WO2024080537A1 - Réfrigérateur - Google Patents

Réfrigérateur Download PDF

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Publication number
WO2024080537A1
WO2024080537A1 PCT/KR2023/012552 KR2023012552W WO2024080537A1 WO 2024080537 A1 WO2024080537 A1 WO 2024080537A1 KR 2023012552 W KR2023012552 W KR 2023012552W WO 2024080537 A1 WO2024080537 A1 WO 2024080537A1
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WO
WIPO (PCT)
Prior art keywords
ice
water
area
row
making cells
Prior art date
Application number
PCT/KR2023/012552
Other languages
English (en)
Korean (ko)
Inventor
이동훈
서창호
이욱용
Original Assignee
엘지전자 주식회사
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by 엘지전자 주식회사 filed Critical 엘지전자 주식회사
Publication of WO2024080537A1 publication Critical patent/WO2024080537A1/fr

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D23/00General constructional features
    • F25D23/02Doors; Covers
    • F25D23/028Details
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25CPRODUCING, WORKING OR HANDLING ICE
    • F25C1/00Producing ice
    • F25C1/22Construction of moulds; Filling devices for moulds
    • F25C1/24Construction of moulds; Filling devices for moulds for refrigerators, e.g. freezing trays
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D23/00General constructional features
    • F25D23/02Doors; Covers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D23/00General constructional features
    • F25D23/02Doors; Covers
    • F25D23/04Doors; Covers with special compartments, e.g. butter conditioners
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D29/00Arrangement or mounting of control or safety devices
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25DREFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
    • F25D29/00Arrangement or mounting of control or safety devices
    • F25D29/005Mounting of control devices
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25CPRODUCING, WORKING OR HANDLING ICE
    • F25C2305/00Special arrangements or features for working or handling ice
    • F25C2305/022Harvesting ice including rotating or tilting or pivoting of a mould or tray
    • F25C2305/0221Harvesting ice including rotating or tilting or pivoting of a mould or tray rotating ice mould
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25CPRODUCING, WORKING OR HANDLING ICE
    • F25C2700/00Sensing or detecting of parameters; Sensors therefor
    • F25C2700/12Temperature of ice trays

Definitions

  • This specification relates to refrigerators.
  • a refrigerator is a home appliance that allows food to be stored at low temperatures in an internal storage space shielded by a door.
  • the refrigerator can cool the inside of the storage space using cold air, thereby keeping the stored food in a refrigerated or frozen state.
  • the refrigerator is a side-by-side type refrigerator in which the freezer and refrigerator compartments are arranged on the left and right, a top-mount type refrigerator in which the freezer compartment is located above the refrigerator compartment, or a bottom freezer type refrigerator in which the refrigerator compartment is located above the freezer compartment. You can.
  • an ice maker is provided in the freezer compartment of a refrigerator to make ice.
  • the ice maker collects water supplied from a water source or a water tank in a tray and then cools the water to create ice. Ice produced by the ice maker may be stored in an ice bin.
  • Ice stored in the ice bin is discharged through a dispenser provided in the door, or the user can open the freezer door, access the ice bin, and take out the ice from the ice bin.
  • Korean Patent Publication No. 10-2006-0080207 discloses an ice making device mounted on a refrigerator door.
  • the ice making device includes a tray on which ice is manufactured, and a frame that rotatably supports the tray.
  • the frame is fixedly mounted on the inner peripheral surface of the door, and the tray is rotatably mounted on the frame.
  • the tray is rotated at a predetermined angle.
  • the tray rotates by a predetermined angle, one edge is caught by the frame and the tray is twisted around the rotation axis. Due to this twisting process, the ice formed in the tray is separated and falls into the ice bank.
  • the tray includes a plurality of ice cubes of a predetermined size and depth.
  • One embodiment provides a refrigerator in which water can be evenly distributed to a plurality of ice-making cells in a tray.
  • one embodiment provides a refrigerator in which water is distributed to a plurality of ice-making cells and in which a temperature sensor can be easily installed.
  • one embodiment provides a refrigerator in which ice can be smoothly separated from each of a plurality of ice-making cells in a tray during a moving process.
  • one embodiment provides a refrigerator with a slimmer dispenser.
  • a refrigerator may include a cabinet having a storage compartment.
  • the refrigerator may include a door that opens and closes the storage compartment.
  • the refrigerator may further include an ice maker that generates ice by receiving cold air to cool the storage compartment.
  • the ice maker may include an ice tray including a plurality of ice-making cells for producing ice.
  • the ice maker may include a driving unit that generates driving force to rotate the ice tray.
  • the ice tray may include a connection part for receiving power from the driving unit.
  • the ice tray may include a shaft to rotatably support the ice tray.
  • the ice tray may include a first area located close to the connection portion.
  • the ice tray may include a second region located close to the shaft.
  • the shape of the cell wall forming the ice-making cell in the first area may be different from the shape of the cell wall forming the ice-making cell in the second area.
  • the angle formed between the cell wall of the first region and the vertical line may be greater than the angle formed between the cell wall of the second region and the vertical line.
  • Water may be supplied to one ice-making cell in the second area.
  • the ice tray may include a water trough for the movement of water between adjacent ice-making cells in the first area.
  • the ice tray may further include a water trough for moving water between adjacent ice-making cells in the second area.
  • the depth of the water trough in the first area may be greater than the depth of the water trough in the second area.
  • a first blade may be provided on the bone in the first area, and a second blade may be provided on the bone in the second area.
  • the width of the first blade may be larger than the width of the second blade.
  • the width of the water trough in the first area may be the same as the width of the water trough in the second area.
  • the number of ice-making cells in the first area may be less than the number of ice-making cells in the second area.
  • the plurality of ice-making cells are arranged in three or more rows in a direction crossing the extension direction of the rotation center of the ice tray, and each row may include two or more ice-making cells.
  • a second row may be arranged between the first row and the third row.
  • the ice tray may include a first water trough for movement of water between the first row and the second row.
  • the ice tray may further include a second water trough for moving water between the second and third rows.
  • the ice tray may further include a third water trough for moving water between the ice-making cells in the first row.
  • the ice tray may include a fourth water trough for moving water between the third row of ice-making cells.
  • the ice-making cells in the second row of the second area can be supplied with water through the first water trough or the second water trough.
  • a water trough for moving water between the ice-making cells in the second row does not exist in the first area, so that the ice-making cells in the second row of the first area can be supplied with water through the first water trough or the second water trough.
  • the first area may be provided with a water trough for the movement of water between the ice-making cells in the second row.
  • Water may be supplied from the second area to one ice-making cell in the second row.
  • the ice maker may further include a sensor module installed on a cell wall forming the second row of ice making cells.
  • the sensor module may include a temperature sensor positioned between two cell walls forming the second row of ice-making cells.
  • the sensor module may include a sensor frame supporting the temperature sensor.
  • the ice tray may include three or more installation ribs for coupling the sensor frame.
  • the sensor frame may be installed on two adjacent mounting ribs of three or more mounting ribs.
  • a plurality of ice-making cells are arranged in three or more rows in a direction crossing the extension direction of the rotation center of the ice tray, and each row may include two or more ice-making cells.
  • a second row may be arranged between the first row and the third row.
  • the ice tray may include a first water trough for movement of water between the first row and the second row.
  • the ice tray may further include a second water trough for moving water between the second and third rows.
  • the ice tray may further include a third water trough for moving water between the ice-making cells in the first row.
  • the ice tray may further include a fourth water trough for moving water between the third row of ice-making cells.
  • the ice-making cells in the second row of the second area can be supplied with water through the first water trough or the second water trough.
  • It may further include a sensor module installed on a cell wall forming the second row of ice-making cells.
  • the sensor module may include a temperature sensor positioned between two cell walls of the second row of ice-making cells, and a sensor frame supporting the temperature sensor.
  • the first area may be provided with a water trough for the movement of water between the ice-making cells in the second row.
  • the ice-making cells in the second row of the first area may be supplied with water through the first water trough or the second water trough.
  • Water may be supplied from the second area to one ice-making cell in the second row.
  • the number of ice-making cells in the first area may be less than the number of ice-making cells in the second area.
  • the moving force in a portion of the ice tray located adjacent to the driving unit can be increased, and the overall moving reliability of the ice tray can be improved.
  • FIG. 1 is a front view of a refrigerator according to this embodiment.
  • FIG. 2 is a view showing a state in which one door of the refrigerator of FIG. 1 is separated.
  • Figure 3 is a perspective view seen from the front of the first refrigerating chamber door according to this embodiment.
  • Figure 4 is a perspective view seen from the rear of the first refrigerating chamber door according to this embodiment.
  • Figure 5 is a side view of the first refrigerating compartment door according to this embodiment.
  • Figure 6 is a cross-sectional view taken along line 6-6 in Figure 3.
  • Figure 7 is a diagram showing a cold air flow path in the first refrigerating chamber door of this embodiment.
  • Figure 8 is a perspective view of a first ice maker and a first ice bin according to this embodiment.
  • FIG. 9 is a top view of an ice tray according to this embodiment.
  • Figure 10 is a bottom view of the ice tray according to this embodiment.
  • FIG 11 is a side view of the ice tray according to this embodiment.
  • Figure 12 is a cross-sectional view taken along line 12-12 of Figure 9.
  • Figure 13 is a cross-sectional view taken along line 13-13 in Figure 9.
  • Figure 14 is a diagram for comparing the water bone in the first region and the water bone in the second region.
  • Figure 15 is a cross-sectional view taken along line 15-15 of Figure 9.
  • 16 is a top view of an ice tray according to another embodiment.
  • FIG. 1 is a front view of a refrigerator according to this embodiment
  • FIG. 2 is a view showing one door of the refrigerator of FIG. 1 in a separated state.
  • Figure 3 is a perspective view viewed from the front of the first refrigerating compartment door according to this embodiment
  • Figure 4 is a perspective view viewed from the rear of the first refrigerating compartment door according to this embodiment
  • Figure 5 is a side view of the first refrigerating compartment door according to this embodiment.
  • the refrigerator 1 of this embodiment may include a cabinet 2 having a storage compartment.
  • the refrigerator 1 may further include a refrigerator door that opens and closes the storage compartment.
  • the storage compartment may include a refrigerating compartment (18).
  • the storage compartment may optionally or additionally include a freezer compartment (19).
  • Figure 2 shows that the storage compartment includes a refrigerating compartment 18 and a freezing compartment 19.
  • the refrigerating compartment 18 can be opened and closed by one or more refrigerating compartment doors 5.
  • the freezer compartment 19 can be opened and closed by one or more freezer doors 30.
  • the refrigerating compartment 18 will be described as an example of being opened and closed by the first refrigerating compartment door 10 and the second refrigerating compartment door 20.
  • At least one of the first refrigerating compartment door 10 and the second refrigerating compartment door 20 may include a dispenser 11 for dispensing water and/or ice.
  • the freezer door 30 may be equipped with the dispenser 11.
  • At least one of the first refrigerating compartment door 10 and the second refrigerating compartment door 20 may include one or more ice makers.
  • an ice maker is provided in the first refrigerating compartment door 10
  • an ice maker may be provided in the second refrigerating compartment door 20 or the freezing compartment door 30.
  • the dispenser 11 and the ice maker may be installed in the same door.
  • the first refrigerating compartment door 20 includes a plurality of ice makers. It is not limited to this, and the second refrigerating compartment door 20 may also include a plurality of ice makers.
  • the refrigerator 1 is a bottom freezer type refrigerator.
  • the idea of the present invention can be equally applied to a side-by-side type refrigerator or a top mount type refrigerator. put it
  • the freezer compartment door may include a plurality of ice makers or the refrigerator compartment door may include a plurality of ice makers.
  • the dispenser 11 is located in the front of the first refrigerating compartment door 10, and a portion of the dispenser 11 may be recessed toward the rear to provide a space in which a container can be placed.
  • the plurality of ice makers may be arranged in a vertical direction.
  • the plurality of ice makers may include a first ice maker 200.
  • the plurality of ice makers may further include a second ice maker 500.
  • the second ice maker 500 may be located below the first ice maker 200.
  • this embodiment does not exclude that a plurality of ice makers 200 and 500 are arranged in the left and right directions.
  • the dispenser 11 may discharge at least ice produced in the first ice maker 200. To this end, the first ice maker 200 may be positioned higher than the dispenser 11.
  • the second ice maker 500 may also be positioned higher than the dispenser 11. Alternatively, even if the second ice maker 500 is located at the same level or lower than the dispenser 11, the ice produced in the second ice maker 500 may be transferred to the dispenser 11 by a separate transfer mechanism.
  • the dispenser 11 may include a first dispenser through which ice produced by the first ice maker 200 is discharged, and a second dispenser through which ice produced by the second ice maker 500 is discharged. do.
  • the second ice maker 500 may be located behind the dispenser 11.
  • the first refrigerating compartment door 10 may include an outer case 101 to form a front exterior.
  • the first refrigerating compartment door 10 may further include a door liner 102 coupled to the outer case 101.
  • the door liner 102 can open and close the refrigerating compartment 18.
  • an insulating space may be formed in the space between the outer case 101 and the door liner 102.
  • An insulating material may be provided in the insulating space.
  • the door liner 102 may include a first space 122 in which the first ice maker 200 is located.
  • the first space 122 may also be referred to as a first ice-making room.
  • the door liner 102 may further include a second space 124 in which the second ice maker 500 is located.
  • the second space 124 may also be referred to as a second ice-making room.
  • the second ice maker 500 may be omitted, and even in this case, the second space 124 may exist. At this time, the second space 124 may function as a door storage room used for a specific purpose.
  • the position of the second ice maker 500 may be changed.
  • the second ice maker 500 may be located in the storage space.
  • the second space 124 may exist or the second space 124 may be omitted.
  • the first space 122 may be formed as one surface of the door liner 102 is depressed toward the outer case 101.
  • the second space 124 may be formed as one surface of the door liner 102 is depressed toward the outer case 101.
  • the second space 124 may be depressed toward the dispenser 11.
  • the first refrigerating compartment door 10 may include a first ice bin 280 in which ice generated by the first ice maker 200 is stored.
  • the first refrigerating compartment door 10 may further include a second ice bin 600 in which ice generated by the second ice maker 500 is stored.
  • the second ice bin 600 may also be omitted.
  • the first ice bin 280 may be accommodated in the first space 122 together with the first ice maker 200.
  • the second ice bin 600 may be accommodated in the second space 124 together with the second ice maker 500.
  • Cold generated in a cooler may be supplied to the first space 122.
  • the cooler may be defined as a means for cooling the storage compartment, including at least one of a refrigerant cycle and a thermoelectric element.
  • cold air for cooling the freezer compartment 19 may be supplied to the first space 122.
  • Cold generated in the cooler may be supplied to the second space 124.
  • cold air for cooling the freezer compartment 19 may be supplied to the second space 124.
  • the refrigerator 1 has a supply passage 2a that guides the cold air of the freezer compartment 19 or the cold air of the space where the evaporator that generates cold air for cooling the freezer compartment 19 is located to the first refrigerator compartment door 10. may include.
  • the refrigerator 1 may include a discharge passage 2b that guides cold air discharged from the first refrigerator compartment door 10 to the freezer compartment 19 or a space where the evaporator is located.
  • the supply flow path (2a) and the discharge flow path (2b) may be provided in the cabinet (2).
  • the first refrigerating compartment door 10 may include a cold air inlet 123a. When the first refrigerating compartment door 10 is closed, the cold air inlet 123a may communicate with the supply passage 2a.
  • the first refrigerating compartment door 10 may further include a cold air outlet 123b. When the first refrigerating compartment door 10 is closed, the cold air outlet 123b may communicate with the discharge passage 2b.
  • the cold air inlet 123a may be formed on one side of the door liner 102. Although not limiting, one side of the door liner 102 faces the wall where the supply passage 2a is located in the refrigerating compartment 18 when the first refrigerating compartment door 10 is closed.
  • the cold air inlet 123a may be arranged to overlap the second space 124 in the horizontal direction.
  • the cold air outlet 123b may be formed on one side of the door liner 102. Although not limiting, one side of the door liner 102 faces the wall where the discharge passage 2b is located in the refrigerating compartment 18 when the first refrigerating compartment door 10 is closed.
  • the cold air outlet 123b may be arranged to overlap the second space 124 in the horizontal direction.
  • the form of ice produced by the first ice maker 200 may be the same as or different from that of the ice produced by the second ice maker 200.
  • the second ice maker 200 can form ice in a spherical shape.
  • spherical shape means not only a spherical shape but also a shape similar to a spherical shape geometrically.
  • the transparency of the ice produced by the first ice maker 200 may be the same as or different from the transparency of the ice produced by the second ice maker 500.
  • the transparency of ice produced by the second ice maker 500 may be higher than that of ice produced by the first ice maker 200.
  • the size (or volume) of ice produced in the first ice maker 200 and the size (or volume) of ice produced in the second ice maker 500 may be different.
  • the size (or volume) of ice produced in the second ice maker 500 may be larger than the size (or volume) of ice produced in the first ice maker 200.
  • the structure of the first ice maker 200 for producing ice and the method in which the ice is separated are the same as the structure of the second ice maker 500 and the method in which the ice produced in the second ice maker 500 is separated. can be different.
  • the shape of the first space 122 where the first ice maker 200 is located is determined by the shape of the second space 124 where the second ice maker 500 is located.
  • the shape may be different.
  • the depth of the second space 124 may be deeper than the depth of the first space 122.
  • the one side of the door liner 102 may include a first side portion 102a and a second side portion 102b having different widths in the front-back direction. You can.
  • the width of the second side portion 102b may be larger than the width of the first side portion 102a. Due to the difference in width between the first side portion 102a and the second side portion 102b, the thickness of the first refrigerating compartment door 10 in the front-back direction at the portion where the first ice maker 200 is located is greater than the thickness of the second ice maker 200. The thickness of the first refrigerating compartment door 10 in the front-back direction at the portion where 500 is located may be thick.
  • One or more of the cold air inlet 123a and the cold air outlet 123b may be formed on the second side portion 102b of the door liner 102.
  • the second side portion 102b may protrude further toward the refrigerating compartment 18 than the first side portion 102a.
  • the first refrigerating compartment door 10 may further include a first door 130 (or first space door) that opens and closes the first space 122.
  • the first door 130 may be an insulated door provided with an insulating material inside.
  • the first refrigerating compartment door 10 may further include a second door 132 (or a second space door) that opens and closes the second space 124.
  • the second door 130 may be an insulated door provided with an insulating material inside. Even if the second ice maker 500 is omitted, the second door 132 may exist.
  • heat transfer between the refrigerating compartment 18 and the first and second spaces 122 and 124 can be minimized by the first and second doors 130 and 132.
  • the first door 130 may be rotatably provided on the first refrigerating compartment door 10 by a hinge.
  • the second door 132 may be rotatably provided on the first refrigerating compartment door 10 by a hinge.
  • the rotation direction of the first door 130 and the rotation direction of the second door 132 may be the same or different.
  • a basket 136 capable of storing food may be connected to the first door 130 by varying the thickness of the first refrigerating compartment door 10.
  • the basket 136 when the basket 136 is installed in the first door 130, at least a portion of the basket 136 may overlap the second space 124 in the vertical direction. .
  • the basket 136 When the basket 136 is installed on the first door 130, at least a portion of the basket 136 may overlap the second ice maker 500 in the vertical direction.
  • the basket 136 When the basket 136 is installed in the first door 130 and the second door 132 is closed, at least a portion of the basket 136 overlaps the second door 132 in the vertical direction. It can be.
  • a filter (not shown) may be mounted on one side 103 of the first refrigerating compartment door 10, and the filter may be covered by a filter cover 142.
  • FIG. 6 is a cross-sectional view taken along line 6-6 of FIG. 3, and FIG. 7 is a view showing the cold air flow path in the first refrigerating compartment door of this embodiment.
  • the first refrigerating compartment door 10 may further include a cold air passage for cold air flow.
  • the flow path may be formed by a cold air duct, not shown.
  • the cold air duct may be installed in the door liner 102, for example.
  • the cold air flow path may guide cold air to one or more of the first space 122 and the second space 124.
  • the cold air flow path may include a first cold air flow path (P1).
  • the first cold air passage P1 may guide cold air supplied from the cabinet 2 to the first space 122.
  • At least a portion of the first cold air passage P1 may extend in the vertical direction. Cold air may rise in the first cold air passage P1 and be supplied to the upper part of the first space 122. For example, cold air guided by the first cold air passage P1 may flow toward the first ice maker 200.
  • the cold air flow path may further include a second cold air flow path (P2).
  • the second cold air flow path P2 may guide cold air in the first space 122 to the second space 124.
  • Cold air in the lower part of the first space 122 may be discharged into the second cold air flow path (P2). At least a portion of the second cold air passage P2 may extend in the vertical direction.
  • Cold air may descend from the second cold air flow path (P2) and be supplied to the second space 124.
  • cold air guided by the second cold air passage P2 may flow toward the second ice maker 500.
  • the cold air flow path may further include a third cold air flow path (P3).
  • P3 third cold air flow path
  • the third cold air passage P3 may guide cold air in the second space 124 to the outside of the first refrigerating compartment door 10 .
  • Cold air in the lower part of the second space 124 may flow through the third cold air passage P3. At least a portion of the third cold air passage P3 may extend in the horizontal direction.
  • the first ice maker 200 may include an ice tray 210 forming an ice-making cell.
  • the first ice maker 200 may further include a driving unit that provides power to automatically rotate the ice tray 210 to separate ice from the ice tray 210.
  • the first ice maker 200 may further include a power transmission unit that transmits power from the driving unit to the ice tray 210.
  • the ice tray 210 may include a plurality of ice-making cells. Water discharged from a water supply unit (not shown) and dropped into the ice tray 210 may be distributed to the plurality of ice-making cells.
  • the ice When ice production in the ice tray 210 is completed, the ice may be separated from the ice tray 210 as the ice tray 210 is rotated (twisted) by the driving unit. Ice separated from the ice tray 210 may be stored in the first ice bin 280.
  • the second ice maker 500 may include a first tray 510.
  • the second ice maker 500 may further include the second tray 550.
  • the first tray 510 and the second tray 550 may form an ice-making cell 501.
  • the second tray 550 may be moved relative to the first tray 510 .
  • the second tray 550 may be rotated relative to the first tray 510, may move linearly relative to the first tray 510, or may perform linear and rotational movements.
  • the second tray 550 When the second tray 550 is a rotating type, water supply may be performed at the water supply location of the second tray 550. After completion of water supply, the second tray 550 may be rotated to the ice-making position. When the second tray 550 is a linear movement type, water supply may be performed at the ice-making position of the second tray 550.
  • At least a portion of the second tray 550 may be spaced apart from at least a portion of the first tray 510 at the water supply position. The portion of the second tray 550 spaced apart from the first tray 510 at the water supply position may contact the first tray 510 at the ice making position to complete the ice making cell 501.
  • the dispenser 11 may include a dispenser housing 11a.
  • the dispenser housing 11a may form a receiving space.
  • a container such as a cup may be placed in the receiving space. Water or ice may be discharged into the receiving space.
  • At least a portion of the dispenser housing 11a may be arranged to overlap the second space 124 in the front-back direction.
  • the shortest horizontal distance between the front of the first refrigerating compartment door 10 and the second space 124 is greater than the shortest horizontal distance between the front of the first refrigerating compartment door 10 and the first space 122 by the dispenser housing 11a.
  • the horizontal distance is large.
  • the vertical length of the first space 122 may be longer than the vertical length of the second space 124. At least a portion of the second space 124 may overlap the first space 122 in the vertical direction.
  • the ice making cell 501 of the second ice maker 500 may overlap the dispenser housing 11a in the front-back direction.
  • An ice chute 700 may be placed below the first space 122.
  • the ice chute 700 can be opened and closed by the cap duct 900.
  • An ice guide 800 may be located below the ice chute 700.
  • the ice chute 700 may guide ice discharged from the first ice bin 280 to the ice guide 800.
  • the ice guide 800 may guide ice and allow the ice to be finally discharged.
  • the ice chute 700 may overlap at least a portion of the first space 122 in the vertical direction. At least a portion of the ice chute 700 may overlap the second space 124 in the vertical direction.
  • a water tank 340 may be detachably mounted on the first refrigerating compartment door 10. At least a portion of the ice chute 700 may overlap the water tank 340 in the vertical direction. At least a portion of the water tank 340 may overlap the ice-making cell 501 in the vertical direction. At least a portion of the water tank 340 may overlap the second ice bin 600 in the vertical direction.
  • At least a portion of the water tank 340 may overlap the basket 136 in the vertical direction.
  • the location of the water tank 340 is not limited, and it can be placed in various positions as long as the thickness of the first refrigerating compartment door 10 is not increased or the increase in thickness is minimized.
  • the ice guide 800 may overlap at least a portion of the second space 124 in the horizontal direction.
  • the reason that the second space 124 can be arranged at the rear of the dispenser housing 11a may be due to the slimmer of the dispenser housing 11a.
  • the shape of the ice tray 210 may be improved to slim the dispenser housing 11a. By improving the shape of the ice tray 210, the size of ice produced can be reduced. By reducing the size of the ice, the passage width of the ice guide 800 or the ice chute 700 can be reduced, making it possible to slim the dispenser.
  • the shape of the ice tray 210 will be described later with reference to the drawings.
  • Figure 8 is a perspective view of the first ice maker and the first ice bin according to this embodiment.
  • the first ice maker 200 may include an ice tray 210 forming an ice-making cell.
  • the first ice maker 200 may further include a driving unit 258 that provides power to automatically rotate the ice tray 210 to separate ice from the ice tray 210.
  • the first ice maker 200 may further include a power transmission unit 255 that transmits power of the driving unit 258 to the ice tray 210.
  • the first ice maker 200 may further include a tray cover 257 that covers the ice tray 210 to prevent water from overflowing when water is supplied to the ice tray 210.
  • the first ice maker 200 may further include a water supply unit 256 that guides water to the ice tray 200.
  • the ice tray 210 may include a plurality of ice-making cells. Water discharged from the water supply unit 256 and dropped into the ice tray 210 may be distributed to the plurality of ice-making cells.
  • the first ice maker 200 may further include a support bracket 270 provided with a support wall 254 on which the ice tray 210 is supported.
  • the support bracket 270 may include a first support part 272 and a second support part 274 that is coupled to the first support part 272 or formed integrally with the first support part 272.
  • the structure of the support bracket 270 is not limited to this.
  • the first support portion 272 may support the first ice bin 280.
  • An ice opening 273 through which ice discharged from the first ice bin 280 passes may be formed in the first support portion 272 .
  • the shaft 213 for rotating the ice tray 210 may be rotatably supported on the support wall 254.
  • the support wall 254 may be provided on the second support portion 274, for example.
  • the support bracket 270 may further include a transmission unit 279 for transmitting the power of the motor assembly (not shown) to the first ice bin 280.
  • the support bracket 270 may be provided with a full ice detection mechanism 260 for detecting whether the first ice bin 280 is full of ice.
  • the full ice detection mechanism 260 may be installed on the second support part 274 at a location spaced apart from the ice tray 210.
  • the full ice detection mechanism 260 may be located below the ice tray 210 .
  • the full ice detection mechanism 260 may include a transmitter 261 that transmits a signal, and a receiver 262 that is spaced apart from the transmitter 261 and receives a signal from the transmitter 261. When the light transmitted from the transmitter 261 reaches the receiver 262, it may be determined that full ice is not detected. On the other hand, if the receiver 262 does not receive the light transmitted from the transmitter 261 or the amount of light received by the receiver 262 is less than the standard light amount, it may be determined that full ice is detected.
  • the full ice detection mechanism 260 may include a lever that rotates. The lever can be rotated from the standby position to the full ice detection position. If the lever can be rotated to the full ice detection position, it may be determined that full ice has not been detected. On the other hand, if the lever cannot be rotated to the full ice detection position, it may be determined that full ice has been detected. Since the full ice detection mechanism 260 can be implemented using known technologies, detailed description will be omitted.
  • Figure 9 is a top view of the ice tray according to this embodiment
  • Figure 10 is a bottom view of the ice tray according to this embodiment
  • Figure 11 is a side view of the ice tray according to this embodiment.
  • FIG. 12 is a cross-sectional view taken along line 12-12 of FIG. 9
  • FIG. 13 is a cross-sectional view taken along line 13-13 of FIG. 9
  • FIG. 14 is a cross-sectional view taken along line 13-13 of FIG. It is a drawing.
  • Figure 15 is a cross-sectional view taken along line 15-15 in Figure 9.
  • the ice tray 210 of this embodiment may include a tray body 211 defining a plurality of ice-making cells 230 for producing ice.
  • a connection portion 212 for receiving power may be provided on one side of the tray body 211.
  • a power transmission unit 255 may be connected to the connection unit 212.
  • the shaft 213 may be provided on the other side of the tray body 211.
  • a plurality of ice-making cells 230 may be arranged in a first direction (X-axis direction in FIG. 9), as well as a plurality of ice-making cells 230 arranged in a second direction (Y-axis direction) that intersects the first direction. there is.
  • the first direction may be a direction in which the center of rotation of the ice tray 210 extends.
  • the shaft 213 may extend in a direction parallel to the first direction.
  • the ice-making cells arranged in the first direction may be called a “row” (or group).
  • the ice making cell 230 may include first to third rows 222, 224, and 226 arranged in the second direction.
  • the first row 222 may include a plurality of first ice making cells 232.
  • the second row 224 may include a plurality of second ice making cells 234.
  • the third row 226 may include a plurality of third ice making cells 236.
  • the second row 224 is located between the first row 222 and the third row 226.
  • the first ice making cell 232 may be formed by the first cell wall 232b.
  • the second ice making cell 234 may be formed by the second cell wall 234b.
  • the third ice making cell 236 may be formed by the third cell wall 236b.
  • the ice-making amount generated by each ice-making cell is not reduced.
  • the size of ice can be reduced.
  • the tray body 211 can be divided into a first area 227 and a second area 228.
  • the first area 227 may be a dotted area on the left side with respect to FIG. 9
  • the second area 228 may be a dotted line area on the right side with respect to FIG. 9 .
  • the first area 227 may be located closer to the connection portion 212 than the second area 228.
  • the number of ice-making cells in the second area 228 may be greater than the number of ice-making cells in the first area 227.
  • Water may be supplied to one ice-making cell 234a of the second area 228 through the water supply unit 256.
  • the one ice making cell 234a may be an ice making cell provided in the second row 224.
  • the ice making cell 234a may be referred to as a water supplied ice making cell.
  • the water supplied to the water supply ice making cell 234a may be distributed to the first ice making cell 232 in the first row 222 and the third ice making cell 236 in the third row 226. However, the water supplied to the water supply ice-making cell 234a is not directly distributed to the second ice-making cell 234 in the second row 224.
  • the ice tray 210 has a first water trough 241 for moving water between the first ice making cell 232 in the first row 222 and the second ice making cell 234 in the second row 224. (Water passage) may be included.
  • the ice tray 210 has a second water trough 242 for moving water between the second ice making cells 234 in the second row 224 and the second ice making cells 236 in the third row 226. (Water passage) may be included.
  • the first cleavage 241 and the second cleavage 242 may be arranged to face each other.
  • the ice tray 210 may further include a third water trough 243 for moving water between the plurality of first ice making cells 232 in the first row 222.
  • the ice tray 210 may further include a fourth water trough 244 for water to move between the plurality of third ice making cells 236 in the third row 226.
  • a passage for water to move between the plurality of second ice-making cells 234 in the second row 224 may not be formed in the ice tray 210 .
  • Another part of the water supplied to the water supply ice-making cell 234a may be distributed to the ice-making cell 236a adjacent to the water supply ice-making cell 234a in the third row 226 through the second water trough 242. .
  • Water distributed to the ice-making cells 236a of the third row 226 may be distributed to other ice-making cells of the third row 226 through the fourth water trough 244.
  • a sensor module may be provided on the lower side of the ice tray 210.
  • the sensor module can detect the temperature of the ice tray 210.
  • the sensor module may include a temperature sensor 292 and a sensor frame 294 supporting the temperature sensor 292.
  • the sensor frame 294 may be coupled to the tray body 211.
  • the water troughs 241 to 244 are formed as a portion of the tray body 211 is depressed downward to allow movement of water. Accordingly, the walls forming the water troughs 241 to 244 may protrude between two adjacent cell walls.
  • the temperature sensor 294 may be located between two adjacent cell walls. If there is a protruding portion forming a water valley between the two cell walls, the space for forming the temperature sensor 294 is reduced. Installation of the temperature sensor 294 may be difficult.
  • the temperature sensor 294 it is also possible to position the temperature sensor 294 below the protruding portion, but in this case, the length of the sensor module protruding below the tray body 211 may be increased. Then, the rotation trajectory of the tray body 211 on which the sensor module is installed increases, which may cause a problem in which the remaining space is reduced by the rotation trajectory of the tray body 211.
  • the rotation trajectory of the tray body 211 can be prevented from increasing. there is.
  • a plurality of installation ribs 238 for installing the sensor frame 294 may be formed on the plurality of second cell walls 234b.
  • the sensor frame 294 may be fastened to two spaced apart installation ribs 238. At this time, there may be at least three installation ribs 238.
  • the installation of the sensor module can be changed.
  • the position of the sensor module may be changed in the same type of ice tray 210. That is, it may be possible to change the position of the sensor module without changing the structure of the ice tray 210.
  • water may be supplied to the water supply ice-making cell 234a of the second area 228. Since the water supply ice-making cell 234a is not located in the exact center of the plurality of ice-making cells 230, there is a need to smoothly distribute the water supplied to the water supply ice-making cell 234a to the remaining ice-making cells.
  • the shape of the water bone in the first area 227 may be different from the shape of the water bone in the second area 228.
  • the shape of some of the water bones in the second area 228 is the same as the shape of the water bones in the first area 227, and the shape of some other water bones in the second area 228 is the same as the shape of the water bones in the first area 227. It may be different from the shape of the water bone in (227). Alternatively, there may be two or more types of bone bones with different shapes in the second area 228, and the shape of the bone bone in the second area 228 may be different from the shape of the bone bone in the first area 227.
  • Figure 12 shows the water trough in the first area
  • Figure 13 shows the water trough in the second area.
  • the depth of each cleavage 241a, 242a, 243a, 244a in the first area 227 is the depth of each cleavage 241b, 242b, 243b, 244b in the second area 227. ) can be greater than the depth.
  • the third bone 243a in the first area 227 and the third bone 243b in the second area 228 will be described as an example.
  • the difference in shape between the third hair bones for each region described below can be equally applied to the first hair bone, second hair bone, and fourth hair bone for each region.
  • a first blade 245 may be provided on the third bone 243a of the first area 227.
  • a second blade 246 may be provided on the third bone 243b of the second area 228.
  • the blades 245 and 246 serve to separate the two connected ice pieces when a twisting force is provided to the ice tray 210 during the moving process.
  • the depth bh1 of the third water trough 243a of the first area 227 is equal to the third water trough 243b of the second area 228. ) may be larger than the depth (bh2).
  • the width bw1 (for example, the maximum width) of the first blade 245 in the first area 227 is equal to the width of the second blade 245 in the second area 228. It may be larger than the width (bw2) (for example, the maximum width) of the blade 246.
  • the width rw1 (for example, the maximum width) of the third cleat 243a in the first area 227 is the width rw2 of the 3rd cleat 243b in the second area 228. (For example, it may be the same as the maximum width).
  • a force for moving ice (moving force) is generated due to the twisting of the ice tray 210.
  • the moving force is greater at a portion of the ice tray 210 farther from the connection portion 212 than at a portion closer to the connection portion 212.
  • the angle formed between the cell wall forming the ice-making cell 230 and the vertical line v1 may be referred to as a taper.
  • the taper is large, the moving force may be large.
  • the taper is large, the volume of the ice-making cell may decrease.
  • the volume of the ice-making cell decreases, which may reduce the amount of ice-making upon completion of one ice-making.
  • the taper of the cell wall 227a in the first area 227 is greater than the taper of the cell wall 228a in the second area 228. You can make it bigger. That is, the shape of the cell wall of the first area 227 may be different from that of the second area 228.
  • the moving force in the first area 227 located close to the connection portion 212 is increased, thereby ensuring moving reliability.
  • the ice tray 210 may further include blocking walls 215 and 216 to prevent water from overflowing.
  • One blocking wall 215 may be located around the connection portion 212, and the other blocking wall 216 may be located around the shaft 212.
  • the moving force in the portion of the ice tray located adjacent to the driving unit can be increased, and the overall moving reliability of the ice tray can be improved.
  • 16 is a plan view of an ice tray according to another embodiment.
  • This embodiment is the same as the previous embodiment in other respects, except that water valleys are formed on some of the walls of the plurality of second cells forming the second ice-making cells in the second row. Therefore, hereinafter, only the characteristic parts of this embodiment will be described.
  • the ice tray 210a may be divided into a first area 227 located close to the connection portion 212 and a second area 228 located far away.
  • a water trough 245 may be formed in the second cell wall 234b forming the second ice-making cell of 227.
  • water troughs may not be formed on the wall of the second cell forming the second ice-making cell in the second area 228.

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Thermal Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Devices That Are Associated With Refrigeration Equipment (AREA)

Abstract

Réfrigérateur selon un mode de réalisation comprenant : une armoire pourvue d'un compartiment de stockage ; une porte qui ouvre/ferme le compartiment de stockage ; et une machine à glaçons qui est alimentée en air froid pour la réfrigération du compartiment de stockage et la formation des glaçons, la machine à glaçons comprenant un plateau à glaçons qui comprend une pluralité de cavités de formation de glaçons pour former des glaçons et une unité d'entraînement qui génère une puissance d'entraînement pour faire tourner le plateau à glaçons ; le plateau à glaçons comprend une unité de raccordement pour recevoir de l'énergie transmise à partir de l'unité d'entraînement et un axe pour supporter de manière rotative le plateau à glaçons ; le plateau à glaçons peut être divisé en une première zone positionnée à proximité de l'unité de raccordement et une seconde zone positionnée à proximité de l'axe ; et la forme des parois des cavités constituant les cavités de formation de glaçons dans la première zone est différente de la forme de parois de cavités constituant les cavités de formation de glaçons dans la seconde zone.
PCT/KR2023/012552 2022-10-13 2023-08-24 Réfrigérateur WO2024080537A1 (fr)

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Application Number Priority Date Filing Date Title
KR10-2022-0131535 2022-10-13
KR1020220131535A KR20240051633A (ko) 2022-10-13 2022-10-13 냉장고

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH07305930A (ja) * 1994-05-11 1995-11-21 Matsushita Refrig Co Ltd 製氷装置
JP2007101000A (ja) * 2005-09-30 2007-04-19 Matsushita Electric Ind Co Ltd 冷蔵庫
JP2007120822A (ja) * 2005-10-26 2007-05-17 Sanyo Electric Co Ltd 自動製氷機を備えた貯蔵庫
US20200278142A1 (en) * 2014-10-23 2020-09-03 Whirlpool Corporation Method and apparatus for increasing rate of ice production in an automatic ice maker
KR20220049942A (ko) * 2020-10-15 2022-04-22 엘지전자 주식회사 제빙기 및 냉장고

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH07305930A (ja) * 1994-05-11 1995-11-21 Matsushita Refrig Co Ltd 製氷装置
JP2007101000A (ja) * 2005-09-30 2007-04-19 Matsushita Electric Ind Co Ltd 冷蔵庫
JP2007120822A (ja) * 2005-10-26 2007-05-17 Sanyo Electric Co Ltd 自動製氷機を備えた貯蔵庫
US20200278142A1 (en) * 2014-10-23 2020-09-03 Whirlpool Corporation Method and apparatus for increasing rate of ice production in an automatic ice maker
KR20220049942A (ko) * 2020-10-15 2022-04-22 엘지전자 주식회사 제빙기 및 냉장고

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