WO2016047470A1 - 空気調和機 - Google Patents

空気調和機 Download PDF

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Publication number
WO2016047470A1
WO2016047470A1 PCT/JP2015/075899 JP2015075899W WO2016047470A1 WO 2016047470 A1 WO2016047470 A1 WO 2016047470A1 JP 2015075899 W JP2015075899 W JP 2015075899W WO 2016047470 A1 WO2016047470 A1 WO 2016047470A1
Authority
WO
WIPO (PCT)
Prior art keywords
outdoor
fan
heat exchanger
internal cleaning
air conditioner
Prior art date
Application number
PCT/JP2015/075899
Other languages
English (en)
French (fr)
Japanese (ja)
Inventor
久原英則
上野円
Original Assignee
シャープ株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by シャープ株式会社 filed Critical シャープ株式会社
Priority to CN201580012296.1A priority Critical patent/CN106062487A/zh
Publication of WO2016047470A1 publication Critical patent/WO2016047470A1/ja

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/89Arrangement or mounting of control or safety devices
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/22Means for preventing condensation or evacuating condensate

Definitions

  • the present invention relates to an air conditioner equipped with an outdoor unit.
  • the internal cleaning operation basically performs a heating operation in which the refrigeration cycle is reverse to the cooling operation, thereby causing the indoor heat exchanger to function as a condenser and evaporating moisture around the drain receiver.
  • Patent Document 1 when the cooling operation is performed and the indoor temperature is lower than the target temperature and the compressor is stopped, if the fan rotation speed of the indoor fan is equal to or less than a predetermined value, noise caused by an increase in the fan rotation speed of the indoor fan is described. Increase the fan rotation speed of the indoor fan so that the size is within the range of the noise generated in the indoor unit due to the flow of the refrigerant in the state where the refrigerant is flowing through the indoor unit, It is described that the condensation on the fan is dried.
  • Patent Document 2 when there is an instruction to stop the cooling operation, the time required for the drain water accumulated in the indoor unit where the stop instruction has been evaporated to evaporate and disappear from the drain pan is determined. It is described that a drain pan drying operation for operating the indoor fan of the indoor unit is started when the condensation is likely to occur inside the indoor unit within the required time after the stop.
  • the drying operation control for drying the interior of the indoor unit includes a first blower state in which the blower is operated, a first stop state in which the blower is stopped, and the indoor heat exchanger as a radiator. It is described that the state is switched in the order of the heating state to suppress the growth of mold and bacteria in the indoor unit.
  • Patent Document 4 when a mold condensation prevention command is received in a time zone other than the specific time zone, the mold condensation prevention operation is waited until entering the specific time zone, and when entering the specific time zone, mold condensation prevention is performed. It is described that the operation is performed.
  • Patent Document 5 when the operation using the indoor heat exchanger as a cooler is stopped or shifted to another operation, the water reduction operation for reducing the compressor speed is performed for a predetermined time, and then the operation is stopped or shifted to another operation. It is described to do.
  • an object of the present invention is to provide a highly reliable air conditioner that performs a drying operation while reducing the load on the compressor during the internal cleaning operation.
  • the present invention includes a control unit that controls the operation of the air conditioner, and the control unit includes moisture around the indoor heat exchanger, indoor fan, or drain receiver of the indoor unit after the cooling operation.
  • the control unit performs control to vary the fan rotation speed of the outdoor fan of the outdoor unit in the internal cleaning operation mode.
  • the fluctuation of the fan speed includes any concept of decrease, increase and stop of the fan speed.
  • the refrigerant evaporation pressure in the outdoor heat exchanger depends on the fan rotation speed of the outdoor fan, and the higher the fan rotation speed, the higher the refrigerant evaporation pressure.
  • FIG. 4 is a cross-sectional view taken along line AA in FIG. 3. It is a refrigerating cycle figure of an air conditioner. It is a control block diagram of an air conditioner. 3 is a control flowchart showing an internal cleaning operation mode according to the first embodiment. It is a control flowchart which shows the internal cleaning operation mode which is 2nd Embodiment. It is a control flowchart which shows the internal cleaning operation mode which is 3rd Embodiment.
  • the outdoor unit 1 includes a compressor 2, a four-way valve 3 that is a switching valve, an outdoor heat exchanger 4, and an outdoor fan 5 in a housing (not shown).
  • the compressor 2 and the four-way valve 3 are arranged in the right machine room of FIG. 1, and the outdoor heat exchanger 4 and the outdoor fan 5 are arranged in the left heat exchange chamber of the figure.
  • the machine room and the heat exchange chamber are partitioned by a partition wall.
  • a storage unit that stores electrical components such as a substrate is provided at the top of the housing.
  • the outdoor heat exchanger 4 is arranged in a horizontal L shape in plan view, and is erected on the back side on the bottom plate 6 of the housing.
  • the outdoor fan 5 includes a rotary blade 5a and a fan motor 5b.
  • the fan motor 5 b is attached to the support frame 7 erected on the bottom plate 6 on the front side of the outdoor heat exchanger 4.
  • the support frame 7 is fixed to the bottom plate 6 with screws.
  • the upper end of the support frame 7 is bent forward and attached to the top plate (not shown) of the housing, and is firmly fixed by the bottom plate 6 and the top plate.
  • the support frame 7 includes a horizontal beam 7 a and a vertical beam 7 b that support the motor 5 b of the outdoor fan 5 arranged in a grid, and a space surrounded by the horizontal beam 7 a and the vertical beam 7 b is It functions as a vent 9.
  • a motor mounting base 10 for mounting the motor 5b with a screw or the like is provided at an intermediate position in the vertical direction of the support frame 7.
  • the motor mount 10 is provided so as to protrude forward one step from the horizontal beam 7a and the vertical beam 7b.
  • the motor mounting base 10 has an opening 11 at the center, and pedestals 12 for fixing screws are formed at four corners. In the opening 11, the mouth wall is folded back to the back side and is reinforced structurally.
  • the horizontal beam 7a and the vertical beam 7b are formed in a substantially C-shaped cross section in which the back side is opened and the bent portion is bent at a substantially right angle.
  • a plurality of ventilation openings 13 and 14 for reducing ventilation resistance are continuously formed in the front plane portions of the horizontal beam 7a and the vertical beam 7b.
  • the vertical beam 7b is formed wider, and accordingly, the ventilation opening 14 of the vertical beam 7b is formed larger than the ventilation opening 13 of the horizontal beam 7a.
  • Each of the ventilation openings 13 and 14 is formed in a triangular shape (a right-angled isosceles triangle in FIG. 3), and the frames are arranged in a truss shape. Therefore, since a plurality of triangular ventilation openings 131 and 4 are formed over almost the entire area of the horizontal beam 7a and the vertical beam 7b, the ventilation resistance can be greatly reduced.
  • the support frame 7 has a truss-shaped frame structure in which braces are inserted into a rectangular frame, and has a strong structure.
  • the mouth walls of the ventilation openings 13 and 14 are formed with reinforcing ribs 15 that rise from the upstream side to the downstream side in the ventilation direction, and have a more rigid structure.
  • the horizontal fan 7a is driven by the flow of wind from the outdoor heat exchanger 4 side to the front side (in the direction of the arrow in FIG. 4) by driving the outdoor fan 5.
  • the wind passing through the C-shaped inner surface of the vertical beam 7b passes through the horizontal beam 7a and the vertical beam 7b of the support frame 7 without being blocked by the ventilation openings 13 and 14, thereby improving the blowing performance. Can be made.
  • FIG. 5 is a refrigeration cycle diagram of an air conditioner.
  • the refrigeration cycle constitutes a circulation cycle in which the compressor 2, the four-way valve 3, the outdoor heat exchanger 4, the expansion device 20, and the indoor heat exchanger 8 are sequentially connected to circulate the refrigerant.
  • An outdoor fan 5 is provided facing the outdoor heat exchanger 4, and an indoor fan 21 such as a cross flow fan is provided in the indoor heat exchanger 8.
  • An outdoor air temperature detection sensor 22 that detects an outdoor air temperature is provided in the vicinity of the outdoor heat exchanger 4, and a room temperature detection sensor 23 that detects an indoor temperature is provided on the indoor heat exchanger 8 side.
  • the indoor heat exchanger 8 and the indoor fan 21 are accommodated in a housing to constitute an indoor unit.
  • the outdoor heat exchanger 4 is provided with an outdoor heat exchanger temperature detection sensor 24 that detects the temperature of the outdoor heat exchanger, and the indoor heat exchanger 8 has an indoor heat exchange that detects the temperature of the indoor heat exchanger.
  • a vessel temperature detection sensor 25 is provided.
  • the compressor 2 is provided with a compressor discharge temperature detection sensor 26 for detecting the refrigerant discharge temperature.
  • FIG. 6 is a control block diagram of the air conditioner.
  • the control unit 30 is composed of a general microcomputer. On the input side of the control unit 30, an outside air temperature detection sensor 22, a room temperature detection sensor 23, an outdoor heat exchanger temperature detection sensor 24, an indoor heat exchanger temperature detection sensor 25, and a compressor discharge for detecting the discharge temperature of the compressor. A temperature detection sensor 26 is connected.
  • the compressor 2, the switching valve 3 that is a four-way valve, the outdoor fan 5, and the indoor fan 21 are connected to the output side of the control unit 30.
  • the controller 30 is connected to a timer 32 that measures time.
  • the control unit 30 circulates the refrigerant in the refrigeration cycle in the cooling direction in the figure, thereby causing the indoor heat exchanger 8 to function as an evaporator and cooling the room, and the refrigerant in the heating direction in the figure
  • the indoor heat exchanger functions as a condenser, and the heating operation mode for heating the room and various other modes can be executed.
  • control unit 30 can execute an internal cleaning operation mode in which water around the indoor heat exchanger 8 and the drain receiver (not shown) is evaporated.
  • this internal cleaning operation mode the refrigerant is basically circulated by the heating operation cycle, and the water around the indoor heat exchanger 8 and the drain receiver (not shown) is evaporated.
  • the compressor 2 is normally controlled during the heating operation.
  • FIG. 7 is a control flowchart showing an internal cleaning operation mode according to the first embodiment.
  • the outdoor fan 5 is intermittently operated while driving the compressor 2 (S1).
  • the intermittent operation varies the fan rotation speed of the outdoor fan 5. Specifically, the outdoor fan 5 is stopped or the fan rotation speed of the outdoor fan 5 is decreased. If the predetermined time tf has elapsed from the start of operation (S2: Y), the internal cleaning operation is terminated.
  • the outdoor heat exchanger 4 functions as an evaporator, and the refrigerant evaporates in the outdoor heat exchanger 4.
  • the evaporating pressure of the refrigerant in the outdoor heat exchanger 4 increases as the fan rotation speed of the outdoor fan 5 increases.
  • the load on the compressor 2 also increases. Therefore, the outdoor fan 5 is intermittently operated to suppress the fan rotation speed of the outdoor fan 5, thereby reducing the refrigerant evaporation pressure. 2 to reduce the load.
  • FIG. 8 is a control flowchart showing an internal cleaning operation mode according to the second embodiment.
  • the outdoor fan 5 is intermittently operated according to various conditions while basically driving the compressor 2. Specifically, when the internal cleaning operation is started, first, it is determined whether or not the temperature Te of the outdoor heat exchanger 4 is lower than a second predetermined temperature Thb (Tha> Thb) (S3), and outdoor heat exchange is performed. When the temperature Te of the compressor 4 is lower than the predetermined temperature Thb (S3: Y), since the refrigerant pressure is low, it is determined that the load applied to the compressor 2 is low, and the outdoor fan 5 is turned on (S4). This is repeated until the temperature Te of the outdoor heat exchanger 4 reaches a predetermined temperature Thb.
  • Thb Tha> Thb
  • the control unit 30 determines whether or not the temperature Te of the outdoor heat exchanger 4 is equal to or higher than the first predetermined temperature Tha (Tha> Thb) (S5), and the temperature Te of the outdoor heat exchanger 4 is the first predetermined temperature. If it is higher than Tha (S5: Y), the pressure of the refrigerant applied to the outdoor heat exchanger 4 is so high that there is a risk that an excessive load is applied to the compressor 2, so the fan rotational speed of the outdoor fan 5 is reduced (S6). The load applied to the compressor 2 is reduced. When the temperature Te of the outdoor heat exchanger 4 is lower than the first predetermined temperature Tha, the load applied to the compressor 2 is within the allowable range, so the operation of the outdoor fan 5 is continued (S4).
  • the internal cleaning operation for reducing the fan rotation speed of the outdoor fan 5 is repeated until the first predetermined time t0 is continued (S7: N), and if the first predetermined time t0 has elapsed (S7: Y).
  • the outdoor fan 5 is stopped while continuing the operation of the compressor 2 (S8), and the temperature of the outdoor heat exchanger 4 is prevented from rising.
  • the fan rotation speed of the outdoor fan 5 during the internal cleaning operation is made smaller than the fan rotation speed of the outdoor fan 5 during the immediately preceding cooling operation. Therefore, the evaporation pressure of a refrigerant
  • coolant can be suppressed and the load of the compressor 2 can be reduced.
  • Such measures for reducing the load on the compressor 2 include not only the indoor heat exchanger 8 of the indoor unit, the indoor fan, and the internal cleaning operation for evaporating the moisture around the drain receiver after the cooling operation, but also summertime, etc. It can also be applied during heating operation performed at high temperatures. Specifically, the outdoor heat exchanger temperature Te or the ambient temperature (outside air temperature) is detected, and when the detected temperature exceeds the first predetermined temperature Tha, the fan rotation speed of the outdoor fan 5 is reduced or stopped. Let Moreover, if it becomes lower than 2nd predetermined temperature Thb, control which raises the fan rotation speed of the outdoor fan 5 can be performed, and the load concerning the compressor 2 can be reduced.
  • FIG. 9 is a control flowchart showing an internal cleaning operation mode according to the third embodiment.
  • a preparatory operation for entering the internal cleaning operation is performed. That is, as shown in FIG. 9, when the cooling operation is stopped during the cooling operation (S10), the compressor 2, the indoor fan 21, and the outdoor fan 5 are stopped (S11), and then the internal cleaning operation is performed. Before entering (S13), the operation of the outdoor fan 5 is started (S12).
  • the air conditioner having a control unit capable of executing an internal cleaning operation for evaporating water around the indoor heat exchanger and the drain receiver,
  • the fan rotation speed of the outdoor fan is varied.
  • the fan rotation speed of the outdoor fan of the outdoor unit is changed during the internal cleaning operation, the increase in the evaporation pressure of the outdoor heat exchanger can be suppressed and the load on the compressor (air conditioner part) can be reduced. Further, since the load on the compressor is reduced, the internal cleaning operation can be continuously performed, and moisture can be sufficiently removed.
  • control unit can execute an intermittent operation for temporarily stopping or lowering the outdoor fan during the internal cleaning operation.
  • the fluctuation of the rotational speed of the outdoor fan can be executed by temporarily stopping or reducing the outdoor fan. Therefore, during the internal cleaning operation, the increase in the evaporation pressure of the outdoor heat exchanger can be suppressed, and the load on the compressor (air conditioner component) can be reduced.
  • control unit detects the outdoor heat exchanger temperature or the ambient temperature during the internal cleaning operation, and reduces or stops the rotational speed of the outdoor fan when the detected temperature is equal to or higher than the first predetermined temperature.
  • the temperature is lower than the second predetermined temperature, it is possible to perform control to increase the fan rotation speed of the outdoor fan.
  • the operation time of the internal cleaning operation can be extended and moisture can be sufficiently removed.
  • control unit when switching from the cooling operation to the internal cleaning operation, performs control to make the fan rotation speed of the outdoor fan during the internal cleaning operation smaller than the fan rotation speed of the outdoor fan during the immediately preceding cooling operation. Can do. Operation noise can be reduced by making the rotational speed of the outdoor fan during the internal cleaning operation smaller than the rotational speed of the outdoor fan during the cooling operation.
  • control unit can perform control to start the internal cleaning operation after rotating the outdoor fan to dissipate heat from the outdoor heat exchanger when switching from the cooling operation to the internal cleaning operation. It is possible to dissipate the heat of the outdoor heat exchanger during the cooling operation, and as a result, it is possible to prevent the evaporation pressure from increasing and to extend the operation time of the internal cleaning operation.
  • the present invention can be applied not only to the control of the outdoor fan in the internal cleaning operation mode, but also to the control of the outdoor fan during the heating operation. That is, in the air conditioner including the control unit that controls the heating operation, the control unit changes the fan rotation speed of the outdoor fan of the outdoor unit when the outside air temperature becomes equal to or higher than a predetermined temperature during the heating operation. The fluctuation of the fan speed is executed by an intermittent operation in which the outdoor fan is temporarily stopped or lowered. In this heating operation mode, the control unit, when switching from the cooling operation to the heating operation, makes the fan rotation speed of the outdoor fan during the heating operation smaller than the fan rotation speed of the outdoor fan during the immediately preceding cooling operation, Driving noise can be reduced.
  • control unit starts the heating operation after rotating the outdoor fan to dissipate heat from the outdoor heat exchanger when switching from the cooling operation to the heating operation, and the outdoor heat exchanger is warmed during the cooling operation.
  • the increase in the evaporation pressure of the outdoor heat exchanger can be suppressed, and the heating operation time can be extended.
  • a support frame comprising a horizontal beam and a vertical beam arranged in a grid pattern for supporting the motor of the outdoor fan for the outdoor heat exchanger installed on the back side of the outdoor unit is provided. Further, by providing a plurality of ventilation openings in the vertical beam, the ventilation resistance in the flat portion of the support frame can be reduced.
  • a reinforcing rib that rises from the upstream side to the downstream side in the ventilation direction is formed around the opening.
  • the plurality of openings are triangular and the frames are arranged in a truss shape. As a result, the strength of the support frame can be maintained while reducing the ventilation resistance.
  • Outdoor unit 2 Compressor 3
  • Four-way valve (switching valve) 4 Outdoor Heat Exchanger 5 Outdoor Fan 5a Rotating Blade 5b Fan Motor 6 Bottom Plate 7 Support Frame 8 Indoor Heat Exchanger 9 Ventilation Port 10 Motor Mounting Base 11 Opening 12 Pedestal 13, 14 Ventilation Opening 15 Reinforcement Rib 20 Throttle Device 21 Indoor Fan 22 Outside air temperature detection sensor 23 Room temperature detection sensor 24 Outdoor heat exchanger temperature detection sensor 25 Indoor heat exchanger temperature detection sensor 26 Compressor discharge temperature detection sensor 30 Control unit 32 Timer

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Air Conditioning Control Device (AREA)
  • Devices For Blowing Cold Air, Devices For Blowing Warm Air, And Means For Preventing Water Condensation In Air Conditioning Units (AREA)
PCT/JP2015/075899 2014-09-26 2015-09-11 空気調和機 WO2016047470A1 (ja)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201580012296.1A CN106062487A (zh) 2014-09-26 2015-09-11 空气调节机

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2014-196898 2014-09-26
JP2014196898A JP6382666B2 (ja) 2014-09-26 2014-09-26 空気調和機

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Publication Number Publication Date
WO2016047470A1 true WO2016047470A1 (ja) 2016-03-31

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CN (1) CN106062487A (zh)
WO (1) WO2016047470A1 (zh)

Families Citing this family (7)

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Publication number Priority date Publication date Assignee Title
CN106705376B (zh) * 2017-01-04 2020-02-04 青岛海尔空调器有限总公司 空调器室内机自清洁方法
JP6824779B2 (ja) * 2017-02-28 2021-02-03 株式会社富士通ゼネラル 空気調和機の防カビ方法およびそれを用いた空気調和機
EP3611446B1 (en) * 2017-04-28 2022-05-11 Hitachi-Johnson Controls Air Conditioning, Inc. Air-conditioner
CN109790994A (zh) * 2017-04-28 2019-05-21 日立江森自控空调有限公司 空调机
CN110410925B (zh) * 2019-07-23 2021-12-10 宁波奥克斯电气股份有限公司 一种空调外机自清洗的空调装置、控制方法及空调器
CN110530016B (zh) * 2019-08-08 2021-02-23 浙江今顶集成吊顶有限公司 一种吊顶暖风机自清洁的控制方法
CN111089409B (zh) * 2019-12-18 2021-09-21 青岛海尔空调器有限总公司 用于控制外机风机的方法、装置及空调器

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JP2003222370A (ja) * 2002-01-30 2003-08-08 Matsushita Electric Ind Co Ltd 空気調和機
JP2004278981A (ja) * 2003-03-18 2004-10-07 Mitsubishi Heavy Ind Ltd 空調用室内ユニット及びこれを備えた空気調和機

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CN106062487A (zh) 2016-10-26
JP6382666B2 (ja) 2018-08-29
JP2016070517A (ja) 2016-05-09

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