JP2009228975A - Remote condenser type air conditioner - Google Patents
Remote condenser type air conditioner Download PDFInfo
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- JP2009228975A JP2009228975A JP2008074836A JP2008074836A JP2009228975A JP 2009228975 A JP2009228975 A JP 2009228975A JP 2008074836 A JP2008074836 A JP 2008074836A JP 2008074836 A JP2008074836 A JP 2008074836A JP 2009228975 A JP2009228975 A JP 2009228975A
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Abstract
Description
本発明は室内機に圧縮機,室内熱交換器,室内減圧装置を有し、室外機に室外熱交換器,室外減圧装置を有し、これらを連結してなるリモートコンデンサ型の空気調和機に関し、特に、同一冷凍サイクル系統内に複数台の室外機を並列に接続するものに関する。 The present invention relates to a remote condenser type air conditioner having an indoor unit having a compressor, an indoor heat exchanger, and an indoor pressure reducing device, and having an outdoor heat exchanger and an outdoor pressure reducing device connected to the outdoor unit. In particular, the present invention relates to a configuration in which a plurality of outdoor units are connected in parallel in the same refrigeration cycle system.
室内機に圧縮機を備えたリモートコンデンサ型の空気調和機において、室内機及び室外機間を接続する配管が長くなっても適切に冷暖房できるようにするため、従来技術としては例えば特許文献1および2に記載のものがある。
In a remote condenser type air conditioner having a compressor in an indoor unit, in order to enable proper cooling and heating even when the pipe connecting the indoor unit and the outdoor unit becomes long, as a conventional technique, for example,
しかしながら、上記特許文献1および2の構造では、独立した複数台の室外機を設けた場合に一方の室外熱交換器に冷媒が溜まりこみ、それぞれの室外熱交換器に流入する冷媒量が異なる場合の圧力損失については十分配慮がされていない。運転停止時に一台の室外機の熱交換器内に冷媒が溜まり込み、運転開始時に室外機の熱交換器に保有する冷媒の量が異なると、冷媒を多く保有する方の室外機は圧力損失が大きくなるため冷媒流量が少なくなり、冷媒を多く保有しない方の室外機は圧力損失が小さくなるため冷媒流量が多くなる。この状態で室外機間の圧力状態は均一になることから、結果的に一方は冷媒の流速が早くなることにより圧力損失が増大し、他方も熱交換器が液冷媒に塞がれ通路が減少することにより圧力損失が増大する。この室外機間の圧力がバランスしたところで運転を継続し、冷凍サイクルとして本来の熱交換量,冷媒量が変化し運転状態が不安定になる場合がある。
However, in the structures of
本発明の目的は、リモートコンデンサ型の空気調和機において、複数の室外機間の冷媒流量を均一化し、冷凍サイクル信頼性および性能を向上することにある。本発明の他の目的は、暖房運転時の除霜時の除霜性能を向上させることにある。 An object of the present invention is to make the refrigerant flow rate between a plurality of outdoor units uniform in a remote condenser type air conditioner and to improve the refrigeration cycle reliability and performance. Another object of the present invention is to improve the defrosting performance during defrosting during heating operation.
上記目的を達成するために、本発明は、圧縮機と、室内熱交換器と、室内減圧装置とを有する室内機と、この室内機に配管で接続され、室外熱交換器及び室外減圧装置を有する室外機とを備えたリモートコンデンサ型の空気調和機において、前記室外機は複数台並列に設けられると共に、各室外機にはレシーバが設けられ、このレシーバと前記室外熱交換器との間に前記室外減圧装置が配設され、この室外減圧装置は開度調整可能な膨張弁で構成され、更に前記室外減圧装置をバイパスするバイパス回路を設け、このバイパス回路に前記レシーバ側への流れのみを許容する逆止弁を備えていることを特徴とする。 In order to achieve the above object, the present invention provides an indoor unit having a compressor, an indoor heat exchanger, and an indoor pressure reducing device, and an indoor heat exchanger and an outdoor pressure reducing device connected to the indoor unit by piping. In the remote condenser type air conditioner provided with an outdoor unit having a plurality of the outdoor units are provided in parallel, and each outdoor unit is provided with a receiver, and between the receiver and the outdoor heat exchanger. The outdoor pressure reducing device is disposed, the outdoor pressure reducing device is configured by an expansion valve whose opening degree can be adjusted, and further, a bypass circuit for bypassing the outdoor pressure reducing device is provided, and only the flow to the receiver side is provided in the bypass circuit. It is characterized by having a check valve to allow.
また、上記のものにおいて、前記バイパス回路内に、前記逆止弁と直列に電磁弁を設けることが望ましい。 In the above configuration, it is desirable to provide an electromagnetic valve in series with the check valve in the bypass circuit.
また、上記のものにおいて、前記電磁弁は前記室外減圧装置の開度が全開ならば開、前記室外減圧装置の開度が全開以外ならば閉とすることが望ましい。 In the above configuration, it is desirable that the solenoid valve be opened when the outdoor decompression device is fully open, and closed when the outdoor decompression device is other than fully open.
本発明によれば、室外機は複数台並列に設けられると共に、各室外機にはレシーバが設けられ、このレシーバと前記室外熱交換器との間に前記室外減圧装置が配設され、この室外減圧装置は開度調整可能な膨張弁で構成され、更に前記室外減圧装置をバイパスするバイパス回路を設け、このバイパス回路に前記レシーバ側への流れのみを許容する逆止弁を備えているため、冷房運転時における室外機に冷媒が溜まり込むのを防止し、冷媒流速増大時の圧力損失増加の影響を小さくすることができ、室外機間の冷媒流量を均一とし安定した冷房運転と性能向上が可能となる。 According to the present invention, a plurality of outdoor units are provided in parallel, and each outdoor unit is provided with a receiver, and the outdoor pressure reducing device is disposed between the receiver and the outdoor heat exchanger. Since the pressure reducing device is composed of an expansion valve whose opening degree can be adjusted, and further provided with a bypass circuit that bypasses the outdoor pressure reducing device, the bypass circuit includes a check valve that allows only flow to the receiver side. Refrigerant can be prevented from accumulating in the outdoor unit during cooling operation, the effect of increased pressure loss when the refrigerant flow rate increases can be reduced, and the refrigerant flow between the outdoor units can be made uniform and stable cooling operation and performance improvement can be achieved. It becomes possible.
また、暖房運転時には室外減圧装置をバイパスする回路は逆止弁により遮断されるため、室外減圧装置のみを通過し、その減圧効果により、適正な冷凍サイクル状態を維持することが可能となる。 In addition, since the circuit bypassing the outdoor pressure reducing device is shut off by the check valve during the heating operation, it passes only through the outdoor pressure reducing device, and an appropriate refrigeration cycle state can be maintained by the pressure reducing effect.
さらに、逆止弁と直列に電磁弁を設け、この電磁弁を室外減圧装置の開度が全開ならば開、室外減圧装置の開度が全開以外ならば閉とするように構成することにより、室外機の除霜を効率よく実施することが可能となる。 Furthermore, by providing a solenoid valve in series with the check valve, the solenoid valve is configured to be opened if the outdoor decompression device is fully open, and to be closed if the outdoor decompression device is not fully open, It is possible to efficiently perform defrosting of the outdoor unit.
以下、本発明の実施例について図を用いて説明する。 Embodiments of the present invention will be described below with reference to the drawings.
図1は本発明の実施例による空気調和機のサイクル系統図である。冷房運転の場合、複数台の圧縮機1a,1bで圧縮された高温高圧のガス冷媒は圧縮機1から吐出し、四方弁2,ガス接続配管4,室外ガス分岐管5を経て、複数台の室外熱交換器6a,6bへと流入し、ここで熱交換して凝縮液化する。凝縮液化された冷媒は全開とされた室外減圧装置7a,7bを経て、余剰冷媒をレシーバ10a,10bに残し、室外液分岐管11を経て、液接続配管12を通り室内機17へ送られる。送られた液冷媒は室内減圧装置14へ流入し、ここで低圧となり室内熱交換器15で熱交換して蒸発・ガス化する。その後ガス冷媒は、四方弁2,アキュームレータ16を経て圧縮機1へ戻る。
FIG. 1 is a cycle system diagram of an air conditioner according to an embodiment of the present invention. In the case of cooling operation, the high-temperature and high-pressure gas refrigerant compressed by the plurality of
暖房運転の場合、複数台の圧縮機1a,1bで圧縮された高温高圧のガス冷媒は圧縮機1a,1bから吐出され、四方弁2を経て、室内熱交換器15に流入し、ここで熱交換して凝縮液化する。凝縮液化した冷媒は全開とされた室内減圧装置14および室内液阻止弁13,液接続配管12,室外液分岐管11を経て、複数台のレシーバ10a,10b内に流入し、余剰冷媒をレシーバ10a,10b内に残し、室外減圧装置7a,7bで減圧され室外熱交換器6a,6bで熱交換して蒸発・ガス化する。ガス化した冷媒は室外ガス分岐管5,ガス接続配管4,室内ガス阻止弁3,四方弁2,アキュームレータ16を経て、複数台の圧縮機1a,1bへ戻る。
In the case of heating operation, the high-temperature and high-pressure gas refrigerant compressed by the plurality of
また、除霜運転の場合は四方弁2を切り換えて前記冷房運転時のサイクルにて運転される。
In the case of defrosting operation, the four-
冷房運転開始時に室外熱交換器6a側に液冷媒が多く溜まり込み、室外熱交換器6b側には殆ど液冷媒の溜まり込みがない場合、室外熱交換器6a側の液冷媒は室外減圧装置7aに一度に流れ込もうとするが室外減圧装置7aは容量を圧縮機1台分、即ち本実施例では2台の圧縮機から流出する全冷媒量の半分の容量としていることから多くの冷媒を流すことができず、室外熱交換器6a内には冷媒が多く溜まり込んだままとなる。
When a large amount of liquid refrigerant accumulates on the outdoor heat exchanger 6a side and almost no liquid refrigerant accumulates on the
また、室外熱交換器6b側では液冷媒の溜まり込みが殆どないことから液冷媒よりも体積的に大きくなるガス冷媒が流れ込もうとするが前記同様に室外減圧装置7bの容量は圧縮機1台分の液冷媒の容量であることから必要な冷媒を流しきれなくなる。
Further, since there is almost no accumulation of liquid refrigerant on the
そこで、冷房運転時に全開となる室外減圧装置をバイパスするバイパス回路を設け、このバイパス回路に電磁弁8,逆止弁9を設け、電磁弁8に通電し開くことにより冷媒は前記室外減圧装置だけでなくバイパス回路からも流れるから、冷媒の流れを良くすることができ、前記運転開始前の室外熱交換器6a,6bに冷媒の偏りがあった場合でも冷媒をスムーズに流すことが可能となり、複数の室外機間を流れる冷媒の偏りは発生しにくくなり、冷房運転時の性能および信頼性を向上できる。
Therefore, a bypass circuit that bypasses the outdoor decompression device that is fully opened during the cooling operation is provided, and the bypass valve is provided with an electromagnetic valve 8 and a check valve 9, and the solenoid valve 8 is energized and opened so that the refrigerant is only the outdoor decompression device. Since it also flows from the bypass circuit, it is possible to improve the flow of the refrigerant, and even when the
また、暖房運転時はバイパス回路を液冷媒が流れるのを逆止弁9で遮断するので、室外減圧装置のみで制御することが可能となる。 In addition, during the heating operation, the flow of liquid refrigerant in the bypass circuit is blocked by the check valve 9, so that it can be controlled only by the outdoor pressure reducing device.
さらに、除霜運転時は前記複数の室外機は冷房サイクルとなるが、除霜が終了した室外機は室外減圧装置を絞り、電磁弁8を閉じることによって、冷媒の流れを減少させ、除霜が終了していない室外機18への冷媒の流れを多くすることで効率よく除霜することが可能となる。 Further, during the defrosting operation, the plurality of outdoor units are in a cooling cycle. However, the outdoor unit that has been defrosted reduces the refrigerant flow by reducing the outdoor pressure reducing device and closing the electromagnetic valve 8 to defrost. The defrosting can be efficiently performed by increasing the flow of the refrigerant to the outdoor unit 18 that is not finished.
1 圧縮機
2 四方弁
3 室内ガス阻止弁
4 ガス接続配管
5 室外ガス分岐管
6 室外熱交換器
7 室外減圧装置
8 電磁弁
9 逆止弁
10 レシーバ
11 室外液分岐管
12 液接続配管
13 室内液阻止弁
14 室内減圧装置
15 室内熱交換器
16 アキュームレータ
17 室内機
18 室外機
DESCRIPTION OF
Claims (3)
前記室外機は複数台並列に設けられると共に、各室外機にはレシーバが設けられ、このレシーバと前記室外熱交換器との間に前記室外減圧装置が配設され、この室外減圧装置は開度調整可能な膨張弁で構成され、更に前記室外減圧装置をバイパスするバイパス回路を設け、このバイパス回路に前記レシーバ側への流れのみを許容する逆止弁を備えていることを特徴とするリモートコンデンサ型の空気調和機。 Remote condenser type air having an indoor unit having a compressor, an indoor heat exchanger, and an indoor pressure reducing device, and an outdoor unit connected to the indoor unit by a pipe and having an outdoor heat exchanger and an outdoor pressure reducing device In the harmony machine,
A plurality of the outdoor units are provided in parallel, and each outdoor unit is provided with a receiver, and the outdoor pressure reducing device is disposed between the receiver and the outdoor heat exchanger. A remote condenser comprising an adjustable expansion valve, further comprising a bypass circuit that bypasses the outdoor pressure reducing device, and further including a check valve that allows only the flow to the receiver side. Type air conditioner.
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JP2015224829A (en) * | 2014-05-28 | 2015-12-14 | ダイキン工業株式会社 | Refrigeration device |
WO2018003696A1 (en) * | 2016-06-30 | 2018-01-04 | ダイキン工業株式会社 | Refrigeration device |
WO2019044661A1 (en) * | 2017-08-29 | 2019-03-07 | 東芝キヤリア株式会社 | Multi-type air conditioning system and indoor unit |
WO2020261734A1 (en) * | 2019-06-25 | 2020-12-30 | 東芝キヤリア株式会社 | Outdoor unit of refrigeration cycle device |
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JP2015224829A (en) * | 2014-05-28 | 2015-12-14 | ダイキン工業株式会社 | Refrigeration device |
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JPWO2020261734A1 (en) * | 2019-06-25 | 2021-12-02 | 東芝キヤリア株式会社 | Outdoor unit of refrigeration cycle equipment |
JP7198355B2 (en) | 2019-06-25 | 2022-12-28 | 東芝キヤリア株式会社 | Outdoor unit of refrigeration cycle equipment |
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