
guide 70, aliquid supply assembly 320, and aliquid supplier 330 provided in the ice making device 1 may also be applied to the refrigerator or may be modified in shape, size, or location to suit characteristics of the refrigerator.
Claims (25)
- An ice making device comprising:an ice maker provided in an ice making chamber and configured to generate ice;a cooler configured to cool the ice maker;a liquid supplier configured to supply liquid to the ice maker in an ice making process;an ice separation assembly configured to separate ice from the ice maker in an ice separation process; anda controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly.
- The ice making device of claim 1,wherein the ice maker comprises a first tray including a first ice making cell and a second tray including a second ice making cell, andwherein the controller is configured to control an ice making of one tray of the first tray and the second tray to be delayed from an ice making of other tray of the first tray and the second tray.
- The ice making device of claim 2,
wherein an ice making time of the one tray is less than an ice making time of the other tray. - The ice making device of claim 2,
wherein the controller is configured to control the liquid supplier so that a liquid supply start time of the one tray is delayed from a liquid supply start time of the other tray. - The ice making device of claim 4,
wherein the controller is configured to control the liquid supplier so that a liquid supply to the one tray starts when a first reference time elapses after a liquid supply to the other tray starts. - The ice making device of claim 5,
wherein the controller is configured to control the liquid supplier so that a liquid supply to the trays is ended when a second reference time elapses after a liquid supply to the one tray starts. - The ice making device of claim 5,further comprising a temperature sensor for detecting a temperature of at least one of the first tray or the second tray, andwherein the controller is configured to control the liquid supplier so that a liquid supply to the one tray starts when a temperature detected by the temperature sensor is less than a first reference temperature after a liquid supply to the other tray starts.
- The ice making device of claim 7,
wherein the controller is configured to control the liquid supplier so that a liquid supply to the trays is ended, when a temperature detected by the temperature sensor is lower than a second reference temperature after a liquid supply to the one tray starts. - The ice making device of claim 2,
wherein the controller is configured to control the liquid supplier so that a supply amount of liquid per unit time to the one tray is less than a supply amount of liquid per unit time to the other tray. - The ice making device of claim 2,
wherein the controller is configured to control the liquid supplier so that a liquid supply time of the one tray is less than a liquid supply time of the other tray. - The ice making device of claim 2,
wherein the controller is configured to control the liquid supplier so that a number of times of a liquid supply to the one tray is less than a number of times of a liquid supply to the other tray. - The ice making device of claim 2,
wherein the controller is configured to control the cooler so that a timing of a supply of a cooling power to the one tray is delayed from a timing of a supply of a cooling power to the other tray. - The ice making device of claim 12,
wherein the controller is configured to control the cooler so that a supply of a cooling power to the one tray starts when a first reference time elapses after a supply of a cooling power to the other tray starts. - The ice making device of claim 13,
wherein the controller is configured to control the cooler so that a supply of a cooling power to the trays stops when a second reference time elapses after a supply of a cooling power to the one tray starts. - The ice making device of claim 2,
wherein the controller is configured to control the cooler so that a supply amount of a cooling power per unit time to the one tray is less than a supply amount of a cooling power per unit time to the other tray. - The ice making device of claim 2,
wherein the controller is configured to control the cooler so that a supply time of a cooling power to the one tray is less than a supply time of a cooling power to the other tray. - The ice making device of claim 2,
wherein the controller is configured to control the cooler so that a number of times of a supply of a cooling power to the one tray is less than a number of times of a supply of a cooling power to the other tray. - The ice making device of claim 2,
wherein when an ice making of the first tray or the second tray is completed, the controller is configured to operate the ice separation assembly to separate ice from each of the first tray and the second tray. - An ice making device comprising:an ice maker provided in an ice making chamber and configured to generate ice;a cooler configured to cool the ice maker;a liquid supplier configured to supply liquid to the ice maker in an ice making process;an ice separation assembly configured to separate ice from the ice maker in an ice separation process; anda controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly, wherein the ice maker comprises a first tray including a first ice making cell, and a second tray including a second ice making cell,wherein after starting to a supply of a cooling power or starting to a supply of liquid to each of the first tray and the second tray, the controller is configured to control the liquid supplier or the cooler to stop a supply of a cooling power or a supply of liquid of one tray of the first tray and the second tray.
- The ice making device of claim 19,
wherein the controller is configured to operate the ice separation assembly to separate ice from each of the first tray and the second tray when an ice making of other tray of the first tray and the second tray is completed. - The ice making device of claim 19,
wherein the controller is configured to stop a supply of liquid or a supply of a cooling power of one tray of the first tray and the second tray when a first reference time elapses after an ice making of each of the first and second trays starts. - The ice making device of claim 20,
wherein the controller is configured to stop a supply of liquid or a supply of a cooling power of the other tray when a second reference time elapses after a supply of liquid or a supply of a cooling power of the one tray is ended. - The ice making device of claim 19,
further comprising a temperature sensor for detecting a temperature of at least one of the first tray or the second tray, wherein after an ice making of each of the first tray and the second tray starts, if a temperature detected by the temperature sensor is less than a third reference temperature, the controller is configured to stop a supply of liquid or a supply of a cooling power of one tray of the first tray and the second tray. - The ice making device of claim 23,
wherein after a supply of liquid or a supply of a cooling power of the one tray is ended, if a temperature detected by the temperature sensor is lower than a second reference temperature, a supply of liquid or a supply of a cooling power of the other tray is ended. - A refrigerator comprising:a cabinet having a storage chamber;a door that opens and closes the storage chamber;an ice making chamber provided in the door or the cabinet;an ice maker provided in the ice making chamber and configured to generate ice;a cooler configured to cool the ice maker;a liquid supplier configured to supply liquid to the ice maker in an ice making process;an ice separation assembly configured to separate ice from the ice maker in an ice separation process; anda controller configured to control at least one of the cooler, the liquid supplier, or the ice separation assembly, wherein the ice maker comprises a first tray including a first ice making cell and a second tray including a second ice making cell,wherein the controller is configured to control an ice making of one tray of the first tray and the second tray to be delayed from an ice making of other tray of the first tray and the second tray.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| KR1020220029375A KR20230132175A (en) | 2022-03-08 | 2022-03-08 | Ice making apparatus and refrigerator |
| PCT/KR2023/002716 WO2023171966A1 (en) | 2022-03-08 | 2023-02-27 | Icemaker and refrigerator |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4491979A1 true EP4491979A1 (en) | 2025-01-15 |
| EP4491979A4 EP4491979A4 (en) | 2025-06-25 |
Family
ID=87935314
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23767068.2A Pending EP4491979A4 (en) | 2022-03-08 | 2023-02-27 | ICE MAKER AND REFRIGERATOR |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20250207839A1 (en) |
| EP (1) | EP4491979A4 (en) |
| KR (1) | KR20230132175A (en) |
| WO (1) | WO2023171966A1 (en) |
Family Cites Families (12)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP4590713B2 (en) * | 2000-10-20 | 2010-12-01 | パナソニック株式会社 | refrigerator |
| JP4492633B2 (en) * | 2007-04-02 | 2010-06-30 | パナソニック株式会社 | Automatic ice making device and refrigerator equipped with this automatic ice making device |
| KR101392596B1 (en) * | 2009-07-14 | 2014-05-08 | 엘지전자 주식회사 | Refrigerator |
| JP5687018B2 (en) | 2010-10-01 | 2015-03-18 | ホシザキ電機株式会社 | Automatic ice machine |
| KR20130110875A (en) * | 2012-03-30 | 2013-10-10 | 코웨이 주식회사 | Ice maker |
| KR101443976B1 (en) * | 2012-11-14 | 2014-09-23 | 주식회사 동양매직 | Water purifier with ice maker |
| KR101981680B1 (en) * | 2013-10-16 | 2019-05-23 | 삼성전자주식회사 | Ice making tray and refrigerator having the same |
| JP2015190707A (en) * | 2014-03-28 | 2015-11-02 | ホシザキ電機株式会社 | Closed cell type automatic ice-making machine |
| US9518774B2 (en) * | 2014-05-16 | 2016-12-13 | Haier Us Appliance Solutions, Inc. | Ice making appliance |
| KR20180080021A (en) * | 2017-01-03 | 2018-07-11 | 삼성전자주식회사 | Ice maker, refrigerator having the same and method for ice making |
| KR102801638B1 (en) * | 2019-07-06 | 2025-04-30 | 엘지전자 주식회사 | Refrigerator and method for controlling the same |
| US11578904B2 (en) * | 2018-11-16 | 2023-02-14 | Lg Electronics Inc. | Ice maker and refrigerator |
-
2022
- 2022-03-08 KR KR1020220029375A patent/KR20230132175A/en active Pending
-
2023
- 2023-02-27 US US18/844,508 patent/US20250207839A1/en active Pending
- 2023-02-27 EP EP23767068.2A patent/EP4491979A4/en active Pending
- 2023-02-27 WO PCT/KR2023/002716 patent/WO2023171966A1/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| WO2023171966A1 (en) | 2023-09-14 |
| US20250207839A1 (en) | 2025-06-26 |
| EP4491979A4 (en) | 2025-06-25 |
| KR20230132175A (en) | 2023-09-15 |
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