WO2017164560A2 - Air conditioner and control method therefor - Google Patents

Air conditioner and control method therefor Download PDF

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Publication number
WO2017164560A2
WO2017164560A2 PCT/KR2017/002798 KR2017002798W WO2017164560A2 WO 2017164560 A2 WO2017164560 A2 WO 2017164560A2 KR 2017002798 W KR2017002798 W KR 2017002798W WO 2017164560 A2 WO2017164560 A2 WO 2017164560A2
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WO
WIPO (PCT)
Prior art keywords
air
heat exchanger
region
flow path
indoor
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PCT/KR2017/002798
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French (fr)
Korean (ko)
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WO2017164560A3 (en
Inventor
이동근
이기성
양승대
Original Assignee
주식회사 경동나비엔
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Application filed by 주식회사 경동나비엔 filed Critical 주식회사 경동나비엔
Priority to CN201780019771.7A priority Critical patent/CN108885023B/en
Priority to JP2018541675A priority patent/JP2019512658A/en
Publication of WO2017164560A2 publication Critical patent/WO2017164560A2/en
Publication of WO2017164560A3 publication Critical patent/WO2017164560A3/en

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    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B30/00Energy efficient heating, ventilation or air conditioning [HVAC]
    • Y02B30/70Efficient control or regulation technologies, e.g. for control of refrigerant flow, motor or heating

Definitions

  • an air conditioner is a device that maintains a comfortable room by adjusting room temperature and humidity or ventilating indoor air according to a user's request.
  • Such air conditioners include a humidifier for increasing the humidity of indoor air and a dehumidifier for reducing the humidity of indoor air.
  • the indoor cooling / heating function and the function of ventilating the indoor air is implemented as a separate device as an air conditioner or a ventilation device, or implemented as a device combined with either a dehumidifier or a humidifier.
  • Korean Patent No. 10-0943356 "four seasons ventilation type heating and cooling equipment" is disclosed as a conventional technology for solving this problem.
  • the above-mentioned conventional technology is a ventilation type configured to allow indoor air and outdoor air to pass through the first heat exchanger, energy consumption for heating cold outdoor air increases even when heating, and by spraying the cooling water supplied from the tap water into the room. It is to cool the air to be supplied has a low cooling capacity is not effective and there is a problem that is not hygienic due to the cooling water injection.
  • Korean Patent Laid-Open Publication No. 2001-0111601 discloses an air conditioning system having an indoor dehumidification system and an indoor humidification system and its operation control method.
  • the above-described conventional technique requires two discharge holes 14 for discharging air to the outside and two discharge holes 13a and 13b for discharging air to the indoor space, so that the number of discharge holes is large and the piping structure connected thereto is complicated. There is a problem.
  • the two discharge ports 13a and 13b are configured to drive separate opening and closing plates, respectively, which causes a complicated configuration.
  • the present invention has been made to solve the above problems, and an object of the present invention is to provide an air conditioner and a control method that can be implemented by a simple structure of humidity control, heating and cooling, air cleaning and ventilation.
  • the first air passage 110 is connected to both ends of the room; A second air passage 210 having both ends connected to the outside; The first region 310 provided on the first air passage 110, the second region 320 provided on the second air passage 210, and the first region 310 by rotation. And a rotor member 300 made of an adsorbent passing through the second region 320 alternately; A first heat exchanger 150 for exchanging heat with the air flowing toward the first region 310, and a second heat exchanger 250 for exchanging heat with the air flowing toward the second region 320.
  • first heat exchanger 150 and the second heat exchanger 250 to operate the condenser and the evaporator by alternating heat pump for heating and cooling the air flowing in the first air flow path 110 is made. 600; It includes a control unit for controlling the rotation of the rotor member 300 and the heat pump 600.
  • the heat pump 600, the compressor 610, the refrigerant supplied from the compressor 610, the first heat exchanger 150 and the second heat exchanger 250 operates as a condenser, an evaporator, an evaporator and a condenser. It may include a four-way valve 620 for changing the flow direction of the refrigerant to be switched.
  • the air flowing in the first region 310 is heated to perform indoor humidification or heating, and the second heat exchanger 250 operates as an evaporator.
  • indoor dehumidification or cooling may be performed by cooling the air flowing in the first region 310.
  • the heat pump 600 may further include a third heat exchanger 170 and a fourth heat exchanger 270 that exchange heat with air passing through the first region 310 and the second region 320, respectively. have.
  • the first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator during indoor humidification or indoor heating; During indoor dehumidification or indoor cooling, the second heat exchanger 250 and the third heat exchanger 270 may operate as a condenser and an evaporator.
  • the refrigerant is a compressor 610, a four-way valve 620, a first heat exchanger 150, a first expansion valve 630-1, a fourth heat exchanger 270, and a compressor 610.
  • the first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator, respectively, circulating along the refrigerant circulation environment path 640-1.
  • the refrigerant is a compressor 610, a four-way valve 620, a second heat exchanger 250, a second expansion valve 630-2, a third heat exchanger 170, a compressor 610
  • the second heat exchanger 250 and the third heat exchanger 170 may operate as a condenser and an evaporator, respectively, by circulating along the refrigerant circulation environment path 640-2.
  • a second blower 260 is provided on a second air flow path 210 that connects the outlet side of the second area 320 and one side outdoors;
  • a bypass flow path 285-2 connected to the other outdoor part is connected to the second air flow path 210;
  • a flow direction of air flowing through the second air passage 210 is indicated by the bypass passage 285-2 and the other outdoor part.
  • the damper 280-2 for selecting in any one direction may be provided.
  • flow path switching parts 400 and 700 for changing the flow direction of the first air flow path 110 and the second air flow path 210 may be provided.
  • a second blower 260 is provided on a second air passage 210 connected to the inlet side of the second region 320;
  • a bypass flow path 285-1 connected to the second air flow path 210 to the outside is connected;
  • a flow direction of air flowing through the second air passage 210 is defined by the bypass passage 285-1 and the second region.
  • a damper 280-1 may be provided to select one of the directions 320.
  • the flow path switching unit 400 may include a first inlet 410 through which indoor air is introduced, a second inlet 420 through which outdoor air is introduced, a second outlet 440 connected with the second region 320, It may be composed of a first discharge port 430 connected to the first region 310.
  • the flow path switching unit 700 may include a total heat exchanger (760) for the total heat exchange between the indoor air and the outdoor air in the ventilation mode.
  • the flow path switching unit 700 includes a first space part 701 connected to the inlet side 110a of the first air flow path 110, and the first area 310 through the first air flow path 110.
  • a third space portion 703 connected to the second space portion 703, a second space portion 702 connected to the inlet side 210a of the second air flow passage 210, and the second air passage 210 through the second air passage 210.
  • a fourth space portion 704 connected to the region 320; In the heat exchanger 760, the indoor air introduced into the first space 701 flows into the fourth space 704, and the outdoor air introduced into the second space 702 receives the third space. When flowing to 703, heat exchange may occur.
  • At least one damper 671 having an opening and closing direction and the second space part 602 communicate with the second air passage 110 through the second connection hole 612 or the heat exchanger 660.
  • At least one damper 672 may be provided in which an opening and closing direction is set to communicate with the third space part 403.
  • a water supply unit 500 is provided to supply water to the adsorbent.
  • the adsorbent When the adsorbent is rotated and positioned in the first region 310, the water is absorbed by air flowing through the first air flow path 110. Evaporated may be introduced into the room.
  • a third region 330 is formed in the rotor member 300 and separated from the first region 310 and the second region 320;
  • the water supply unit 500 may supply water to the absorbent material of the third region 330.
  • the water supply unit 500, the humidifying filter 520 is provided on the humidifying air flow path 540 to contain moisture;
  • the third air blower 510 may be provided on the humidifying air flow path 540 to flow humidifying air that has passed through the humidifying filter 520.
  • a water supply unit 500-1 may be provided to supply water to air discharged into the room through the first air passage 110.
  • the moisture supply unit 500-1 includes a humidification filter 520-1 supplying moisture to the air passing through the first air flow path 110, and moisture to adsorb moisture to the humidification filter 520-1. It may be made of a water supply means for supplying.
  • the first air passage 110 is connected to both ends of the indoor, the second air passage 210 is connected to both ends, the first air passage 110 is provided on the first air passage (110) The first region 310 and the second region 320 provided on the second air flow path 210 and an adsorbent which alternately passes through the first region 310 and the second region 320 by rotation.
  • a control method of an air conditioner including a rotor member (300), which flows toward a first heat exchanger (150) and a second region (320) where heat is exchanged with air flowing toward the first region (310).
  • the flow of the refrigerant of the heat pump 600 is controlled to be switched so that the air is heated or cooled.
  • the heat pump (600) further includes a third heat exchanger (170) and a fourth heat exchanger (270) for exchanging heat with air passing through the first region (310) and the second region (320), respectively;
  • a third heat exchanger (170) and a fourth heat exchanger (270) for exchanging heat with air passing through the first region (310) and the second region (320), respectively;
  • the refrigerant circulates along the first refrigerant circulation environment path 640-1 so that the first heat exchanger 150 and the fourth heat exchanger 270 operate as condensers and evaporators, respectively;
  • the refrigerant circulates along the second refrigerant net environment path 640-2 so that the second heat exchanger 250 and the third heat exchanger 170 operate as condensers and evaporators, respectively;
  • the four-way valve 620 of the heat pump 600 may control to select the first refrigerant net environment path 640-1 and the second refrigerant net environment path 640-2.
  • the outdoor air flowing through the second air flow path 210 by changing the flow direction of the dampers 280-1 and 280-2 provided on the second air flow path 210 is changed to the second area. It may be discharged to the outdoor without passing through (320).
  • indoor air conditioning and humidity control can be implemented in a single device, and the air conditioning and humidity control ability can be improved.
  • the humidity control, the heating and cooling, the air cleaning and the ventilation mode can be implemented in one device by a simple structure.
  • each air passage can be always kept dry so that the air conditioner is kept clean. I can keep it.
  • the rotor member is separated into three regions, and the third region, from which the water is supplied from the moisture supply unit, is separated from the first and second regions, thereby preventing foreign matter from adsorbing to the moisture-absorbing portion, thereby preventing bacterial propagation. You can prevent it.
  • the outdoor air is filtered through a number of filters provided in the first air passage and the second air passage, so that the outdoor air flows into the interior, thereby supplying clean air.
  • FIG. 1 is a view showing the configuration of an air conditioner according to a first embodiment of the present invention
  • FIG. 2 is a view showing the operation state in the water-free humidification mode in the air conditioner according to the first embodiment of the present invention
  • FIG. 3 is a view showing an operating state in the water supply humidification mode in the air conditioner according to the first embodiment of the present invention
  • FIG. 4 is a view showing an operating state in the dehumidification mode in the air conditioner according to the first embodiment of the present invention
  • FIG. 5 is a view showing an operating state in the cooling mode in the air conditioner according to the first embodiment of the present invention
  • FIG. 6 is a view showing an operating state in the ventilation mode in the air conditioner according to the first embodiment of the present invention
  • FIG. 7 is a view showing an operating state in the humidification ventilation mode in the air conditioner according to the first embodiment of the present invention
  • FIG. 8 is a view showing the configuration of an air conditioner according to a second embodiment of the present invention.
  • FIG. 10 is a view showing an operating state in the heating and water supply humidification mode in the air conditioner according to a second embodiment of the present invention
  • FIG. 11 is a view showing an operation state in the dehumidification and cooling mode in the air conditioner according to the second embodiment of the present invention
  • FIG. 12 is a view showing an operating state in the air cleaning mode in the air conditioner according to the second embodiment of the present invention
  • FIG. 13 is a view illustrating an operating state in a ventilation mode in an air conditioner according to a second embodiment of the present invention.
  • Figure 14 (a) is a plan view showing an operating state in the ventilation mode in the flow path switching unit according to another embodiment of the present invention, (b) is a cross-sectional view A-A, (c) is a cross-sectional view B-B
  • Figure 15 (a) is a plan view showing the operating state in the remaining mode except the ventilation mode by the flow path switching unit of Figure 14, (b) is a C-C cross-sectional view, (c) is a D-D cross-sectional view
  • 16 is a view showing an embodiment in which the water supply unit is disposed in the first air passage
  • first heat exchanger 160 first blower
  • second air flow path 220 pre-filter
  • first region 320 second region
  • first inlet 420 second inlet
  • first outlet 440 second outlet
  • Drain valve 570,570-1 Water supply pipe
  • Drain pipe 600 Heat pump
  • first space part 702 second space part
  • cover plate 760 heat exchanger
  • the air conditioner of the first embodiment includes a first air passage 110 connected at both ends to an interior, a second air passage 210 connected at both ends to an exterior, and a first area provided on the first air passage 110.
  • a rotor member made of 310 and a second region 320 provided on the second air passage 210 and an adsorbent which alternately passes through the first region 310 and the second region 320 by rotation. 300, the heat pump to heat and cool the air flowing through the first air flow path 110 by alternately functioning the first heat exchanger 150 and the second heat exchanger 250 as a condenser and an evaporator.
  • a control unit (not shown) for controlling the rotation of the rotor member 300 and the heat pump 600.
  • the first air passage 110 includes a plurality of filters 120, 130, 140, a first heat exchanger 150, and a first blower 160.
  • the plurality of filters 120, 130, and 140 may include a pre-filter 120, a functional filter 130, and a hepa filter 140.
  • the pre-filter 120 is provided at the inlet portion 110a of the first air passage 110 to filter foreign matter of relatively large particles contained in the indoor air.
  • the functional filter 130 is a filter for removing harmful elements such as antibacterial, antiviral, allergic and the like.
  • the hepa filter 140 is a high performance filter for filtering particulates in the air.
  • the first heat exchanger 150 constitutes the heat pump 600 and functions as a condenser or an evaporator.
  • the first blower 160 provides suction power for sucking indoor air or outdoor air into the first air flow path 110.
  • the first blower 160 is provided at the outlet 110c of the first air flow path 110.
  • the second air flow path 210 includes an inlet portion 210a through which one side outdoor air flows, an intermediate portion 210b passing through the second region 320 of the rotor member 300, and the inflow portion. It consists of an outlet 210c for discharging the outdoor air back to the other side of the outdoor.
  • a plurality of filters 220 and 230, a second blower 260, a second heat exchanger 250, and a damper 280-1 are sequentially provided in the second air passage 210.
  • the second blower 260 provides suction power for sucking outdoor air or indoor air into the second air flow path 210, and the second air flow path 210 connected to the inlet side of the second area 320. It is provided in the middle portion (210b) of.
  • the second heat exchanger 250 constitutes the heat pump 600 and functions as a condenser or an evaporator.
  • the damper 280-1 is between the second heat exchanger 250 and the second region 320, and an intermediate portion 210b of the second air passage 210 and a bypass passage 285-1 are formed in the damper 280-1. It is provided at the point of intersection.
  • the bypass passage 285-1 is connected outdoors.
  • the damper 280-1 is configured to flow air flowing in the middle portion 210b of the second air flow path 210 in either of the second region 320 and the bypass flow path 285-1. This is to change the flow direction.
  • the inlet portion of the second air passage 210 is set. Since outdoor cold air introduced through 210a is discharged to the outside through the bypass flow path 285-1, outdoor air does not flow to the second region 320. If the cold outdoor air passes through the second region 320, the adsorbent whose temperature has fallen in the second region 320 rotates and is positioned in the first region 310, so that the temperature of the air flowing into the room is reduced. Loss occurs. Therefore, since the damper 280-1 and the bypass passage 285-1 are provided, heat loss can be prevented from occurring due to cold outdoor air.
  • the rotor member 300 is provided with an adsorbent for adsorbing moisture in the air therein.
  • the first area 310 is an area connected to the first air flow path 110
  • the second area 320 is an area connected to the second air flow path 210.
  • a third region 330 is provided between the first region 310 and the second region 320 to supply moisture by the moisture supply unit 500.
  • foreign matter may be adsorbed while passing outdoor air.
  • mold may occur, making it difficult to maintain a clean state.
  • the moisture supplied from the water supply unit 500 is configured to be supplied to the third region 330 independent of the first region 310 and the second region 320.
  • the third region 330 may not be formed independently, and the third region 330 may be configured as one region with the second region 320.
  • the moisture supplied from the moisture supply unit 500 may be configured to be supplied to the second region 320.
  • the adsorbent located in the first region 310 adsorbs moisture contained in the indoor air flowing through the first air passage 110, and the adsorbent adsorbing the moisture rotates to be positioned in the second region 320.
  • the indoor air is dehumidified by releasing moisture into the air flowing through the second air flow path 210.
  • the adsorbent located in the third region 330 adsorbs moisture from air flowing through the humidified air flow path 540, and when the adsorbent adsorbing the moisture is rotated and positioned in the first region 310, The indoor air is humidified by releasing moisture to the air flowing through the one air flow path 110.
  • the first region 310, the second region 320, and the third region 330 are separated from each other, and the adsorbent of the rotor member 300 is driven by a driving unit (not shown) about an axis provided at the center thereof. It is supposed to rotate.
  • the surface of the adsorbent may be coated with a polymer dehumidifier.
  • the polymer dehumidifying agent (Desiccant Polymer) is an electrolyte polymer material and is ionized when contacted with water. When moisture comes into contact with the adsorbent, bacteria are removed from the adsorbent due to the osmotic pressure caused by the difference in ion concentration, thereby generating an antibacterial effect. In addition, ammonia, hydrogen sulfide, and the like, which cause odors, also adhere to polymer dehumidifiers ionized with polar molecules to generate a deodorizing effect.
  • the coated polymer dehumidifying agent silica or zeolite may be used as the coated polymer dehumidifying agent.
  • the flow path switching unit 400 may include a first inlet 410 through which indoor air is introduced, a second inlet 420 through which outdoor air is introduced, a first outlet 430 connected with the first region 310, The second outlet 440 is connected to the second region 320.
  • the flow path switching unit 400 may be configured as a four-way valve, for example, the first inlet 410 is connected to the first outlet 430 or the second outlet 440 therein, and the second inlet A turning gate (not shown) may be provided to change the connection direction so that the 420 is connected to the first outlet 430 or the second outlet 440.
  • the moisture supply unit 500 is provided on the humidified air flow path 540 to supply moisture when the air supplied by the third blower 510 and the third blower 510 to flow the humidified air passes.
  • Humidification filter 520 to the water
  • the water tank 530 is stored for immersing a portion of the lower end of the humidification filter 520
  • the water supply valve 550 for supplying water to the water tank 530
  • the water tank It consists of a drain valve 560 for draining the water of 530.
  • Water is filled in the water tank 530 at a predetermined level, and the humidification filter 520 is provided so that a portion of the lower end is immersed in the water.
  • the humidification filter 520 may be configured to rotate by a driving unit (not shown).
  • the humidified air flow path 540 may be formed as a waste flow path.
  • the water supply pipe 570 provided with the water supply valve 550 may be connected to supply tap water.
  • the drain pipe 580 provided with the drain valve 560 is connected to the outside of the air conditioner is configured to drain the water of the water tank 530 to the outside.
  • the moisture supply unit 500 When the moisture supply unit 500 is provided in this way, the amount of humidification can be adjusted, and the humidification ability can be improved, thereby creating a comfortable indoor environment.
  • the humidification filter 520 is illustrated as being partially immersed in water.
  • the humidification filter 520 is provided with spraying means for spraying water onto the humidifying filter 520, and the water sprayed from the spraying means is humidifying filter 520. It can also be configured to soak.
  • the end of the water supply pipe 570 may be provided with a nozzle as the injection means.
  • the humidified air passage 540 may be hygienically provided by providing an ultraviolet germicidal lamp that irradiates ultraviolet rays to remove the bacteria.
  • the compressor 610 compresses the refrigerant into a gas refrigerant of high temperature and high pressure, and a first condensation of the refrigerant compressed by the compressor 610 into a liquid refrigerant of medium temperature and high pressure.
  • the second heat exchanger 250 to be installed at the outlet side of the compressor 610 consists of a four-way valve 620 for switching the flow direction of the refrigerant during cooling and heating.
  • the refrigerant When the heat pump 600 is heated, the refrigerant is a compressor 610, a four-way valve 620, a first heat exchanger 150, an expansion valve 630, a second heat exchanger 250, and a four-way valve. 620, circulating along the compressor 610.
  • a circulation path of the refrigerant is referred to as a first refrigerant circulation environment path.
  • the first heat exchanger 150 is operated as a condenser to heat the air flowing through the first air flow path 110
  • the second heat exchanger 250 is operated as an evaporator to flow the second air flow path 210. To cool the air.
  • the refrigerant is a compressor 610, four-way valve 620, the second heat exchanger 250, expansion valve 630, the first heat exchanger 150, four-way valve ( 620, circulating along the compressor 610.
  • a circulation path of the refrigerant is referred to as a second refrigerant circulation environment path.
  • the second heat exchanger 250 is operated as a condenser to heat the air flowing through the second air flow path 210
  • the first heat exchanger 150 is operated as an evaporator to flow the first air flow path 110. To cool the air.
  • the air heated or cooled in the first heat exchanger 150 flows in the direction of the first region 310 of the rotor member 300, and the air heated or cooled in the second heat exchanger 250 includes the rotor member ( It flows in the direction of the second area 320 of 300.
  • the water-free water humidification mode will be described with reference to FIG. 2.
  • the non-water humidification mode refers to a mode in which the indoor humidification is performed using moisture included in outdoor air in a state in which moisture is not supplied from the moisture supply unit 500 to the third region 330.
  • Flow path switching unit 400 is the first inlet 410 and the first outlet 430 is connected, the second inlet 420 and the second outlet 440 so that the direction switching gate is connected It is set to the first position.
  • the first blower 160, the second blower 260, and the compressor 610 are turned on, and the rotor member 300 rotates.
  • the damper 280-1 is set in a direction such that outdoor air supplied from the second blower 260 flows in the direction of the second region 320.
  • the compressor 610 When the compressor 610 is turned on, the refrigerant circulates along the first refrigerant circulation environment.
  • the first heat exchanger 150 is operated as a condenser to heat the air flowing through the first air flow path 110
  • the second heat exchanger 250 is operated as an evaporator.
  • the outdoor air introduced through the inlet portion 210a of the second air passage 210 by the operation of the second blower 260 is a filter (220, 230), the second inlet 420 of the flow path switching unit 400 After passing through the second outlet 440, the second heat exchanger 250 in sequence and passes through the second region (320).
  • moisture is adsorbed to the adsorbent in the second region 320, and the temperature of the outdoor air passing through the second heat exchanger 250 as the evaporator is lowered, thereby increasing the amount of moisture adsorbed.
  • the indoor air heated while passing through the first heat exchanger 150 When the adsorbent in which the moisture of the outdoor air is absorbed in the second region 320 is positioned in the first region 310 by the rotation of the rotor member 300, the indoor air heated while passing through the first heat exchanger 150. Moisture is evaporated while passing through the adsorbent in the first region 310 to form wet indoor air. The indoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110.
  • the water supply humidification mode will be described with reference to FIG. 3.
  • the water supply humidification mode refers to a mode of humidifying indoor air in a state in which water is supplied to the third region 330 by the water supply unit 500.
  • the direction switching gate is set to the first position, the first blower 160 and the second blower 260 are turned on, and the compressor 610 is turned on, so that the refrigerant is Circulated along the first refrigerant flow path, the rotation of the rotor member 300 is the same as the water-free humidification mode.
  • water is supplied from the water supply unit 500 to the third region 330, and the damper 280-1 direction is connected to the bypass flow path 285-1 so that the water supply humidification mode is different from the water supply humidification mode. There is a difference.
  • the water supply unit 500 has a water supply valve 550 open to supply water to the third region 330 so that the water tank 530 is filled with water, and the third blower 510 is turned on.
  • the air circulating in the humidifying air passage 540 flows into the third region 330 of the rotor member 300 as the humid air passes through the humidifying filter 520.
  • Water adsorbed in the third region 330 is positioned in the first region 310 by the rotation of the rotor member 300.
  • the indoor air heated while passing through the first heat exchanger 150 passes through the first region 310 of the rotor member 300.
  • the heated indoor air passes through the first region 310 to evaporate the moisture of the absorbent.
  • the indoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110. This results in room heating with room humidification.
  • the damper 280-1 is set in a direction such that the damper 280-1 is connected to the bypass passage 285-1 from the middle portion 210b of the second air passage 210, and passes through the second heat exchanger 250.
  • the outdoor air is discharged to the outside through the bypass passage 285-1 without passing through the second region 320. If the cold outdoor air passes through the second region 320 and then is discharged to the outside through the outlet portion 210c of the second air flow passage 210, the adsorbent is absorbed from the second region 320 in the first region ( Due to the rotation to 310, the temperature of the cold outdoor air is transferred, which causes more energy for indoor heating. Accordingly, the present invention may minimize energy loss by allowing the cold outdoor air to be discharged to the outside through the bypass passage 285-1 without passing through the second region 320.
  • the dehumidification mode will be described with reference to FIG. 4.
  • the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160, the second blower 260, and the compressor 610 are turned on.
  • the member 300 rotates, does not supply water from the water supply unit 500, and the flow direction of the damper 280-1 flows in the direction of the outlet 210 c of the second air flow path 210 to the outdoor air.
  • the setting is the same as in the no water humidification mode.
  • the compressor 610 When the compressor 610 is turned on in the dehumidification mode, the refrigerant circulates along the second refrigerant circulation environment path.
  • the first heat exchanger 150 operates as an evaporator
  • the second heat exchanger 250 operates as a condenser.
  • the indoor air introduced through the inlet 110a of the first air passage 110 is cooled while passing through the first heat exchanger 150, and the cooled air is cooled in the first region ( Moisture contained in the indoor air while passing through 310 is adsorbed to the adsorbent of the first region 310.
  • the indoor air from which moisture is removed from the first area 310 is discharged into the room through the outlet portion 110c of the first air passage 110. In this case, since the temperature of the air discharged into the room is lowered, there is also an indoor cooling effect.
  • the dehumidification of the indoor air is made by such a process, thereby maintaining a comfortable indoor environment.
  • a cooling mode will be described with reference to FIG. 5.
  • the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160 and the second blower 260 are turned on, and the compressor 610 is turned on.
  • the refrigerant is circulated along the second refrigerant circulation environment path, and is the same as the dehumidification mode in that the moisture supply unit 500 does not supply water.
  • the first heat exchanger 150 operates as an evaporator and the second heat exchanger 250 operates as a condenser.
  • the rotor member 300 may be configured to rotate, or may not be configured to rotate.
  • the direction of the flow path of the damper 280-1 is set such that the outdoor air passing through the second heat exchanger 250 is discharged to the outside through the bypass flow path 285-1 so that heat loss for indoor cooling is performed. This is different from the dehumidification mode in that it can be minimized.
  • the damper 280-1 is connected to the bypass flow passage 285-1 from the middle portion 210b of the second air flow passage 210, and the direction of the damper 280-1 is cut off in the direction of the second region 320. Is set. Therefore, the outdoor air passing through the second heat exchanger 250 is discharged to the outside through the bypass flow passage 285-1 without passing through the second region 320. If the outdoor air heated in the second heat exchanger 250 passes through the second region 320 and is discharged to the outside through the outlet portion 210c of the second air flow passage 210, the second region ( The adsorbent absorbing heat at 320 rotates to the first region 310 and then transfers heat to indoor air passing through the first region 310 through the outlet 110c of the first air passage 110.
  • the present invention can minimize the energy loss for cooling by allowing the heated outdoor air to be discharged to the outside through the bypass passage 285-1 without passing through the second region 320.
  • a ventilation mode will be described with reference to FIG. 6.
  • the first blower 160 and the second blower 260 are operated.
  • the direction switching gate of the flow path switching unit 400 has a second position where the first inlet 410 and the second outlet 440 are connected, and the second inlet 420 and the first outlet 430 are connected. Is set to be.
  • the compressor 610 is in an off state, and the water supply unit 500 does not supply water.
  • the indoor air sucked into the inlet 110a of the first air flow path 110 by the operation of the second blower 260 passes through the second area 320 through the flow path switching part 400 and then the second air flow. It is discharged to the outside through the outlet portion 210c of the air passage 210.
  • the outdoor air sucked into the inlet portion 210a of the second air flow path 210 by the operation of the first blower 160 passes through the first area 310 through the flow path switching part 400.
  • the air is discharged into the room through the outlet portion 110c of the first air passage 110.
  • the indoor air is discharged to the outside, and the outdoor air is introduced into the room through the plurality of filters 220, 130, and 140 to ventilate the indoor air.
  • the outdoor air is filtered in the filters (220, 230) provided in the second air flow path 210 to the first air flow path (110). Since the filter is also provided in the filter (130,140), it is filtered through a number of filters (220,230,130,140) provided in the first air flow path (110) and the second air flow path (210) is introduced into the room, to supply clean air to the room Can be.
  • the humidification ventilation mode will be described with reference to FIG. 7.
  • the first blower 160 and the second blower 260 are operated, and the same as the ventilation mode in that the direction switching gate of the flow path switching unit 400 is set to be in the second position.
  • moisture is supplied from the water supply unit 500 to the third region 330, the direction of the damper 280-1 is connected to the bypass flow path 285-1, and the compressor 610 is operated.
  • the first heat exchanger 150 operates as a condenser and the second heat exchanger 250 operates as an evaporator in the same manner as the feed water humidification mode.
  • water supplied from the water supply unit 500 is adsorbed to the adsorbent in the third region 330 of the rotor member 300, and the adsorbent adsorbed with the moisture in the third region 330. Is positioned in the first region 310 by the rotation of the rotor member 300.
  • the outdoor air sucked into the inlet portion 210a of the second air flow path 210 by the operation of the first blower 160 is heated in the first heat exchanger 150 via the flow path switching part 400 and heated.
  • the outdoor air that passes through the first region 310 evaporates moisture of the adsorbent to form wet air.
  • the outdoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110.
  • the indoor air sucked into the inlet 110a of the first air passage 110 by the operation of the second blower 260 passes through the second heat exchanger 250 via the flow path switching unit 400.
  • the damper 280-1 is set in a direction such that the damper 280-1 is connected to the bypass passage 285-1 from the middle portion 210b of the second air passage 210. Therefore, the outdoor air passing through the second heat exchanger 250 is discharged to the outside through the bypass passage 285-1 without flowing in the direction of the second region 320. If the cooled indoor air passes through the second region 320 while passing through the second heat exchanger 250, the adsorbent having a lower temperature in the second region 320 rotates to the first region 310.
  • the present invention may minimize energy loss by allowing the indoor air cooled in the second heat exchanger 250 to be discharged to the outside through the bypass passage 285-1 without passing through the second region 320.
  • the air conditioner of the second embodiment includes a third heat exchanger 170 and a fourth heat exchanger 270. And a heat pump 600 having a first expansion valve 630-1 and a second expansion valve 630-2, and a damper 280-2, a bypass flow passage 285-2, and a second blower.
  • the position of 260 is different from that of the first embodiment, and the rest of the configuration is the same.
  • the third heat exchanger 170 is provided between the first region 310 and the first blower 160 to exchange heat with air passing through the first region 310.
  • the fourth heat exchanger 270 is provided between the second region 320 and the second blower 260 to exchange heat with air passing through the second region 320.
  • the refrigerant supplied from the compressor 610 circulates through the refrigerant passage of one of the third refrigerant net environment path 640-1 and the fourth refrigerant net environment path 640-2 in the four-way valve 620.
  • the first refrigerant exchange environment 640-1 includes a first heat exchanger 150, a first expansion valve 630-1, and a fourth heat exchanger 270.
  • the second heat exchanger 250, the second expansion valve 630-2, and the third heat exchanger 170 are provided on the fourth refrigerant flow environment path 640-2.
  • the first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator during indoor humidification and heating, and the second heat exchanger 250 and a third heat exchanger during indoor dehumidification and cooling. 270 acts as a condenser and an evaporator.
  • a damper 280-2, a fourth heat exchanger 270, and a second are connected to the second air flow path 210 connecting the outlet of the second area 320 and one outside of the second air flow path 210.
  • Blower 260 is provided in sequence.
  • the bypass air passage 285-2 is connected to the second air passage 210 in which the damper 280-2 is located.
  • the damper 280-2 is configured to discharge the outdoor air introduced through the bypass passage 285-2 to the outside through the outlet portion 210c of the second air passage 210 by setting a flow direction of air.
  • the air passing through the second area 320 may be discharged to the outside through the outlet portion 210c of the second air flow path 210.
  • the inside of the first air passage 110 and the inside of the second air passage 210 are always maintained in a dry state, and contaminated air containing moisture does not flow into the room. That is, when the fourth heat exchanger 270 operates as an evaporator, condensation may occur at the outlet portion 210c of the second air flow path 210, but is not discharged into the room but is discharged to the outside. The interior can be kept clean. In addition, condensation may occur in the middle portion 110b of the first air flow path 110 when the first heat exchanger 150 operates as an evaporator, but air containing moisture may pass through the first region 310.
  • the interior of the first air passage 110 may be maintained in a dry state.
  • the four heat exchangers (150, 250, 170, 270) and the flow path switching unit 400 is provided to enable both indoor air conditioning and humidity control, air cleaning and ventilation in one device.
  • the water-free water humidification mode will be described with reference to FIG. 9.
  • the direction switching gate is set to the first position, the first blower 160, the second blower 260, and the compressor 610 are turned on, and the rotor member 300 rotates. It is the same as that of the waterless humidification mode of the first embodiment.
  • the damper 280-2 is set in such a manner that the outdoor air flows in the direction of the outlet 210c of the second air flow path 210 after passing through the second area 320. same.
  • the refrigerant may include the four-way valve 620, the first heat exchanger 150, the first expansion valve 630-1, the fourth heat exchanger 270, and the compressor 610. Circulate accordingly.
  • a path through which the refrigerant flows is referred to as a third refrigerant net environment path 640-1.
  • the indoor air introduced through the inlet 110a of the first air passage 110 by the operation of the first blower 160 is heated while passing through the first heat exchanger 150 that operates as a condenser, and then the first region. Pass 310.
  • the outdoor air introduced through the inlet 210a of the second air passage 210 by the operation of the second blower 260 passes through the second region 320.
  • the moisture contained in the outdoor air is adsorbed by the adsorbent of the second region 320.
  • the outdoor air passing through the second region 320 passes through a fourth heat exchanger 270 that operates as an evaporator and then is discharged to the outside.
  • the indoor air heated while passing through the first heat exchanger 150 When the adsorbent in which the moisture of the outdoor air is absorbed in the second region 320 is positioned in the first region 310 by the rotation of the rotor member 300, the indoor air heated while passing through the first heat exchanger 150. Moisture is evaporated while passing through the adsorbent in the first region 310 to form wet indoor air. The indoor air passing through the first area 310 is discharged into the room through the outlet portion 110c of the first air flow path 110 to perform indoor humidification.
  • the heating and water supply humidification modes will be described with reference to FIG. 10.
  • the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160, the second blower 260, and the compressor 610 are turned on. Rotation of the rotor member 300 is the same as in the water free humidification mode.
  • the refrigerant flows along the third refrigerant flow path 640-1, so that the first heat exchanger 150 operates as a condenser and the fourth heat exchanger 270 operates as an evaporator.
  • the heating and water supply humidification mode water is supplied from the water supply unit 500 to the third region 330, and the direction of the damper 280-2 is passed from the bypass passage 285-1 to the second air passage 210. There is a difference from the non-water supply humidification mode in that it is connected to the outlet 210c.
  • the indoor air heated while passing through the first heat exchanger 150 passes through the first region 310 of the rotor member 300.
  • the adsorbent adsorbing the moisture in the third region 330 is rotated and positioned in the first region 310, and the heated indoor air passes through the first region 310 to evaporate the moisture of the adsorbent to moist indoor air.
  • the indoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110. This results in room heating with room humidification.
  • the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160, the second blower 260, and the compressor 610 are turned on.
  • the member 300 is rotated, and the moisture is not supplied from the moisture supply unit 500 in the same manner as in the water-free humidification mode.
  • the refrigerant When the compressor 610 is turned on in the dehumidification mode, the refrigerant is a compressor 610, a four-way valve 620, a second heat exchanger 250, a second expansion valve 630-2, and a third heat exchanger ( 170, it circulates along the compressor 610.
  • a path through which the refrigerant flows is referred to as a fourth refrigerant net environment path 640-2.
  • the second heat exchanger 250 operates as a condenser
  • the third heat exchanger 170 operates as an evaporator
  • the dehumidification of the indoor air is made by such a process, thereby maintaining a comfortable indoor environment.
  • the first blower 160 is turned on and the direction switching gate of the flow path switching unit 400 is set to the first position.
  • the compressor 610 is turned off, and the water supply unit 500 does not supply water.
  • the indoor air introduced through the inlet 110a of the first air flow path 110 due to the operation of the first blower 160 is primarily filtered of the foreign matter having large particles in the pre-filter 120, After the harmful elements such as allergy are removed from the filter 130, the fine particles are removed from the HEPA filter 140.
  • the indoor air passing through the HEPA filter 140 passes through the first region 310 and is discharged into the room through the outlet portion 110c of the first air flow path 110 to perform a clean action of the indoor air.
  • the surface of the adsorbent of the rotor member 300 is coated with a polymer dehumidifying agent so that the odor is removed when the indoor air contacts the surface of the adsorbent.
  • a ventilation mode will be described with reference to FIG. 13.
  • the first blower 160 and the second blower 260 are operated.
  • the direction switching gate of the flow path switching unit 400 is set to be in the second position.
  • the compressor 610 is turned off, and the water supply unit 500 does not supply water.
  • the indoor air sucked into the inlet 110a of the first air flow path 110 by the operation of the second blower 260 is pre-filter 120, the first inlet 410 of the flow path switching unit 400 and After passing through the second region 320 of the rotor member 300 through the second outlet 440, it is discharged to the outside through the outlet portion 210c of the second air flow path 210.
  • the outdoor air sucked into the inlet 210a of the second air flow path 210 by the operation of the first blower 160 is a pre-filter 220, a medium filter 230, the flow path switching unit 400 After passing through the first region 310 of the rotor member 300 through the second inlet 420, the first outlet 430, the functional filter 130, the HEPA filter 140 of the first air flow path ( It is discharged into the room through the outlet portion 110c of the 110.
  • the indoor air is discharged to the outside, and the outdoor air is introduced into the room through the plurality of filters 220, 230, 130, and 140 to ventilate the indoor air.
  • the outdoor air in the ventilation mode is filtered after the pre-filter 220, the medium filter 230 provided in the second air flow path 210 Since it is also filtered in the functional filter 130 and the HEPA filter 140 provided in the first air flow path 110, while passing through a number of filters (220, 230, 130, 140) provided in the first air flow path 110 and the second air flow path (210). After being filtered and introduced into the room, clean air can be supplied to the room.
  • the functional filter 130 and the HEPA filter 140 may filter the indoor air introduced through the inlet 110a of the first air flow path 110 in the humidification mode, the heating mode, the air cleaning mode, and the dehumidification mode.
  • the outdoor air introduced through the inlet 210a of the second air flow path 210 is also filtered in the ventilation mode, it is not necessary to separately provide a filter for filtering indoor air and outdoor air.
  • first air passage 110 and the second air passage 210 is provided with four heat exchangers (150, 250, 170, 270) constituting the heat pump 600 before and after the rotor member 300, the heat exchangers (150, 250, 170, 270) By alternating operation, each air flow path can be kept dry at all times, thereby keeping the air conditioner clean.
  • the flow path switching unit 400 is configured as a damper so that only the flow path switching is performed.
  • the flow path switching unit 400 is configured as a damper so that only the flow path switching is performed.
  • FIGS. 14 to 15 not only the flow path switching but also the total heat exchange may be performed in the flow path switching part 700. An embodiment configured to be described will be described.
  • the present embodiment has the same configuration as described above, except that the flow path switching unit 400 is replaced with the flow path switching unit 700 in which heat exchange is performed.
  • the flow path switching unit 700 is the first air inlet 110 is connected to the inlet 110a, the first inlet 710 through which the indoor air flows, the first space in communication with the first inlet 710 701, a second inlet 720 connected to the inlet 210a of the second air flow path 210 to introduce outdoor air, a second space part 702 communicating with the second inlet 720,
  • the third space portion 703 communicates with the middle portion 110b of the first air passage 110, and is disposed to face the second space portion 702 in a diagonal direction.
  • the first to fourth space parts 701, 702, 703 and 704 are spatially separated from each other by the partitions 791, 792, 793 and 794.
  • the cover plates 750 which form one side of the first to fourth space parts 701, 702, 703 and 704 are first to fourth communicated at positions corresponding to the first to fourth space parts 701, 702, 703 and 704. Holes 711,712,713,714 are formed, respectively.
  • the first space portion 701 and the intermediate portion 110b of the first air passage 110 communicate with each other through the first communication hole 711, and the third space portion (ie, through the third communication hole 713). 703 and the middle portion 110b of the first air passage 110 communicate with each other.
  • the second space part 702 is provided with a second damper 772.
  • the second damper 772 allows or blocks the air of the second space portion 702 to flow in either of the heat exchanger 760 and the middle portion 210b of the second air flow path 210. It is for.
  • the first damper 771 rotates the hinge 781 to the rotational center to position the horizontal direction indicated by the solid line to block the first communication hole 711.
  • the second damper 772 rotates the hinge 782 at the center of rotation to be positioned in the horizontal direction indicated by the solid line to block the second communication hole 712.
  • the indoor air is inlet 110a and the first inlet of the first air flow path 110.
  • the indoor air introduced into the first space 701 through 710 and introduced into the first space 701 passes through the heat exchanger 760 and then the fourth space 704 and the second air flow path. After passing through the middle portion 210b of the 210 and the second region 310 in sequence, it is discharged to the outside through the outlet portion 210c of the second air flow passage 210.
  • outdoor air flows into the second space part 702 through the inlet part 210a and the second inlet port 720 of the second air flow path 210.
  • the outdoor air introduced into the space part 702 undergoes heat exchange with the indoor air passing through the heat exchanger 760 while passing through the heat exchanger 760, and then the third space part 703 and the first air flow path 110.
  • the middle portion (110b) After passing through the middle portion (110b), the first region 310 of the first through the outlet 110c of the first air flow path 110 is discharged into the room.
  • the first damper 771 rotates the hinge 781 around the rotation center and is positioned in a vertical direction indicated by a dotted line, so that air in the first space part 701 is transferred to the heat exchanger 760.
  • the second damper 772 rotates the hinge 782 to the center of rotation, as shown in FIG. 14 (b), and is positioned in the vertical direction indicated by the dotted line of the second space part 702. Prevents air from flowing in the direction of the total heat exchanger (760).
  • the indoor air introduced into the first space part 701 is the first communication hole 711 as shown in FIG. After passing through the intermediate portion 110b of the first air passage 110, the first region 310, and the outlet portion 110c of the first air passage 110 in sequence, the air is discharged into the room.
  • the outdoor air introduced into the second space part 702 includes the second communication hole 712, the middle part 210b of the second air flow path 210, and the second area ( 310 is sequentially discharged to the outside through the outlet 210c of the second air flow path 210.
  • the first damper 771 is exemplarily configured to open and close either one of the direction of the first communication hole 711 and the direction of the heat exchanger 760. It is also possible to separately configure a damper for opening and closing 711 and a damper for opening and closing the flow from the first space portion 701 to the heat exchanger 760. Similarly, two dampers instead of one second damper 771 may be configured to open and close flows to the second communication hole 712 and the heat exchanger 760, respectively.
  • the water supply part 500-1 is provided on the first air flow path 110, which is an indoor air flow path, and is different from the above-described embodiments, and the rest of the configuration is the same.
  • the water supply unit 500-1 is configured to supply water to air discharged into the room through the outlet 110 c of the first air flow path 110.
  • the water supply unit 500-1 includes a humidification filter 520-1 for supplying water to air passing through the outlet 110 c of the first air flow path 110, and the humidification filter 520-1.
  • a water supply means for supplying water to adsorb moisture to the water tank 530-1 and the water tank 530-1 in which water for immersing a portion of the lower end of the humidification filter 520-1 is stored
  • Water supply valve 550-1 provided in the water supply pipe 570-1 for supplying
  • a drain valve 560-1 provided in the drain pipe 580-1 for draining the water of the water tank 530-1 to the outside. It consists of 1).
  • the humidification filter 520-1 is located on the outlet 110c of the first air flow path 110 and the humidification is performed by the operation of the first blower 160, as in the previous embodiments, It is not necessary to provide the humidified air flow path 540 and the third blower 510, and the rotor member 300 does not need to configure the third region 330, thereby simplifying the configuration of the product.

Abstract

The objective of the present invention is to provide an air conditioner and a control method therefor, the air conditioner being capable of implementing, by a simple structure, humidity control, heating and cooling, air cleaning, and ventilation. To this end, the present invention comprises: a first air passage of which both ends are connected to a room; a second air passage of which both ends are connected to the outside; a rotor member comprising a first section provided on the first air passage, a second section provided on the second air passage, and an absorbent alternately passing through the first section and the second section by the rotation thereof; a heat pump including a first heat exchanger for performing heat exchange with the air flowing toward the first section and a second heat exchanger for performing heat exchange with the air flowing toward the second section, and allowing the first heat exchanger and the second heat exchanger to be alternately operated as a condenser and an evaporator such that the air flowing in the first air passage is heated and cooled; and a control part for controlling the heat pump and the rotation of the rotor member.

Description

공기조화기와 그 제어방법Air conditioner and control method
본 발명은 공기조화기와 그 제어방법에 관한 것으로, 보다 상세하게는 습도 조절 모드와 냉/난방 모드와 공기 청정 모드 및 환기 모드 운전이 가능한 공기조화기와 그 제어방법에 관한 것이다. The present invention relates to an air conditioner and a control method thereof, and more particularly, to an air conditioner and a control method capable of operating a humidity control mode, a cooling / heating mode, an air cleaning mode, and a ventilation mode.
일반적으로 공기조화기는 사용자의 요구에 따라 실내 온도와 습도를 조절하거나 실내공기를 환기시켜 실내를 쾌적하게 유지하는 장치이다.In general, an air conditioner is a device that maintains a comfortable room by adjusting room temperature and humidity or ventilating indoor air according to a user's request.
최근에는 공기조화기에 제습, 가습, 냉방, 난방, 공기 정화, 환기 등의 다양한 기능을 부가시킴으로써 사용자의 선택에 따라 계절의 변화에 맞추어 실내공기를 쾌적하게 유지할 수 있도록 하는 기술들이 개발되고 있다.Recently, by adding various functions such as dehumidification, humidification, cooling, heating, air purification, and ventilation to the air conditioner, technologies for maintaining indoor air comfortably according to the change of season according to the user's choice have been developed.
이러한 공기조화기는 실내공기의 습도를 증가시키는 가습기와 실내공기의 습도를 감소시키는 제습기가 있다. 또한, 실내 냉/난방 기능과 실내공기를 환기시키는 기능은 냉난방기 또는 환기장치로서 별도의 장치로 구현되거나, 제습기 또는 가습기 중 어느 하나와 결합된 장치로서 구현되었다.Such air conditioners include a humidifier for increasing the humidity of indoor air and a dehumidifier for reducing the humidity of indoor air. In addition, the indoor cooling / heating function and the function of ventilating the indoor air is implemented as a separate device as an air conditioner or a ventilation device, or implemented as a device combined with either a dehumidifier or a humidifier.
따라서 가습과 제습, 냉방과 난방, 공기 정화 및 환기 기능을 하나의 장치에서 구현하기 위해서는 복잡한 구조로 이루어져야 하므로 실용화하기가 어려운 문제점이 있었다.Therefore, in order to implement the humidification and dehumidification, cooling and heating, air purification and ventilation functions in a single device has a problem that it is difficult to put to practical use.
이러한 문제점을 해결하기 위한 종래기술로서 대한민국 등록특허 10-0943356 "사계절 환기형 냉난방 설비"가 공개되어 있다.Korean Patent No. 10-0943356 "four seasons ventilation type heating and cooling equipment" is disclosed as a conventional technology for solving this problem.
그러나 상기한 종래기술은 실내공기와 실외공기가 반드시 제1열교환기를 통과하도록 구성된 환기형이므로, 난방시에도 차가운 실외공기를 가열하기 위한 에너지 소모량이 증가하고, 상수도로부터 공급된 냉각수를 분사하여 실내로 공급되는 공기를 냉각시키도록 되어 있어 냉각 능력이 낮아 실효성이 떨어지고 냉각수 분사에 따라 위생적이지 못한 문제점이 있다.However, since the above-mentioned conventional technology is a ventilation type configured to allow indoor air and outdoor air to pass through the first heat exchanger, energy consumption for heating cold outdoor air increases even when heating, and by spraying the cooling water supplied from the tap water into the room. It is to cool the air to be supplied has a low cooling capacity is not effective and there is a problem that is not hygienic due to the cooling water injection.
또한, 다른 종래기술로서 대한민국 공개특허 2001-0111601 "실내 제습 시스템과 실내 가습 시스템을 갖는 공기조화시스템 및 그 운전 제어방법"이 공개되어 있다.In addition, Korean Patent Laid-Open Publication No. 2001-0111601 discloses an air conditioning system having an indoor dehumidification system and an indoor humidification system and its operation control method.
그러나 상기한 종래기술은 실외로 공기를 토출하는 토출구(14)가 2개, 실내로 공기를 토출하는 토출구(13a,13b)가 2개가 구비되어야 하므로 토출구의 개수가 많아 이에 연결되는 배관 구조가 복잡해지는 문제점이 있다. 또한, 2개의 토출구(13a,13b)는 각각 별도의 개폐판을 구동시키도록 되어 있어 구성이 복잡한 문제점이 있다.However, the above-described conventional technique requires two discharge holes 14 for discharging air to the outside and two discharge holes 13a and 13b for discharging air to the indoor space, so that the number of discharge holes is large and the piping structure connected thereto is complicated. There is a problem. In addition, the two discharge ports 13a and 13b are configured to drive separate opening and closing plates, respectively, which causes a complicated configuration.
본 발명은 상술한 제반 문제점을 해결하기 위해 안출된 것으로, 습도조절과 냉난방과 공기 청정 및 환기가 간단한 구조에 의해 구현될 수 있는 공기조화기와 그 제어방법을 제공하고자 함에 그 목적이 있다. The present invention has been made to solve the above problems, and an object of the present invention is to provide an air conditioner and a control method that can be implemented by a simple structure of humidity control, heating and cooling, air cleaning and ventilation.
상술한 목적을 달성하기 위한 본 발명의 공기조화기는, 양단이 실내와 연결된 제1공기유로(110); 양단이 실외와 연결된 제2공기유로(210); 상기 제1공기유로(110) 상에 구비된 제1영역(310)과, 상기 제2공기유로(210) 상에 구비된 제2영역(320)과, 회전에 의해 상기 제1영역(310)과 제2영역(320)을 교대로 통과하는 흡착재로 이루어진 로터부재(300); 상기 제1영역(310)을 향해 유동하는 공기와 열교환이 이루어지는 제1열교환기(150)와, 상기 제2영역(320)을 향해 유동하는 공기와 열교환이 이루어지는 제2열교환기(250)를 포함하고, 상기 제1열교환기(150)와 제2열교환기(250)가 응축기와 증발기로 교대로 작동하도록 함으로써 상기 제1공기유로(110)를 유동하는 공기의 가열 및 냉각이 이루어지도록 하는 히트펌프(600); 상기 로터부재(300)의 회전과 상기 히트펌프(600)를 제어하는 제어부를 포함한다.Air conditioner of the present invention for achieving the above object, the first air passage 110 is connected to both ends of the room; A second air passage 210 having both ends connected to the outside; The first region 310 provided on the first air passage 110, the second region 320 provided on the second air passage 210, and the first region 310 by rotation. And a rotor member 300 made of an adsorbent passing through the second region 320 alternately; A first heat exchanger 150 for exchanging heat with the air flowing toward the first region 310, and a second heat exchanger 250 for exchanging heat with the air flowing toward the second region 320. In addition, the first heat exchanger 150 and the second heat exchanger 250 to operate the condenser and the evaporator by alternating heat pump for heating and cooling the air flowing in the first air flow path 110 is made. 600; It includes a control unit for controlling the rotation of the rotor member 300 and the heat pump 600.
상기 히트펌프(600)는, 압축기(610), 상기 압축기(610)에서 공급되어 온 냉매를 상기 제1열교환기(150)와 제2열교환기(250)가 응축기와 증발기, 증발기와 응축기로 작동 전환이 이루어지도록 상기 냉매의 유동 방향을 전환시키는 사방밸브(620)를 포함할 수 있다.The heat pump 600, the compressor 610, the refrigerant supplied from the compressor 610, the first heat exchanger 150 and the second heat exchanger 250 operates as a condenser, an evaporator, an evaporator and a condenser. It may include a four-way valve 620 for changing the flow direction of the refrigerant to be switched.
상기 제1열교환기(150)가 응축기로 작동하는 경우에는 상기 제1영역(310)으로 유동하는 공기를 가열하여 실내 가습 또는 난방이 이루어지고, 상기 제2열교환기(250)가 증발기로 작동하는 경우에는 상기 제1영역(310)으로 유동하는 공기를 냉각하여 실내 제습 또는 냉방이 이루어질 수 있다.When the first heat exchanger 150 operates as a condenser, the air flowing in the first region 310 is heated to perform indoor humidification or heating, and the second heat exchanger 250 operates as an evaporator. In this case, indoor dehumidification or cooling may be performed by cooling the air flowing in the first region 310.
상기 히트펌프(600)는 상기 제1영역(310)과 제2영역(320)을 각각 통과한 공기와 열교환이 이루어지는 제3열교환기(170)와 제4열교환기(270)를 더 포함할 수 있다.The heat pump 600 may further include a third heat exchanger 170 and a fourth heat exchanger 270 that exchange heat with air passing through the first region 310 and the second region 320, respectively. have.
실내 가습 또는 실내 난방 시에는 상기 제1열교환기(150)와 제4열교환기(270)가 응축기와 증발기로 작동하고; 실내 제습 또는 실내 냉방 시에는 상기 제2열교환기(250)와 제3열교환기(270)가 응축기와 증발기로 작동할 수 있다.The first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator during indoor humidification or indoor heating; During indoor dehumidification or indoor cooling, the second heat exchanger 250 and the third heat exchanger 270 may operate as a condenser and an evaporator.
상기 실내 가습 또는 실내 난방 시, 냉매는 압축기(610), 사방밸브(620), 제1열교환기(150), 제1팽창밸브(630-1), 제4열교환기(270), 압축기(610)의 순서로 이루어지는 냉매순환경로(640-1)를 따라 순환하여, 상기 제1열교환기(150)와 제4열교환기(270)가 응축기와 증발기로 각각 작동하고; 상기 실내 제습 또는 실내 냉방 시, 냉매는 압축기(610), 사방밸브(620), 제2열교환기(250), 제2팽창밸브(630-2), 제3열교환기(170), 압축기(610)의 순서로 이루어지는 냉매순환경로(640-2)를 따라 순환하여, 상기 제2열교환기(250)와 제3열교환기(170)가 응축기와 증발기로 각각 작동하는 것일 수 있다.In the indoor humidification or indoor heating, the refrigerant is a compressor 610, a four-way valve 620, a first heat exchanger 150, a first expansion valve 630-1, a fourth heat exchanger 270, and a compressor 610. The first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator, respectively, circulating along the refrigerant circulation environment path 640-1. When the indoor dehumidification or indoor cooling, the refrigerant is a compressor 610, a four-way valve 620, a second heat exchanger 250, a second expansion valve 630-2, a third heat exchanger 170, a compressor 610 The second heat exchanger 250 and the third heat exchanger 170 may operate as a condenser and an evaporator, respectively, by circulating along the refrigerant circulation environment path 640-2.
상기 제2영역(320)의 출구측과 일측 실외 사이를 연결하는 제2공기유로(210) 상에는 제2송풍기(260)가 구비되고; 상기 제2공기유로(210)에는 타측 실외로 연결되는 바이패스유로(285-2)가 연결되며; 상기 제2공기유로(210)와 바이패스유로(285-2)의 교차지점에는 상기 제2공기유로(210)를 유동하는 공기의 유동방향을 상기 바이패스유로(285-2)와 상기 타측 실외 중 어느 하나의 방향으로 선택하기 위한 댐퍼(280-2)가 구비될 수 있다.A second blower 260 is provided on a second air flow path 210 that connects the outlet side of the second area 320 and one side outdoors; A bypass flow path 285-2 connected to the other outdoor part is connected to the second air flow path 210; At the intersection of the second air passage 210 and the bypass passage 285-2, a flow direction of air flowing through the second air passage 210 is indicated by the bypass passage 285-2 and the other outdoor part. The damper 280-2 for selecting in any one direction may be provided.
상기 제1공기유로(110)와 제2공기유로(210)가 교차하는 지점에는 상기 제1공기유로(110)와 제2공기유로(210)의 유로 방향이 전환되도록 하는 유로전환부(400,700)가 구비될 수 있다.At the point where the first air flow path 110 and the second air flow path 210 intersect with each other, flow path switching parts 400 and 700 for changing the flow direction of the first air flow path 110 and the second air flow path 210. It may be provided.
상기 제2영역(320)의 입구 측에 연결된 제2공기유로(210) 상에는 제2송풍기(260)가 구비되고; 상기 제2공기유로(210)에는 실외로 연결되는 바이패스유로(285-1)가 연결되며; 상기 제2공기유로(210)와 바이패스유로(285-1)의 교차지점에는 상기 제2공기유로(210)를 유동하는 공기의 유동방향을 상기 바이패스유로(285-1)와 제2영역(320) 중 어느 하나의 방향으로 선택하기 위한 댐퍼(280-1)가 구비될 수 있다.A second blower 260 is provided on a second air passage 210 connected to the inlet side of the second region 320; A bypass flow path 285-1 connected to the second air flow path 210 to the outside is connected; At the intersection of the second air passage 210 and the bypass passage 285-1, a flow direction of air flowing through the second air passage 210 is defined by the bypass passage 285-1 and the second region. A damper 280-1 may be provided to select one of the directions 320.
상기 유로전환부(400)는, 실내공기가 유입되는 제1유입구(410), 실외공기가 유입되는 제2유입구(420), 상기 제2영역(320)과 연결되는 제2배출구(440), 상기 제1영역(310)과 연결되는 제1배출구(430)로 이루어질 수 있다.The flow path switching unit 400 may include a first inlet 410 through which indoor air is introduced, a second inlet 420 through which outdoor air is introduced, a second outlet 440 connected with the second region 320, It may be composed of a first discharge port 430 connected to the first region 310.
상기 유로전환부(700)는, 환기 모드시 실내 공기와 실외 공기 사이에 전열교환이 이루어지도록 하는 전열교환기(760)를 포함할 수 있다.The flow path switching unit 700 may include a total heat exchanger (760) for the total heat exchange between the indoor air and the outdoor air in the ventilation mode.
상기 유로전환부(700)는, 상기 제1공기유로(110)의 입구측(110a)에 연결되는 제1공간부(701), 상기 제1공기유로(110)를 통해 상기 제1영역(310)에 연결되는 제3공간부(703), 상기 제2공기유로(210)의 입구측(210a)에 연결되는 제2공간부(702), 상기 제2공기유로(210)를 통해 상기 제2영역(320)에 연결되는 제4공간부(704)를 포함하고; 상기 전열교환기(760)는 상기 제1공간부(701)로 유입된 실내 공기가 제4공간부(704)로 유동하고, 상기 제2공간부(702)로 유입된 실외 공기가 제3공간부(703)로 유동하는 경우 열교환이 이루어질 수 있다.The flow path switching unit 700 includes a first space part 701 connected to the inlet side 110a of the first air flow path 110, and the first area 310 through the first air flow path 110. A third space portion 703 connected to the second space portion 703, a second space portion 702 connected to the inlet side 210a of the second air flow passage 210, and the second air passage 210 through the second air passage 210. A fourth space portion 704 connected to the region 320; In the heat exchanger 760, the indoor air introduced into the first space 701 flows into the fourth space 704, and the outdoor air introduced into the second space 702 receives the third space. When flowing to 703, heat exchange may occur.
상기 제1 내지 제4공간부(601,602,603,604)의 일측을 폐쇄하는 커버플레이트(650)에는, 상기 제1공간부(601)와 제1공기유로(110)를 연통시키는 제1연결구멍(611), 상기 제3공간부(603)와 제1공기유로(110)를 연통시키는 제3연결구멍(613), 상기 제2공간부(602)와 제2공기유로(210)를 연통시키는 제2연통구멍(612), 상기 제4공간부(604)와 제2공기유로(210)를 연통시키는 제4연통구멍(614)이 형성되고; 상기 제1공간부(601)가 상기 제1연결구멍(611)을 통해 상기 제1공기유로(110)에 연통하도록 하거나 상기 전열교환기(660)를 통해 상기 제4공간부(604)에 연통하도록 개폐 방향이 설정되는 적어도 하나의 댐퍼(671)와, 상기 제2공간부(602)가 상기 제2연결구멍(612)을 통해 상기 제2공기유로(110)에 연통하도록 하거나 상기 전열교환기(660)를 통해 상기 제3공간부(403)에 연통하도록 개폐 방향이 설정되는 적어도 하나의 댐퍼(672)가 구비될 수 있다.A first connection hole 611 for communicating the first space portion 601 and the first air passage 110 to the cover plate 650 which closes one side of the first to fourth space portions 601, 602, 603, 604, A third connection hole 613 for communicating the third space portion 603 and the first air passage 110, and a second communication hole for communicating the second space portion 602 and the second air passage 210. 612, a fourth communication hole 614 is formed in communication with the fourth space portion 604 and the second air flow path 210; The first space portion 601 to communicate with the first air passage 110 through the first connection hole 611 or to the fourth space portion 604 through the heat exchanger 660. At least one damper 671 having an opening and closing direction and the second space part 602 communicate with the second air passage 110 through the second connection hole 612 or the heat exchanger 660. At least one damper 672 may be provided in which an opening and closing direction is set to communicate with the third space part 403.
상기 흡착재에 수분을 공급하기 위한 수분공급부(500)가 구비되고, 상기 흡착재가 회전하여 상기 제1영역(310)에 위치하게 되면 상기 제1공기유로(110)를 유동하는 공기에 의해 상기 수분이 증발되어 상기 실내로 유입되는 것일 수 있다.A water supply unit 500 is provided to supply water to the adsorbent. When the adsorbent is rotated and positioned in the first region 310, the water is absorbed by air flowing through the first air flow path 110. Evaporated may be introduced into the room.
상기 로터부재(300)에는, 상기 제1영역(310) 및 제2영역(320)과 분리된 제3영역(330)이 형성되고; 상기 수분공급부(500)는 상기 제3영역(330)의 흡착재에 수분을 공급하는 것일 수 있다.A third region 330 is formed in the rotor member 300 and separated from the first region 310 and the second region 320; The water supply unit 500 may supply water to the absorbent material of the third region 330.
상기 수분공급부(500)는, 가습공기유로(540) 상에 구비되어 수분을 함유하는 가습필터(520); 상기 가습공기유로(540) 상에 구비되어 가습필터(520)를 통과한 가습공기를 유동시키기 위한 제3송풍기(510)로 이루어질 수 있다.The water supply unit 500, the humidifying filter 520 is provided on the humidifying air flow path 540 to contain moisture; The third air blower 510 may be provided on the humidifying air flow path 540 to flow humidifying air that has passed through the humidifying filter 520.
상기 제1공기유로(110)를 통해 실내로 배출되는 공기에 수분을 공급하기 위한 수분공급부(500-1)가 구비될 수 있다.A water supply unit 500-1 may be provided to supply water to air discharged into the room through the first air passage 110.
상기 수분공급부(500-1)는, 상기 제1공기유로(110)를 통과하는 공기에 수분을 공급하는 가습필터(520-1)와, 상기 가습필터(520-1)에 수분이 흡착되도록 수분을 공급하는 수분공급수단으로 이루어질 수 있다.The moisture supply unit 500-1 includes a humidification filter 520-1 supplying moisture to the air passing through the first air flow path 110, and moisture to adsorb moisture to the humidification filter 520-1. It may be made of a water supply means for supplying.
본 발명의 공기조화기의 제어방법은, 양단이 실내와 연결된 제1공기유로(110), 양단이 실외와 연결된 제2공기유로(210), 상기 제1공기유로(110) 상에 구비된 제1영역(310)과 상기 제2공기유로(210) 상에 구비된 제2영역(320)과 회전에 의해 상기 제1영역(310)과 제2영역(320)을 교대로 통과하는 흡착재로 이루어진 로터부재(300)를 포함한 공기조화기의 제어방법으로서, 상기 제1영역(310)을 향해 유동하는 공기와 열교환이 이루어지는 제1열교환기(150)와 상기 제2영역(320)을 향해 유동하는 공기와 열교환이 이루어지는 제2열교환기(250)에서 상기 공기의 가열 또는 냉각이 이루어지도록 히트펌프(600)의 냉매의 유동 방향이 전환되도록 제어하는 것으로 이루어진다.In the control method of the air conditioner of the present invention, the first air passage 110 is connected to both ends of the indoor, the second air passage 210 is connected to both ends, the first air passage 110 is provided on the first air passage (110) The first region 310 and the second region 320 provided on the second air flow path 210 and an adsorbent which alternately passes through the first region 310 and the second region 320 by rotation. A control method of an air conditioner including a rotor member (300), which flows toward a first heat exchanger (150) and a second region (320) where heat is exchanged with air flowing toward the first region (310). In the second heat exchanger 250 in which heat is exchanged with air, the flow of the refrigerant of the heat pump 600 is controlled to be switched so that the air is heated or cooled.
상기 히트펌프(600)는 상기 제1영역(310)과 제2영역(320)을 각각 통과한 공기와 열교환이 이루어지는 제3열교환기(170)와 제4열교환기(270)를 더 포함하고; 실내 가습 또는 실내 난방 시, 상기 제1열교환기(150)와 제4열교환기(270)가 응축기와 증발기로 각각 작동하도록 냉매는 제1냉매순환경로(640-1)를 따라 순환하고; 실내 제습 또는 실내 냉방 시, 상기 제2열교환기(250)와 제3열교환기(170)가 응축기와 증발기로 각각 작동하도록 냉매는 제2냉매순환경로(640-2)를 따라 순환하며; 상기 히트펌프(600)의 사방밸브(620)에서 상기 제1냉매순환경로(640-1)와 제2냉매순환경로(640-2)의 선택이 이루어지도록 제어하는 것일 수 있다.The heat pump (600) further includes a third heat exchanger (170) and a fourth heat exchanger (270) for exchanging heat with air passing through the first region (310) and the second region (320), respectively; During indoor humidification or indoor heating, the refrigerant circulates along the first refrigerant circulation environment path 640-1 so that the first heat exchanger 150 and the fourth heat exchanger 270 operate as condensers and evaporators, respectively; During indoor dehumidification or indoor cooling, the refrigerant circulates along the second refrigerant net environment path 640-2 so that the second heat exchanger 250 and the third heat exchanger 170 operate as condensers and evaporators, respectively; The four-way valve 620 of the heat pump 600 may control to select the first refrigerant net environment path 640-1 and the second refrigerant net environment path 640-2.
상기 실내 난방시, 상기 제2공기유로(210) 상에 구비된 댐퍼(280-1,280-2)의 유동방향을 전환하여, 상기 제2공기유로(210)를 유동하는 실외공기는 상기 제2영역(320)을 통과하지 않고 실외로 배출되는 것일 수 있다.When the indoor heating is performed, the outdoor air flowing through the second air flow path 210 by changing the flow direction of the dampers 280-1 and 280-2 provided on the second air flow path 210 is changed to the second area. It may be discharged to the outdoor without passing through (320).
본 발명에 의하면, 히트펌프를 이용하여 적어도 2개의 열교환기를 응축기와 증발기로 각각 기능하도록 함으로써 실내 냉난방과 습도조절이 하나의 장치에서 구현할 수 있고, 냉난방 능력 및 습도 조절 능력을 향상시킬 수 있다.According to the present invention, by using at least two heat exchangers each functioning as a condenser and an evaporator using a heat pump, indoor air conditioning and humidity control can be implemented in a single device, and the air conditioning and humidity control ability can be improved.
또한, 제1공기유로와 제2공기유로가 교차하는 지점에 유로전환부를 구비함으로써 간단한 구조에 의해 습도 조절과 냉난방과 공기 청정 및 환기 모드를 하나의 장치에서 구현할 수 있다.In addition, by providing a flow path switching unit at the point where the first air flow path and the second air flow path intersect, the humidity control, the heating and cooling, the air cleaning and the ventilation mode can be implemented in one device by a simple structure.
또한, 가습과 동시에 난방을 하는 경우에는 실외공기가 로터부재의 제2영역을 통과하지 않도록 바이패스유로와 댐퍼를 구비함으로써 열손실을 방지할 수 있다.In addition, in the case of heating at the same time as the humidification, it is possible to prevent heat loss by providing a bypass flow path and a damper so that outdoor air does not pass through the second region of the rotor member.
또한, 제1공기유로와 제2공기유로에 로터부재를 전후하여 각각 한 쌍의 열교환기를 구비하고 상기 열교환기를 교대로 작동시킴으로써 각 공기유로 내부를 항상 건조한 상태로 유지할 수 있어 공기조화기를 청결한 상태로 유지할 수 있다.In addition, by providing a pair of heat exchangers each around the rotor member in the first air passage and the second air passage, and by operating the heat exchangers alternately, the interior of each air passage can be always kept dry so that the air conditioner is kept clean. I can keep it.
또한, 수분공급부로부터 수분을 로터부재에 공급함으로써 실내 습도 조절 능력을 향상시킬 수 있다.In addition, it is possible to improve the indoor humidity control ability by supplying water to the rotor member from the water supply.
또한, 로터부재를 3개의 영역으로 분리하고, 수분공급부로부터 수분이 공급되는 제3영역을 제1영역 및 제2영역과 분리함으로써 습기가 공급되는 흡착재 부분에 이물질이 흡착되는 것을 방지하여 세균 번식을 방지할 수 있다.In addition, the rotor member is separated into three regions, and the third region, from which the water is supplied from the moisture supply unit, is separated from the first and second regions, thereby preventing foreign matter from adsorbing to the moisture-absorbing portion, thereby preventing bacterial propagation. You can prevent it.
또한, 환기모드시 실외공기는 제1공기유로와 제2공기유로에 구비된 많은 필터에서 여과된 후 실내로 유입되므로 깨끗한 공기를 실내로 공급할 수 있다.In addition, in the ventilation mode, the outdoor air is filtered through a number of filters provided in the first air passage and the second air passage, so that the outdoor air flows into the interior, thereby supplying clean air.
도 1은 본 발명의 제1실시예에 의한 공기조화기의 구성을 보여주는 도면1 is a view showing the configuration of an air conditioner according to a first embodiment of the present invention
도 2는 본 발명의 제1실시예에 의한 공기조화기에서 무급수 가습 모드시 동작 상태를 보여주는 도면2 is a view showing the operation state in the water-free humidification mode in the air conditioner according to the first embodiment of the present invention
도 3은 본 발명의 제1실시예에 의한 공기조화기에서 급수 가습 모드시 동작 상태를 보여주는 도면3 is a view showing an operating state in the water supply humidification mode in the air conditioner according to the first embodiment of the present invention
도 4는 본 발명의 제1실시예에 의한 공기조화기에서 제습 모드시 동작 상태를 보여주는 도면4 is a view showing an operating state in the dehumidification mode in the air conditioner according to the first embodiment of the present invention
도 5는 본 발명의 제1실시예에 의한 공기조화기에서 냉방 모드시 동작 상태를 보여주는 도면5 is a view showing an operating state in the cooling mode in the air conditioner according to the first embodiment of the present invention
도 6은 본 발명의 제1실시예에 의한 공기조화기에서 환기 모드시 동작 상태를 보여주는 도면6 is a view showing an operating state in the ventilation mode in the air conditioner according to the first embodiment of the present invention
도 7은 본 발명의 제1실시예에 의한 공기조화기에서 가습 환기 모드시 동작 상태를 보여주는 도면7 is a view showing an operating state in the humidification ventilation mode in the air conditioner according to the first embodiment of the present invention
도 8은 본 발명의 제2실시예에 의한 공기조화기의 구성을 보여주는 도면8 is a view showing the configuration of an air conditioner according to a second embodiment of the present invention.
도 9는 본 발명의 제2실시예에 의한 공기조화기에서 무급수 가습 모드시 동작 상태를 보여주는 도면9 is a view showing the operation state in the water-free humidification mode in the air conditioner according to a second embodiment of the present invention
도 10은 본 발명의 제2실시예에 의한 공기조화기에서 난방 및 급수 가습 모드시 동작 상태를 보여주는 도면10 is a view showing an operating state in the heating and water supply humidification mode in the air conditioner according to a second embodiment of the present invention
도 11은 본 발명의 제2실시예에 의한 공기조화기에서 제습 및 냉방 모드시 동작 상태를 보여주는 도면11 is a view showing an operation state in the dehumidification and cooling mode in the air conditioner according to the second embodiment of the present invention
도 12는 본 발명의 제2실시예에 의한 공기조화기에서 공기 청정 모드시 동작 상태를 보여주는 도면12 is a view showing an operating state in the air cleaning mode in the air conditioner according to the second embodiment of the present invention
도 13은 본 발명의 제2실시예에 의한 공기조화기에서 환기 모드시 동작 상태를 보여주는 도면FIG. 13 is a view illustrating an operating state in a ventilation mode in an air conditioner according to a second embodiment of the present invention; FIG.
도 14(a)는 본 발명의 다른 실시예에 의한 유로전환부에서 환기 모드시 동작 상태를 보여주는 평면도, (b)는 A-A 단면도, (c)는 B-B 단면도Figure 14 (a) is a plan view showing an operating state in the ventilation mode in the flow path switching unit according to another embodiment of the present invention, (b) is a cross-sectional view A-A, (c) is a cross-sectional view B-B
도 15(a)는 도 14의 유로전환부에서 유로전환이 이루어져 환기 모드를 제외한 나머지 모드에서의 동작 상태를 보여주는 평면도, (b)는 C-C 단면도, (c)는 D-D 단면도Figure 15 (a) is a plan view showing the operating state in the remaining mode except the ventilation mode by the flow path switching unit of Figure 14, (b) is a C-C cross-sectional view, (c) is a D-D cross-sectional view
도 16은 수분공급부가 제1공기유로에 배치된 실시예를 보여주는 도면16 is a view showing an embodiment in which the water supply unit is disposed in the first air passage;
** 부호의 설명 **** Explanation of Codes **
110 : 제1공기유로 120 : 프리 필터110: first air flow path 120: pre-filter
130 : 기능성 필터 140 : 헤파 필터130: functional filter 140: hepa filter
150 : 제1열교환기 160 : 제1송풍기150: first heat exchanger 160: first blower
210 : 제2공기유로 220 : 프리 필터210: second air flow path 220: pre-filter
230 : 미디엄 필터 250 : 제2열교환기230: medium filter 250: second heat exchanger
260 : 제2송풍기 300 : 로터부재260: second blower 300: rotor member
310 : 제1영역 320 : 제2영역310: first region 320: second region
330 : 제3영역 400,700 : 유로전환부330: third zone 400,700: flow path switching unit
410 : 제1유입구 420 : 제2유입구410: first inlet 420: second inlet
430 : 제1배출구 440 : 제2배출구430: first outlet 440: second outlet
500,500-1 : 수분공급부 510 : 제3송풍기500,500-1: Moisture supply 510: third blower
520,520-1 : 가습필터 530,530-1 : 수조520,520-1: Humidification filter 530,530-1: Water tank
540 : 가습공기유로 550,550-1 : 급수밸브540: humidification air flow path 550,550-1: water supply valve
560,560-1 : 배수밸브 570,570-1 : 급수관560,560-1: Drain valve 570,570-1: Water supply pipe
580,580-1 : 배수관 600 : 히트펌프580,580-1: Drain pipe 600: Heat pump
701 : 제1공간부 702 : 제2공간부701: first space part 702: second space part
703 : 제3공간부 704 : 제4공간부703: third space part 704: fourth space part
710 : 제1유입구 711 : 제1연통구멍710: first inlet 711: first communication hole
712 : 제2연통구멍 713 : 제3연통구멍712: second communication hole 713: third communication hole
714 : 제4연통구멍 720 : 제2유입구714: fourth communication hole 720: second inlet
750 : 커버플레이트 760 : 전열교환기750: cover plate 760: heat exchanger
791,792,793,794 : 격벽791,792,793,794: bulkhead
이하 첨부한 도면을 참조하여 본 발명의 바람직한 실시예에 대한 구성 및 작용을 상세히 설명하면 다음과 같다. Hereinafter, the configuration and operation of the preferred embodiment of the present invention will be described in detail with reference to the accompanying drawings.
<제1실시예>First Embodiment
도 1을 참조하여 본 발명의 제1실시예에 의한 공기조화기의 구성에 대해 설명한다.A configuration of an air conditioner according to a first embodiment of the present invention will be described with reference to FIG.
제1실시예의 공기조화기는, 양단이 실내와 연결된 제1공기유로(110), 양단이 실외와 연결된 제2공기유로(210), 상기 제1공기유로(110) 상에 구비된 제1영역(310)과 상기 제2공기유로(210) 상에 구비된 제2영역(320)과 회전에 의해 상기 제1영역(310)과 제2영역(320)을 교대로 통과하는 흡착재로 이루어진 로터부재(300), 제1열교환기(150)와 제2열교환기(250)가 응축기와 증발기로 교대로 기능하도록 함으로써 상기 제1공기유로(110)를 유동하는 공기의 가열 및 냉각이 이루어지도록 하는 히트펌프(600), 상기 로터부재(300)의 회전과 상기 히트펌프(600)를 제어하는 제어부(미도시)를 포함한다.The air conditioner of the first embodiment includes a first air passage 110 connected at both ends to an interior, a second air passage 210 connected at both ends to an exterior, and a first area provided on the first air passage 110. A rotor member made of 310 and a second region 320 provided on the second air passage 210 and an adsorbent which alternately passes through the first region 310 and the second region 320 by rotation. 300, the heat pump to heat and cool the air flowing through the first air flow path 110 by alternately functioning the first heat exchanger 150 and the second heat exchanger 250 as a condenser and an evaporator. 600, a control unit (not shown) for controlling the rotation of the rotor member 300 and the heat pump 600.
상기 제1공기유로(110)는, 일측의 실내공기가 유입되는 입구부(110a)와, 상기 로터부재(300)의 제1영역(310)을 통과하는 중간부(110b)와, 상기 유입된 실내공기를 다시 실내의 타측으로 토출하기 위한 출구부(110c)로 이루어진다. 상기 제1공기유로(110)는 공기가 유동하는 경로를 나타내는 것으로서, 공기가 유동하는 배관뿐만 아니라 공기가 유동하는 공간만으로 구성될 수도 있으며, 상기 제2공기유로(210)도 동일하다.The first air passage 110 includes an inlet portion 110a through which one side indoor air flows, an intermediate portion 110b passing through the first region 310 of the rotor member 300, and the inflow portion. It consists of an outlet 110c for discharging the indoor air back to the other side of the room. The first air passage 110 indicates a path through which air flows, and may be configured not only with a pipe through which air flows, but also with a space through which air flows, and the second air passage 210 is also the same.
상기 제1공기유로(110)에는, 복수의 필터(120,130,140), 제1열교환기(150), 제1송풍기(160)가 순차 구비된다.The first air passage 110 includes a plurality of filters 120, 130, 140, a first heat exchanger 150, and a first blower 160.
상기 복수의 필터(120,130,140)는 프리 필터(120)와, 기능성 필터(130), 헤파 필터(140)로 이루어질 수 있다.The plurality of filters 120, 130, and 140 may include a pre-filter 120, a functional filter 130, and a hepa filter 140.
상기 프리 필터(120)는 제1공기유로(110)의 입구부(110a)에 구비되어 실내공기에 포함된 비교적 큰 입자의 이물질을 여과하게 된다. 상기 기능성 필터(130)는 항균, 항바이러스, 알레르기 등의 유해요소를 제거하기 위한 필터이다. 상기 헤파 필터(140)는 공기 중의 미립자를 여과하기 위한 고성능 필터이다.The pre-filter 120 is provided at the inlet portion 110a of the first air passage 110 to filter foreign matter of relatively large particles contained in the indoor air. The functional filter 130 is a filter for removing harmful elements such as antibacterial, antiviral, allergic and the like. The hepa filter 140 is a high performance filter for filtering particulates in the air.
상기 제1열교환기(150)는 상기 히트펌프(600)를 구성하는 것으로서 응축기 또는 증발기로 기능한다.The first heat exchanger 150 constitutes the heat pump 600 and functions as a condenser or an evaporator.
상기 제1송풍기(160)는 실내공기 또는 실외공기를 제1공기유로(110)로 흡입하기 위한 흡입력을 제공하는 것으로서, 제1공기유로(110)의 출구부(110c) 측에 구비되어 있다.The first blower 160 provides suction power for sucking indoor air or outdoor air into the first air flow path 110. The first blower 160 is provided at the outlet 110c of the first air flow path 110.
상기 제2공기유로(210)는, 일측의 실외공기가 유입되는 입구부(210a)와, 상기 로터부재(300)의 제2영역(320)을 통과하는 중간부(210b)와, 상기 유입된 실외공기를 다시 실외의 타측으로 토출하기 위한 출구부(210c)로 이루어진다.The second air flow path 210 includes an inlet portion 210a through which one side outdoor air flows, an intermediate portion 210b passing through the second region 320 of the rotor member 300, and the inflow portion. It consists of an outlet 210c for discharging the outdoor air back to the other side of the outdoor.
상기 제2공기유로(210)에는, 복수의 필터(220,230), 제2송풍기(260), 제2열교환기(250), 댐퍼(280-1)가 순차 구비된다.A plurality of filters 220 and 230, a second blower 260, a second heat exchanger 250, and a damper 280-1 are sequentially provided in the second air passage 210.
상기 제2송풍기(260)는 실외공기 또는 실내공기를 제2공기유로(210)로 흡입하기 위한 흡입력을 제공하는 것으로서, 상기 제2영역(320)의 입구 측에 연결된 제2공기유로(210)의 중간부(210b)에 구비되어 있다. The second blower 260 provides suction power for sucking outdoor air or indoor air into the second air flow path 210, and the second air flow path 210 connected to the inlet side of the second area 320. It is provided in the middle portion (210b) of.
상기 제2열교환기(250)는 상기 히트펌프(600)를 구성하는 것으로서 응축기 또는 증발기로 기능한다. The second heat exchanger 250 constitutes the heat pump 600 and functions as a condenser or an evaporator.
상기 댐퍼(280-1)는 상기 제2열교환기(250)와 제2영역(320) 사이로서, 상기 제2공기유로(210)의 중간부(210b)와 바이패스유로(285-1)가 교차하는 지점에 구비된다. 상기 바이패스유로(285-1)는 실외로 연결되어 있다. The damper 280-1 is between the second heat exchanger 250 and the second region 320, and an intermediate portion 210b of the second air passage 210 and a bypass passage 285-1 are formed in the damper 280-1. It is provided at the point of intersection. The bypass passage 285-1 is connected outdoors.
상기 댐퍼(280-1)는 제2공기유로(210)의 중간부(210b)를 유동하는 공기를 제2영역(320)과 바이패스유로(285-1) 중 어느 하나의 방향으로 유동시키기 위해 유로 방향을 전환하기 위한 것이다.The damper 280-1 is configured to flow air flowing in the middle portion 210b of the second air flow path 210 in either of the second region 320 and the bypass flow path 285-1. This is to change the flow direction.
상기 제2공기유로(210)의 중간부(210b)와 바이패스유로(285-1)가 연결되도록 상기 댐퍼(280-1)의 방향이 설정된 경우에는, 제2공기유로(210)의 입구부(210a)를 통해 유입된 실외의 차가운 공기가 바이패스유로(285-1)를 통해 다시 실외로 배출되므로, 제2영역(320)으로는 실외공기가 유동하지 않는다. 만약 차가운 실외공기가 제2영역(320)을 통과하게 되면 제2영역(320)에서 온도가 하락한 흡착재가 회전하여 제1영역(310)에 위치하게 되므로, 실내로 유입되는 공기의 온도가 떨어져 열손실이 발생하게 된다. 따라서 댐퍼(280-1)와 바이패스유로(285-1)가 구비됨으로 인해 차가운 실외공기로 인해 열손실이 발생하는 것을 방지할 수 있다.When the direction of the damper 280-1 is set such that the intermediate portion 210b of the second air passage 210 and the bypass passage 285-1 are connected, the inlet portion of the second air passage 210 is set. Since outdoor cold air introduced through 210a is discharged to the outside through the bypass flow path 285-1, outdoor air does not flow to the second region 320. If the cold outdoor air passes through the second region 320, the adsorbent whose temperature has fallen in the second region 320 rotates and is positioned in the first region 310, so that the temperature of the air flowing into the room is reduced. Loss occurs. Therefore, since the damper 280-1 and the bypass passage 285-1 are provided, heat loss can be prevented from occurring due to cold outdoor air.
상기 로터부재(300)에는 그 내부에 공기의 수분을 흡착하기 위한 흡착재가 구비된다. 상기 제1영역(310)은 제1공기유로(110)에 연결되는 영역이고, 제2영역(320)은 제2공기유로(210)에 연결된 영역이다. The rotor member 300 is provided with an adsorbent for adsorbing moisture in the air therein. The first area 310 is an area connected to the first air flow path 110, and the second area 320 is an area connected to the second air flow path 210.
상기 제1영역(310)과 제2영역(320) 사이에는 수분공급부(500)에 의해 수분이 공급되는 제3영역(330)이 형성되어 있다. 상기 제2영역(320)에서는 실외공기가 통과하면서 이물질이 흡착될 수 있다. 이렇게 제2영역(320)에서 이물질이 흡착된 흡착재에 수분을 공급하게 되면 곰팡이가 생길 수 있어 청결한 상태로 유지하기 어렵게 된다. A third region 330 is provided between the first region 310 and the second region 320 to supply moisture by the moisture supply unit 500. In the second region 320, foreign matter may be adsorbed while passing outdoor air. As such, when water is supplied to the adsorbent in which the foreign matter is adsorbed in the second region 320, mold may occur, making it difficult to maintain a clean state.
따라서 본 실시예에서는 수분공급부(500)로부터 공급되는 수분이 제1영역(310) 및 제2영역(320)과 독립된 제3영역(330)에 공급되는 것으로 구성하였다. Therefore, in the present embodiment, the moisture supplied from the water supply unit 500 is configured to be supplied to the third region 330 independent of the first region 310 and the second region 320.
다만, 제3영역(330)이 독립적으로 형성되지 않고 제3영역(330)을 제2영역(320)과 하나의 영역으로 구성하는 것도 가능하다. 이 경우 수분공급부(500)에서 공급되는 수분은 제2영역(320)에 공급되는 것으로 구성할 수 있다.However, the third region 330 may not be formed independently, and the third region 330 may be configured as one region with the second region 320. In this case, the moisture supplied from the moisture supply unit 500 may be configured to be supplied to the second region 320.
제습 모드시 제1영역(310)에 위치한 흡착재는 제1공기유로(110)를 유동하는 실내공기에 함유된 수분을 흡착하고, 수분을 흡착한 흡착재가 회전하여 제2영역(320)에 위치하게 되면, 제2공기유로(210)를 유동하는 공기에 수분을 방출시킴으로써 실내공기를 제습하게 된다. 이와 반대로 가습모드시 제3영역(330)에 위치한 흡착재는 가습공기유로(540)를 유동하는 공기로부터 수분을 흡착하고, 수분을 흡착한 흡착재가 회전하여 제1영역(310)에 위치하게 되면 제1공기유로(110)를 유동하는 공기에 수분을 방출시킴으로써 실내공기를 가습하게 된다.In the dehumidification mode, the adsorbent located in the first region 310 adsorbs moisture contained in the indoor air flowing through the first air passage 110, and the adsorbent adsorbing the moisture rotates to be positioned in the second region 320. As a result, the indoor air is dehumidified by releasing moisture into the air flowing through the second air flow path 210. On the contrary, in the humidification mode, the adsorbent located in the third region 330 adsorbs moisture from air flowing through the humidified air flow path 540, and when the adsorbent adsorbing the moisture is rotated and positioned in the first region 310, The indoor air is humidified by releasing moisture to the air flowing through the one air flow path 110.
상기 제1영역(310)과 제2영역(320) 및 제3영역(330)은 서로 분리되어 있고, 상기 로터부재(300)의 흡착재는 중앙에 구비된 축을 중심으로 구동부(미도시)에 의해 회전하도록 되어 있다.The first region 310, the second region 320, and the third region 330 are separated from each other, and the adsorbent of the rotor member 300 is driven by a driving unit (not shown) about an axis provided at the center thereof. It is supposed to rotate.
상기 흡착재의 표면에는 고분자 제습제가 코팅될 수 있다. 상기 고분자 제습제(Desiccant Polymer)는 전해질 고분자 물질로 수분과 접촉시 이온화가 되는데, 흡착재에 수분이 접촉하게 되면 이온 농도차에 의한 삼투압 현상으로 세균이 흡착재로부터 제거되므로, 항균 효과를 발생시킨다. 또한, 악취를 발생시키는 암모니아나 황화수소 등도 극성 분자로 이온화된 고분자 제습제에 달라붙어 탈취효과를 발생시킨다. 상기 코팅되는 고분자 제습제로는 실리카(Silica) 또는 지올라이트(zeolite)가 사용될 수 있다.The surface of the adsorbent may be coated with a polymer dehumidifier. The polymer dehumidifying agent (Desiccant Polymer) is an electrolyte polymer material and is ionized when contacted with water. When moisture comes into contact with the adsorbent, bacteria are removed from the adsorbent due to the osmotic pressure caused by the difference in ion concentration, thereby generating an antibacterial effect. In addition, ammonia, hydrogen sulfide, and the like, which cause odors, also adhere to polymer dehumidifiers ionized with polar molecules to generate a deodorizing effect. As the coated polymer dehumidifying agent, silica or zeolite may be used.
상기 유로전환부(400)는, 실내공기가 유입되는 제1유입구(410), 실외공기가 유입되는 제2유입구(420), 상기 제1영역(310)과 연결되는 제1배출구(430), 상기 제2영역(320)과 연결되는 제2배출구(440)로 이루어진다. 상기 유로전환부(400)는 일례로 사방밸브로 구성될 수 있으며, 그 내부에는 상기 제1유입구(410)를 제1배출구(430) 또는 제2배출구(440)로 연결시키고, 상기 제2유입구(420)를 제1배출구(430) 또는 제2배출구(440)로 연결되도록 연결 방향 전환이 이루어지는 방향전환게이트(미도시)가 구비될 수 있다.The flow path switching unit 400 may include a first inlet 410 through which indoor air is introduced, a second inlet 420 through which outdoor air is introduced, a first outlet 430 connected with the first region 310, The second outlet 440 is connected to the second region 320. The flow path switching unit 400 may be configured as a four-way valve, for example, the first inlet 410 is connected to the first outlet 430 or the second outlet 440 therein, and the second inlet A turning gate (not shown) may be provided to change the connection direction so that the 420 is connected to the first outlet 430 or the second outlet 440.
상기 수분공급부(500)는, 가습공기유로(540) 상에 구비되어 가습공기를 유동시키기 위한 제3송풍기(510), 상기 제3송풍기(510)에 의해 공급되는 공기가 통과할 때 수분을 공급하기 위한 가습필터(520), 상기 가습필터(520)의 하단 일부를 침지시키기 위한 물이 저장되는 수조(530), 상기 수조(530)에 물을 공급하기 위한 급수밸브(550), 상기 수조(530)의 물을 배수하기 위한 배수밸브(560)로 이루어진다.The moisture supply unit 500 is provided on the humidified air flow path 540 to supply moisture when the air supplied by the third blower 510 and the third blower 510 to flow the humidified air passes. Humidification filter 520 to the water, the water tank 530 is stored for immersing a portion of the lower end of the humidification filter 520, the water supply valve 550 for supplying water to the water tank 530, the water tank ( It consists of a drain valve 560 for draining the water of 530.
상기 수조(530) 내부에는 물이 소정의 수위로 채워져 있고, 상기 가습필터(520)는 상기 물에 하단 일부가 침지되도록 구비되어 있다. 상기 가습필터(520)는 구동부(미도시)에 의해 회전하는 것으로 구성할 수 있다. Water is filled in the water tank 530 at a predetermined level, and the humidification filter 520 is provided so that a portion of the lower end is immersed in the water. The humidification filter 520 may be configured to rotate by a driving unit (not shown).
상기 가습필터(520)를 공기가 통과하게 되면 가습필터(520)에 흡착된 수분이 증발하면서 습한공기가 되어 가습공기유로(540)를 따라 제3영역(330)으로 유동한다. 상기 제3영역(330)의 흡착재에 수분이 흡착된 후 건조하게 된 공기는 다시 제3송풍기(510)에 의해 가습필터(520)로 유동하게 된다. 이와 같이 가습공기유로(540)는 폐(閉)유로로 이루어질 수 있다.When air passes through the humidification filter 520, the moisture adsorbed on the humidification filter 520 evaporates to become humid air and flows along the humidification air flow path 540 to the third region 330. After moisture is adsorbed to the adsorbent of the third region 330, the dried air flows again to the humidification filter 520 by the third blower 510. As such, the humidified air flow path 540 may be formed as a waste flow path.
상기 급수밸브(550)가 구비된 급수관(570)은 수도물이 공급되도록 연결될 수 있다. 상기 배수밸브(560)가 구비된 배수관(580)은 공기조화기의 외부로 연결되어 수조(530)의 물을 외부로 배수 가능하도록 구성되어 있다.The water supply pipe 570 provided with the water supply valve 550 may be connected to supply tap water. The drain pipe 580 provided with the drain valve 560 is connected to the outside of the air conditioner is configured to drain the water of the water tank 530 to the outside.
이와 같이 수분공급부(500)를 구비하게 되면 가습량의 조절이 가능하고, 가습능력을 향상시킬 수 있어 쾌적한 실내환경을 조성할 수 있다.When the moisture supply unit 500 is provided in this way, the amount of humidification can be adjusted, and the humidification ability can be improved, thereby creating a comfortable indoor environment.
본 실시예에서는 가습필터(520)가 물에 일부가 침지되는 것으로 예시하였으나, 가습필터(520)에 물을 분사하기 위한 분사수단을 구비하고, 상기 분사수단에서 분사된 물이 가습필터(520)를 적시는 것으로 구성할 수도 있다. 이 경우 급수관(570)의 단부에는 분사수단으로서 노즐이 구비될 수 있다. In the present exemplary embodiment, the humidification filter 520 is illustrated as being partially immersed in water. However, the humidification filter 520 is provided with spraying means for spraying water onto the humidifying filter 520, and the water sprayed from the spraying means is humidifying filter 520. It can also be configured to soak. In this case, the end of the water supply pipe 570 may be provided with a nozzle as the injection means.
상기 가습공기유로(540)의 내부에 세균이 증식하는 경우 이를 제거하기 위해 자외선을 조사하는 자외선 살균램프를 구비함으로써 가습공기유로(540)를 위생적으로 유지할 수 있다.When the bacteria grow in the humidified air passage 540, the humidified air passage 540 may be hygienically provided by providing an ultraviolet germicidal lamp that irradiates ultraviolet rays to remove the bacteria.
상기 히트펌프(600)는 난방시를 기준으로 설명하면, 냉매를 고온 고압의 기체 냉매로 압축시키는 압축기(610), 상기 압축기(610)에서 압축된 냉매를 중온 고압의 액체 냉매로 응축시키는 제1열교환기(150), 상기 제1열교환기(150)에서 응축된 냉매를 저온 저압의 냉매로 감압시키는 팽창밸브(630), 상기 팽창밸브(630)에서 감압된 냉매를 저온 저압의 기체 냉매로 증발시키는 제2열교환기(250), 상기 압축기(610)의 출구 측에 설치되어 냉방과 난방시 냉매의 흐름 방향을 전환시키는 사방밸브(620)로 이루어진다.When the heat pump 600 is described based on the heating time, the compressor 610 compresses the refrigerant into a gas refrigerant of high temperature and high pressure, and a first condensation of the refrigerant compressed by the compressor 610 into a liquid refrigerant of medium temperature and high pressure. The heat exchanger 150, the expansion valve 630 for reducing the refrigerant condensed in the first heat exchanger 150 to a low temperature low pressure refrigerant, the refrigerant reduced in the expansion valve 630 to evaporate the gas refrigerant of low temperature low pressure The second heat exchanger 250 to be installed at the outlet side of the compressor 610 consists of a four-way valve 620 for switching the flow direction of the refrigerant during cooling and heating.
이와 같은 히트펌프(600)가 난방 작동하는 경우, 냉매는 압축기(610), 사방밸브(620), 제1열교환기(150), 팽창밸브(630), 제2열교환기(250), 사방밸브(620), 압축기(610)를 따라 순환한다. 이하에서는 이와 같은 냉매의 순환경로를 제1냉매순환경로라 한다. 이 경우 제1열교환기(150)는 응축기로 작동되어 제1공기유로(110)를 유동하는 공기를 가열하고, 제2열교환기(250)는 증발기로 작동되어 제2공기유로(210)를 유동하는 공기를 냉각시킨다.When the heat pump 600 is heated, the refrigerant is a compressor 610, a four-way valve 620, a first heat exchanger 150, an expansion valve 630, a second heat exchanger 250, and a four-way valve. 620, circulating along the compressor 610. Hereinafter, such a circulation path of the refrigerant is referred to as a first refrigerant circulation environment path. In this case, the first heat exchanger 150 is operated as a condenser to heat the air flowing through the first air flow path 110, and the second heat exchanger 250 is operated as an evaporator to flow the second air flow path 210. To cool the air.
상기 히트펌프(600)가 냉방 작동하는 경우, 냉매는 압축기(610), 사방밸브(620), 제2열교환기(250), 팽창밸브(630), 제1열교환기(150), 사방밸브(620), 압축기(610)를 따라 순환한다. 이하에서는 이와 같은 냉매의 순환경로를 제2냉매순환경로라 한다. 이 경우 제2열교환기(250)는 응축기로 작동되어 제2공기유로(210)를 유동하는 공기를 가열하고, 제1열교환기(150)는 증발기로 작동되어 제1공기유로(110)를 유동하는 공기를 냉각시킨다.When the heat pump 600 is cooling operation, the refrigerant is a compressor 610, four-way valve 620, the second heat exchanger 250, expansion valve 630, the first heat exchanger 150, four-way valve ( 620, circulating along the compressor 610. Hereinafter, such a circulation path of the refrigerant is referred to as a second refrigerant circulation environment path. In this case, the second heat exchanger 250 is operated as a condenser to heat the air flowing through the second air flow path 210, and the first heat exchanger 150 is operated as an evaporator to flow the first air flow path 110. To cool the air.
상기 제1열교환기(150)에서 가열되거나 냉각된 공기는 로터부재(300)의 제1영역(310) 방향으로 유동하고, 상기 제2열교환기(250)에서 가열되거나 냉각된 공기는 로터부재(300)의 제2영역(320) 방향으로 유동한다.The air heated or cooled in the first heat exchanger 150 flows in the direction of the first region 310 of the rotor member 300, and the air heated or cooled in the second heat exchanger 250 includes the rotor member ( It flows in the direction of the second area 320 of 300.
이하, 도 2 내지 도 7을 참조하여 본 발명에 의한 공기조화기의 제어방법에 대해 설명한다. Hereinafter, a method of controlling an air conditioner according to the present invention will be described with reference to FIGS. 2 to 7.
도 2를 참조하여 무급수 가습 모드에 대해 설명한다.The water-free water humidification mode will be described with reference to FIG. 2.
무급수 가습 모드란, 수분공급부(500)에서 제3영역(330)으로 수분이 공급되지 않은 상태에서 실외공기에 포함된 수분을 이용하여 실내 가습을 하는 모드를 의미한다. The non-water humidification mode refers to a mode in which the indoor humidification is performed using moisture included in outdoor air in a state in which moisture is not supplied from the moisture supply unit 500 to the third region 330.
유로전환부(400)는 제1유입구(410)와 제1배출구(430)가 연결되고, 제2유입구(420)와 제2배출구(440)가 연결되도록 방향전환게이트는 제1위치로 설정된다. 또한, 제1송풍기(160)와 제2송풍기(260) 및 압축기(610)가 온(On)되며, 로터부재(300)는 회전한다. 댐퍼(280-1)는 제2송풍기(260)에서 공급된 실외공기가 제2영역(320) 방향으로 유동하도록 방향이 설정된다.Flow path switching unit 400 is the first inlet 410 and the first outlet 430 is connected, the second inlet 420 and the second outlet 440 so that the direction switching gate is connected It is set to the first position. In addition, the first blower 160, the second blower 260, and the compressor 610 are turned on, and the rotor member 300 rotates. The damper 280-1 is set in a direction such that outdoor air supplied from the second blower 260 flows in the direction of the second region 320.
상기 압축기(610)가 온(On)되면, 냉매는 상기 제1냉매순환경로를 따라 순환한다. 이 경우 제1열교환기(150)는 응축기로 작동되어 제1공기유로(110)를 유동하는 공기를 가열하고, 제2열교환기(250)는 증발기로 작동된다. When the compressor 610 is turned on, the refrigerant circulates along the first refrigerant circulation environment. In this case, the first heat exchanger 150 is operated as a condenser to heat the air flowing through the first air flow path 110, and the second heat exchanger 250 is operated as an evaporator.
한편, 제1송풍기(160)의 가동에 의해 제1공기유로(110)의 입구부(110a)를 통해 유입된 실내공기는 프리 필터(120), 유로전환부(400)의 제1유입구(410)와 제1배출구(430), 기능성 필터(130), 헤파 필터(140)를 순차 거친 후 제1열교환기(150)를 통과하면서 가열된 후 제1영역(310)을 통과한다.On the other hand, the indoor air introduced through the inlet 110a of the first air passage 110 by the operation of the first blower 160, the first inlet 410 of the pre-filter 120, the flow path switching unit 400 ), The first outlet 430, the functional filter 130, and the HEPA filter 140 are sequentially passed through the first heat exchanger 150 and then heated to pass through the first region 310.
또한, 제2송풍기(260)의 가동에 의해 제2공기유로(210)의 입구부(210a)를 통해 유입된 실외공기는 필터(220,230), 유로전환부(400)의 제2유입구(420)와 제2배출구(440), 제2열교환기(250)를 순차 거친 후 제2영역(320)을 통과한다. 이 경우 실외공기는 제2영역(320)의 흡착재에 수분이 흡착되고, 상기 제2열교환기(250)가 증발기로 작동하여 통과하는 실외공기의 온도가 낮아져 수분의 흡착량이 많아지게 된다.In addition, the outdoor air introduced through the inlet portion 210a of the second air passage 210 by the operation of the second blower 260 is a filter (220, 230), the second inlet 420 of the flow path switching unit 400 After passing through the second outlet 440, the second heat exchanger 250 in sequence and passes through the second region (320). In this case, moisture is adsorbed to the adsorbent in the second region 320, and the temperature of the outdoor air passing through the second heat exchanger 250 as the evaporator is lowered, thereby increasing the amount of moisture adsorbed.
상기 제2영역(320)에서 실외공기의 수분이 흡착된 흡착재가 로터부재(300)의 회전에 의해 제1영역(310)에 위치하면, 제1열교환기(150)를 통과하면서 가열된 실내공기가 제1영역(310)에 흡착재를 통과하면서 수분을 증발시켜 습한 실내공기를 형성시킨다. 상기 제1영역(310)을 통과한 실내공기는 제1공기유로(110)의 출구부(110c)를 거쳐 실내로 배출된다.When the adsorbent in which the moisture of the outdoor air is absorbed in the second region 320 is positioned in the first region 310 by the rotation of the rotor member 300, the indoor air heated while passing through the first heat exchanger 150. Moisture is evaporated while passing through the adsorbent in the first region 310 to form wet indoor air. The indoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110.
한편, 상기 제1열교환기(150)에서 가열로 인해 실내공기는 온도가 높아진 후 실내로 배출되므로, 실내 난방 효과도 있다.On the other hand, since the indoor air is discharged to the room after the temperature is increased due to the heating in the first heat exchanger 150, there is also an indoor heating effect.
도 3을 참조하여 급수 가습 모드에 대해 설명한다.The water supply humidification mode will be described with reference to FIG. 3.
급수 가습 모드란, 수분공급부(500)에서 제3영역(330)에 수분을 공급하는 상태에서 실내공기를 가습하는 모드를 의미한다.The water supply humidification mode refers to a mode of humidifying indoor air in a state in which water is supplied to the third region 330 by the water supply unit 500.
유로전환부(400)에서 방향전환게이트가 제1위치로 설정되고, 제1송풍기(160)와 제2송풍기(260)가 온(On)되고, 압축기(610)가 온(On)되어 냉매가 제1냉매순환경로를 따라 순환되며, 로터부재(300)가 회전하는 것은 무급수 가습 모드와 동일하다.In the flow path switching unit 400, the direction switching gate is set to the first position, the first blower 160 and the second blower 260 are turned on, and the compressor 610 is turned on, so that the refrigerant is Circulated along the first refrigerant flow path, the rotation of the rotor member 300 is the same as the water-free humidification mode.
급수 가습 모드에서는, 수분공급부(500)에서 제3영역(330)으로 수분이 공급되고, 댐퍼(280-1)의 방향이 바이패스유로(285-1)로 연결된다는 점에서 무급수 가습 모드와 차이가 있다.In the water supply humidification mode, water is supplied from the water supply unit 500 to the third region 330, and the damper 280-1 direction is connected to the bypass flow path 285-1 so that the water supply humidification mode is different from the water supply humidification mode. There is a difference.
제1송풍기(160)의 가동에 의해 실내공기가 제1공기유로(110)를 유동하고, 압축기(610)의 가동에 의해 제1열교환기(150)는 응축기로 작동함으로써 제1공기유로(110)를 유동하는 공기를 가열하게 되며, 제2열교환기(250)는 증발기로 작동한다.Indoor air flows through the first air passage 110 by the operation of the first blower 160, and the first heat exchanger 150 operates as a condenser by operating the compressor 610. Heat the air flowing in), and the second heat exchanger 250 operates as an evaporator.
한편, 수분공급부(500)는 제3영역(330)에 수분의 공급을 위해 급수밸브(550)가 개방되어 수조(530)에는 물이 채워져 있으며, 제3송풍기(510)가 온(On)되어 가습공기유로(540)를 순환하는 공기는 가습필터(520)를 거치면서 습한공기가 되어 로터부재(300)의 제3영역(330)으로 유동한다. 상기 제3영역(330)에서 흡착된 수분은 로터부재(300)의 회전에 의해 제1영역(310)에 위치하게 된다. Meanwhile, the water supply unit 500 has a water supply valve 550 open to supply water to the third region 330 so that the water tank 530 is filled with water, and the third blower 510 is turned on. The air circulating in the humidifying air passage 540 flows into the third region 330 of the rotor member 300 as the humid air passes through the humidifying filter 520. Water adsorbed in the third region 330 is positioned in the first region 310 by the rotation of the rotor member 300.
상기 제1열교환기(150)를 통과하면서 가열된 실내공기는 로터부재(300)의 제1영역(310)을 통과하게 된다. 이 경우 제1영역(310)에는 제3영역(330)에서 수분을 흡착한 흡착재가 회전되어 위치하고 있기 때문에, 상기 가열된 실내공기가 제1영역(310)을 통과하면서 흡착재의 수분을 증발시켜 습한 실내공기를 형성시킨다. 상기 제1영역(310)을 통과한 실내공기는 제1공기유로(110)의 출구부(110c)를 거쳐 실내로 배출된다. 이로 인해 실내 가습과 함께 실내 난방이 이루어진다.The indoor air heated while passing through the first heat exchanger 150 passes through the first region 310 of the rotor member 300. In this case, since the adsorbent absorbing the moisture in the third region 330 is rotated and positioned in the first region 310, the heated indoor air passes through the first region 310 to evaporate the moisture of the absorbent. Create indoor air. The indoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110. This results in room heating with room humidification.
이 경우 댐퍼(280-1)는 제2공기유로(210)의 중간부(210b)에서 바이패스유로(285-1)로 연결되도록 방향이 설정되어, 상기 제2열교환기(250)를 통과한 실외공기는 제2영역(320)을 통과하지 않고 바이패스유로(285-1)를 통해 실외로 배출된다. 만약, 차가운 실외공기가 제2영역(320)을 통과한 후 제2공기유로(210)의 출구부(210c)를 통해 외부로 배출되도록 한다면, 흡착재가 제2영역(320)에서 제1영역(310)으로 회전함으로 인해 차가운 실외공기의 온도가 전달되어 실내 난방을 위한 에너지가 더 많이 소모되는 문제점이 있다. 이에 본원발명은 차가운 실외공기가 제2영역(320)을 통과하지 않고 바이패스유로(285-1)를 통해 실외로 배출되도록 함으로써 에너지 손실을 최소화할 수 있다.In this case, the damper 280-1 is set in a direction such that the damper 280-1 is connected to the bypass passage 285-1 from the middle portion 210b of the second air passage 210, and passes through the second heat exchanger 250. The outdoor air is discharged to the outside through the bypass passage 285-1 without passing through the second region 320. If the cold outdoor air passes through the second region 320 and then is discharged to the outside through the outlet portion 210c of the second air flow passage 210, the adsorbent is absorbed from the second region 320 in the first region ( Due to the rotation to 310, the temperature of the cold outdoor air is transferred, which causes more energy for indoor heating. Accordingly, the present invention may minimize energy loss by allowing the cold outdoor air to be discharged to the outside through the bypass passage 285-1 without passing through the second region 320.
도 4를 참조하여 제습 모드에 대해 설명한다.The dehumidification mode will be described with reference to FIG. 4.
제습 모드가 가동되면, 유로전환부(400)에서 방향전환게이트가 제1위치로 설정되고, 제1송풍기(160)와 제2송풍기(260) 및 압축기(610)가 온(On)되고, 로터부재(300)가 회전하고, 수분공급부(500)에서 수분을 공급하지 않으며, 댐퍼(280-1)의 유로 방향이 실외공기가 제2공기유로(210)의 출구부(210c) 방향으로 유동하도록 설정되는 것은 무급수 가습 모드와 동일하다. When the dehumidification mode is activated, the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160, the second blower 260, and the compressor 610 are turned on. The member 300 rotates, does not supply water from the water supply unit 500, and the flow direction of the damper 280-1 flows in the direction of the outlet 210 c of the second air flow path 210 to the outdoor air. The setting is the same as in the no water humidification mode.
제습 모드시 압축기(610)가 온(On)되면, 냉매는 제2냉매순환경로를 따라 순환한다. 이 경우 제1열교환기(150)는 증발기로 작동하고, 제2열교환기(250)는 응축기로 작동한다.When the compressor 610 is turned on in the dehumidification mode, the refrigerant circulates along the second refrigerant circulation environment path. In this case, the first heat exchanger 150 operates as an evaporator, and the second heat exchanger 250 operates as a condenser.
제1송풍기(160)가 가동되면 제1공기유로(110)의 입구부(110a)를 통해 유입된 실내공기는 제1열교환기(150)를 통과하면서 냉각되고, 냉각된 공기는 제1영역(310)을 통과하면서 실내공기에 포함된 수분이 제1영역(310)의 흡착재에 흡착된다. 상기 제1영역(310)에서 수분이 제거된 실내공기는 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출된다. 이 경우 실내로 배출되는 공기의 온도는 낮아지므로 실내 냉방 효과도 있다.When the first blower 160 is operated, the indoor air introduced through the inlet 110a of the first air passage 110 is cooled while passing through the first heat exchanger 150, and the cooled air is cooled in the first region ( Moisture contained in the indoor air while passing through 310 is adsorbed to the adsorbent of the first region 310. The indoor air from which moisture is removed from the first area 310 is discharged into the room through the outlet portion 110c of the first air passage 110. In this case, since the temperature of the air discharged into the room is lowered, there is also an indoor cooling effect.
제2송풍기(260)가 가동되면 제2공기유로(210)의 입구부(210a)를 통해 유입된 실외공기는 제2열교환기(250)를 통과하면서 가열되고, 가열된 공기는 제2영역(320)을 통과하게 된다. 상기 제1영역(310)에서 실내공기의 수분을 흡착한 로터부재(300)의 흡착재가 회전하여 제2영역(320)에 위치하게 되면, 제2영역(320)을 통과하는 가열된 실외공기에 의해 흡착재의 수분이 증발되어 실외공기는 습한공기 상태가 되어 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출된다.When the second blower 260 is operated, outdoor air introduced through the inlet portion 210a of the second air flow path 210 is heated while passing through the second heat exchanger 250, and the heated air is heated in the second area ( 320). When the adsorbent of the rotor member 300, which absorbs moisture of indoor air in the first region 310, is rotated and positioned in the second region 320, the heated outdoor air passing through the second region 320. As a result, the moisture of the adsorbent is evaporated so that the outdoor air is in a humid air state and discharged to the outside through the outlet portion 210c of the second air flow path 210.
이와 같은 과정에 의해 실내공기의 제습이 이루어져, 쾌적한 실내 환경을 유지할 수 있다.The dehumidification of the indoor air is made by such a process, thereby maintaining a comfortable indoor environment.
도 5를 참조하여 냉방 모드에 대해 설명한다.A cooling mode will be described with reference to FIG. 5.
냉방 모드에서는, 유로전환부(400)에서 방향전환게이트가 제1위치로 설정되고, 제1송풍기(160)와 제2송풍기(260)가 온(On)되고, 압축기(610)가 온(On)되어 냉매가 제2냉매순환경로를 따라 순환하며, 수분공급부(500)에서 수분을 공급하지 않는다는 점에서 제습 모드와 동일하다. 따라서 제1열교환기(150)는 증발기로 작동하고, 제2열교환기(250)는 응축기로 작동한다. 이 경우 로터부재(300)는 회전하는 것으로 구성할 수도 있고, 회전하지 않는 것으로 구성할 수도 있다.In the cooling mode, the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160 and the second blower 260 are turned on, and the compressor 610 is turned on. The refrigerant is circulated along the second refrigerant circulation environment path, and is the same as the dehumidification mode in that the moisture supply unit 500 does not supply water. Thus, the first heat exchanger 150 operates as an evaporator and the second heat exchanger 250 operates as a condenser. In this case, the rotor member 300 may be configured to rotate, or may not be configured to rotate.
냉방 모드에서는 댐퍼(280-1)의 유로 방향이 제2열교환기(250)를 통과한 실외공기가 바이패스유로(285-1)를 통해 실외로 배출되도록 방향이 설정됨으로써 실내 냉방을 위한 열손실을 최소화할 수 있다는 점에서 제습 모드와 차이가 있다.In the cooling mode, the direction of the flow path of the damper 280-1 is set such that the outdoor air passing through the second heat exchanger 250 is discharged to the outside through the bypass flow path 285-1 so that heat loss for indoor cooling is performed. This is different from the dehumidification mode in that it can be minimized.
즉, 댐퍼(280-1)는 제2공기유로(210)의 중간부(210b)에서 바이패스유로(285-1)로 연결되고, 제2영역(320) 방향으로의 연결이 차단되도록 방향이 설정된다. 따라서 상기 제2열교환기(250)를 통과한 실외공기는 제2영역(320)을 통과하지 않고 바이패스유로(285-1)를 통해 실외로 배출된다. 만약, 제2열교환기(250)에서 가열된 실외공기가 제2영역(320)을 통과한 후 제2공기유로(210)의 출구부(210c)를 통해 외부로 배출되도록 한다면, 제2영역(320)에서 열을 흡수한 흡착재가 제1영역(310)으로 회전한 후 제1영역(310)을 통과하는 실내공기에 열을 전달함으로써 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출되는 공기의 온도가 높아지므로, 실내 냉방을 위한 에너지가 더 많이 소모되는 문제점이 있다. 이에 본원발명은 가열된 실외공기가 제2영역(320)을 통과하지 않고 바이패스유로(285-1)를 통해 실외로 배출되도록 함으로써 냉방을 위한 에너지 손실을 최소화할 수 있다.That is, the damper 280-1 is connected to the bypass flow passage 285-1 from the middle portion 210b of the second air flow passage 210, and the direction of the damper 280-1 is cut off in the direction of the second region 320. Is set. Therefore, the outdoor air passing through the second heat exchanger 250 is discharged to the outside through the bypass flow passage 285-1 without passing through the second region 320. If the outdoor air heated in the second heat exchanger 250 passes through the second region 320 and is discharged to the outside through the outlet portion 210c of the second air flow passage 210, the second region ( The adsorbent absorbing heat at 320 rotates to the first region 310 and then transfers heat to indoor air passing through the first region 310 through the outlet 110c of the first air passage 110. Since the temperature of the air discharged into the room is increased, there is a problem that more energy for indoor cooling is consumed. Accordingly, the present invention can minimize the energy loss for cooling by allowing the heated outdoor air to be discharged to the outside through the bypass passage 285-1 without passing through the second region 320.
이와 같은 과정에 의해 실내 냉방이 이루어진다.Indoor cooling is achieved by this process.
도 6을 참조하여 환기 모드에 대해 설명한다.A ventilation mode will be described with reference to FIG. 6.
환기 모드가 가동되면, 제1송풍기(160)와 제2송풍기(260)가 가동된다. 이 경우 유로전환부(400)의 방향전환게이트는 제1유입구(410)와 제2배출구(440)가 연결되고, 제2유입구(420)와 제1배출구(430)가 연결되는 제2위치가 되도록 설정된다. 또한, 압축기(610)는 오프(Off) 상태이고, 수분공급부(500)에서는 수분의 공급이 이루어지지 않는다.When the ventilation mode is activated, the first blower 160 and the second blower 260 are operated. In this case, the direction switching gate of the flow path switching unit 400 has a second position where the first inlet 410 and the second outlet 440 are connected, and the second inlet 420 and the first outlet 430 are connected. Is set to be. In addition, the compressor 610 is in an off state, and the water supply unit 500 does not supply water.
상기 제2송풍기(260)의 가동에 의해 제1공기유로(110)의 입구부(110a)로 흡입된 실내공기는 유로전환부(400)를 거쳐 제2영역(320)을 통과한 후 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출된다.The indoor air sucked into the inlet 110a of the first air flow path 110 by the operation of the second blower 260 passes through the second area 320 through the flow path switching part 400 and then the second air flow. It is discharged to the outside through the outlet portion 210c of the air passage 210.
이와 동시에 상기 제1송풍기(160)의 가동에 의해 제2공기유로(210)의 입구부(210a)로 흡입된 실외공기는 유로전환부(400)를 거쳐 제1영역(310)을 통과한 후 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출된다.At the same time, the outdoor air sucked into the inlet portion 210a of the second air flow path 210 by the operation of the first blower 160 passes through the first area 310 through the flow path switching part 400. The air is discharged into the room through the outlet portion 110c of the first air passage 110.
이와 같은 과정에 의해 실내 공기는 실외로 배출되고, 실외 공기는 복수의 필터(220,130,140)를 거쳐 실내로 유입됨으로써 실내 공기의 환기가 이루어진다.By the above process, the indoor air is discharged to the outside, and the outdoor air is introduced into the room through the plurality of filters 220, 130, and 140 to ventilate the indoor air.
상기와 같이 유로전환부(400)에서 유로 전환이 이루어지도록 구성하면, 환기모드시 실외공기는 제2공기유로(210)에 구비된 필터(220,230)에서 여과된 후 제1공기유로(110)에 구비된 필터(130,140)에서도 여과되므로, 제1공기유로(110)와 제2공기유로(210)에 구비된 많은 필터(220,230,130,140)를 거치면서 여과된 후 실내로 유입되므로, 깨끗한 공기를 실내로 공급할 수 있다.When the flow path switching unit 400 is configured to switch the flow as described above, in the ventilation mode, the outdoor air is filtered in the filters (220, 230) provided in the second air flow path 210 to the first air flow path (110). Since the filter is also provided in the filter (130,140), it is filtered through a number of filters (220,230,130,140) provided in the first air flow path (110) and the second air flow path (210) is introduced into the room, to supply clean air to the room Can be.
도 7을 참조하여 가습 환기 모드에 대해 설명한다.The humidification ventilation mode will be described with reference to FIG. 7.
가습 환기 모드란, 수분공급부(500)에서 제3영역(330)에 수분을 공급하여 실내공기를 가습함과 동시에 실내공기를 환기시키는 모드를 의미한다.The humidification ventilation mode refers to a mode in which the moisture supply unit 500 supplies moisture to the third region 330 to humidify the indoor air and simultaneously ventilate the indoor air.
가습 환기 모드가 가동되면, 제1송풍기(160)와 제2송풍기(260)가 가동되고, 유로전환부(400)의 방향전환게이트가 제2위치가 되도록 설정된다는 점에서는 환기 모드와 동일하다.When the humidification ventilation mode is activated, the first blower 160 and the second blower 260 are operated, and the same as the ventilation mode in that the direction switching gate of the flow path switching unit 400 is set to be in the second position.
또한, 수분공급부(500)에서 제3영역(330)으로 수분이 공급되고, 댐퍼(280-1)의 방향이 바이패스유로(285-1) 방향으로 연결되고, 압축기(610)의 가동에 의해 제1열교환기(150)는 응축기로 작동하고, 제2열교환기(250)는 증발기로 작동한다는 점에서는 급수 가습 모드와 동일하다.In addition, moisture is supplied from the water supply unit 500 to the third region 330, the direction of the damper 280-1 is connected to the bypass flow path 285-1, and the compressor 610 is operated. The first heat exchanger 150 operates as a condenser and the second heat exchanger 250 operates as an evaporator in the same manner as the feed water humidification mode.
급수 가습 모드에서 설명한 바와 동일한 방법으로 수분공급부(500)로부터 공급된 수분이 로터부재(300)의 제3영역(330)에서 흡착재에 흡착되고, 상기 제3영역(330)에서 수분이 흡착된 흡착재는 로터부재(300)의 회전에 의해 제1영역(310)에 위치하게 된다. In the same manner as described in the water supply humidification mode, water supplied from the water supply unit 500 is adsorbed to the adsorbent in the third region 330 of the rotor member 300, and the adsorbent adsorbed with the moisture in the third region 330. Is positioned in the first region 310 by the rotation of the rotor member 300.
상기 제1송풍기(160)의 가동에 의해 제2공기유로(210)의 입구부(210a)로 흡입된 실외공기는 유로전환부(400)를 거쳐 제1열교환기(150)에서 가열되고, 가열된 실외공기는 제1영역(310)을 통과하면서 흡착재의 수분을 증발시켜 습한 공기를 형성시킨다. 상기 제1영역(310)을 통과한 실외공기는 제1공기유로(110)의 출구부(110c)를 거쳐 실내로 배출된다. The outdoor air sucked into the inlet portion 210a of the second air flow path 210 by the operation of the first blower 160 is heated in the first heat exchanger 150 via the flow path switching part 400 and heated. The outdoor air that passes through the first region 310 evaporates moisture of the adsorbent to form wet air. The outdoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110.
상기 제2송풍기(260)의 가동에 의해 제1공기유로(110)의 입구부(110a)로 흡입된 실내공기는 유로전환부(400)를 거쳐 제2열교환기(250)를 통과한다. 이 경우 댐퍼(280-1)는 제2공기유로(210)의 중간부(210b)에서 바이패스유로(285-1)로 연결되도록 방향이 설정되어 있다. 따라서 상기 제2열교환기(250)를 통과한 실외공기는 제2영역(320) 방향으로 유동하지 않고 바이패스유로(285-1)를 통해 실외로 배출된다. 만약 제2열교환기(250)를 거치면서 냉각된 실내공기가 제2영역(320)을 통과하게 된다면, 제2영역(320)에서 온도가 하락한 흡착재가 제1영역(310)으로 회전함으로 인해 실내로 유동하는 실외공기의 온도를 떨어뜨릴 수 있어 제1열교환기(150)에서 실외공기의 가열을 위한 열에너지가 더 많이 소모될 수 있다. 이에 본원발명은 제2열교환기(250)에서 냉각된 실내공기가 제2영역(320)을 통과하지 않고 바이패스유로(285-1)를 통해 실외로 배출되도록 함으로써 에너지 손실을 최소화할 수 있다.The indoor air sucked into the inlet 110a of the first air passage 110 by the operation of the second blower 260 passes through the second heat exchanger 250 via the flow path switching unit 400. In this case, the damper 280-1 is set in a direction such that the damper 280-1 is connected to the bypass passage 285-1 from the middle portion 210b of the second air passage 210. Therefore, the outdoor air passing through the second heat exchanger 250 is discharged to the outside through the bypass passage 285-1 without flowing in the direction of the second region 320. If the cooled indoor air passes through the second region 320 while passing through the second heat exchanger 250, the adsorbent having a lower temperature in the second region 320 rotates to the first region 310. Since the temperature of the outdoor air flowing in the air can be lowered, more heat energy for heating the outdoor air in the first heat exchanger 150 may be consumed. Accordingly, the present invention may minimize energy loss by allowing the indoor air cooled in the second heat exchanger 250 to be discharged to the outside through the bypass passage 285-1 without passing through the second region 320.
이와 같은 과정에 의해 실내 공기의 가습과 함께 환기가 이루어진다.By this process, ventilation is performed together with the humidification of the indoor air.
<제2실시예>Second Embodiment
도 8을 참조하여 본 발명의 제2실시예에 의한 공기조화기의 구성에 대해 설명한다.The configuration of the air conditioner according to the second embodiment of the present invention will be described with reference to FIG.
제2실시예의 공기조화기는, 제3열교환기(170)와 제4열교환기(270)와 제1팽창밸브(630-1)와 제2팽창밸브(630-2)가 구비된 히트펌프(600)를 포함하고, 댐퍼(280-2)와 바이패스유로(285-2) 및 제2송풍기(260)의 위치가 다르다는 점에서 제1실시예와 차이가 있고, 나머지 구성은 동일하다.The air conditioner of the second embodiment includes a third heat exchanger 170 and a fourth heat exchanger 270. And a heat pump 600 having a first expansion valve 630-1 and a second expansion valve 630-2, and a damper 280-2, a bypass flow passage 285-2, and a second blower. The position of 260 is different from that of the first embodiment, and the rest of the configuration is the same.
상기 제3열교환기(170)는 제1영역(310)과 제1송풍기(160) 사이에 구비되어, 제1영역(310)을 통과한 공기와 열교환이 이루어진다. 상기 제4열교환기(270)는 제2영역(320)과 제2송풍기(260) 사이에 구비되어, 제2영역(320)을 통과한 공기와 열교환이 이루어진다.The third heat exchanger 170 is provided between the first region 310 and the first blower 160 to exchange heat with air passing through the first region 310. The fourth heat exchanger 270 is provided between the second region 320 and the second blower 260 to exchange heat with air passing through the second region 320.
압축기(610)에서 공급된 냉매는 사방밸브(620)에서 제3냉매순환경로(640-1)와 제4냉매순환경로(640-2) 중 어느 하나의 냉매유로를 통해 순환한다. 상기 제3냉매순환경로(640-1) 상에는, 제1열교환기(150)와 제1팽창밸브(630-1)와 제4열교환기(270)가 구비된다. 상기 제4냉매순환경로(640-2) 상에는, 제2열교환기(250)와 제2팽창밸브(630-2)와 제3열교환기(170)가 구비된다.The refrigerant supplied from the compressor 610 circulates through the refrigerant passage of one of the third refrigerant net environment path 640-1 and the fourth refrigerant net environment path 640-2 in the four-way valve 620. The first refrigerant exchange environment 640-1 includes a first heat exchanger 150, a first expansion valve 630-1, and a fourth heat exchanger 270. The second heat exchanger 250, the second expansion valve 630-2, and the third heat exchanger 170 are provided on the fourth refrigerant flow environment path 640-2.
실내 가습 및 난방 시에는 상기 제1열교환기(150)와 제4열교환기(270)가 응축기와 증발기로 작동하고, 실내 제습 및 냉방 시에는 상기 제2열교환기(250)와 제3열교환기(270)가 응축기와 증발기로 작동한다.The first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator during indoor humidification and heating, and the second heat exchanger 250 and a third heat exchanger during indoor dehumidification and cooling. 270 acts as a condenser and an evaporator.
또한, 제2공기유로(210)에서 제2영역(320)의 출구와 일측 실외 사이를 연결하는 제2공기유로(210)에는 댐퍼(280-2)와 제4열교환기(270) 및 제2송풍기(260)가 순차 구비된다. 상기 댐퍼(280-2)가 위치한 제2공기유로(210)에는 바이패스유로(285-2)가 교차하도록 연결되어 있다. 상기 댐퍼(280-2)는 공기의 유동 방향을 설정함으로써 바이패스유로(285-2)를 통해 유입된 실외공기를 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출시키도록 하거나 제2영역(320)을 통과한 공기를 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출시키도록 한다.In addition, a damper 280-2, a fourth heat exchanger 270, and a second are connected to the second air flow path 210 connecting the outlet of the second area 320 and one outside of the second air flow path 210. Blower 260 is provided in sequence. The bypass air passage 285-2 is connected to the second air passage 210 in which the damper 280-2 is located. The damper 280-2 is configured to discharge the outdoor air introduced through the bypass passage 285-2 to the outside through the outlet portion 210c of the second air passage 210 by setting a flow direction of air. Alternatively, the air passing through the second area 320 may be discharged to the outside through the outlet portion 210c of the second air flow path 210.
이와 같은 구성에 의하면 제1공기유로(110) 내부와 제2공기유로(210) 내부는 항상 건조한 상태가 유지되어, 습기를 함유한 오염된 공기가 실내로 유입되지 않는다. 즉, 제4열교환기(270)가 증발기로 작동할 때 제2공기유로(210)의 출구부(210c)에 결로 발생이 가능하나, 실내로 유입되지 않고 전부 실외로 배출되도록 되어 있어, 공기유로 내부를 청결한 상태로 유지할 수 있다. 또한, 제1열교환기(150)가 증발기로 작동할 때 제1공기유로(110)의 중간부(110b)에 결로 발생이 가능하나, 수분을 함유가 공기가 제1영역(310)에서 통과할 때 제1영역(310)의 흡착재에서 수분의 흡착이 이루어지므로, 제1공기유로(110) 내부를 건조한 상태로 유지할 수 있다. 또한, 4개의 열교환기(150,250,170,270)와 유로전환부(400)가 구비됨으로써 하나의 장치에서 실내냉난방과 습도조절, 공기 청정 및 환기가 모두 가능하다. According to such a configuration, the inside of the first air passage 110 and the inside of the second air passage 210 are always maintained in a dry state, and contaminated air containing moisture does not flow into the room. That is, when the fourth heat exchanger 270 operates as an evaporator, condensation may occur at the outlet portion 210c of the second air flow path 210, but is not discharged into the room but is discharged to the outside. The interior can be kept clean. In addition, condensation may occur in the middle portion 110b of the first air flow path 110 when the first heat exchanger 150 operates as an evaporator, but air containing moisture may pass through the first region 310. At this time, since the adsorption of moisture is performed in the adsorbent of the first region 310, the interior of the first air passage 110 may be maintained in a dry state. In addition, the four heat exchangers (150, 250, 170, 270) and the flow path switching unit 400 is provided to enable both indoor air conditioning and humidity control, air cleaning and ventilation in one device.
이하, 도 9 내지 도 13을 참조하여 본 발명에 의한 공기조화기의 제어방법에 대해 설명한다. Hereinafter, a method of controlling an air conditioner according to the present invention will be described with reference to FIGS. 9 to 13.
도 9를 참조하여 무급수 가습 모드에 대해 설명한다.The water-free water humidification mode will be described with reference to FIG. 9.
유로전환부(400)에서 방향전환게이트가 제1위치로 설정되고, 제1송풍기(160)와 제2송풍기(260) 및 압축기(610)가 온(On)되며, 로터부재(300)가 회전하는 것은 제1실시예의 무급수 가습 모드와 동일하다. 또한, 댐퍼(280-2)는 실외공기가 제2영역(320)을 통과한 후 제2공기유로(210)의 출구부(210c) 방향으로 유동하도록 방향이 설정된다는 점에서도 제1실시예와 동일하다.In the flow path switching unit 400, the direction switching gate is set to the first position, the first blower 160, the second blower 260, and the compressor 610 are turned on, and the rotor member 300 rotates. It is the same as that of the waterless humidification mode of the first embodiment. In addition, the damper 280-2 is set in such a manner that the outdoor air flows in the direction of the outlet 210c of the second air flow path 210 after passing through the second area 320. same.
압축기(610)가 온(On)되면, 냉매는 사방밸브(620), 제1열교환기(150), 제1팽창밸브(630-1), 제4열교환기(270), 압축기(610)를 따라 순환한다. 이때 냉매가 유동하는 경로를 제3냉매순환경로(640-1)라 한다. When the compressor 610 is turned on, the refrigerant may include the four-way valve 620, the first heat exchanger 150, the first expansion valve 630-1, the fourth heat exchanger 270, and the compressor 610. Circulate accordingly. In this case, a path through which the refrigerant flows is referred to as a third refrigerant net environment path 640-1.
제1송풍기(160)의 가동에 의해 제1공기유로(110)의 입구부(110a)를 통해 유입된 실내공기는 응축기로 작동하는 제1열교환기(150)를 통과하면서 가열된 후 제1영역(310)을 통과한다.The indoor air introduced through the inlet 110a of the first air passage 110 by the operation of the first blower 160 is heated while passing through the first heat exchanger 150 that operates as a condenser, and then the first region. Pass 310.
제2송풍기(260)의 가동에 의해 제2공기유로(210)의 입구부(210a)를 통해 유입된 실외공기는 제2영역(320)을 통과한다. 이 경우 실외공기에 포함된 수분은 제2영역(320)의 흡착재에 흡착된다. 상기 제2영역(320)을 통과한 실외공기는 증발기로 작동하는 제4열교환기(270)를 거친 후 실외로 배출된다.The outdoor air introduced through the inlet 210a of the second air passage 210 by the operation of the second blower 260 passes through the second region 320. In this case, the moisture contained in the outdoor air is adsorbed by the adsorbent of the second region 320. The outdoor air passing through the second region 320 passes through a fourth heat exchanger 270 that operates as an evaporator and then is discharged to the outside.
상기 제2영역(320)에서 실외공기의 수분이 흡착된 흡착재가 로터부재(300)의 회전에 의해 제1영역(310)에 위치하면, 제1열교환기(150)를 통과하면서 가열된 실내공기가 제1영역(310)에 흡착재를 통과하면서 수분을 증발시켜 습한 실내공기를 형성시킨다. 상기 제1영역(310)을 통과한 실내공기는 제1공기유로(110)의 출구부(110c)를 거쳐 실내로 배출됨으로써 실내 가습이 이루어진다.When the adsorbent in which the moisture of the outdoor air is absorbed in the second region 320 is positioned in the first region 310 by the rotation of the rotor member 300, the indoor air heated while passing through the first heat exchanger 150. Moisture is evaporated while passing through the adsorbent in the first region 310 to form wet indoor air. The indoor air passing through the first area 310 is discharged into the room through the outlet portion 110c of the first air flow path 110 to perform indoor humidification.
이 경우 제2열교환기(250)와 제3열교환기(170)에는 냉매가 흐르지 않으므로, 실내공기와 실외공기에 아무런 영향을 미치지 않는다.In this case, since the refrigerant does not flow in the second heat exchanger 250 and the third heat exchanger 170, the indoor air and the outdoor air have no influence.
도 10을 참조하여 난방 및 급수 가습 모드에 대해 설명한다.The heating and water supply humidification modes will be described with reference to FIG. 10.
난방 및 급수 가습 모드시, 유로전환부(400)에서 방향전환게이트가 제1위치로 설정되고, 제1송풍기(160)와 제2송풍기(260) 및 압축기(610)가 온(On)되며, 로터부재(300)가 회전하는 것은 무급수 가습 모드와 동일하다. 또한, 냉매는 제3냉매순환경로(640-1)를 따라 유동하여, 제1열교환기(150)가 응축기로 작동하고, 제4열교환기(270)가 증발기로 작동한다는 점에서도 동일하다.In the heating and water supply humidification mode, the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160, the second blower 260, and the compressor 610 are turned on. Rotation of the rotor member 300 is the same as in the water free humidification mode. In addition, the refrigerant flows along the third refrigerant flow path 640-1, so that the first heat exchanger 150 operates as a condenser and the fourth heat exchanger 270 operates as an evaporator.
난방 및 급수 가습 모드에서는, 수분공급부(500)에서 제3영역(330)으로 수분이 공급되고, 댐퍼(280-2)의 방향이 바이패스유로(285-1)에서 제2공기유로(210)의 출구부(210c)로 연결된다는 점에서 무급수 가습 모드와 차이가 있다.In the heating and water supply humidification mode, water is supplied from the water supply unit 500 to the third region 330, and the direction of the damper 280-2 is passed from the bypass passage 285-1 to the second air passage 210. There is a difference from the non-water supply humidification mode in that it is connected to the outlet 210c.
제1송풍기(160)의 가동에 의해 실내공기가 제1공기유로(110)를 유동하고, 압축기(610)의 가동에 의해 제1열교환기(150)는 응축기로 작동하고, 제2열교환기(250)는 증발기로 작동한다.Indoor air flows through the first air flow path 110 by the operation of the first blower 160, and the first heat exchanger 150 operates as a condenser by operating the compressor 610. 250) works as an evaporator.
상기 제1열교환기(150)를 통과하면서 가열된 실내공기는 로터부재(300)의 제1영역(310)을 통과하게 된다. 이 경우 제3영역(330)에서 수분을 흡착한 흡착재가 회전되어 제1영역(310)에 위치하고, 상기 가열된 실내공기가 제1영역(310)을 통과하면서 흡착재의 수분을 증발시켜 습한 실내공기를 형성시킨다. 상기 제1영역(310)을 통과한 실내공기는 제1공기유로(110)의 출구부(110c)를 거쳐 실내로 배출된다. 이로 인해 실내 가습과 함께 실내 난방이 이루어진다.The indoor air heated while passing through the first heat exchanger 150 passes through the first region 310 of the rotor member 300. In this case, the adsorbent adsorbing the moisture in the third region 330 is rotated and positioned in the first region 310, and the heated indoor air passes through the first region 310 to evaporate the moisture of the adsorbent to moist indoor air. To form. The indoor air passing through the first area 310 is discharged into the room via the outlet 110c of the first air passage 110. This results in room heating with room humidification.
한편, 제2송풍기(260)의 가동에 의해 실외공기는 바이패스유로(285-2)를 통해 유입되어 제4열교환기(270)를 거쳐 제2공기유로(210)의 출구부(210c)를 통해 타측 실외로 배출된다. 따라서 차가운 실외공기가 제2영역(320)을 통과하지 않으므로, 차가운 실외공기가 제1영역(310)을 통과하는 공기의 온도에 영향을 미치는 것을 방지할 수 있어 에너지 손실을 최소화할 수 있다.On the other hand, by the operation of the second blower 260, outdoor air flows in through the bypass passage 285-2, and passes through the fourth heat exchanger 270 to the outlet 210c of the second air passage 210. Through the other side. Therefore, since the cold outdoor air does not pass through the second region 320, the cold outdoor air may be prevented from affecting the temperature of the air passing through the first region 310, thereby minimizing energy loss.
도 11을 참조하여 제습 및 냉방 모드에 대해 설명한다.The dehumidification and cooling modes will be described with reference to FIG. 11.
제습 및 냉방 모드시, 유로전환부(400)에서 방향전환게이트가 제1위치로 설정되고, 제1송풍기(160)와 제2송풍기(260) 및 압축기(610)가 온(On)되고, 로터부재(300)가 회전하며, 수분공급부(500)에서 수분이 공급되지 않는 점은 무급수 가습 모드와 동일하다.In the dehumidification and cooling modes, the direction switching gate is set to the first position in the flow path switching unit 400, the first blower 160, the second blower 260, and the compressor 610 are turned on. The member 300 is rotated, and the moisture is not supplied from the moisture supply unit 500 in the same manner as in the water-free humidification mode.
제습 모드 시 압축기(610)가 온(On)되면, 냉매는 압축기(610), 사방밸브(620), 제2열교환기(250), 제2팽창밸브(630-2), 제3열교환기(170), 압축기(610)를 따라 순환한다. 이때 냉매가 유동하는 경로를 제4냉매순환경로(640-2)라 한다. When the compressor 610 is turned on in the dehumidification mode, the refrigerant is a compressor 610, a four-way valve 620, a second heat exchanger 250, a second expansion valve 630-2, and a third heat exchanger ( 170, it circulates along the compressor 610. In this case, a path through which the refrigerant flows is referred to as a fourth refrigerant net environment path 640-2.
이 경우 제2열교환기(250)가 응축기로 작동하고, 제3열교환기(170)가 증발기로 작동한다.In this case, the second heat exchanger 250 operates as a condenser, and the third heat exchanger 170 operates as an evaporator.
제1송풍기(160)가 가동되면 실내공기는 제1영역(310)을 통과하면서 실내공기에 포함된 수분이 제1영역(310)의 흡착재에 흡착된다. 상기 제1영역(310)에서 수분이 제거된 실내공기는 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출된다. 이 경우 실내로 배출되는 공기의 온도는 제3열교환기(170)에서 낮아지므로 실내 냉방 효과가 있다.When the first blower 160 is operated, indoor air passes through the first region 310, and moisture contained in the indoor air is adsorbed by the absorbent material of the first region 310. The indoor air from which moisture is removed from the first area 310 is discharged into the room through the outlet portion 110c of the first air passage 110. In this case, since the temperature of the air discharged to the room is lowered in the third heat exchanger 170, there is room cooling effect.
제2송풍기(260)가 가동되면 제2공기유로(210)의 입구부(210a)를 통해 유입된 실외공기는 제2열교환기(250)를 통과하면서 가열되고, 가열된 공기는 제2영역(320)을 통과하게 된다. 상기 제1영역(310)에서 실내공기의 수분을 흡착한 로터부재(300)의 흡착재가 회전하여 제2영역(320)에 위치하게 되면, 제2영역(320)을 통과하는 가열된 실외공기에 의해 흡착재의 수분이 증발되어 실외공기는 습한공기 상태가 되어 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출된다.When the second blower 260 is operated, outdoor air introduced through the inlet portion 210a of the second air flow path 210 is heated while passing through the second heat exchanger 250, and the heated air is heated in the second area ( 320). When the adsorbent of the rotor member 300, which absorbs moisture of indoor air in the first region 310, is rotated and positioned in the second region 320, the heated outdoor air passing through the second region 320. As a result, the moisture of the adsorbent is evaporated so that the outdoor air is in a humid air state and discharged to the outside through the outlet portion 210c of the second air flow path 210.
이와 같은 과정에 의해 실내공기의 제습이 이루어져, 쾌적한 실내 환경을 유지할 수 있다.The dehumidification of the indoor air is made by such a process, thereby maintaining a comfortable indoor environment.
도 12를 참조하여 공기 청정 모드에 대해 설명한다.An air cleaning mode will be described with reference to FIG. 12.
공기 청정 모드시에는 제1송풍기(160)가 온(On)되고, 유로전환부(400)의 방향전환게이트가 제1위치로 설정된다. 압축기(610)는 오프(Off)되고, 수분공급부(500)에서는 수분 공급이 이루어지지 않는다.In the air cleaning mode, the first blower 160 is turned on and the direction switching gate of the flow path switching unit 400 is set to the first position. The compressor 610 is turned off, and the water supply unit 500 does not supply water.
상기 제1송풍기(160)의 가동으로 인해 제1공기유로(110)의 입구부(110a)를 통해 유입된 실내공기는 프리 필터(120)에서 입자가 큰 이물질의 1차 여과가 이루어지고, 기능성 필터(130)에서 알레르기 등의 유해요소가 제거된 후, 헤파 필터(140)에서 미립자가 제거된다.The indoor air introduced through the inlet 110a of the first air flow path 110 due to the operation of the first blower 160 is primarily filtered of the foreign matter having large particles in the pre-filter 120, After the harmful elements such as allergy are removed from the filter 130, the fine particles are removed from the HEPA filter 140.
상기 헤파 필터(140)를 통과한 실내공기는 제1영역(310)을 통과한 후 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출됨으로써 실내 공기의 청정 작용이 이루어진다.The indoor air passing through the HEPA filter 140 passes through the first region 310 and is discharged into the room through the outlet portion 110c of the first air flow path 110 to perform a clean action of the indoor air.
이 경우 실내공기의 냄새를 제거하고자 하는 경우에는 로터부재(300)를 회전시키고, 제2송풍기(260)를 가동시킨다.In this case, when the smell of indoor air is to be removed, the rotor member 300 is rotated and the second blower 260 is operated.
상기 로터부재(300)의 흡착재 표면에는 고분자 제습제가 코팅되어 있어 실내공기가 흡착재 표면에 접촉하면 냄새 제거가 이루어진다.The surface of the adsorbent of the rotor member 300 is coated with a polymer dehumidifying agent so that the odor is removed when the indoor air contacts the surface of the adsorbent.
도 13을 참조하여 환기 모드에 대해 설명한다.A ventilation mode will be described with reference to FIG. 13.
환기모드가 가동되면, 제1송풍기(160)와 제2송풍기(260)가 가동된다. 이 경우 유로전환부(400)의 방향전환게이트는 제2위치가 되도록 설정된다. 압축기(610)는 오프(Off)되고, 수분공급부(500)에서는 수분 공급이 이루어지지 않는다.When the ventilation mode is activated, the first blower 160 and the second blower 260 are operated. In this case, the direction switching gate of the flow path switching unit 400 is set to be in the second position. The compressor 610 is turned off, and the water supply unit 500 does not supply water.
상기 제2송풍기(260)의 가동에 의해 제1공기유로(110)의 입구부(110a)로 흡입된 실내공기는 프리 필터(120), 유로전환부(400)의 제1유입구(410)와 제2배출구(440)를 거쳐 로터부재(300)의 제2영역(320)을 통과한 후 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출된다.The indoor air sucked into the inlet 110a of the first air flow path 110 by the operation of the second blower 260 is pre-filter 120, the first inlet 410 of the flow path switching unit 400 and After passing through the second region 320 of the rotor member 300 through the second outlet 440, it is discharged to the outside through the outlet portion 210c of the second air flow path 210.
이와 동시에 상기 제1송풍기(160)의 가동에 의해 제2공기유로(210)의 입구부(210a)로 흡입된 실외공기는 프리 필터(220), 미디엄 필터(230), 유로전환부(400)의 제2유입구(420)와 제1배출구(430), 기능성 필터(130), 헤파 필터(140)를 순차 거쳐 로터부재(300)의 제1영역(310)을 통과한 후 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출된다.At the same time, the outdoor air sucked into the inlet 210a of the second air flow path 210 by the operation of the first blower 160 is a pre-filter 220, a medium filter 230, the flow path switching unit 400 After passing through the first region 310 of the rotor member 300 through the second inlet 420, the first outlet 430, the functional filter 130, the HEPA filter 140 of the first air flow path ( It is discharged into the room through the outlet portion 110c of the 110.
이와 같은 과정에 의해 실내 공기는 실외로 배출되고, 실외 공기는 복수의 필터(220,230,130,140)를 거쳐 실내로 유입됨으로써 실내 공기의 환기가 이루어진다.By the above process, the indoor air is discharged to the outside, and the outdoor air is introduced into the room through the plurality of filters 220, 230, 130, and 140 to ventilate the indoor air.
상기와 같이 유로전환부(400)에서 유로 전환이 이루어지도록 구성하면, 환기모드시 실외공기는 제2공기유로(210)에 구비된 프리 필터(220), 미디엄 필터(230)에서 여과된 후 제1공기유로(110)에 구비된 기능성 필터(130)와 헤파 필터(140)에서도 여과되므로, 제1공기유로(110)와 제2공기유로(210)에 구비된 많은 필터(220,230,130,140)를 거치면서 여과된 후 실내로 유입되므로, 깨끗한 공기를 실내로 공급할 수 있다.When the flow path switching unit 400 is configured to switch the flow as described above, the outdoor air in the ventilation mode is filtered after the pre-filter 220, the medium filter 230 provided in the second air flow path 210 Since it is also filtered in the functional filter 130 and the HEPA filter 140 provided in the first air flow path 110, while passing through a number of filters (220, 230, 130, 140) provided in the first air flow path 110 and the second air flow path (210). After being filtered and introduced into the room, clean air can be supplied to the room.
또한, 기능성 필터(130)와 헤파 필터(140)는 가습모드, 난방모드, 공기 청정모드, 제습모드시 제1공기유로(110)의 입구부(110a)를 통해 유입된 실내 공기를 여과할 수 있을 뿐만 아니라 환기모드시 제2공기유로(210)의 입구부(210a)를 통해 유입된 실외 공기도 여과하게 되므로, 실내 공기와 실외 공기를 여과하기 위한 필터를 각각 별도로 구비할 필요가 없다.In addition, the functional filter 130 and the HEPA filter 140 may filter the indoor air introduced through the inlet 110a of the first air flow path 110 in the humidification mode, the heating mode, the air cleaning mode, and the dehumidification mode. In addition, since the outdoor air introduced through the inlet 210a of the second air flow path 210 is also filtered in the ventilation mode, it is not necessary to separately provide a filter for filtering indoor air and outdoor air.
상기와 같은 구성에 의하면 히트펌프(600)를 이용하여 2개 또는 4개의 열교환기를 이용하여 응축기와 증발기로 각각 기능하도록 함으로써 실내 냉난방과 습도조절이 하나의 장치에서 구현할 수 있고, 냉난방 능력 및 습도 조절 능력을 향상시킬 수 있다.According to the above configuration, by using the heat pump 600 to function as a condenser and an evaporator using two or four heat exchangers, respectively, indoor air conditioning and humidity control can be implemented in a single device, air conditioning capacity and humidity control Improve your skills.
또한, 실내공기와 실외공기의 유로(110,210)가 교차하는 지점에 유로전환부(400)를 구비함으로써 간단한 구조에 의해 습도 조절과 난방과 공기 청정 및 환기 모드를 모두 구현할 수 있다.In addition, by providing the flow path switching unit 400 at the point where the flow paths 110 and 210 of the indoor air and the outdoor air intersect, both the humidity control, the heating, the air cleaning and the ventilation mode can be realized by a simple structure.
또한, 제1공기유로(110)와 제2공기유로(210)에 로터부재(300)를 전후하여 히트펌프(600)를 구성하는 4개의 열교환기(150,250,170,270)를 구비하고 상기 열교환기(150,250,170,270)를 교대로 작동시킴으로써 각 공기유로 내부를 항상 건조한 상태로 유지할 수 있어 공기조화기를 청결한 상태로 유지할 수 있다.In addition, the first air passage 110 and the second air passage 210 is provided with four heat exchangers (150, 250, 170, 270) constituting the heat pump 600 before and after the rotor member 300, the heat exchangers (150, 250, 170, 270) By alternating operation, each air flow path can be kept dry at all times, thereby keeping the air conditioner clean.
<전열교환 가능한 유로전환부><Heat exchanger switchable part>
상기에서는 유로전환부(400)를 댐퍼로 구성하여 유로전환만 이루어지도록 구성한 실시예에 대한 것이나, 이하 도 14 내지 도 15를 참조하여 유로전환부(700)에서 유로전환뿐만 아니라 전열교환도 이루어질 수 있도록 구성한 실시예에 대해 설명한다. In the above embodiment, the flow path switching unit 400 is configured as a damper so that only the flow path switching is performed. Hereinafter, referring to FIGS. 14 to 15, not only the flow path switching but also the total heat exchange may be performed in the flow path switching part 700. An embodiment configured to be described will be described.
본 실시예는 유로전환부(400)를 전열교환이 이루어지는 유로전환부(700)로 대체한 것을 제외하고는, 앞서 설명했던 구성들이 동일하게 구비되어 있다.The present embodiment has the same configuration as described above, except that the flow path switching unit 400 is replaced with the flow path switching unit 700 in which heat exchange is performed.
상기 유로전환부(700)는 제1공기유로(110)이 입구부(110a)에 연결되어 실내 공기가 유입되는 제1유입구(710), 상기 제1유입구(710)에 연통하는 제1공간부(701), 제2공기유로(210)의 입구부(210a)에 연결되어 실외 공기가 유입되는 제2유입구(720), 상기 제2유입구(720)에 연통하는 제2공간부(702), 상기 제1공기유로(110)의 중간부(110b)에 연통하되 상기 제2공간부(702)와 대각 방향으로 대향되도록 위치하는 제3공간부(703), 상기 제2공기유로(210)의 중간부(210b)에 연통하되 상기 제1공간부(701)와 대각 방향으로 대향되도록 위치하는 제4공간부(704), 상기 제1 내지 제4공간부(701,702,703,704)로 둘러싸이고 실내 공기와 실외 공기 사이에 열교환이 이루어지도록 하는 전열교환기(760)로 이루어진다.The flow path switching unit 700 is the first air inlet 110 is connected to the inlet 110a, the first inlet 710 through which the indoor air flows, the first space in communication with the first inlet 710 701, a second inlet 720 connected to the inlet 210a of the second air flow path 210 to introduce outdoor air, a second space part 702 communicating with the second inlet 720, The third space portion 703 communicates with the middle portion 110b of the first air passage 110, and is disposed to face the second space portion 702 in a diagonal direction. A fourth space portion 704 communicating with the intermediate portion 210b and positioned to face the first space portion 701 in a diagonal direction, surrounded by the first to fourth space portions 701, 702, 703, 704, and indoor air and outdoors It consists of a total heat exchanger 760 to allow heat exchange between the air.
상기 제1 내지 제4공간부(701,702,703,704)는 격벽(791,792,793,794)에 의해 공간적으로 서로 분리되어 있다.The first to fourth space parts 701, 702, 703 and 704 are spatially separated from each other by the partitions 791, 792, 793 and 794.
도 14를 참조하면, 상기 제1 내지 제4공간부(701,702,703,704)의 일측 면을 형성하는 커버플레이트(750)에는 제1 내지 제4공간부(701,702,703,704)에 대응되는 위치에 제1 내지 제4연통구멍(711,712,713,714)이 각각 형성되어 있다. Referring to FIG. 14, the cover plates 750 which form one side of the first to fourth space parts 701, 702, 703 and 704 are first to fourth communicated at positions corresponding to the first to fourth space parts 701, 702, 703 and 704. Holes 711,712,713,714 are formed, respectively.
상기 제1연통구멍(711)을 통해 제1공간부(701)와 제1공기유로(110)의 중간부(110b)가 서로 연통하고, 제3연통구멍(713)을 통해 제3공간부(703)와 제1공기유로(110)의 중간부(110b)가 서로 연통한다. The first space portion 701 and the intermediate portion 110b of the first air passage 110 communicate with each other through the first communication hole 711, and the third space portion (ie, through the third communication hole 713). 703 and the middle portion 110b of the first air passage 110 communicate with each other.
상기 제2연통구멍(712)을 통해 제2공간부(702)와 제2공기유로(210)의 중간부(210b)가 서로 연통하고, 제4연통구멍(714)을 통해 제4공간부(704)와 제2공기유로(210)의 중간부(210b)가 서로 연통한다.The second space portion 702 and the intermediate portion 210b of the second air flow path 210 communicate with each other through the second communication hole 712, and the fourth space portion () through the fourth communication hole 714. 704 and the intermediate portion 210b of the second air passage 210 communicate with each other.
상기 제1공간부(701)에는 제1댐퍼(771)가 구비되어 있다. 상기 제1댐퍼(771)는 제1공간부(701)의 공기가 전열교환기(760)와 제1공기유로(110)의 중간부(110b) 중 어느 하나의 방향으로 유동하는 것을 허용하거나 차단하기 위한 것이다. The first space part 701 is provided with a first damper 771. The first damper 771 allows or blocks the air of the first space portion 701 to flow in either of the heat exchanger 760 and the middle portion 110b of the first air passage 110. It is for.
상기 제2공간부(702)에는 제2댐퍼(772)가 구비되어 있다. 상기 제2댐퍼(772)는 제2공간부(702)의 공기가 전열교환기(760)와 제2공기유로(210)의 중간부(210b) 중 어느 하나의 방향으로 유동하는 것을 허용하거나 차단하기 위한 것이다.The second space part 702 is provided with a second damper 772. The second damper 772 allows or blocks the air of the second space portion 702 to flow in either of the heat exchanger 760 and the middle portion 210b of the second air flow path 210. It is for.
환기 모드가 가동되면, 도 14(b)에 나타난 바와 같이 제1댐퍼(771)가 힌지(781)를 회전 중심으로 회전하여 실선으로 표시된 수평 방향으로 위치하여 제1연통구멍(711)을 차단하고, 도 14(c)에 나타난 바와 같이 제2댐퍼(772)가 힌지(782)를 회전중심으로 회전하여 실선으로 표시된 수평 방향으로 위치하여 제2연통구멍(712)을 차단한다.When the ventilation mode is activated, as shown in FIG. 14B, the first damper 771 rotates the hinge 781 to the rotational center to position the horizontal direction indicated by the solid line to block the first communication hole 711. As shown in FIG. 14 (c), the second damper 772 rotates the hinge 782 at the center of rotation to be positioned in the horizontal direction indicated by the solid line to block the second communication hole 712.
이 상태에서 제1송풍기(160)와 제2송풍기(260)를 가동시키면, 도 14(b)에 나타난 바와 같이, 실내 공기는 제1공기유로(110)의 입구부(110a)와 제1유입구(710)를 통해 제1공간부(701)로 유입되고, 제1공간부(701)로 유입된 실내 공기는 전열교환기(760)를 통과한 후 제4공간부(704), 제2공기유로(210)의 중간부(210b), 제2영역(310)을 순차 거쳐 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출된다.When the first blower 160 and the second blower 260 are operated in this state, as shown in FIG. 14B, the indoor air is inlet 110a and the first inlet of the first air flow path 110. The indoor air introduced into the first space 701 through 710 and introduced into the first space 701 passes through the heat exchanger 760 and then the fourth space 704 and the second air flow path. After passing through the middle portion 210b of the 210 and the second region 310 in sequence, it is discharged to the outside through the outlet portion 210c of the second air flow passage 210.
또한, 도 14(c)에 나타난 바와 같이, 실외 공기는 제2공기유로(210)의 입구부(210a)와 제2유입구(720)를 통해 제2공간부(702)로 유입되고, 제2공간부(702)로 유입된 실외 공기는 전열교환기(760)를 통과하면서 상기 전열교환기(760)를 통과하는 실내 공기와 열교환이 이루어진 후 제3공간부(703), 제1공기유로(110)의 중간부(110b), 제1영역(310)을 순차 거쳐 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출된다.In addition, as shown in FIG. 14C, outdoor air flows into the second space part 702 through the inlet part 210a and the second inlet port 720 of the second air flow path 210. The outdoor air introduced into the space part 702 undergoes heat exchange with the indoor air passing through the heat exchanger 760 while passing through the heat exchanger 760, and then the third space part 703 and the first air flow path 110. After passing through the middle portion (110b), the first region 310 of the first through the outlet 110c of the first air flow path 110 is discharged into the room.
이와 같은 과정에 의해 실내 공기의 환기가 이루어지고, 환기와 동시에 실내 공기와 실외 공기 사이에 전열교환이 이루어지므로, 에너지 소모를 줄일 수 있다.By this process, indoor air is ventilated, and electrothermal exchange is performed between indoor air and outdoor air at the same time as ventilation, thereby reducing energy consumption.
상기한 환기 모드를 제외한 나머지 가습 모드, 난방 모드, 공기 청정 모드, 제습 모드시 유로전환부(700)의 동작을 도 15를 참조하여 설명한다.The operation of the flow path switching unit 700 in the humidification mode, the heating mode, the air cleaning mode, and the dehumidification mode except for the ventilation mode described above will be described with reference to FIG. 15.
이 경우 제1댐퍼(771)는 도 14(b)에서와 같이 힌지(781)를 회전 중심으로 회전하여 점선으로 표시된 수직 방향으로 위치하여, 제1공간부(701)의 공기가 전열교환기(760) 방향으로 유동하는 것을 차단하고, 제2댐퍼(772)는 도 14(b)에서와 같이 힌지(782)를 회전 중심으로 회전하여 점선으로 표시된 수직 방향으로 위치하여 제2공간부(702)의 공기가 전열교환기(760) 방향으로 유동하는 것을 차단한다.In this case, as shown in FIG. 14B, the first damper 771 rotates the hinge 781 around the rotation center and is positioned in a vertical direction indicated by a dotted line, so that air in the first space part 701 is transferred to the heat exchanger 760. Direction, and the second damper 772 rotates the hinge 782 to the center of rotation, as shown in FIG. 14 (b), and is positioned in the vertical direction indicated by the dotted line of the second space part 702. Prevents air from flowing in the direction of the total heat exchanger (760).
이 상태에서 제1송풍기(160)와 제2송풍기(260)을 가동시키면, 도 15(b)에 나타난 바와 같이 제1공간부(701)로 유입된 실내 공기는 제1연통구멍(711), 제1공기유로(110)의 중간부(110b), 제1영역(310), 제1공기유로(110)의 출구부(110c)를 순차 거친 후 실내로 배출된다.In this state, when the first blower 160 and the second blower 260 are operated, the indoor air introduced into the first space part 701 is the first communication hole 711 as shown in FIG. After passing through the intermediate portion 110b of the first air passage 110, the first region 310, and the outlet portion 110c of the first air passage 110 in sequence, the air is discharged into the room.
또한, 도 15(c)에 나타난 바와 같이 제2공간부(702)로 유입된 실외 공기는 제2연통구멍(712), 제2공기유로(210)의 중간부(210b), 제2영역(310)을 순차 거쳐 제2공기유로(210)의 출구부(210c)를 통해 실외로 배출된다. In addition, as illustrated in FIG. 15C, the outdoor air introduced into the second space part 702 includes the second communication hole 712, the middle part 210b of the second air flow path 210, and the second area ( 310 is sequentially discharged to the outside through the outlet 210c of the second air flow path 210.
따라서 이 경우에는 실내 공기와 실외 공기가 전열교환기(760)를 통과하지 않는다. Therefore, in this case, indoor air and outdoor air do not pass through the heat exchanger 760.
도 14와 도 15에 나타난 유로전환부(700)를 구비하면, 실내 공기와 실외 공기의 유동 방향을 간단한 구조에 의해 전환할 수 있도록 함과 동시에 필요할 경우 실내 공기와 실외 공기 사이에 전열교환이 이루어지도록 할 수 있어, 공기조화기를 다양한 모드로 운전하는 것이 가능하다.With the flow path switching unit 700 shown in Figs. 14 and 15, it is possible to switch the flow direction of the indoor air and the outdoor air by a simple structure, and at the same time, electrothermal exchange is performed between the indoor air and the outdoor air if necessary. It is possible to operate the air conditioner in various modes.
상기 유로전환부(700)에서는 제1댐퍼(771)는 제1연통구멍(711) 방향과 전열교환기(760) 방향 중 어느 하나의 방향을 택일적으로 개폐하는 구성으로 예시하였으나, 제1연통구멍(711)을 개폐하는 댐퍼와 제1공간부(701)에서 전열교환기(760)로의 유동을 개폐하는 댐퍼를 별도로 구성하는 것도 가능하다. 이와 마찬가지로 하나의 제2댐퍼(771) 대신 2개의 댐퍼로 제2연통구멍(712)과 전열교환기(760)로의 유동을 각각 개폐하는 것으로 구성할 수 있다.In the flow path switching unit 700, the first damper 771 is exemplarily configured to open and close either one of the direction of the first communication hole 711 and the direction of the heat exchanger 760. It is also possible to separately configure a damper for opening and closing 711 and a damper for opening and closing the flow from the first space portion 701 to the heat exchanger 760. Similarly, two dampers instead of one second damper 771 may be configured to open and close flows to the second communication hole 712 and the heat exchanger 760, respectively.
<실내공기유로에 설치된 수분공급부><Moisture supply part installed in indoor air flow path>
도 16을 참조하면, 실내공기유로인 제1공기유로(110) 상에 수분공급부(500-1)가 구비되어 있다는 점에서 앞서 설명한 실시예들과 차이가 있고, 나머지 구성은 동일하다. Referring to FIG. 16, the water supply part 500-1 is provided on the first air flow path 110, which is an indoor air flow path, and is different from the above-described embodiments, and the rest of the configuration is the same.
상기 수분공급부(500-1)는 제1공기유로(110)의 출구부(110c)를 통해 실내로 배출되는 공기에 수분을 공급하도록 되어 있다. 상기 수분공급부(500-1)는, 상기 제1공기유로(110)의 출구부(110c)를 통과하는 공기에 수분을 공급하는 가습필터(520-1)와, 상기 가습필터(520-1)에 수분이 흡착되도록 수분을 공급하는 수분공급수단으로서 상기 가습필터(520-1)의 하단 일부를 침지시키기 위한 물이 저장되는 수조(530-1)와, 상기 수조(530-1)에 물을 공급하기 위해 급수관(570-1)에 구비된 급수밸브(550-1)와, 상기 수조(530-1)의 물을 외부로 배수하기 위해 배수관(580-1)에 구비된 배수밸브(560-1)로 이루어져 있다. The water supply unit 500-1 is configured to supply water to air discharged into the room through the outlet 110 c of the first air flow path 110. The water supply unit 500-1 includes a humidification filter 520-1 for supplying water to air passing through the outlet 110 c of the first air flow path 110, and the humidification filter 520-1. As a water supply means for supplying water to adsorb moisture to the water tank 530-1 and the water tank 530-1 in which water for immersing a portion of the lower end of the humidification filter 520-1 is stored, Water supply valve 550-1 provided in the water supply pipe 570-1 for supplying, and a drain valve 560-1 provided in the drain pipe 580-1 for draining the water of the water tank 530-1 to the outside. It consists of 1).
이와 같이 가습필터(520-1)를 제1공기유로(110)의 출구부(110c) 상에 위치시키고 제1송풍기(160)의 가동에 의해 가습이 이루어지도록 하면, 앞선 실시예들과 같이 별도의 가습공기유로(540)와 제3송풍기(510)를 구비할 필요가 없으며, 로터부재(300)에도 제3영역(330)을 구성할 필요가 없으므로, 제품의 구성이 간단해진다.Thus, if the humidification filter 520-1 is located on the outlet 110c of the first air flow path 110 and the humidification is performed by the operation of the first blower 160, as in the previous embodiments, It is not necessary to provide the humidified air flow path 540 and the third blower 510, and the rotor member 300 does not need to configure the third region 330, thereby simplifying the configuration of the product.
도 16에 나타난 공기조화기에서도, 가습모드, 난방모드, 공기 청정 모드, 제습 모드, 냉방 모드, 환기 모드의 작동이 가능하다. 이와 같은 각 모드의 동작은 앞서 설명한 실시예들의 내용을 토대로 통상의 기술자라면 이해할 수 있으므로, 상세한 설명은 생략한다.Even in the air conditioner shown in FIG. 16, the operation of the humidification mode, the heating mode, the air cleaning mode, the dehumidification mode, the cooling mode, and the ventilation mode is possible. Since the operation of each mode as described above can be understood by those skilled in the art based on the contents of the above-described embodiments, a detailed description thereof will be omitted.
이상 설명한 바와 같이, 본 발명은 상술한 실시예에 한정되지 아니하며, 청구범위에서 청구되는 본 발명의 기술적 사상에 벗어남 없이 당해 발명이 속하는 기술분야에서 통상의 지식을 가진 자에 의해 자명한 변형실시가 가능하며, 이러한 변형실시는 본 발명의 범위에 속한다.As described above, the present invention is not limited to the above-described embodiments, and modifications apparent by those skilled in the art to which the present invention pertains may be made without departing from the technical spirit of the present invention claimed in the claims. It is possible that such modifications are within the scope of the present invention.

Claims (21)

  1. 양단이 실내와 연결된 제1공기유로(110);First air passages 110 connected to both ends of the room;
    양단이 실외와 연결된 제2공기유로(210);A second air passage 210 having both ends connected to the outside;
    상기 제1공기유로(110) 상에 구비된 제1영역(310)과, 상기 제2공기유로(210) 상에 구비된 제2영역(320)과, 회전에 의해 상기 제1영역(310)과 제2영역(320)을 교대로 통과하는 흡착재로 이루어진 로터부재(300);The first region 310 provided on the first air passage 110, the second region 320 provided on the second air passage 210, and the first region 310 by rotation. And a rotor member 300 made of an adsorbent passing through the second region 320 alternately;
    상기 제1영역(310)을 향해 유동하는 공기와 열교환이 이루어지는 제1열교환기(150)와, 상기 제2영역(320)을 향해 유동하는 공기와 열교환이 이루어지는 제2열교환기(250)를 포함하고, 상기 제1열교환기(150)와 제2열교환기(250)가 응축기와 증발기로 교대로 작동하도록 함으로써 상기 제1공기유로(110)를 유동하는 공기의 가열 및 냉각이 이루어지도록 하는 히트펌프(600);A first heat exchanger 150 for exchanging heat with the air flowing toward the first region 310, and a second heat exchanger 250 for exchanging heat with the air flowing toward the second region 320. In addition, the first heat exchanger 150 and the second heat exchanger 250 to operate the condenser and the evaporator by alternating heat pump for heating and cooling the air flowing in the first air flow path 110 is made. 600;
    상기 로터부재(300)의 회전과 상기 히트펌프(600)를 제어하는 제어부;Control unit for controlling the rotation of the rotor member 300 and the heat pump 600;
    를 포함하는 공기조화기Air Conditioner Including
  2. 제1항에 있어서,The method of claim 1,
    상기 히트펌프(600)는, 압축기(610), 상기 압축기(610)에서 공급되어 온 냉매를 상기 제1열교환기(150)와 제2열교환기(250)가 응축기와 증발기, 증발기와 응축기로 작동 전환이 이루어지도록 상기 냉매의 유동 방향을 전환시키는 사방밸브(620)를 포함하는 것을 특징으로 하는 공기조화기The heat pump 600, the compressor 610, the refrigerant supplied from the compressor 610, the first heat exchanger 150 and the second heat exchanger 250 operates as a condenser, an evaporator, an evaporator and a condenser. Air conditioner comprising a four-way valve 620 for switching the flow direction of the refrigerant to be switched
  3. 제1항에 있어서,The method of claim 1,
    상기 제1열교환기(150)가 응축기로 작동하는 경우에는 상기 제1영역(310)으로 유동하는 공기를 가열하여 실내 가습 또는 난방이 이루어지고, 상기 제2열교환기(250)가 증발기로 작동하는 경우에는 상기 제1영역(310)으로 유동하는 공기를 냉각하여 실내 제습 또는 냉방이 이루어지는 것을 특징으로 하는 공기조화기When the first heat exchanger 150 operates as a condenser, the air flowing in the first region 310 is heated to perform indoor humidification or heating, and the second heat exchanger 250 operates as an evaporator. In this case, the air conditioner is characterized in that the room dehumidification or cooling by cooling the air flowing in the first region (310).
  4. 제1항에 있어서,The method of claim 1,
    상기 히트펌프(600)는 상기 제1영역(310)과 제2영역(320)을 각각 통과한 공기와 열교환이 이루어지는 제3열교환기(170)와 제4열교환기(270)를 더 포함하는 것을 특징으로 하는 공기조화기The heat pump 600 further includes a third heat exchanger 170 and a fourth heat exchanger 270 that exchange heat with air passing through the first and second regions 310 and 320, respectively. Feature air conditioner
  5. 제4항에 있어서,The method of claim 4, wherein
    실내 가습 또는 실내 난방 시에는 상기 제1열교환기(150)와 제4열교환기(270)가 응축기와 증발기로 작동하고; The first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator during indoor humidification or indoor heating;
    실내 제습 또는 실내 냉방 시에는 상기 제2열교환기(250)와 제3열교환기(270)가 응축기와 증발기로 작동하는 것을 특징으로 하는 공기조화기In the case of indoor dehumidification or room cooling, the second heat exchanger 250 and the third heat exchanger 270 operate as a condenser and an evaporator.
  6. 제5항에 있어서,The method of claim 5,
    상기 실내 가습 또는 실내 난방 시, 냉매는 압축기(610), 사방밸브(620), 제1열교환기(150), 제1팽창밸브(630-1), 제4열교환기(270), 압축기(610)의 순서로 이루어지는 냉매순환경로(640-1)를 따라 순환하여, 상기 제1열교환기(150)와 제4열교환기(270)가 응축기와 증발기로 각각 작동하고;In the indoor humidification or indoor heating, the refrigerant is a compressor 610, a four-way valve 620, a first heat exchanger 150, a first expansion valve 630-1, a fourth heat exchanger 270, and a compressor 610. The first heat exchanger 150 and the fourth heat exchanger 270 operate as a condenser and an evaporator, respectively, circulating along the refrigerant circulation environment path 640-1.
    상기 실내 제습 또는 실내 냉방 시, 냉매는 압축기(610), 사방밸브(620), 제2열교환기(250), 제2팽창밸브(630-2), 제3열교환기(170), 압축기(610)의 순서로 이루어지는 냉매순환경로(640-2)를 따라 순환하여, 상기 제2열교환기(250)와 제3열교환기(170)가 응축기와 증발기로 각각 작동하는 것을 특징으로 하는 공기조화기When the indoor dehumidification or indoor cooling, the refrigerant is a compressor 610, a four-way valve 620, a second heat exchanger 250, a second expansion valve 630-2, a third heat exchanger 170, a compressor 610 Circulating along the refrigerant flow path 640-2 in the order of), wherein the second heat exchanger 250 and the third heat exchanger 170 operate as condensers and evaporators, respectively.
  7. 제4항에 있어서,The method of claim 4, wherein
    상기 제2영역(320)의 출구측과 일측 실외 사이를 연결하는 제2공기유로(210) 상에는 제2송풍기(260)가 구비되고;A second blower 260 is provided on a second air flow path 210 that connects the outlet side of the second area 320 and one side outdoors;
    상기 제2공기유로(210)에는 타측 실외로 연결되는 바이패스유로(285-2)가 연결되며; A bypass flow path 285-2 connected to the other outdoor part is connected to the second air flow path 210;
    상기 제2공기유로(210)와 바이패스유로(285-2)의 교차지점에는 상기 제2공기유로(210)를 유동하는 공기의 유동방향을 상기 바이패스유로(285-2)와 상기 타측 실외 중 어느 하나의 방향으로 선택하기 위한 댐퍼(280-2)가 구비된 것을 특징으로 하는 공기조화기At the intersection of the second air passage 210 and the bypass passage 285-2, a flow direction of air flowing through the second air passage 210 is indicated by the bypass passage 285-2 and the other outdoor part. Air conditioner, characterized in that provided with a damper (280-2) for selecting in any one of the directions
  8. 제1항에 있어서,The method of claim 1,
    상기 제1공기유로(110)와 제2공기유로(210)가 교차하는 지점에는 상기 제1공기유로(110)와 제2공기유로(210)의 유로 방향이 전환되도록 하는 유로전환부(400,700)가 구비된 것을 특징으로 하는 공기조화기At the point where the first air flow path 110 and the second air flow path 210 intersect with each other, flow path switching parts 400 and 700 for changing the flow direction of the first air flow path 110 and the second air flow path 210. Air conditioner characterized in that provided
  9. 제8항에 있어서,The method of claim 8,
    상기 제2영역(320)의 입구 측에 연결된 제2공기유로(210) 상에는 제2송풍기(260)가 구비되고;A second blower 260 is provided on a second air passage 210 connected to the inlet side of the second region 320;
    상기 제2공기유로(210)에는 실외로 연결되는 바이패스유로(285-1)가 연결되며; A bypass flow path 285-1 connected to the second air flow path 210 to the outside is connected;
    상기 제2공기유로(210)와 바이패스유로(285-1)의 교차지점에는 상기 제2공기유로(210)를 유동하는 공기의 유동방향을 상기 바이패스유로(285-1)와 제2영역(320) 중 어느 하나의 방향으로 선택하기 위한 댐퍼(280-1)가 구비된 것을 특징으로 하는 공기조화기At the intersection of the second air passage 210 and the bypass passage 285-1, a flow direction of air flowing through the second air passage 210 is defined by the bypass passage 285-1 and the second region. Air conditioner, characterized in that provided with a damper (280-1) for selecting in any one of the direction (320)
  10. 제8항에 있어서,The method of claim 8,
    상기 유로전환부(400)는, 실내공기가 유입되는 제1유입구(410), 실외공기가 유입되는 제2유입구(420), 상기 제2영역(320)과 연결되는 제2배출구(440), 상기 제1영역(310)과 연결되는 제1배출구(430)로 이루어진 것을 특징으로 공기조화기The flow path switching unit 400 may include a first inlet 410 through which indoor air is introduced, a second inlet 420 through which outdoor air is introduced, a second outlet 440 connected with the second region 320, An air conditioner comprising a first outlet 430 connected to the first region 310.
  11. 제8항에 있어서,The method of claim 8,
    상기 유로전환부(700)는, 환기 모드시 실내 공기와 실외 공기 사이에 전열교환이 이루어지도록 하는 전열교환기(760)를 포함하는 것을 특징으로 하는 공기조화기The flow path switching unit 700, the air conditioner, characterized in that it comprises a total heat exchanger 760 for the total heat exchange between the indoor air and the outdoor air in the ventilation mode
  12. 제11항에 있어서,The method of claim 11,
    상기 유로전환부(700)는, 상기 제1공기유로(110)의 입구측(110a)에 연결되는 제1공간부(701), 상기 제1공기유로(110)를 통해 상기 제1영역(310)에 연결되는 제3공간부(703), 상기 제2공기유로(210)의 입구측(210a)에 연결되는 제2공간부(702), 상기 제2공기유로(210)를 통해 상기 제2영역(320)에 연결되는 제4공간부(704)를 포함하고;The flow path switching unit 700 includes a first space part 701 connected to the inlet side 110a of the first air flow path 110, and the first area 310 through the first air flow path 110. A third space portion 703 connected to the second space portion 703, a second space portion 702 connected to the inlet side 210a of the second air flow passage 210, and the second air passage 210 through the second air passage 210. A fourth space portion 704 connected to the region 320;
    상기 전열교환기(760)는 상기 제1공간부(701)로 유입된 실내 공기가 제4공간부(704)로 유동하고, 상기 제2공간부(702)로 유입된 실외 공기가 제3공간부(703)로 유동하는 경우 열교환이 이루어지는 것을 특징으로 하는 공기조화기In the heat exchanger 760, the indoor air introduced into the first space 701 flows into the fourth space 704, and the outdoor air introduced into the second space 702 receives the third space. When air flows to 703, the air conditioner characterized in that the heat exchange is made
  13. 제12항에 있어서, The method of claim 12,
    상기 제1 내지 제4공간부(601,602,603,604)의 일측을 폐쇄하는 커버플레이트(650)에는, 상기 제1공간부(601)와 제1공기유로(110)를 연통시키는 제1연결구멍(611), 상기 제3공간부(603)와 제1공기유로(110)를 연통시키는 제3연결구멍(613), 상기 제2공간부(602)와 제2공기유로(210)를 연통시키는 제2연통구멍(612), 상기 제4공간부(604)와 제2공기유로(210)를 연통시키는 제4연통구멍(614)이 형성되고;A first connection hole 611 for communicating the first space portion 601 and the first air passage 110 to the cover plate 650 which closes one side of the first to fourth space portions 601, 602, 603, 604, A third connection hole 613 for communicating the third space portion 603 and the first air passage 110, and a second communication hole for communicating the second space portion 602 and the second air passage 210. 612, a fourth communication hole 614 is formed in communication with the fourth space portion 604 and the second air flow path 210;
    상기 제1공간부(601)가 상기 제1연결구멍(611)을 통해 상기 제1공기유로(110)에 연통하도록 하거나 상기 전열교환기(660)를 통해 상기 제4공간부(604)에 연통하도록 개폐 방향이 설정되는 적어도 하나의 댐퍼(671)와, 상기 제2공간부(602)가 상기 제2연결구멍(612)을 통해 상기 제2공기유로(110)에 연통하도록 하거나 상기 전열교환기(660)를 통해 상기 제3공간부(403)에 연통하도록 개폐 방향이 설정되는 적어도 하나의 댐퍼(672)가 구비된 것을 특징으로 하는 공기조화기The first space portion 601 to communicate with the first air passage 110 through the first connection hole 611 or to the fourth space portion 604 through the heat exchanger 660. At least one damper 671 having an opening and closing direction and the second space part 602 communicate with the second air passage 110 through the second connection hole 612 or the heat exchanger 660. Air conditioner, characterized in that at least one damper 672 is set in the opening and closing direction to communicate with the third space 403 through
  14. 제1항에 있어서,The method of claim 1,
    상기 흡착재에 수분을 공급하기 위한 수분공급부(500)가 구비되고, 상기 흡착재가 회전하여 상기 제1영역(310)에 위치하게 되면 상기 제1공기유로(110)를 유동하는 공기에 의해 상기 수분이 증발되어 상기 실내로 유입되는 것을 특징으로 하는 공기조화기A water supply unit 500 is provided to supply water to the adsorbent. When the adsorbent is rotated and positioned in the first region 310, the water is absorbed by air flowing through the first air flow path 110. Air conditioner, characterized in that the evaporation is introduced into the room
  15. 제14항에 있어서,The method of claim 14,
    상기 로터부재(300)에는, 상기 제1영역(310) 및 제2영역(320)과 분리된 제3영역(330)이 형성되고;A third region 330 is formed in the rotor member 300 and separated from the first region 310 and the second region 320;
    상기 수분공급부(500)는 상기 제3영역(330)의 흡착재에 수분을 공급하는 것을 특징으로 하는 공기조화기The water supply unit 500 supplies an air conditioner to the adsorption material of the third region 330.
  16. 제15항에 있어서,The method of claim 15,
    상기 수분공급부(500)는, The moisture supply unit 500,
    가습공기유로(540) 상에 구비되어 수분을 함유하는 가습필터(520);A humidifying filter 520 provided on the humidifying air passage 540 and containing moisture;
    상기 가습공기유로(540) 상에 구비되어 가습필터(520)를 통과한 가습공기를 유동시키기 위한 제3송풍기(510);A third blower (510) provided on the humidifying air passage (540) for flowing humidifying air passing through the humidifying filter (520);
    로 이루어진 것을 특징으로 하는 공기조화기Air conditioner characterized in that consisting of
  17. 제1항에 있어서,The method of claim 1,
    상기 제1공기유로(110)를 통해 실내로 배출되는 공기에 수분을 공급하기 위한 수분공급부(500-1)가 구비된 것을 특징으로 하는 공기조화기Air conditioner, characterized in that provided with a water supply unit 500-1 for supplying water to the air discharged into the room through the first air passage (110)
  18. 제17항에 있어서,The method of claim 17,
    상기 수분공급부(500-1)는, 상기 제1공기유로(110)를 통과하는 공기에 수분을 공급하는 가습필터(520-1)와, 상기 가습필터(520-1)에 수분이 흡착되도록 수분을 공급하는 수분공급수단으로 이루어진 것을 특징으로 하는 공기조화기The moisture supply unit 500-1 includes a humidification filter 520-1 supplying moisture to the air passing through the first air flow path 110, and moisture to adsorb moisture to the humidification filter 520-1. Air conditioner characterized in that consisting of water supply means for supplying
  19. 양단이 실내와 연결된 제1공기유로(110), 양단이 실외와 연결된 제2공기유로(210), 상기 제1공기유로(110) 상에 구비된 제1영역(310)과 상기 제2공기유로(210) 상에 구비된 제2영역(320)과 회전에 의해 상기 제1영역(310)과 제2영역(320)을 교대로 통과하는 흡착재로 이루어진 로터부재(300)를 포함한 공기조화기의 제어방법으로서,A first air passage 110 connected at both ends to the interior, a second air passage 210 connected at both ends to the exterior, a first area 310 and the second air passage provided on the first air passage 110 The air conditioner including the rotor member 300 made of an adsorbent which alternately passes through the first region 310 and the second region 320 by rotation with the second region 320 provided on the 210. As a control method,
    상기 제1영역(310)을 향해 유동하는 공기와 열교환이 이루어지는 제1열교환기(150)와 상기 제2영역(320)을 향해 유동하는 공기와 열교환이 이루어지는 제2열교환기(250)에서 상기 공기의 가열 또는 냉각이 이루어지도록 히트펌프(600)의 냉매의 유동 방향이 전환되도록 제어하는 공기조화기의 제어방법The air in the first heat exchanger 150 that exchanges air with the air flowing toward the first region 310 and the second heat exchanger 250 that exchanges heat with the air flowing toward the second region 320. Control method of the air conditioner for controlling the flow direction of the refrigerant of the heat pump 600 is switched so that the heating or cooling of the
  20. 제19항에 있어서,The method of claim 19,
    상기 히트펌프(600)는 상기 제1영역(310)과 제2영역(320)을 각각 통과한 공기와 열교환이 이루어지는 제3열교환기(170)와 제4열교환기(270)를 더 포함하고;The heat pump (600) further includes a third heat exchanger (170) and a fourth heat exchanger (270) for exchanging heat with air passing through the first region (310) and the second region (320), respectively;
    실내 가습 또는 실내 난방 시, 상기 제1열교환기(150)와 제4열교환기(270)가 응축기와 증발기로 각각 작동하도록 냉매는 제1냉매순환경로(640-1)를 따라 순환하고; During indoor humidification or indoor heating, the refrigerant circulates along the first refrigerant circulation environment path 640-1 so that the first heat exchanger 150 and the fourth heat exchanger 270 operate as condensers and evaporators, respectively;
    실내 제습 또는 실내 냉방 시, 상기 제2열교환기(250)와 제3열교환기(170)가 응축기와 증발기로 각각 작동하도록 냉매는 제2냉매순환경로(640-2)를 따라 순환하며;During indoor dehumidification or indoor cooling, the refrigerant circulates along the second refrigerant net environment path 640-2 so that the second heat exchanger 250 and the third heat exchanger 170 operate as condensers and evaporators, respectively;
    상기 히트펌프(600)의 사방밸브(620)에서 상기 제1냉매순환경로(640-1)와 제2냉매순환경로(640-2)의 선택이 이루어지도록 제어하는 것을 특징으로 하는 공기조화기의 제어방법In the four-way valve 620 of the heat pump 600, the first refrigerant net environment path (640-1) and the second refrigerant net environment path (640-2) to control the selection is made Control method
  21. 제20항에 있어서,The method of claim 20,
    상기 실내 난방시, 상기 제2공기유로(210) 상에 구비된 댐퍼(280-1,280-2)의 유동방향을 전환하여, 상기 제2공기유로(210)를 유동하는 실외공기는 상기 제2영역(320)을 통과하지 않고 실외로 배출되는 것을 특징으로 하는 공기조화기의 제어방법When the indoor heating is performed, the outdoor air flowing through the second air flow path 210 by changing the flow direction of the dampers 280-1 and 280-2 provided on the second air flow path 210 is changed to the second area. Control method of the air conditioner, characterized in that discharged to the outside without passing through 320
PCT/KR2017/002798 2016-03-23 2017-03-15 Air conditioner and control method therefor WO2017164560A2 (en)

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