WO2021215602A1 - Air cleaner - Google Patents

Air cleaner Download PDF

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Publication number
WO2021215602A1
WO2021215602A1 PCT/KR2020/014598 KR2020014598W WO2021215602A1 WO 2021215602 A1 WO2021215602 A1 WO 2021215602A1 KR 2020014598 W KR2020014598 W KR 2020014598W WO 2021215602 A1 WO2021215602 A1 WO 2021215602A1
Authority
WO
WIPO (PCT)
Prior art keywords
heat dissipating
air
blower
disposed
wall
Prior art date
Application number
PCT/KR2020/014598
Other languages
French (fr)
Inventor
Changkyum Kim
Hyungho Park
Dongryul Park
Jieun CHOI
Original Assignee
Lg Electronics Inc.
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 Lg Electronics Inc. filed Critical Lg Electronics Inc.
Publication of WO2021215602A1 publication Critical patent/WO2021215602A1/en

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F8/00Treatment, e.g. purification, of air supplied to human living or working spaces otherwise than by heating, cooling, humidifying or drying
    • F24F8/10Treatment, e.g. purification, of air supplied to human living or working spaces otherwise than by heating, cooling, humidifying or drying by separation, e.g. by filtering
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/0002Casings; Housings; Frame constructions
    • B01D46/0013Modules
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/0039Filters or filtering processes specially modified for separating dispersed particles from gases or vapours with flow guiding by feed or discharge devices
    • B01D46/0047Filters or filtering processes specially modified for separating dispersed particles from gases or vapours with flow guiding by feed or discharge devices for discharging the filtered gas
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/0039Filters or filtering processes specially modified for separating dispersed particles from gases or vapours with flow guiding by feed or discharge devices
    • B01D46/0047Filters or filtering processes specially modified for separating dispersed particles from gases or vapours with flow guiding by feed or discharge devices for discharging the filtered gas
    • B01D46/0049Filters or filtering processes specially modified for separating dispersed particles from gases or vapours with flow guiding by feed or discharge devices for discharging the filtered gas containing fixed gas displacement elements or cores
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/24Particle separators, e.g. dust precipitators, using rigid hollow filter bodies
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/42Auxiliary equipment or operation thereof
    • B01D46/4263Means for active heating or cooling
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F12/00Use of energy recovery systems in air conditioning, ventilation or screening
    • F24F12/001Use of energy recovery systems in air conditioning, ventilation or screening with heat-exchange between supplied and exhausted air
    • F24F12/006Use of energy recovery systems in air conditioning, ventilation or screening with heat-exchange between supplied and exhausted air using an air-to-air heat exchanger
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/08Air-flow control members, e.g. louvres, grilles, flaps or guide plates
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/20Casings or covers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/30Arrangement or mounting of heat-exchangers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F7/00Ventilation
    • F24F7/003Ventilation in combination with air cleaning
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F8/00Treatment, e.g. purification, of air supplied to human living or working spaces otherwise than by heating, cooling, humidifying or drying
    • F24F8/10Treatment, e.g. purification, of air supplied to human living or working spaces otherwise than by heating, cooling, humidifying or drying by separation, e.g. by filtering
    • F24F8/108Treatment, e.g. purification, of air supplied to human living or working spaces otherwise than by heating, cooling, humidifying or drying by separation, e.g. by filtering using dry filter elements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H3/00Air heaters
    • F24H3/02Air heaters with forced circulation
    • F24H3/022Air heaters with forced circulation using electric energy supply
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H3/00Air heaters
    • F24H3/02Air heaters with forced circulation
    • F24H3/04Air heaters with forced circulation the air being in direct contact with the heating medium, e.g. electric heating element
    • F24H3/0405Air heaters with forced circulation the air being in direct contact with the heating medium, e.g. electric heating element using electric energy supply, e.g. the heating medium being a resistive element; Heating by direct contact, i.e. with resistive elements, electrodes and fins being bonded together without additional element in-between
    • F24H3/0411Air heaters with forced circulation the air being in direct contact with the heating medium, e.g. electric heating element using electric energy supply, e.g. the heating medium being a resistive element; Heating by direct contact, i.e. with resistive elements, electrodes and fins being bonded together without additional element in-between for domestic or space-heating systems
    • F24H3/0417Air heaters with forced circulation the air being in direct contact with the heating medium, e.g. electric heating element using electric energy supply, e.g. the heating medium being a resistive element; Heating by direct contact, i.e. with resistive elements, electrodes and fins being bonded together without additional element in-between for domestic or space-heating systems portable or mobile
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2273/00Operation of filters specially adapted for separating dispersed particles from gases or vapours
    • B01D2273/30Means for generating a circulation of a fluid in a filtration system, e.g. using a pump or a fan
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2279/00Filters adapted for separating dispersed particles from gases or vapours specially modified for specific uses
    • B01D2279/50Filters adapted for separating dispersed particles from gases or vapours specially modified for specific uses for air conditioning
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/20Casings or covers
    • F24F2013/205Mounting a ventilator fan therein
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2221/00Details or features not otherwise provided for
    • F24F2221/34Heater, e.g. gas burner, electric air heater
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F8/00Treatment, e.g. purification, of air supplied to human living or working spaces otherwise than by heating, cooling, humidifying or drying
    • F24F8/30Treatment, e.g. purification, of air supplied to human living or working spaces otherwise than by heating, cooling, humidifying or drying by ionisation
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F2275/00Fastening; Joining
    • F28F2275/02Fastening; Joining by using bonding materials; by embedding elements in particular materials
    • F28F2275/025Fastening; Joining by using bonding materials; by embedding elements in particular materials by using adhesives

Definitions

  • the present disclosure relates to an air cleaner.
  • An air cleaner is understood as an apparatus that sucks contaminated air, filters the sucked contaminated air, and discharges the filtered air, and is formed to purify indoor spaces such as homes and offices.
  • the air cleaner includes a blower disposed to suck external air and discharge the sucked air, and a filter disposed in the blower to filter dust, bacteria, or the like in the air.
  • the air cleaner may further include a heater or a heat exchanger disposed in the air cleaner to increase a temperature of the air discharged from the blower.
  • a conventional heat exchanger has a structure of extending in a horizontal direction parallel to the ground. Therefore, when the conventional heat exchanger is applied to an air cleaner having a cylindrical casing, there is a problem that heat exchange is performed only in one direction, and thus a heat exchange scheme is not efficient.
  • the conventional heat exchanger is formed by performing a manufacturing scheme such as welding only on a local portion, there is also a problem of lowering reliability resulted from impact and/or oxidation.
  • prior art Korean Patent Publication Application No. 10-2004-0012593, hereinafter referred to as prior art 1 discloses a heat dissipating body structure in which a linear sheath heater and a square-shaped heat dissipating fin are coupled to each other.
  • prior art 1 discloses a heat dissipating body structure in which a linear sheath heater and a square-shaped heat dissipating fin are coupled to each other.
  • the heat dissipating body structure of the prior art 1 to the air cleaner having the cylindrical casing, apart from a fact that air of an increased temperature may be blown by the heat dissipating body structure, the problem that the heat exchange scheme for increasing the temperature of the air is not efficient is not solved.
  • prior art 2 Korean Patent Publication Application No. 10-2006-0405017, hereinafter referred to as prior art 2 discloses a heat dissipating body structure in which a linear sheath heater and a helical heat dissipating fin are coupled to each other.
  • the problem that the heat exchange scheme for increasing the temperature of the air is not efficient is still not solved.
  • One of various tasks of the present disclosure is to provide an air cleaner that includes a heat exchanger disposed to efficiently increase a temperature of filtered air.
  • An air cleaner may include a blower disposed to suck external air, filter the sucked air, and then blow the filtered air, and a heat exchanger disposed in the blower to increase a temperature of the air discharged from the blower.
  • the heat exchanger may include a heating panel spaced apart from an inner circumferential surface of the blower and extending to have a concentric circle shape with the inner circumferential surface of the blower, and a plurality of heat dissipating fins protruding and extending from the heating panel.
  • An air cleaner may include a first blower disposed to suck air at a relatively low position, filter the sucked air, and blow the filtered air, a second blower disposed above the first blower in a vertical direction perpendicular to the ground to suck air at a relatively high position, filter the sucked air, and blow the filtered air, and a heat exchanger disposed in the first blower to increase a temperature of the air discharged from the first blower.
  • the heat exchanger may include a heat dissipating case having an empty space defined therein, a heating panel disposed in the empty space of the heat dissipating case and extending along an inner circumferential surface of the heat dissipating case, and a heat dissipating fin disposed in the empty space of the heat dissipating case and protruding and extending from an inner wall of the heating panel.
  • the first blower may include a first air guide apparatus disposed in the first blower for guiding the air filtered in the first blower to flow upward along the vertical direction, and the heat exchanger may be disposed on the first air guide apparatus.
  • An inner wall positioned at an inner side of the heat dissipating case and an outer wall positioned at an outer side of the heat dissipating case may have concentric circle shapes in the plan view.
  • An entirety of the heat dissipating case may have a loop shape.
  • the heating panel may be disposed to be spaced apart from each of the inner wall and the outer wall of the heat dissipating case.
  • the heating panel may have a ring shape in the plan view.
  • the heat exchanger may further include a heat dissipating panel disposed between the heating panel and the heat dissipating fin and extending along an inner circumferential surface of the heating panel, and the heat dissipating fin may be disposed to protrude and extend from the inner wall of the heat dissipating panel.
  • the heating panel, the heat dissipating panel, and the heat dissipating fin may be arranged to be sequentially stacked from the outer wall of the heat dissipating case toward the inner wall of the heat dissipating case.
  • the heat dissipating fin may include a plurality of heat dissipating fins spaced apart from each other, and each of the plurality of heat dissipating fins may be in contact with the heat dissipating panel.
  • the plurality of heat dissipating fins may be arranged to be spaced apart from the inner wall of the heat dissipating case.
  • the heat dissipating panel and the plurality of heat dissipating fins may be integrally formed.
  • Each of the plurality of heat dissipating fins may have a polygonal shape.
  • the heat exchanger may further include an adhesive member disposed between the heating panel and the heat dissipating panel, and the adhesive member may contain a metal material.
  • the first air guide apparatus may include an outer wall having a cylindrical shape and an inner wall positioned inward of the outer wall and having a cylindrical shape, and the outer wall of the first air guide apparatus may be disposed to surround the inner wall of the first air guide apparatus.
  • a lower portion of the heat exchanger may be interposed between the outer wall and the inner wall of the first air guide apparatus, and an upper portion of the heat exchanger may protrude upward from the first air guide apparatus along the vertical direction.
  • FIGS. 1 to 4 are figures for illustrating an air cleaner according to exemplary embodiments of the present disclosure.
  • FIGS. 7 and 8 are figures for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure.
  • a direction perpendicular to the ground will be defined as a vertical direction
  • a direction parallel to the ground and orthogonal to the vertical direction will be defined as a horizontal direction
  • a direction of a virtual circle formed when rotating with the vertical direction as a center and the horizontal direction as a rotation radius will be defined as a circumferential direction.
  • FIGS. 1 to 4 are figures for illustrating an air cleaner according to exemplary embodiments of the present disclosure.
  • FIG. 1 is a perspective view for illustrating an exterior of an air cleaner according to exemplary embodiments of the present disclosure.
  • FIG. 2 is a perspective view for illustrating components of an air cleaner according to exemplary embodiments of the present disclosure.
  • FIG. 3 is a cross-sectional view for illustrating an internal configuration of an air cleaner according to exemplary embodiments of the present disclosure.
  • FIG. 4 is a perspective view for illustrating an arrangement structure of a first air guide apparatus according to exemplary embodiments of the present disclosure.
  • an air cleaner 1 may include blowers 10 and 20 that generate an air flow, and a flow converter 30 that changes a discharge direction of the air flow generated by the blowers 10 and 20.
  • the blowers 10 and 20 may include a first blower 10 for generating a first air flow and a second blower 20 for generating a second air flow.
  • the first blower 10 and the second blower 20 may be sequentially arranged along a vertical direction.
  • the second blower 20 may be disposed above the first blower 10 in the vertical direction.
  • the first air flow may form a flow that sucks indoor air existing on a lower side of the air cleaner 1
  • the second air flow may form a flow that sucks indoor air existing on an upper side of the air cleaner 1. That is, the first blower 10 may be disposed to suck air in a relatively low position, filter the sucked air, and blow the filtered air.
  • the second blower 20 may be disposed to suck air in a relatively high position, filter the sucked air, and blow the filtered air.
  • the air cleaner 1 may include casings 100 and 200 forming an exterior of the air cleaner 1.
  • the first casing 100 may have a cylindrical shape, and may be formed such that an upper portion of the first casing 100 has a smaller diameter than a lower portion of the first casing 100. That is, the first casing 100 may have a conical shape with a cut end.
  • the first casing 100 When at least one of the two portions rotates, the first casing 100 may be opened and separated from the air cleaner 1.
  • a latch may be disposed at a portion where the two portions are coupled to each other, that is, on the opposite side of the hinge portion, and the latch may include a latching protrusion or a magnetic member. Internal parts of the first blower 10 may be replaced or repaired by opening the first casing 100.
  • the first casing 100 is formed in the cylindrical shape and the plurality of first suction portions 102 are formed along the outer circumferential surface of the first casing 100, so that an air suction amount of the first blower 10 may increase and a flow resistance of the air sucked into the first blower 10 may decrease.
  • the first blower 10 may include a plurality of suction portions 102 and 103, air existing in a lower portion of an indoor space may be easily introduced into the first blower 10 through the plurality of suction portions 102 and 103, thereby increasing the air suction amount of the first blower 10.
  • a first discharge portion 170 may be defined at an upper portion of the first blower 10.
  • the first discharge portion 170 may be defined at a first discharge grill 165 of a first discharge guide apparatus 160 (see FIG. 2) included in the first blower 10.
  • the first discharge guide apparatus 160 may form an exterior of an upper end of the first blower 10. Air discharged through the first discharge portion 170 may flow upward in an axial direction.
  • the second casing 200 may have a cylindrical shape, and may be formed such that an upper portion of the second casing 200 has a smaller diameter than a lower portion of the second casing 200. That is, the second casing 200 may have a conical shape with a cut end.
  • the second casing 200 may include two portions that may be separated from or coupled to each other through a second separable portion 201, and a second hinge portion (not shown) disposed opposite to the second separable portion 201.
  • the second casing 200 may be formed to be open like the first casing 100.
  • the description of the first casing 100 will be used.
  • Internal parts of the second blower 20 may be replaced or repaired by opening the second casing 200.
  • a diameter of a lower end of the second casing 200 may be smaller than a diameter of an upper end of the first casing 100. Therefore, in terms of overall shapes of the casings 100 and 200, lower cross-sectional areas of the casings 100 and 200 may be larger than upper cross-sectional areas thereof, and thus, the air cleaner 1 may be stably supported on the ground.
  • the flow converter 30 may be installed on a top surface of the second blower 20. Based on the air flow, an air flow path of the second blower 20 may be in communication with an air flow path of the flow converter 30. The air passed through the second blower 20 may pass through the air flow path of the flow converter 30 and may be discharged to the outside through a second discharge portion 305. The second discharge portion 305 may be formed at an upper end of the flow converter 30.
  • the flow converter 30 may be movably disposed. That is, as shown in FIG. 1, the flow converter 30 may be disposed in a lying state (at a first position). Although not shown, the flow converter 30 may be disposed in a slantly erect state (at a second position) or in a vertically erected state (at a third position).
  • the base 105 may include a base body placed on the ground and a base protrusion protruding upward from the base body to place the suction grill 110 thereon. Each base protrusion may be disposed on each of both sides of the base 105.
  • the suction grill 110 may include an approximately ring-shaped grill body and a rim protruding upward from an outer circumferential surface of the grill body.
  • the suction grill 110 may have a stepped shape by the grill body and the rim.
  • Air sucked through the plurality of suction holes and the base suction portion 103 may pass through a first filter member 120.
  • the first filter member 120 may be formed in a cylindrical shape, and may have a filter surface for filtering the air.
  • the air passed through the plurality of suction holes may pass through an outer circumferential surface of the cylindrical first filter member 120 and flow into the first filter member 120.
  • the suction grill 110 may further include a movement guide for guiding a movement of the first filter member 120 in an upward or a downward direction.
  • the first blower 10 may further include a first filter frame 125 for defining a mounting space for the first filter member 120, and the first filter frame 125 may include a dust sensor that senses an amount of dust in the air and/or a gas sensor that senses an amount of gas in the air.
  • the first filter member 120 may be mounted to be detachable from the first filter frame 125.
  • the first filter frame 125 may be formed in a cylindrical shape corresponding to the shape of the first filter member 120.
  • the first filter member 120 may be slidably inserted toward the first filter frame 125 during a mounting process. Conversely, the first filter member 120 may be slidably withdrawn from the first filter frame 125 during a separation process.
  • the first blower 10 may further include a first fan housing 130 installed at an outlet of the first filter member 120.
  • the first fan housing 130 may be disposed to accommodate a first blowing fan 135 therein and may be supported by the first filter frame 125.
  • a first fan entrance 133 for guiding air inflow into the first fan housing 130 may be defined at a bottom of the first fan housing 130.
  • a grill is disposed at the first fan entrance 133 to prevent the user from inserting a finger or the like into the first fan housing 130 when the first filter member 120 is separated.
  • the first blowing fan 135 may be disposed above the first fan entrance 133.
  • the first blowing fan 135 may include a centrifugal fan that introduces air in the axial direction and discharges the air upward in a radial direction.
  • the first fan 135 may include a hub 136 to which a rotation shaft of a first fan motor 137, which is a centrifugal fan motor, is coupled, a shroud 137 disposed to be spaced apart from the hub 136, and a plurality of blades 138 arranged between the hub 136 and the shroud 137.
  • the first fan motor 137 may be coupled at a position above the first blowing fan 135.
  • the air that has passed through the first filter member 120 may flow upward and flow into the first fan housing 130 through the first fan entrance 133. Thereafter, the air may flow in the axial direction of the first blowing fan 135 and be discharged upward.
  • the first blower 10 may further include a first air guide apparatus 140 coupled at a position above the first blowing fan 135 to guide the flow of the air that has passed through the first blowing fan 135.
  • the first air guide apparatus 140 may include an outer wall 141 having a cylindrical shape and an inner wall 142 positioned inward of the outer wall 171 and having a cylindrical shape.
  • the outer wall 141 of the first air guide apparatus may be disposed to surround the inner wall 142 of the first air guide apparatus.
  • a first air flow path 143 through which the air flows may be defined between an inner circumferential surface of the outer wall 141 of the first air guide apparatus and an outer circumferential surface of the inner wall 142 of the first air guide apparatus.
  • the first air guide apparatus 140 may include a guide rib 145 disposed in the first air flow path 143.
  • the guide rib 145 may be disposed to extend from the outer circumferential surface of the inner wall 142 of the first air guide apparatus to the inner circumferential surface of the outer wall 141 of the first air guide apparatus.
  • a plurality of guide ribs 145 may be formed and arranged to be spaced apart from each other. The plurality of guide ribs 145 may perform a function of guiding the air introduced into the first air flow path 143 through the first blowing fan 135 upward.
  • the first fan motor 137 may be supported on an upper side of the motor accommodating portion 144.
  • the rotational shaft of the first fan motor 137 may extend downward from the first fan motor 137 and may be coupled by passing through a bottom surface of the motor accommodating portion 144.
  • a motor coupling portion may be disposed on an upper side of the first fan motor 137, and the motor coupling portion may guide the first fan motor 137 to be fixed to the first air guide apparatus 140.
  • the second air guide apparatus 150 may include a first guide wall having an approximately cylindrical shape, and a second guide wall positioned inward of the first guide wall and having an approximately cylindrical shape.
  • the first guide wall may be disposed to surround the second guide wall.
  • a second air flow path through which the air flows may be defined between an inner circumferential surface of the first guide wall and an outer circumferential surface of the second guide wall.
  • the air flowing through the first air flow path of the first air guide apparatus 140 may flow upwards by passing through the second air flow path.
  • the first discharge portion 170 may be defined above the second air flow path.
  • a space in which at least a portion of a PCB device 450 is accommodated may be defined in the second air guide apparatus 150 by penetrating the second air guide apparatus 150 in the vertical direction.
  • the PCB device may include a power supply 480 and a main PCB 455.
  • the power supply may be a device that receives commercial power supplied from a power line connected to the air cleaner 1 and supplies the power to a main PCB 455 and a plurality of components in the air cleaner 1.
  • the power supply may include a PCB for AC power (a power PCB).
  • the main PCB 455 may include a PCB for DC power that is driven by a DC voltage converted by the PCB for the AC power.
  • the PCB device 450 may further include a PCB support plate 470 for supporting the power supply 480 and the main PCB 455.
  • the main PCB 455 may be supported on one surface of the PCB support plate 470, and the power supply 480 may be supported on the other surface of the PCB support plate 470.
  • the PCB device 450 may further include a communication module 460 through which the air cleaner 1 is able to communicate with an external device.
  • the communication module 460 may include a WiFi module.
  • the communication module 460 may be supported on the PCB support plate 470 and may be disposed below the main PCB 455.
  • the first blower 10 may further include the first discharge guide apparatus 160 disposed on a top surface of the second air guide apparatus 150, that is, on an outlet of the air flow passing through the second air guide apparatus 150 based on the air flow path, and guiding the air discharge to the outside of the air cleaner 1.
  • the first discharge guide apparatus 160 may include a first discharge body 163 of an annular shape formed by penetrating an approximately central portion of the first discharge guide apparatus 160 in the vertical direction. At least a portion of the PCB device 450 may be accommodated in the first discharge body 163.
  • a plurality of first discharge grills 165 may be arranged.
  • the first discharge portion 170 through which the air may be discharged to the outside may be defined between the plurality of first discharge grills 165.
  • the plurality of first discharge grills 165 may be arranged above the second air flow path. The air that has passed through the second air flow path may flow toward each first discharge grill 165 and be discharged through the first discharge portion 170.
  • the second blower 20 may further include a second filter member 220 of the second blower 20 or a lever support 210 for supporting the lever.
  • the lever support 210 may have an approximately annular shape.
  • the dividing apparatus 400 may be disposed between the first blower 10 and the second blower 20.
  • the dividing apparatus 400 may include a dividing plate 410 for separating or blocking the air flow generated by the first blower 10 and the air flow generated by the second blower 20.
  • the first blower 10 and the second blower 20 may be arranged to be spaced apart from each other in the vertical direction by the dividing plate 410. That is, a separation space in which the dividing plate 410 is located may be defined between the first blower 10 and the second blower 20.
  • the first discharge guide apparatus 160 of the first blower 10 may be located at a lower end of the separation space
  • the lever support 210 of the second blower 20 may be located at an upper end of the separation space.
  • the separation space may be divided into an upper space and a lower space by the dividing plate 410.
  • the lower space may be understood as a first space through which the air discharged from the first discharge portion 170 of the first discharge guide apparatus 160 passes in the process of flowing to the outside of the air cleaner 1.
  • the upper space may be understood as a second space as a gripping space into which the user may put a hand when moving the air cleaner 1.
  • the air discharged from the first discharge portion 170 may be guided by the dividing plate 410 to flow to the outside of the air cleaner 1, and may be prevented from flowing into the second blower 20.
  • a display 460 for displaying information associated with an operation of the air cleaner 1 may be installed on the dividing plate 410.
  • the information may include information on an air pollution degree or an air cleanliness degree.
  • the second blower 20 may include a second filter member 220, a second filter frame 225, a second fan housing 230, a second fan 235, and a second fan motor 237. These components are substantially the same as or similar to the first filter member 120, the first filter frame 125, the first fan housing 130, the first fan 135, and the first fan motor 137 arranged in the first blower 10, respectively, so that description of these components uses the description of the first blower 10.
  • the second blower 20 may further include a third air guide apparatus 240 coupled at a position above the second fan 235 to guide the flow of the air that has passed through the second fan 235.
  • the third air guide apparatus 240 may include a guide apparatus for guiding the movement of the flow converter 30.
  • the third air guide apparatus 240 is substantially the same as or similar to the first air guide apparatus 140 except for the guide apparatus, so that description of the third air guide apparatus 240 uses the description of the first air guide apparatus 140.
  • the second blower 20 may further include a second discharge guide apparatus 250 installed on a top surface of the third air guide apparatus 240 and guiding the flow of the air that has passed through the third air guide apparatus 240.
  • the flow converter 30 may be movably disposed on a top surface of the second discharge guide apparatus 250.
  • the air cleaner 1 may include the second discharge portion 305 together with the first discharge portion 170 of the first blower 10, a discharged air volume may be improved and air may be discharged in various directions.
  • a rotation guide apparatus for guiding a rotation of the flow converter 30 in a left and right direction and a rotation in the vertical direction may be disposed below the flow converter 30.
  • the flow converter 30 may be disposed in the lying state (the first position), the slantly erected state (the second position), or the vertically erected state (the third position) based on an operation of the rotation guide apparatus.
  • the amount of air discharged from the air cleaner 1 may be increased and purified air may be supplied to a position far from the air cleaner 1 by the flow converter 30.
  • FIGS. 5 and 6 are figures for illustrating an arrangement structure of a heat exchanger according to exemplary embodiments of the present disclosure.
  • FIG. 5 is a perspective view for illustrating an arrangement structure of a heat exchanger according to exemplary embodiments of the present disclosure.
  • FIG. 6 is a plan view for illustrating an arrangement structure of a heat exchanger according to exemplary embodiments of the present disclosure.
  • the air cleaner 1 may include a heat exchanger 180 disposed in the first blower 10 to increase a temperature of air discharged from the first blower 10.
  • the heat exchanger 180 may be disposed on the first air guide apparatus 140.
  • the first air guide apparatus 140 may include an outer wall having a cylindrical shape and an inner wall located inward of the outer wall and having a cylindrical shape.
  • the outer wall of the first air guide apparatus 140 may be disposed to surround the inner wall of the first air guide apparatus 140.
  • a lower portion of the heat exchanger 180 may be interposed between the outer wall and the inner wall of the first air guide apparatus 140, and an upper portion of the heat exchanger 180 may protrude upward from the first air guide apparatus 140 along the vertical direction.
  • each of the plurality of heat dissipating fins 185 may have a polygonal shape. In an embodiment, each of the plurality of heat dissipating fins 185 may have a rectangular shape.
  • FIGS. 5 to 8 show only that the heat exchanger 180 is formed in the first blower 10 and do not show that the heat exchanger 180 is formed in the second blower 20.
  • the heat exchanger 180 may be formed in the second blower 20.
  • a heat exchanger formed in the first blower 10 may be referred to as a first heat exchanger
  • a heat exchanger formed in the second blower 20 may be referred to as a second heat exchanger.
  • the heat exchanger 180 may include a heat dissipating frame 183 spaced apart from an inner circumferential surface of the first blower 10 and extending to have a concentric shape with the inner circumferential surface of the first blower 10, and a plurality of heat dissipating fins 185 protruding and extending from the heat dissipating frame 183.
  • the heat exchanger 180 may include a heat dissipating case 181 disposed to have an empty space therein, the heat dissipating frame 183 disposed in the empty space of the heat dissipating case 181 and extending along an inner circumferential surface of the heat dissipating case 181, and the heat dissipating fins 185 arranged in the empty space of the heat dissipating case 181 and protruding and extending from an inner wall of the heat dissipating frame 183.
  • a top surface and a bottom surface of the heat dissipating case 181 may be opened. Therefore, the air flowing upward from the first air guide apparatus 140 may flow upward by passing through an interior of the heat dissipating case 181. In this connection, the air passing through the interior of the heat dissipating case 181 may be heated at a high temperature by the heat dissipating frame 183 and the heat dissipating fins 185.
  • the heat dissipating frame 183 may be disposed to be spaced apart from each of the inner wall and the outer wall of the heat dissipating case 181, and may have a circular shape in the plan view.
  • a first coupling portion (not shown) electrically connected to the heat dissipating case 181 may be formed on a portion of the heat dissipating frame 183. Further, a second coupling portion (not shown) electrically connected to the first coupling portion may be formed on a portion of the heat dissipating case 181. Accordingly, the heat dissipating frame 183 may be controlled to be heated at a high temperature through a thermogenic action by current by being electrically connected to the heat dissipating case 181 by the first coupling portion and the second coupling portion.
  • the heat dissipating case 181 may contain, for example, a metal such as sheet metal (SUS) and a silicate mineral such as mica, and the heat dissipating fin 185 may contain a material, such as copper, having high thermal conductivity.
  • the heat dissipating pipe 183 may include a coil-shaped electrothermal wire disposed to be heated at a high temperature by dissipating heat by current, and may further contain an insulating powder such as magnesium oxide (MgO).
  • FIGS. 7 and 8 are figures for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure. Specifically, FIG. 7 is a perspective view for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure, and FIG. 8 is a cross-sectional view for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure.
  • each of the plurality of heat dissipating fins 185 may be in contact with the heat dissipating panel 183c and may be disposed to be spaced apart from the inner wall of the heat dissipating case 181.
  • the adhesive member 183b may contain a metal material, and the heat dissipating panel 183c may contain a material, such as copper having high thermal conductivity.
  • the heat dissipating panel 183c and the plurality of heat dissipating fins 185 may be integrally formed. In this case, the heat dissipating panel 183c and the plurality of heat dissipating fins 185 may contain the same material.
  • the air cleaner 1 may include the blowers 10 and 20 arranged to suck external air, filter the sucked air, and blow the filtered air, and the heat exchanger 180 disposed in the blower 10 or 20 to increase a temperature of the air discharged from the blower 10 or 20.
  • the heat exchanger 180 may include the heating panel 183a that is spaced apart from an inner circumferential surface of the blower 10 or 20 and extends to have a concentric circle shape with the inner circumferential surface of the blower 10 or 20, the plurality of heat dissipating fins 185 protruding and extending from the heating panel 183a, and the heat dissipating case 181 disposed to accommodate the heating panel 183a and the plurality of heat dissipating fins 185 therein.
  • the blowers 10 and 20 may respectively include the cylindrical casings 100 and 200.
  • the heat dissipating case 181 may have the loop shape having the empty space defined in the entirety of the heat dissipating case 181.
  • the heating panel 183a may be accommodated in the empty space of the heat dissipating case 181 to have the circular shape in the plan view.
  • the heat exchanger 180 when the heat exchanger 180 is applied to the air cleaner 1 having the cylindrical casings 100 and 200, the heat exchange is performed in all directions, so that a heat exchange scheme may be efficiently performed.
  • the plurality of heat dissipating fins 185 are formed to protrude and extend from the heating panel 183a, so that a problem of lowering reliability resulted from impact and/or oxidation may be solved.

Abstract

Disclosed is an air cleaner, more specifically, an air cleaner including a first blower disposed to suck air at a relatively-low-position, filter the sucked air, and blow the filtered air, a second blower disposed above the first blower in a vertical direction perpendicular to the ground to suck air at a relatively-high-position, filter the sucked air, and blow the filtered air, and a heat exchanger disposed in the first blower to increase a temperature of the air discharged from the first blower. The heat exchanger may include a heat dissipating case having an empty space defined therein, a heating panel disposed in the empty space of the heat dissipating case and extending along an inner circumferential surface of the heat dissipating case, and a heat dissipating fin disposed in the empty space of the heat dissipating case and protruding and extending from an inner wall of the heating panel.

Description

AIR CLEANER
The present disclosure relates to an air cleaner.
An air cleaner is understood as an apparatus that sucks contaminated air, filters the sucked contaminated air, and discharges the filtered air, and is formed to purify indoor spaces such as homes and offices. In general, the air cleaner includes a blower disposed to suck external air and discharge the sucked air, and a filter disposed in the blower to filter dust, bacteria, or the like in the air.
The air cleaner may further include a heater or a heat exchanger disposed in the air cleaner to increase a temperature of the air discharged from the blower. However, a conventional heat exchanger has a structure of extending in a horizontal direction parallel to the ground. Therefore, when the conventional heat exchanger is applied to an air cleaner having a cylindrical casing, there is a problem that heat exchange is performed only in one direction, and thus a heat exchange scheme is not efficient. In addition, because the conventional heat exchanger is formed by performing a manufacturing scheme such as welding only on a local portion, there is also a problem of lowering reliability resulted from impact and/or oxidation.
A prior art (Korean Patent Publication Application No. 10-2004-0012593, hereinafter referred to as prior art 1) discloses a heat dissipating body structure in which a linear sheath heater and a square-shaped heat dissipating fin are coupled to each other. However, when applying the heat dissipating body structure of the prior art 1 to the air cleaner having the cylindrical casing, apart from a fact that air of an increased temperature may be blown by the heat dissipating body structure, the problem that the heat exchange scheme for increasing the temperature of the air is not efficient is not solved.
Another prior art (Korean Patent Publication Application No. 10-2006-0405017, hereinafter referred to as prior art 2) discloses a heat dissipating body structure in which a linear sheath heater and a helical heat dissipating fin are coupled to each other. However, like the heat dissipating body structure of the prior art 1, when applying the heat dissipating body structure of the prior art 1 to the air cleaner having the cylindrical casing, the problem that the heat exchange scheme for increasing the temperature of the air is not efficient is still not solved.
One of various tasks of the present disclosure is to provide an air cleaner that includes a heat exchanger disposed to efficiently increase a temperature of filtered air.
An air cleaner according to exemplary embodiments of the present disclosure may include a blower disposed to suck external air, filter the sucked air, and then blow the filtered air, and a heat exchanger disposed in the blower to increase a temperature of the air discharged from the blower. The heat exchanger may include a heating panel spaced apart from an inner circumferential surface of the blower and extending to have a concentric circle shape with the inner circumferential surface of the blower, and a plurality of heat dissipating fins protruding and extending from the heating panel.
An air cleaner according to exemplary embodiments of the present disclosure may include a first blower disposed to suck air at a relatively low position, filter the sucked air, and blow the filtered air, a second blower disposed above the first blower in a vertical direction perpendicular to the ground to suck air at a relatively high position, filter the sucked air, and blow the filtered air, and a heat exchanger disposed in the first blower to increase a temperature of the air discharged from the first blower. The heat exchanger may include a heat dissipating case having an empty space defined therein, a heating panel disposed in the empty space of the heat dissipating case and extending along an inner circumferential surface of the heat dissipating case, and a heat dissipating fin disposed in the empty space of the heat dissipating case and protruding and extending from an inner wall of the heating panel.
The first blower may include a first air guide apparatus disposed in the first blower for guiding the air filtered in the first blower to flow upward along the vertical direction, and the heat exchanger may be disposed on the first air guide apparatus.
An inner wall positioned at an inner side of the heat dissipating case and an outer wall positioned at an outer side of the heat dissipating case may have concentric circle shapes in the plan view.
An entirety of the heat dissipating case may have a loop shape.
The heating panel may be disposed to be spaced apart from each of the inner wall and the outer wall of the heat dissipating case.
The heating panel may have a ring shape in the plan view.
The heat exchanger may further include a heat dissipating panel disposed between the heating panel and the heat dissipating fin and extending along an inner circumferential surface of the heating panel, and the heat dissipating fin may be disposed to protrude and extend from the inner wall of the heat dissipating panel.
The heating panel, the heat dissipating panel, and the heat dissipating fin may be arranged to be sequentially stacked from the outer wall of the heat dissipating case toward the inner wall of the heat dissipating case.
The heat dissipating fin may include a plurality of heat dissipating fins spaced apart from each other, and each of the plurality of heat dissipating fins may be in contact with the heat dissipating panel.
The plurality of heat dissipating fins may be arranged to be spaced apart from the inner wall of the heat dissipating case.
The heat dissipating panel and the plurality of heat dissipating fins may be integrally formed.
Each of the plurality of heat dissipating fins may have a polygonal shape.
The heat exchanger may further include an adhesive member disposed between the heating panel and the heat dissipating panel, and the adhesive member may contain a metal material.
The first air guide apparatus may include an outer wall having a cylindrical shape and an inner wall positioned inward of the outer wall and having a cylindrical shape, and the outer wall of the first air guide apparatus may be disposed to surround the inner wall of the first air guide apparatus.
A lower portion of the heat exchanger may be interposed between the outer wall and the inner wall of the first air guide apparatus, and an upper portion of the heat exchanger may protrude upward from the first air guide apparatus along the vertical direction.
The air cleaner according to exemplary embodiments of the present disclosure may include the blower disposed to suck external air, filter the sucked air, and blow the filtered air, and the heat exchanger disposed in the blower to increase the temperature of the air discharged from the blower. In addition, the heat exchanger may include the heating panel that is spaced apart from the inner circumferential surface of the blower and extends to have the concentric circle shape with the inner circumferential surface of the blower, and the plurality of heat dissipating fins protruding and extending from the heating panel.
In this connection, the blower may include the cylindrical casing. The heat dissipating case may have the loop shape having the empty space defined in the entirety of the heat dissipating case. The heating panel may be accommodated in the empty space of the heat dissipating case to have the circular shape in the plan view.
Therefore, when the heat exchanger is applied to the air cleaner having the cylindrical casing, the heat exchange is performed in all directions, so that a heat exchange scheme may be efficiently performed. In addition, the plurality of heat dissipating fins are formed to protrude and extend from the heating panel, so that a problem of lowering reliability resulted from impact and/or oxidation may be solved.
FIGS. 1 to 4 are figures for illustrating an air cleaner according to exemplary embodiments of the present disclosure.
FIGS. 5 and 6 are figures for illustrating an arrangement structure of a heat exchanger according to exemplary embodiments of the present disclosure.
FIGS. 7 and 8 are figures for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure.
Hereinafter, a specific embodiment of the present disclosure will be described with reference to the drawings. A following detailed description is provided to aid in a comprehensive understanding of the methods, apparatuses, and/or systems described herein. However, this is only an example and the present disclosure is not limited thereto.
In describing the embodiments of the present disclosure, when it is determined that a detailed description of the publicly known technology related to the present disclosure may unnecessarily obscure the subject matter of the present disclosure, the detailed description will be omitted. In addition, terms to be described later are terms defined in consideration of functions in the present disclosure, which may vary based on the intention, custom, or the like of users and operators. Therefore, the definition thereof should be made based on the contents throughout the present specification. The terms used in the detailed description are only intended to describe embodiments of the present disclosure and should not be limiting. A singular representation may include a plural representation unless it represents a definitely different meaning from the context. In the present description, terms such as "include" or "has" are intended to refer to certain features, numbers, steps, actions, elements, and some or combinations thereof, and should not be construed to exclude the presence or possibility of one or more other features, numbers, steps, actions, elements, some or combinations thereof, other than those described.
In addition, in describing the components of the embodiment according to the present disclosure, terms such as first, second, A, B, (a), (b), and the like may be used. These terms are merely intended to distinguish the components from other components, and the terms do not limit the nature, order or sequence of the components.
Hereinafter, a direction perpendicular to the ground will be defined as a vertical direction, a direction parallel to the ground and orthogonal to the vertical direction will be defined as a horizontal direction, and a direction of a virtual circle formed when rotating with the vertical direction as a center and the horizontal direction as a rotation radius will be defined as a circumferential direction.
FIGS. 1 to 4 are figures for illustrating an air cleaner according to exemplary embodiments of the present disclosure. Specifically, FIG. 1 is a perspective view for illustrating an exterior of an air cleaner according to exemplary embodiments of the present disclosure. FIG. 2 is a perspective view for illustrating components of an air cleaner according to exemplary embodiments of the present disclosure. FIG. 3 is a cross-sectional view for illustrating an internal configuration of an air cleaner according to exemplary embodiments of the present disclosure. Further, FIG. 4 is a perspective view for illustrating an arrangement structure of a first air guide apparatus according to exemplary embodiments of the present disclosure.
Referring to FIG. 1, an air cleaner 1 according to exemplary embodiments of the present disclosure may include blowers 10 and 20 that generate an air flow, and a flow converter 30 that changes a discharge direction of the air flow generated by the blowers 10 and 20.
The blowers 10 and 20 may include a first blower 10 for generating a first air flow and a second blower 20 for generating a second air flow.
The first blower 10 and the second blower 20 may be sequentially arranged along a vertical direction. In exemplary embodiments, the second blower 20 may be disposed above the first blower 10 in the vertical direction. In this case, the first air flow may form a flow that sucks indoor air existing on a lower side of the air cleaner 1, and the second air flow may form a flow that sucks indoor air existing on an upper side of the air cleaner 1. That is, the first blower 10 may be disposed to suck air in a relatively low position, filter the sucked air, and blow the filtered air. The second blower 20 may be disposed to suck air in a relatively high position, filter the sucked air, and blow the filtered air.
The air cleaner 1 according to exemplary embodiments of the present disclosure may include casings 100 and 200 forming an exterior of the air cleaner 1.
Specifically, the casings 100 and 200 may include a first casing 100 for forming an exterior of the first blower 10.
The first casing 100 may have a cylindrical shape, and may be formed such that an upper portion of the first casing 100 has a smaller diameter than a lower portion of the first casing 100. That is, the first casing 100 may have a conical shape with a cut end.
The first casing 100 may include a first separable portion 101 disposed such that two portions constituting the first casing 100 are coupled to or separated from each other, and a first hinge portion (not shown) disposed opposite the first separable portion 101. The two portions may rotate relative to each other around the first hinge portion.
When at least one of the two portions rotates, the first casing 100 may be opened and separated from the air cleaner 1. A latch may be disposed at a portion where the two portions are coupled to each other, that is, on the opposite side of the hinge portion, and the latch may include a latching protrusion or a magnetic member. Internal parts of the first blower 10 may be replaced or repaired by opening the first casing 100.
A first suction portion 102 through which the air is sucked may be formed on the first casing 100, and the first suction portion 102 may include a through-hole that is defined by penetrating at least a portion of the first casing 100. A plurality of first suction portions 102 may be formed.
The plurality of first suction portions 102 may be formed evenly in a circumferential direction along an outer circumferential surface of the first casing 100 such that the air may be sucked from any direction of the first casing 100. Accordingly, the air may be sucked in 360-degree direction based on a center line of the vertical direction passing through an inner center of the first casing 100.
As such, the first casing 100 is formed in the cylindrical shape and the plurality of first suction portions 102 are formed along the outer circumferential surface of the first casing 100, so that an air suction amount of the first blower 10 may increase and a flow resistance of the air sucked into the first blower 10 may decrease.
The first blower 10 may further include a base 105 disposed below the first casing 100 and placed on the ground. The base 105 may be positioned to be spaced downward from a lower end of the first casing 100. A base suction portion 103 may be formed in a separation space between the first casing 101 and the base 105.
The air sucked through the base suction portion 103 may flow upward through a suction port 115 of a suction grill 110 (see FIG. 2) disposed on a top surface of the base 105.
That is, because the first blower 10 may include a plurality of suction portions 102 and 103, air existing in a lower portion of an indoor space may be easily introduced into the first blower 10 through the plurality of suction portions 102 and 103, thereby increasing the air suction amount of the first blower 10.
A first discharge portion 170 may be defined at an upper portion of the first blower 10. The first discharge portion 170 may be defined at a first discharge grill 165 of a first discharge guide apparatus 160 (see FIG. 2) included in the first blower 10. The first discharge guide apparatus 160 may form an exterior of an upper end of the first blower 10. Air discharged through the first discharge portion 170 may flow upward in an axial direction.
The casings 100 and 200 may include a second casing 200 for forming an exterior of the second blower 20.
The second casing 200 may have a cylindrical shape, and may be formed such that an upper portion of the second casing 200 has a smaller diameter than a lower portion of the second casing 200. That is, the second casing 200 may have a conical shape with a cut end.
The second casing 200 may include two portions that may be separated from or coupled to each other through a second separable portion 201, and a second hinge portion (not shown) disposed opposite to the second separable portion 201. The second casing 200 may be formed to be open like the first casing 100. For a detailed description of the opening of the second casing 200, the description of the first casing 100 will be used. Internal parts of the second blower 20 may be replaced or repaired by opening the second casing 200.
A diameter of a lower end of the second casing 200 may be smaller than a diameter of an upper end of the first casing 100. Therefore, in terms of overall shapes of the casings 100 and 200, lower cross-sectional areas of the casings 100 and 200 may be larger than upper cross-sectional areas thereof, and thus, the air cleaner 1 may be stably supported on the ground.
A second suction portion 202 through which the air is sucked may be formed on the second casing 200, and the second suction portion 202 may include a through-hole that is defined by penetrating at least a portion of the second casing 200. A plurality of second suction portions 202 may be formed.
The plurality of second suction portions 202 may be formed evenly in the circumferential direction along an outer circumferential surface of the second casing 200 such that the air may be sucked from any direction of the second casing 200. Accordingly, the air may be sucked in 360-degree direction based on a center line of the vertical direction passing through an inner center of the second casing 200.
As such, the second casing 200 is formed in the cylindrical shape and the plurality of second suction portions 202 are formed along the outer circumferential surface of the second casing 200, so that an air suction amount of the second blower 20 may increase and a flow resistance of the air sucked into the second blower 20 may decrease.
The air cleaner 1 may further include a dividing apparatus 400 disposed between the first blower 10 and the second blower 20. The second blower 20 may be positioned to be upwardly spaced apart from the first blower 10 by the dividing apparatus 400.
The flow converter 30 may be installed on a top surface of the second blower 20. Based on the air flow, an air flow path of the second blower 20 may be in communication with an air flow path of the flow converter 30. The air passed through the second blower 20 may pass through the air flow path of the flow converter 30 and may be discharged to the outside through a second discharge portion 305. The second discharge portion 305 may be formed at an upper end of the flow converter 30.
The flow converter 30 may be movably disposed. That is, as shown in FIG. 1, the flow converter 30 may be disposed in a lying state (at a first position). Although not shown, the flow converter 30 may be disposed in a slantly erect state (at a second position) or in a vertically erected state (at a third position).
A display 500 for displaying operation information of the air cleaner 1 may be disposed on a top surface of the flow converter 30. The display 500 may be controlled to be driven together with the flow converter 30.
Referring to FIGS. 2 to 4, a first blower 10 according to exemplary embodiments of the present disclosure may include a base 105 and a suction grill 110 disposed on the base 105.
The base 105 may include a base body placed on the ground and a base protrusion protruding upward from the base body to place the suction grill 110 thereon. Each base protrusion may be disposed on each of both sides of the base 105.
The base body and the suction grill 110 may be spaced apart from each other by the base protrusion. The base suction portion 103 for defining an air suction space may be formed between the base 105 and the suction grill 110.
The suction grill 110 may include an approximately ring-shaped grill body and a rim protruding upward from an outer circumferential surface of the grill body. The suction grill 110 may have a stepped shape by the grill body and the rim.
The suction grill 110 may include the suction portion 115 formed on the rim. The suction portion 115 may protrude upward along a circumference of the rim, and may extend in the circumferential direction. A plurality of suction holes may be defined in the suction portion 115, and the plurality of suction holes may be in communication with the base suction portion 103.
Air sucked through the plurality of suction holes and the base suction portion 103 may pass through a first filter member 120. The first filter member 120 may be formed in a cylindrical shape, and may have a filter surface for filtering the air. The air passed through the plurality of suction holes may pass through an outer circumferential surface of the cylindrical first filter member 120 and flow into the first filter member 120. The suction grill 110 may further include a movement guide for guiding a movement of the first filter member 120 in an upward or a downward direction.
In addition, the first blower 10 may further include a lever that is disposed above the suction grill 110 and is able to be manipulated by a user. The lever may be rotatable in the circumferential direction.
The first blower 10 may further include a first filter frame 125 for defining a mounting space for the first filter member 120, and the first filter frame 125 may include a dust sensor that senses an amount of dust in the air and/or a gas sensor that senses an amount of gas in the air. The first filter member 120 may be mounted to be detachable from the first filter frame 125.
The first filter member 120 may have the cylindrical shape, and the air may be introduced through the outer circumferential surface of the first filter member 120. In the process of passing through the first filter member 120, impurities such as fine dust in the air may be filtered.
Because the first filter member 120 has the cylindrical shape, the air may be introduced in any direction of the first filter member 120. Accordingly, a filtering area of the air may be increased.
The first filter frame 125 may be formed in a cylindrical shape corresponding to the shape of the first filter member 120. The first filter member 120 may be slidably inserted toward the first filter frame 125 during a mounting process. Conversely, the first filter member 120 may be slidably withdrawn from the first filter frame 125 during a separation process.
The first blower 10 may further include a first fan housing 130 installed at an outlet of the first filter member 120. The first fan housing 130 may be disposed to accommodate a first blowing fan 135 therein and may be supported by the first filter frame 125.
A first fan entrance 133 for guiding air inflow into the first fan housing 130 may be defined at a bottom of the first fan housing 130. A grill is disposed at the first fan entrance 133 to prevent the user from inserting a finger or the like into the first fan housing 130 when the first filter member 120 is separated.
The first blower 10 may further include an ionizer for removing odor particles in the air or sterilizing the air. The ionizer may be coupled to the first fan housing 130 to act on the air flowing in the first fan housing 130.
The dust sensor, the gas sensor, and the ionizer may be installed in the second blower 20, which will be described later, but the concept of the present disclosure is not necessarily limited thereto. That is, the dust sensor, the gas sensor, and the ionizer may be installed only in one of the first blower 10 and the second blower 20.
The first blowing fan 135 may be disposed above the first fan entrance 133. In an embodiment, the first blowing fan 135 may include a centrifugal fan that introduces air in the axial direction and discharges the air upward in a radial direction.
Specifically, the first fan 135 may include a hub 136 to which a rotation shaft of a first fan motor 137, which is a centrifugal fan motor, is coupled, a shroud 137 disposed to be spaced apart from the hub 136, and a plurality of blades 138 arranged between the hub 136 and the shroud 137. The first fan motor 137 may be coupled at a position above the first blowing fan 135.
The air that has passed through the first filter member 120 may flow upward and flow into the first fan housing 130 through the first fan entrance 133. Thereafter, the air may flow in the axial direction of the first blowing fan 135 and be discharged upward.
The first blower 10 may further include a first air guide apparatus 140 coupled at a position above the first blowing fan 135 to guide the flow of the air that has passed through the first blowing fan 135.
The first air guide apparatus 140 may include an outer wall 141 having a cylindrical shape and an inner wall 142 positioned inward of the outer wall 171 and having a cylindrical shape. The outer wall 141 of the first air guide apparatus may be disposed to surround the inner wall 142 of the first air guide apparatus. A first air flow path 143 through which the air flows may be defined between an inner circumferential surface of the outer wall 141 of the first air guide apparatus and an outer circumferential surface of the inner wall 142 of the first air guide apparatus.
The first air guide apparatus 140 may include a guide rib 145 disposed in the first air flow path 143. The guide rib 145 may be disposed to extend from the outer circumferential surface of the inner wall 142 of the first air guide apparatus to the inner circumferential surface of the outer wall 141 of the first air guide apparatus. A plurality of guide ribs 145 may be formed and arranged to be spaced apart from each other. The plurality of guide ribs 145 may perform a function of guiding the air introduced into the first air flow path 143 through the first blowing fan 135 upward.
The first air guide apparatus 140 may further include a motor accommodating portion 144 extending downward from an inner wall of the first air guide apparatus 140 to accommodate the first fan motor 135 therein. The motor accommodating portion 144 may have a shape of a bowl whose diameter decreases downwards.
The first fan motor 137 may be supported on an upper side of the motor accommodating portion 144. The rotational shaft of the first fan motor 137 may extend downward from the first fan motor 137 and may be coupled by passing through a bottom surface of the motor accommodating portion 144.
A motor coupling portion may be disposed on an upper side of the first fan motor 137, and the motor coupling portion may guide the first fan motor 137 to be fixed to the first air guide apparatus 140.
The first blower 10 according to exemplary embodiments of the present disclosure may further include a second air guide apparatus 150 that is coupled to a top surface of the first air guide apparatus 140 and guides the air that has passed through the first air guide apparatus 140 to the first discharge guide apparatus 160.
The second air guide apparatus 150 may include a first guide wall having an approximately cylindrical shape, and a second guide wall positioned inward of the first guide wall and having an approximately cylindrical shape. The first guide wall may be disposed to surround the second guide wall.
A second air flow path through which the air flows may be defined between an inner circumferential surface of the first guide wall and an outer circumferential surface of the second guide wall. The air flowing through the first air flow path of the first air guide apparatus 140 may flow upwards by passing through the second air flow path. The first discharge portion 170 may be defined above the second air flow path.
A space in which at least a portion of a PCB device 450 is accommodated may be defined in the second air guide apparatus 150 by penetrating the second air guide apparatus 150 in the vertical direction. The PCB device may include a power supply 480 and a main PCB 455.
The power supply may be a device that receives commercial power supplied from a power line connected to the air cleaner 1 and supplies the power to a main PCB 455 and a plurality of components in the air cleaner 1. In an embodiment, the power supply may include a PCB for AC power (a power PCB). The main PCB 455 may include a PCB for DC power that is driven by a DC voltage converted by the PCB for the AC power.
The PCB device 450 may further include a PCB support plate 470 for supporting the power supply 480 and the main PCB 455. The main PCB 455 may be supported on one surface of the PCB support plate 470, and the power supply 480 may be supported on the other surface of the PCB support plate 470.
The PCB device 450 may further include a communication module 460 through which the air cleaner 1 is able to communicate with an external device. In an embodiment, the communication module 460 may include a WiFi module. The communication module 460 may be supported on the PCB support plate 470 and may be disposed below the main PCB 455.
The first blower 10 may further include the first discharge guide apparatus 160 disposed on a top surface of the second air guide apparatus 150, that is, on an outlet of the air flow passing through the second air guide apparatus 150 based on the air flow path, and guiding the air discharge to the outside of the air cleaner 1.
The first discharge guide apparatus 160 may include a first discharge body 163 of an annular shape formed by penetrating an approximately central portion of the first discharge guide apparatus 160 in the vertical direction. At least a portion of the PCB device 450 may be accommodated in the first discharge body 163.
The first discharge guide apparatus 160 may include the first discharge grill 165. The first discharge grill 165 may extend radially outward from an inner circumferential surface of the first discharge guide apparatus 160 toward an outer circumferential surface thereof.
A plurality of first discharge grills 165 may arranged. The first discharge portion 170 through which the air may be discharged to the outside may be defined between the plurality of first discharge grills 165. The plurality of first discharge grills 165 may be arranged above the second air flow path. The air that has passed through the second air flow path may flow toward each first discharge grill 165 and be discharged through the first discharge portion 170.
The second blower 20 may further include a second filter member 220 of the second blower 20 or a lever support 210 for supporting the lever. The lever support 210 may have an approximately annular shape.
The dividing apparatus 400 may be disposed between the first blower 10 and the second blower 20. The dividing apparatus 400 may include a dividing plate 410 for separating or blocking the air flow generated by the first blower 10 and the air flow generated by the second blower 20. Accordingly, the first blower 10 and the second blower 20 may be arranged to be spaced apart from each other in the vertical direction by the dividing plate 410. That is, a separation space in which the dividing plate 410 is located may be defined between the first blower 10 and the second blower 20. The first discharge guide apparatus 160 of the first blower 10 may be located at a lower end of the separation space, and the lever support 210 of the second blower 20 may be located at an upper end of the separation space.
The separation space may be divided into an upper space and a lower space by the dividing plate 410. The lower space may be understood as a first space through which the air discharged from the first discharge portion 170 of the first discharge guide apparatus 160 passes in the process of flowing to the outside of the air cleaner 1. Further, the upper space may be understood as a second space as a gripping space into which the user may put a hand when moving the air cleaner 1.
The air discharged from the first discharge portion 170 may be guided by the dividing plate 410 to flow to the outside of the air cleaner 1, and may be prevented from flowing into the second blower 20.
A display 460 for displaying information associated with an operation of the air cleaner 1 may be installed on the dividing plate 410. In an embodiment, the information may include information on an air pollution degree or an air cleanliness degree.
The second blower 20 may include a second filter member 220, a second filter frame 225, a second fan housing 230, a second fan 235, and a second fan motor 237. These components are substantially the same as or similar to the first filter member 120, the first filter frame 125, the first fan housing 130, the first fan 135, and the first fan motor 137 arranged in the first blower 10, respectively, so that description of these components uses the description of the first blower 10.
The second blower 20 may further include a third air guide apparatus 240 coupled at a position above the second fan 235 to guide the flow of the air that has passed through the second fan 235. The third air guide apparatus 240 may include a guide apparatus for guiding the movement of the flow converter 30. The third air guide apparatus 240 is substantially the same as or similar to the first air guide apparatus 140 except for the guide apparatus, so that description of the third air guide apparatus 240 uses the description of the first air guide apparatus 140.
The second blower 20 may further include a second discharge guide apparatus 250 installed on a top surface of the third air guide apparatus 240 and guiding the flow of the air that has passed through the third air guide apparatus 240. The flow converter 30 may be movably disposed on a top surface of the second discharge guide apparatus 250.
The flow converter 30 may include a third fan 335. The third fan 335 may guide the air that has passed through the third air guide apparatus 240 to be discharged to the outside of the air cleaner 1. A third fan motor 337 may be coupled to the third fan 335.
The third fan 335 may be formed as an axial-flow fan. Accordingly, the third fan 335 may be operated to discharge the air introduced in the axial direction by passing through the third air guide apparatus 240 in the axial direction. The air that has passed through the third fan 335 may be discharged to the outside through the second discharge portion 305 located above the third fan 335.
Because the air cleaner 1 according to exemplary embodiments of the present disclosure may include the second discharge portion 305 together with the first discharge portion 170 of the first blower 10, a discharged air volume may be improved and air may be discharged in various directions.
The display 500 for displaying the operation information of the air cleaner 1 may be disposed on a top surface of the air cleaner 1. The display 500 may include a display PCB 505. The display PCB 505 may be installed in a space between the top surface of the air cleaner 1 and the third fan 335.
The first fan motor 137 and the second fan motor 237 may be arranged in a line based on the vertical direction of the air cleaner 1, and the second fan motor 237 and the third fan motor 337 may also be arranged in a line based on the vertical direction of the air cleaner 1.
Although not shown, a rotation guide apparatus for guiding a rotation of the flow converter 30 in a left and right direction and a rotation in the vertical direction may be disposed below the flow converter 30. The flow converter 30 may be disposed in the lying state (the first position), the slantly erected state (the second position), or the vertically erected state (the third position) based on an operation of the rotation guide apparatus.
The amount of air discharged from the air cleaner 1 may be increased and purified air may be supplied to a position far from the air cleaner 1 by the flow converter 30.
FIGS. 5 and 6 are figures for illustrating an arrangement structure of a heat exchanger according to exemplary embodiments of the present disclosure. Specifically, FIG. 5 is a perspective view for illustrating an arrangement structure of a heat exchanger according to exemplary embodiments of the present disclosure. FIG. 6 is a plan view for illustrating an arrangement structure of a heat exchanger according to exemplary embodiments of the present disclosure.
Referring to FIGS. 5 and 6, the air cleaner 1 according to exemplary embodiments of the present disclosure may include a heat exchanger 180 disposed in the first blower 10 to increase a temperature of air discharged from the first blower 10. The heat exchanger 180 may be disposed on the first air guide apparatus 140.
According to exemplary embodiments, the first air guide apparatus 140 may include an outer wall having a cylindrical shape and an inner wall located inward of the outer wall and having a cylindrical shape. The outer wall of the first air guide apparatus 140 may be disposed to surround the inner wall of the first air guide apparatus 140. In this connection, a lower portion of the heat exchanger 180 may be interposed between the outer wall and the inner wall of the first air guide apparatus 140, and an upper portion of the heat exchanger 180 may protrude upward from the first air guide apparatus 140 along the vertical direction.
According to exemplary embodiments, each of the plurality of heat dissipating fins 185 may have a polygonal shape. In an embodiment, each of the plurality of heat dissipating fins 185 may have a rectangular shape.
In one example, FIGS. 5 to 8 show only that the heat exchanger 180 is formed in the first blower 10 and do not show that the heat exchanger 180 is formed in the second blower 20. However, a concept of the present disclosure is not necessarily limited thereto. That is, the heat exchanger 180 may be formed in the second blower 20. In this case, a heat exchanger formed in the first blower 10 may be referred to as a first heat exchanger and a heat exchanger formed in the second blower 20 may be referred to as a second heat exchanger. However, for smooth description of the present specification, it is assumed that the heat exchanger 180 is formed only in the first blower 10.
The heat exchanger 180 may include a heat dissipating frame 183 spaced apart from an inner circumferential surface of the first blower 10 and extending to have a concentric shape with the inner circumferential surface of the first blower 10, and a plurality of heat dissipating fins 185 protruding and extending from the heat dissipating frame 183.
Specifically, the heat exchanger 180 may include a heat dissipating case 181 disposed to have an empty space therein, the heat dissipating frame 183 disposed in the empty space of the heat dissipating case 181 and extending along an inner circumferential surface of the heat dissipating case 181, and the heat dissipating fins 185 arranged in the empty space of the heat dissipating case 181 and protruding and extending from an inner wall of the heat dissipating frame 183.
According to exemplary embodiments, an inner wall positioned at an inner side of the heat dissipating case 181 and an outer wall positioned at an outer side of the heat dissipating case 181 may have concentric circle shapes in the plan view. In an embodiment, an entirety of the heat dissipating case 181 may have a loop shape.
A top surface and a bottom surface of the heat dissipating case 181 may be opened. Therefore, the air flowing upward from the first air guide apparatus 140 may flow upward by passing through an interior of the heat dissipating case 181. In this connection, the air passing through the interior of the heat dissipating case 181 may be heated at a high temperature by the heat dissipating frame 183 and the heat dissipating fins 185.
The heat dissipating frame 183 may be disposed to be spaced apart from each of the inner wall and the outer wall of the heat dissipating case 181, and may have a circular shape in the plan view.
Although not shown, a first coupling portion (not shown) electrically connected to the heat dissipating case 181 may be formed on a portion of the heat dissipating frame 183. Further, a second coupling portion (not shown) electrically connected to the first coupling portion may be formed on a portion of the heat dissipating case 181. Accordingly, the heat dissipating frame 183 may be controlled to be heated at a high temperature through a thermogenic action by current by being electrically connected to the heat dissipating case 181 by the first coupling portion and the second coupling portion.
The heat dissipating case 181 may contain, for example, a metal such as sheet metal (SUS) and a silicate mineral such as mica, and the heat dissipating fin 185 may contain a material, such as copper, having high thermal conductivity. The heat dissipating pipe 183 may include a coil-shaped electrothermal wire disposed to be heated at a high temperature by dissipating heat by current, and may further contain an insulating powder such as magnesium oxide (MgO).
FIGS. 7 and 8 are figures for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure. Specifically, FIG. 7 is a perspective view for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure, and FIG. 8 is a cross-sectional view for illustrating components of a heat exchanger according to exemplary embodiments of the present disclosure.
The heat dissipating frame 183 may have a structure in which a heating panel 183a, an adhesive member 183b, and a heat dissipating panel 183c are sequentially stacked. The heat dissipating fin 185 may protrude and extend from an inner wall of the heat dissipating panel 183c. That is, the heating panel 183a, the adhesive member 183b, the heat dissipating panel 183c, and the heat dissipating fin 185 may be sequentially stacked from the outer wall of the heat dissipating case 181 toward the inner wall of the heat dissipating case 181.
According to exemplary embodiments, each of the plurality of heat dissipating fins 185 may be in contact with the heat dissipating panel 183c and may be disposed to be spaced apart from the inner wall of the heat dissipating case 181.
The adhesive member 183b may contain a metal material, and the heat dissipating panel 183c may contain a material, such as copper having high thermal conductivity. In an embodiment, the heat dissipating panel 183c and the plurality of heat dissipating fins 185 may be integrally formed. In this case, the heat dissipating panel 183c and the plurality of heat dissipating fins 185 may contain the same material.
As described above, the air cleaner 1 according to exemplary embodiments of the present disclosure may include the blowers 10 and 20 arranged to suck external air, filter the sucked air, and blow the filtered air, and the heat exchanger 180 disposed in the blower 10 or 20 to increase a temperature of the air discharged from the blower 10 or 20. In addition, the heat exchanger 180 may include the heating panel 183a that is spaced apart from an inner circumferential surface of the blower 10 or 20 and extends to have a concentric circle shape with the inner circumferential surface of the blower 10 or 20, the plurality of heat dissipating fins 185 protruding and extending from the heating panel 183a, and the heat dissipating case 181 disposed to accommodate the heating panel 183a and the plurality of heat dissipating fins 185 therein.
In this connection, the blowers 10 and 20 may respectively include the cylindrical casings 100 and 200. The heat dissipating case 181 may have the loop shape having the empty space defined in the entirety of the heat dissipating case 181. The heating panel 183a may be accommodated in the empty space of the heat dissipating case 181 to have the circular shape in the plan view.
Therefore, when the heat exchanger 180 is applied to the air cleaner 1 having the cylindrical casings 100 and 200, the heat exchange is performed in all directions, so that a heat exchange scheme may be efficiently performed. In addition, the plurality of heat dissipating fins 185 are formed to protrude and extend from the heating panel 183a, so that a problem of lowering reliability resulted from impact and/or oxidation may be solved.
Although various embodiments of the present disclosure have been described in detail above, those skilled in the art to which the present disclosure pertains will understand that various modifications are possible with respect to the above-described embodiments without departing from the scope of the present disclosure. Therefore, the scope of the present disclosure should not be limited to the described embodiments, but should be determined not only by the claims to be described later, but also by the equivalents thereof.

Claims (20)

  1. An air cleaner comprising:
    a first blower disposed to suck air at a relatively low position, filter the sucked air, and blow the filtered air;
    a second blower disposed above the first blower in a vertical direction perpendicular to the ground to suck air at a relatively high position, filter the sucked air, and blow the filtered air; and
    a heat exchanger disposed in the first blower to increase a temperature of the air discharged from the first blower,
    wherein the heat exchanger includes:
    a heat dissipating case having an empty space defined therein;
    a heating panel disposed in the empty space of the heat dissipating case and extending along an inner circumferential surface of the heat dissipating case; and
    a heat dissipating fin disposed in the empty space of the heat dissipating case and protruding and extending from an inner wall of the heating panel.
  2. The air cleaner of claim 1, wherein the first blower includes a first air guide apparatus disposed in the first blower for guiding the air filtered in the first blower to flow upward along the vertical direction,
    wherein the heat exchanger is disposed on the first air guide apparatus.
  3. The air cleaner of claim 1, wherein an inner wall positioned at an inner side of the heat dissipating case and an outer wall positioned at an outer side of the heat dissipating case have concentric circle shapes in the plan view.
  4. The air cleaner of claim 3, wherein an entirety of the heat dissipating case has a loop shape.
  5. The air cleaner of claim 3, wherein the heating panel is disposed to be spaced apart from each of the inner wall and the outer wall of the heat dissipating case.
  6. The air cleaner of claim 5, wherein the heating panel has a ring shape in the plan view.
  7. The air cleaner of claim 5, wherein the heat exchanger further includes a heat dissipating panel disposed between the heating panel and the heat dissipating fin and extending along an inner circumferential surface of the heating panel,
    wherein the heat dissipating fin is disposed to protrude and extend from the inner wall of the heat dissipating panel.
  8. The air cleaner of claim 7, wherein the heating panel, the heat dissipating panel, and the heat dissipating fin are arranged to be sequentially stacked from the outer wall of the heat dissipating case toward the inner wall of the heat dissipating case.
  9. The air cleaner of claim 8, wherein the heat dissipating fin includes a plurality of heat dissipating fins spaced apart from each other,
    wherein each of the plurality of heat dissipating fins is in contact with the heat dissipating panel.
  10. The air cleaner of claim 9, wherein the plurality of heat dissipating fins are arranged to be spaced apart from the inner wall of the heat dissipating case.
  11. The air cleaner of claim 9, wherein the heat dissipating panel and the plurality of heat dissipating fins are integrally formed.
  12. The air cleaner of claim 9, wherein each of the plurality of heat dissipating fins has a polygonal shape.
  13. The air cleaner of claim 7, wherein the heat exchanger further includes an adhesive member disposed between the heating panel and the heat dissipating panel,
    wherein the adhesive member contains a metal material.
  14. The air cleaner of claim 2, wherein the first air guide apparatus includes an outer wall having a cylindrical shape and an inner wall positioned inward of the outer wall and having a cylindrical shape,
    wherein the outer wall of the first air guide apparatus is disposed to surround the inner wall of the first air guide apparatus.
  15. The air cleaner of claim 14, wherein a lower portion of the heat exchanger is interposed between the outer wall and the inner wall of the first air guide apparatus,
    wherein an upper portion of the heat exchanger protrudes upward from the first air guide apparatus along the vertical direction.
  16. An air cleaner comprising:
    a blower disposed to suck air, filter the sucked air, and blow the filtered air;
    a heat exchanger disposed in the blower to increase a temperature of the air discharged from the blower,
    wherein the heat exchanger includes:
    a heat dissipating case having an empty space defined therein;
    a heating panel disposed in the empty space of the heat dissipating case and extending along an inner circumferential surface of the heat dissipating case; and
    a heat dissipating fin disposed in the empty space of the heat dissipating case and protruding and extending from an inner wall of the heating panel.
  17. The air cleaner of claim 16, wherein the heat exchanger further includes a heat dissipating panel disposed between the heating panel and the heat dissipating fin and extending along an inner circumferential surface of the heating panel,
    wherein the heat dissipating fin is disposed to protrude and extend from the inner wall of the heat dissipating panel.
  18. The air cleaner of claim 17, wherein the heat exchanger further includes an adhesive member disposed between the heating panel and the heat dissipating panel,
    wherein the adhesive member contains a metal material.
  19. The air cleaner of claim 17, wherein the heat dissipating fin includes a plurality of heat dissipating fins spaced apart from each other,
    wherein each of the plurality of heat dissipating fins is in contact with the heat dissipating panel.
  20. The air cleaner of claim 16, wherein the blower includes an air guide apparatus disposed in the blower for guiding the air filtered in the blower to flow upward along a vertical direction,
    wherein a lower portion of the heat exchanger is interposed between an outer wall and an inner wall of the air guide apparatus,
    wherein an upper portion of the heat exchanger protrudes upward from the first air guide apparatus along the vertical direction.
PCT/KR2020/014598 2020-04-24 2020-10-23 Air cleaner WO2021215602A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
KR10-2020-0049936 2020-04-24
KR1020200049936A KR20210131614A (en) 2020-04-24 2020-04-24 Air Cleaner

Publications (1)

Publication Number Publication Date
WO2021215602A1 true WO2021215602A1 (en) 2021-10-28

Family

ID=78269554

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Application Number Title Priority Date Filing Date
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Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR970027856A (en) * 1995-11-30 1997-06-24 배순훈 fan
US20060201119A1 (en) * 2004-03-02 2006-09-14 Sung-Wook Song Air cleaner
US20070045262A1 (en) * 2005-08-06 2007-03-01 Microhellix Systems Gmbh Electric heating module for heating air flow, in particular in automobiles
US20100072186A1 (en) * 2007-02-02 2010-03-25 MicroHellix GmbH Electronic heating module for heating up air streams, in particular for heating and ventilating seats
WO2018206911A1 (en) * 2017-05-10 2018-11-15 Dyson Technology Limited A heater
US20190351357A1 (en) * 2016-02-26 2019-11-21 Lg Electronics Inc. Air cleaner

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR970027856A (en) * 1995-11-30 1997-06-24 배순훈 fan
US20060201119A1 (en) * 2004-03-02 2006-09-14 Sung-Wook Song Air cleaner
US20070045262A1 (en) * 2005-08-06 2007-03-01 Microhellix Systems Gmbh Electric heating module for heating air flow, in particular in automobiles
US20100072186A1 (en) * 2007-02-02 2010-03-25 MicroHellix GmbH Electronic heating module for heating up air streams, in particular for heating and ventilating seats
US20190351357A1 (en) * 2016-02-26 2019-11-21 Lg Electronics Inc. Air cleaner
WO2018206911A1 (en) * 2017-05-10 2018-11-15 Dyson Technology Limited A heater

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