JP2009250461A - Heat pump hot water supply device - Google Patents

Heat pump hot water supply device Download PDF

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JP2009250461A
JP2009250461A JP2008095632A JP2008095632A JP2009250461A JP 2009250461 A JP2009250461 A JP 2009250461A JP 2008095632 A JP2008095632 A JP 2008095632A JP 2008095632 A JP2008095632 A JP 2008095632A JP 2009250461 A JP2009250461 A JP 2009250461A
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hot water
pump
output
water supply
storage tank
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JP5151626B2 (en
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Naoto Yamamura
直人 山村
Kenji Shirai
健二 白井
Bunji Hayashi
文次 林
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Panasonic Corp
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Panasonic Corp
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a heat pump hot water supply device capable of detecting scale in a heat exchanger for hot water supply at an early time. <P>SOLUTION: This heat pump hot water supply device comprises: a heat pump cycle; a hot water storage tank 20; a water circuit connected to an upper portion of the hot water storage tank 20 from a lower portion in the hot water storage tank 20 through a heat exchanger 12 for hot water supply; a circulation pump 23 for conveying hot water/water in the water circuit; a flow rate detecting means 20F for detecting a flow rate in the water circuit; a target hot water supply temperature setting means 44 for setting a target hot water supply temperature after heat exchange by the heat exchanger for hot water supply; and a pump output detecting means 23A for detecting the output of the circulation pump 23. The target hot water supply temperature is limited when the flow rate detected by the flow rate detecting means 20F is lowered though the output of the circulation pump 23 detected by the pump output detecting means 23A is same as the output of the circulation pump 23 in the last operation in operation by driving the circulation pump 23. <P>COPYRIGHT: (C)2010,JPO&INPIT

Description

本発明は、ヒートポンプ給湯装置に関するものである。   The present invention relates to a heat pump water heater.

従来から、給湯用熱交換器を流れる水回路の異常をいち早く検知するために流量変化を検出する手段、圧力変化を検出する手段、ポンプの出力変化を検出する手段、給湯加熱能力の変化を検出する手段などを設けるヒートポンプ給湯装置が提案されている。   Conventionally, means for detecting flow rate changes, means for detecting pressure changes, means for detecting changes in pump output, and detecting changes in hot water heating capacity in order to quickly detect abnormalities in the water circuit flowing through the hot water heat exchanger. There has been proposed a heat pump hot-water supply device provided with a means for performing the above.

そして、これらの検出手段によって水回路のつまり検知に基づき、異常を報知する様々な手段や、圧縮機の運転を停止する手段などを設けたヒートポンプ給湯装置が提案されている(例えば、特許文献1参照)。   And the heat pump hot-water supply apparatus provided with the various means which alert | reports abnormality based on the clogging detection of a water circuit by these detection means, the means to stop the operation of a compressor, etc. is proposed (for example, patent document 1). reference).

特許文献1では、水回路のつまりをいち早く検知することにより、信頼性の向上を図ることができる。
特開2004−116942号公報
In Patent Document 1, it is possible to improve reliability by quickly detecting clogging of the water circuit.
JP 2004-116942 A

しかしながら、一般に、水道水や地下水等の給湯用の水は、カルシウムやマグネシウム等の硬度成分を含んでおり、地域によっては、このような硬度成分を非常に多く含んでいる。そのため、硬度成分を比較的多く含む水を、ヒートポンプ給湯装置の給湯用熱交換器で長期間高温に加熱すると、最も高温となる水回路の出口部近傍を中心に、硬度成分がスケールとして析出する可能性がある。   However, in general, water for hot water supply such as tap water and groundwater contains hardness components such as calcium and magnesium, and depending on the region, contains very much such hardness components. Therefore, when water containing a relatively large amount of hardness component is heated to a high temperature for a long time with a heat exchanger for hot water supply of a heat pump water heater, the hardness component precipitates as a scale around the vicinity of the outlet portion of the water circuit that becomes the highest temperature. there is a possibility.

このようなスケールが、給湯用熱交換器の水回路の伝熱面や、水回路を構成する配管の内周に付着し堆積していくと、水の流動抵抗となって圧力損失が増大し、水ポンプの負荷を増大させたり、冷媒と水とが熱交換する際の伝熱面の熱抵抗となり、熱交換器としての性能を著しく低減させる。さらに、水回路がスケールにより完全に閉塞されると、ヒートポンプ給湯装置による給湯運転が不可能となるという課題があった。   If such a scale adheres to and accumulates on the heat transfer surface of the water circuit of the heat exchanger for hot water supply or the inner circumference of the pipes that make up the water circuit, it becomes a flow resistance of water and pressure loss increases. The load of the water pump is increased, or the heat resistance of the heat transfer surface when heat is exchanged between the refrigerant and the water, and the performance as a heat exchanger is significantly reduced. Furthermore, when the water circuit is completely blocked by the scale, there is a problem that the hot water supply operation by the heat pump hot water supply device becomes impossible.

本発明は、前記従来の課題を解決するもので、給湯用熱交換器のスケールを早期に検出することが可能なヒートポンプ給湯装置を提供することを目的とする。   This invention solves the said conventional subject, and it aims at providing the heat pump hot water supply apparatus which can detect the scale of the heat exchanger for hot water supply at an early stage.

前記従来の課題を解決するために、本発明のヒートポンプ給湯装置は、圧縮機、給湯用熱交換器、膨張弁、蒸発器を冷媒配管により順次環状に接続して構成されるヒートポンプサイクルと、給湯用の液体を貯える貯湯タンクと、前記貯湯タンク内の下部から前記給湯用熱交換器を介して前記貯湯タンクの上部へ接続される水回路と、前記水回路内の湯水を搬送するための循環ポンプと、前記水回路内の流量を検出する流量検出手段と、前記給湯用熱交換器で熱交換された後の湯水の目標出湯温度を設定する目標出湯温度設定手段と、前記循環ポンプの出力を検出するポンプ出力検出手段とを備え、前記循環ポンプを駆動して運転する時に、前記ポンプ出力検出手段で検出する循環ポンプの出力が、前回運転した時の循環ポンプの出力と同じであるにもかかわらず、前記流量検出手段で検出する流量が低下している場合には、前記目標出湯温度の制限を行うことにより、いち早くスケール詰まりを発見することができるとともに、スケール詰まりを発見した後にさらなるスケールが発生することを抑制して、給湯用熱交換器の延命を図ることができる。   In order to solve the above-mentioned conventional problems, a heat pump hot water supply apparatus of the present invention includes a heat pump cycle configured by sequentially connecting a compressor, a hot water heat exchanger, an expansion valve, and an evaporator in an annular manner through a refrigerant pipe, A hot water storage tank for storing liquid for use, a water circuit connected from the lower part of the hot water storage tank to the upper part of the hot water storage tank via the hot water supply heat exchanger, and a circulation for transporting the hot water in the water circuit A pump, flow rate detecting means for detecting a flow rate in the water circuit, target hot water temperature setting means for setting a target hot water temperature after heat exchange in the hot water heat exchanger, and output of the circulation pump A pump output detecting means for detecting the output of the circulating pump, and when the circulating pump is driven to operate, the output of the circulating pump detected by the pump output detecting means is the same as the output of the circulating pump at the previous operation. However, when the flow rate detected by the flow rate detecting means is low, by limiting the target hot water temperature, scale clogging can be found quickly and scale clogging has been found. It is possible to prevent the occurrence of further scale later and to extend the life of the heat exchanger for hot water supply.

本発明は、給湯用熱交換器のスケールを早期に検出することが可能なヒートポンプ給湯装置を提供することができる。   The present invention can provide a heat pump hot water supply apparatus that can detect the scale of a heat exchanger for hot water supply at an early stage.

第1の発明のヒートポンプ給湯装置は、圧縮機、給湯用熱交換器、膨張弁、蒸発器を冷媒配管により順次環状に接続して構成されるヒートポンプサイクルと、給湯用の液体を貯える貯湯タンクと、前記貯湯タンク内の下部から前記給湯用熱交換器を介して前記貯湯タンクの上部へ接続される水回路と、前記水回路内の湯水を搬送するための循環ポンプと、前記水回路内の流量を検出する流量検出手段と、前記給湯用熱交換器で熱交換された後の湯水の目標出湯温度を設定する目標出湯温度設定手段と、前記循環ポンプの出力を検出するポンプ出力検出手段とを備え、前記循環ポンプを駆動して運転する時に、前記ポンプ出力検出手段で検出する循環ポンプの出力が、前回運転した時の循環ポンプの出力と同じであるにもかかわらず、前記流量検出手段で検出する流量が低下している場合には、前記目標出湯温度の制限を行うことにより、いち早くスケール詰まりを発見することができるとともに、スケール詰まりを発見した後にさらなるスケールが発生することを抑制して、給湯用熱交換器の延命を図ることができる。   A heat pump hot water supply apparatus according to a first aspect of the present invention includes a heat pump cycle configured by sequentially connecting a compressor, a hot water heat exchanger, an expansion valve, and an evaporator in an annular manner through a refrigerant pipe, and a hot water storage tank for storing hot water liquid. A water circuit connected from the lower part of the hot water storage tank to the upper part of the hot water storage tank via the heat exchanger for hot water supply, a circulation pump for conveying hot water in the water circuit, A flow rate detecting means for detecting a flow rate, a target hot water temperature setting means for setting a target hot water temperature after heat exchange in the hot water heat exchanger, and a pump output detecting means for detecting an output of the circulation pump. The output of the circulating pump detected by the pump output detecting means when the circulating pump is driven to operate is the same as the output of the circulating pump at the previous operation. When the flow rate detected by the discharge means is reduced, by limiting the target hot water temperature, it is possible to find scale clogging as soon as possible and to generate further scale after finding scale clogging. It can suppress and can prolong the life of the heat exchanger for hot water supply.

第2の発明のヒートポンプ給湯装置は、圧縮機、給湯用熱交換器、膨張弁、蒸発器を冷媒配管により順次環状に接続して構成されるヒートポンプサイクルと、給湯用の液体を貯える貯湯タンクと、前記貯湯タンク内の下部から前記給湯用熱交換器を介して前記貯湯タンクの上部へ接続される水回路と、前記水回路内の湯水を搬送するための循環ポンプと、前記水回路内の水圧を検出する水圧力検出手段と、前記給湯用熱交換器で熱交換された後の湯水の目標出湯温度を設定する目標出湯温度設定手段と、前記循環ポンプの出力を検出するポンプ出力検出手段とを備え、前記循環ポンプを駆動して運転する時に、前記ポンプ出力検出手段で検出する循環ポンプの出力が、前回運転した時の循環ポンプの出力と同じであるにもかかわらず、前記水圧力検出手段で検出する水圧が低下している場合には、前記目標出湯温度の制限を行うことにより、いち早くスケール詰まりを発見することができるとともに、スケール詰まりを発見した後にさらなるスケールが発生することを抑制して、給湯用熱交換器の延命を図ることができる。   A heat pump hot water supply apparatus according to a second aspect of the present invention includes a heat pump cycle configured by sequentially connecting a compressor, a hot water heat exchanger, an expansion valve, and an evaporator in an annular manner by a refrigerant pipe, and a hot water storage tank for storing hot water liquid. A water circuit connected from the lower part of the hot water storage tank to the upper part of the hot water storage tank via the heat exchanger for hot water supply, a circulation pump for conveying hot water in the water circuit, Water pressure detection means for detecting water pressure, target hot water temperature setting means for setting a target hot water temperature after heat exchange in the hot water heat exchanger, and pump output detection means for detecting the output of the circulation pump When the circulating pump is driven and operated, the output of the circulating pump detected by the pump output detecting means is the same as the output of the circulating pump during the previous operation. When the water pressure detected by the force detection means is reduced, by limiting the target tapping temperature, scale clogging can be found quickly and further scale clogging occurs after the clogging is found. It is possible to extend the life of the heat exchanger for hot water supply.

以下、本発明の実施の形態について、図面を参照しながら説明する。なお、この実施の形態によって本発明が限定されるものではない。   Hereinafter, embodiments of the present invention will be described with reference to the drawings. In addition, this invention is not limited by this embodiment.

(実施の形態1)
図1は、本発明の第1の実施の形態におけるヒートポンプ給湯装置の回路構成図である。まず、本実施例によるヒートポンプ給湯装置のヒートポンプ回路について説明する。
(Embodiment 1)
FIG. 1 is a circuit configuration diagram of the heat pump water heater in the first embodiment of the present invention. First, the heat pump circuit of the heat pump hot water supply apparatus according to this embodiment will be described.

本実施例によるヒートポンプ回路10は、二酸化炭素を冷媒として用い、高圧側では臨界圧を越える状態で運転することが好ましい。ヒートポンプ回路10は、圧縮機11、給湯用熱交換器12、メイン膨張弁13A、キャピラリーチューブ13B、及び蒸発器14を順に配管で接続して構成されている。ヒートポンプ回路10には、圧縮機11の温度を検出する温度センサ10A、圧縮機11からの吐出冷媒温度を検出する温度センサ(吐出冷媒温度検出手段)10B、圧縮機11からの吐出冷媒圧力を検出する圧力センサ10C、蒸発器14の吸入空気を検出する温度センサ10Dを備えている。ここで、温度センサ10Aはコールドスタートの検出を、圧力センサ10Cは圧縮機11又はヒートポンプ回路10の異常検出を行う。   The heat pump circuit 10 according to the present embodiment preferably uses carbon dioxide as a refrigerant and is operated in a state where the critical pressure is exceeded on the high pressure side. The heat pump circuit 10 is configured by connecting a compressor 11, a hot water supply heat exchanger 12, a main expansion valve 13A, a capillary tube 13B, and an evaporator 14 in this order by piping. The heat pump circuit 10 includes a temperature sensor 10 </ b> A that detects the temperature of the compressor 11, a temperature sensor (discharge refrigerant temperature detection means) 10 </ b> B that detects a refrigerant temperature discharged from the compressor 11, and a refrigerant pressure discharged from the compressor 11. And a temperature sensor 10D for detecting the intake air of the evaporator 14. Here, the temperature sensor 10 </ b> A detects cold start, and the pressure sensor 10 </ b> C detects abnormality of the compressor 11 or the heat pump circuit 10.

次に、本実施例によるヒートポンプ給湯装置の水回路について説明する。貯湯タンク20の底部配管21は、減圧弁31を介して水道管等の水供給配管32に接続されている。
また貯湯タンク20の底部配管22は、循環ポンプ23を介して給湯用熱交換器12の水用配管12Aの流入側と接続されている。また、貯湯タンク20の上部循環用配管24は、水用配管12Aの流出側と接続されている。このように、貯湯タンク20の底部、循環ポンプ23、給湯用熱交換器12とを順次給湯配管で接続することで水回路を形成している。なお、本実施例による貯湯タンク20は、積層式の貯湯タンクであり、タンク内での撹拌が防止され、上部に高温水が底部に低温水が蓄積されるように構成されている。
Next, the water circuit of the heat pump water heater according to this embodiment will be described. A bottom pipe 21 of the hot water storage tank 20 is connected to a water supply pipe 32 such as a water pipe via a pressure reducing valve 31.
The bottom piping 22 of the hot water storage tank 20 is connected to the inflow side of the water piping 12 </ b> A of the hot water supply heat exchanger 12 through the circulation pump 23. The upper circulation pipe 24 of the hot water storage tank 20 is connected to the outflow side of the water pipe 12A. In this way, a water circuit is formed by sequentially connecting the bottom of the hot water storage tank 20, the circulation pump 23, and the hot water supply heat exchanger 12 with the hot water supply pipe. The hot water storage tank 20 according to the present embodiment is a stacked hot water storage tank, and is configured so that stirring in the tank is prevented and high temperature water is accumulated at the top and low temperature water is accumulated at the bottom.

一方、貯湯タンク20の上部出湯用配管33は、混合弁34に接続されている。また、貯湯タンク20の底部配管21から分岐させた出水用配管35は、混合弁34に接続されている。混合弁34の流出側の出湯回路は、キッチン、又は洗面所等の給湯用の蛇口36に接続されている。この出湯回路には、出湯量を検出する流量センサ30A、出湯温度を検出する温度センサ30Bを備えている。   On the other hand, the upper hot water supply pipe 33 of the hot water storage tank 20 is connected to the mixing valve 34. Further, a water discharge pipe 35 branched from the bottom pipe 21 of the hot water storage tank 20 is connected to the mixing valve 34. The outlet circuit on the outflow side of the mixing valve 34 is connected to a faucet 36 for hot water supply such as a kitchen or a washroom. This tapping circuit is provided with a flow sensor 30A for detecting the tapping amount and a temperature sensor 30B for detecting the tapping temperature.

なお、貯湯タンク20には、貯湯タンク20内の湯量を検出するための複数の温度センサ20A、20B、20Cが設けられている。また、水用配管12Aの流入側配管には、貯湯タンク20の底部配管22から導出される入水温度を検出する温度センサ(入水温度検出手段)20Dが設けられている。また、上部循環用配管24には、水用配管12Aから導出される出湯温度を検出する温度センサ20Eが設けられている。また、水用配管
12Aから導出される水流量を検出する流量計(流量検出手段)20Fが設けられている。
また、水用配管12Aから導出される水圧力を検出する圧力計(水圧力検出手段)20Gが設けられている。
The hot water storage tank 20 is provided with a plurality of temperature sensors 20A, 20B, 20C for detecting the amount of hot water in the hot water storage tank 20. In addition, a temperature sensor (incoming water temperature detecting means) 20 </ b> D for detecting the incoming water temperature derived from the bottom pipe 22 of the hot water storage tank 20 is provided in the inflow side pipe of the water pipe 12 </ b> A. In addition, the upper circulation pipe 24 is provided with a temperature sensor 20E that detects a tapping temperature derived from the water pipe 12A. Further, a flow meter (flow rate detecting means) 20F for detecting the flow rate of water derived from the water pipe 12A is provided.
Further, a pressure gauge (water pressure detecting means) 20G for detecting the water pressure derived from the water pipe 12A is provided.

以下、本実施例によるヒートポンプ給湯装置の貯湯運転動作について説明する。   Hereinafter, the hot water storage operation of the heat pump hot water supply apparatus according to the present embodiment will be described.

時刻が所定時刻になるか、または、貯湯タンク20内の温度センサ20A、20B、20Cによって、貯湯タンク20内の湯量が所定量以下となったことを検出すると、ヒートポンプ回路10を動作させて貯湯運転を開始する。ヒートポンプ回路10では、圧縮機11で圧縮された冷媒は、給湯用熱交換器12で放熱し、メイン膨張弁13A及びキャピラリーチューブ13Bで減圧された後、蒸発器14にて吸熱し、ガス状態で圧縮機11に吸入される。   When the time reaches a predetermined time or the temperature sensors 20A, 20B, and 20C in the hot water storage tank 20 detect that the amount of hot water in the hot water storage tank 20 has become less than a predetermined amount, the heat pump circuit 10 is operated to store hot water. Start driving. In the heat pump circuit 10, the refrigerant compressed by the compressor 11 dissipates heat in the hot water supply heat exchanger 12, is depressurized by the main expansion valve 13A and the capillary tube 13B, then absorbs heat in the evaporator 14, and in a gas state. It is sucked into the compressor 11.

一方、循環ポンプ23の運転により、貯湯タンク20内の水は、底部配管22を通って水用配管12Aに導かれ、水用配管12Aで加熱された温水は、上部循環用配管24を通って貯湯タンク20に戻される。圧縮機11での能力制御及び膨張弁13での開度制御は、温度センサ10Bで検出される冷媒吐出冷媒温度が、あらかじめ設定された温度を維持するように制御される。   On the other hand, by the operation of the circulation pump 23, the water in the hot water storage tank 20 is guided to the water pipe 12A through the bottom pipe 22, and the hot water heated by the water pipe 12A passes through the upper circulation pipe 24. It is returned to the hot water storage tank 20. The capacity control in the compressor 11 and the opening degree control in the expansion valve 13 are controlled such that the refrigerant discharge refrigerant temperature detected by the temperature sensor 10B maintains a preset temperature.

次に、本実施例によるヒートポンプ給湯装置の貯湯運転時の目標出湯温度設定制御について図2から図4を用いて説明する。   Next, target hot water temperature setting control during hot water storage operation of the heat pump hot water supply apparatus according to the present embodiment will be described with reference to FIGS.

貯湯タンク20内の湯水の沸き上げは、複数の沸き上げモードによって制御されており、その複数の沸き上げモード毎に、異なった沸き上げ設定を有している。そして同じ沸き上げモードを選択している限り、毎晩同じ設定で貯湯タンク20内の湯水を沸き上げる制御を行っている。   The boiling of hot water in the hot water storage tank 20 is controlled by a plurality of boiling modes, and each of the plurality of boiling modes has a different boiling setting. As long as the same heating mode is selected, the hot water in the hot water storage tank 20 is controlled to be heated at the same setting every night.

圧縮機11の起動から所定の時間は、起動時に設定した目標出湯温度を維持するような通常運転モードにて運転を行う。目標出湯温度にて所定時間運転した後には、流量計20F、圧力計20G、ポンプ出力検出手段23Aによって得た検出値が、前回運転時の検出値に比べ低くなった場合、予め決めておいた目標出湯温度の制限値にて運転を行う。   For a predetermined time from the start of the compressor 11, the operation is performed in the normal operation mode in which the target hot water temperature set at the start is maintained. After operating for a predetermined time at the target hot water temperature, when the detection values obtained by the flow meter 20F, the pressure gauge 20G, and the pump output detection means 23A are lower than the detection values during the previous operation, they are determined in advance. Operate at the target hot water temperature limit value.

まず、目標出湯温度設定制御機能を、図2を用いて説明する。   First, the target hot water temperature setting control function will be described with reference to FIG.

図2は、本発明の第1の実施の形態におけるヒートポンプ給湯装置の目標出湯温度設定制御機能を示すブロック図である。   FIG. 2 is a block diagram showing a target hot water temperature setting control function of the heat pump hot water supply apparatus according to the first embodiment of the present invention.

目標出湯温度決定手段40は、流量比較手段41とポンプ出力比較手段43を有している。   The target hot water temperature determining means 40 has a flow rate comparing means 41 and a pump output comparing means 43.

まず、沸き上げ運転が開始されると、予めポンプ出力と、水回路を流れる流量との関係式を有しており、ポンプ出力比較手段43で検出するポンプ出力に当たる流量を算出する。そして、流量検出手段20Fによって現在の流量を検出するとともに、ポンプ出力から算出した流量とを、流量比較手段41で比較する。その結果、現在の流量が低い場合には、目標出湯温度設定手段44にて目標出湯温度の制限を行う。   First, when the boiling operation is started, a relational expression between the pump output and the flow rate flowing through the water circuit is previously obtained, and the flow rate corresponding to the pump output detected by the pump output comparison unit 43 is calculated. The current flow rate is detected by the flow rate detection unit 20F, and the flow rate calculated from the pump output is compared by the flow rate comparison unit 41. As a result, when the current flow rate is low, the target hot water temperature setting means 44 limits the target hot water temperature.

目標出湯温度設定手段44での制限値は、予め決めておいた値を目標出湯温度値とし、吐出冷媒温度検出手段10Bによって検出された値から膨張弁開度操作量決定手段45で膨張弁開度を決定する。この膨張弁開度操作量決定手段45で決定された膨張弁開度操作量によって膨張弁開度制御手段46がメイン膨張弁13Aを制御する。   The limit value in the target hot water temperature setting means 44 is a predetermined hot water temperature value determined in advance, and the expansion valve opening manipulated variable determining means 45 opens the expansion valve from the value detected by the discharge refrigerant temperature detecting means 10B. Determine the degree. The expansion valve opening degree control means 46 controls the main expansion valve 13A based on the expansion valve opening degree operation amount determined by the expansion valve opening degree operation amount determining means 45.

図3は、本発明の第1の実施の形態におけるヒートポンプ給湯装置の目標出湯温度値の決定の流れを示すフローチャートである。運転開始後、起動時に設定した目標出湯温度を維持するような通常運転モードにて運転を行う。   FIG. 3 is a flowchart showing a flow of determination of a target hot water temperature value of the heat pump hot water supply apparatus according to the first embodiment of the present invention. After the start of operation, the operation is performed in a normal operation mode that maintains the target hot water temperature set at the time of startup.

まずステップ1にて、運転経過タイマーを開始し、ステップ2にて、経過時間aが予め決めておいた時間Tを超えた場合、ステップ3にて給湯用熱交換器を流れる水回路の流量を流量検出手段によって検出する。ステップ4にて検出された流量値(今回運転流量)と、ポンプ出力と流量の関係式から算出した流量とを比較し、今回運転流量が算出した運転流量より低下している場合(ステップ5)には、目標出湯温度を予め決めておいた値(目標出湯温度制限値)とする。目標出湯温度制限値になるように目標吐出冷媒温度が決定され(ステップ6)、膨張弁開度操作量が決定される(ステップ7)。   First, at step 1, an operation elapsed timer is started. When the elapsed time a exceeds a predetermined time T at step 2, the flow rate of the water circuit flowing through the hot water supply heat exchanger is set at step 3. It is detected by the flow rate detection means. When the flow rate value detected in step 4 (current operation flow rate) is compared with the flow rate calculated from the relationship between the pump output and the flow rate, and the current operation flow rate is lower than the calculated operation flow rate (step 5) Is set to a predetermined value (target hot water temperature limit value). The target discharge refrigerant temperature is determined so as to reach the target hot water temperature limit value (step 6), and the expansion valve opening operation amount is determined (step 7).

また、本実施の形態では流量の比較を行ったが、流量に代えて水圧で比較してもよい。その場合、目標出湯温度決定手段40に水圧比較手段42を設けて、さらに水回路内の水圧を検出する水圧力検出手段20Gを設ける。そして水圧力比較手段42では、水圧力検出手段20Gによって得た検出値と、水圧とポンプ出力との関係式から算出した検出値とを比較し、算出した検出値よりも低い場合は、目標出湯温度設定手段44にて目標出湯温度の制限を行う。   Further, although the flow rates are compared in the present embodiment, the comparison may be made by water pressure instead of the flow rate. In that case, a water pressure comparing means 42 is provided in the target hot water temperature determining means 40, and a water pressure detecting means 20G for detecting the water pressure in the water circuit is further provided. Then, the water pressure comparing means 42 compares the detected value obtained by the water pressure detecting means 20G with the detected value calculated from the relational expression between the water pressure and the pump output, and if the detected value is lower than the calculated detected value, The temperature setting means 44 limits the target hot water temperature.

図4は、水圧に基づいて目標出湯温度値を決定するフローチャートである。運転開始後、起動時に設定した目標出湯温度を維持するような通常運転モードにて運転を行う。   FIG. 4 is a flowchart for determining the target hot water temperature value based on the water pressure. After the start of operation, the operation is performed in a normal operation mode that maintains the target hot water temperature set at the time of startup.

まずステップ1にて、運転経過タイマーを開始し、ステップ2にて、経過時間aが予め決めておいた時間Tを超えた場合、ステップ3にて給湯用熱交換器を流れる水回路の圧力を水圧力検出手段によって検出する。ステップ4にて検出された水圧力値(今回運転水圧力)と、ポンプ出力と水圧との関係式から算出される水圧力とを比較し、今回運転水圧力が、算出した水圧より低下している場合(ステップ5)には、目標出湯温度を予め決めておいた値(目標出湯温度制限値)とする。目標出湯温度制限値になるように目標吐出冷媒温度が決定され(ステップ6)、膨張弁開度操作量が決定される(ステップ7)。   First, in step 1, an operation elapsed timer is started. In step 2, when the elapsed time a exceeds a predetermined time T, the pressure of the water circuit flowing through the hot water supply heat exchanger is set in step 3. Detected by water pressure detecting means. The water pressure value detected in step 4 (current operation water pressure) is compared with the water pressure calculated from the relationship between the pump output and the water pressure, and the current operation water pressure is lower than the calculated water pressure. If it is present (step 5), the target hot water temperature is set to a predetermined value (target hot water temperature limit value). The target discharge refrigerant temperature is determined so as to reach the target hot water temperature limit value (step 6), and the expansion valve opening operation amount is determined (step 7).

なお、本実施の形態では、貯湯タンクを有する場合で説明したが、給湯用熱交換器で加熱したお湯をそのまま出湯する瞬間湯沸かし式のヒートポンプ給湯装置であってもよい。   Although the present embodiment has been described with the case of having a hot water storage tank, it may be an instantaneous water heater type heat pump hot water supply apparatus that discharges hot water heated by a hot water supply heat exchanger as it is.

また、圧縮機11がアキュームレータのない圧縮機構成としたもので、アキュームレータがないためヒートポンプ式給湯機本体の小型化、軽量化が可能となる。   Further, the compressor 11 has a compressor configuration without an accumulator, and since there is no accumulator, it is possible to reduce the size and weight of the heat pump hot water supply body.

さらにヒートポンプ回路を、冷媒の圧力が臨界圧力以上となる超臨界ヒートポンプサイクルとしたもので、給湯の水または空気を加熱することにより、給湯用熱交換器内の冷媒は臨界圧力以上に加圧されているので、給湯用熱交換器の水により熱を奪われて温度低下しても凝縮することがない。従って、給湯用熱交換器の全域で冷媒と水との間の温度差を形成しやすくなり、高温の湯が得られ、かつ熱交換効率を高くできる。   Furthermore, the heat pump circuit is a supercritical heat pump cycle in which the pressure of the refrigerant is equal to or higher than the critical pressure. By heating the hot water or air, the refrigerant in the hot water heat exchanger is pressurized above the critical pressure. Therefore, it does not condense even if the temperature is lowered due to heat deprived by the water in the hot water heat exchanger. Therefore, it becomes easy to form a temperature difference between the refrigerant and water over the entire area of the heat exchanger for hot water supply, so that hot water can be obtained and the heat exchange efficiency can be increased.

さらに、使用する冷媒を二酸化炭素としたものであり、比較的安価でかつ安定な二酸化炭素を冷媒に使用することにより、製品コストを抑えるとともに、信頼性を向上させることができる。また、二酸化炭素はオゾン破壊係数がゼロであり、地球温暖化係数も代替冷媒HFC−407Cの約1700分の1と非常に小さいため、地球環境に優しい製品を提供できる。   Furthermore, the refrigerant to be used is carbon dioxide, and by using relatively inexpensive and stable carbon dioxide for the refrigerant, the product cost can be suppressed and the reliability can be improved. In addition, carbon dioxide has an ozone depletion coefficient of zero and a global warming coefficient of about 1/700 of the alternative refrigerant HFC-407C, which is very small.

また、本実施の形態では、ポンプ出力と流量(水圧)との関係式を予め有しており、ポンプ出力が同じであるにもかかわらず、その関係式から算出された流量を下回った場合に、出湯温度を制限しているが、予め複数の関係式を持っており、一度、関係式から算出された流量を下回った場合に、予め持っていた複数の関係式から一つ傾きの低い関係式を選択し、今後のポンプ出力と流量との関係式に用いることで、さらに給湯用熱交換器の耐久性を向上させることができる。   Further, in the present embodiment, a relational expression between the pump output and the flow rate (water pressure) is previously stored, and the pump output is the same, but the flow rate calculated from the relational expression is below. The temperature of the hot water is limited, but it has a plurality of relational expressions in advance, and once it falls below the flow rate calculated from the relational expression, it has a low slope from the relational expressions that it had in advance. The durability of the heat exchanger for hot water supply can be further improved by selecting the equation and using it in the relational equation between the pump output and the flow rate in the future.

また、関係式に限定されることはなく、複数のポンプ出力と流量との関係をマッピングして記憶しておいても問題は無い。   Further, the relational expression is not limited, and there is no problem even if the relationship between a plurality of pump outputs and flow rates is mapped and stored.

以上のように、本発明は、スケール詰まりをいち早く検出し給湯用熱交換器の耐久性を向上させることができ、使用年数を延ばすことができるヒートポンプ式給湯器を提供することができ、上述したヒートポンプ式給湯器は貯湯タンクを有するものであるが、貯湯タンクを有することの無い、給湯用熱交換器から直接給湯端末へ湯を供給することができるヒートポンプ式給湯器にも適用することができる。   As described above, the present invention can provide a heat pump water heater that can quickly detect scale clogging and improve the durability of the heat exchanger for hot water supply, and can extend the service life. Although the heat pump type hot water heater has a hot water storage tank, it can also be applied to a heat pump type hot water heater that does not have a hot water storage tank and that can supply hot water directly from the hot water heat exchanger to the hot water supply terminal. .

本発明の第1の実施の形態におけるヒートポンプ給湯装置の回路構成図The circuit block diagram of the heat pump hot-water supply apparatus in the 1st Embodiment of this invention 同ヒートポンプ給湯装置の目標出湯温度設定制御機能を示すブロック図The block diagram which shows the target hot water temperature setting control function of the heat pump hot water supply device 同ヒートポンプ給湯装置の目標出湯温度値を決定するフローチャートA flowchart for determining a target hot water temperature value of the heat pump hot water supply apparatus. 他の実施の形態における目標出湯温度値を決定するフローチャートThe flowchart which determines the target hot-water temperature value in other embodiment

符号の説明Explanation of symbols

10 ヒートポンプ回路
10B 温度センサ(吐出冷媒温度検出手段)
11 圧縮機
12 給湯用熱交換器
12A 水用配管
13A メイン膨張弁
14 蒸発器
20 貯湯タンク
20F 流量検出手段
20G 水圧力検出手段
23A ポンプ出力検出手段
40 目標出湯温度決定手段
41 流量比較手段
42 水圧力比較手段
43 ポンプ出力比較手段
44 目標出湯温度設定手段
45 膨張弁開度操作量決定手段
46 膨張弁開度制御手段
10 heat pump circuit 10B temperature sensor (discharge refrigerant temperature detection means)
DESCRIPTION OF SYMBOLS 11 Compressor 12 Hot water supply heat exchanger 12A Water piping 13A Main expansion valve 14 Evaporator 20 Hot water storage tank 20F Flow rate detection means 20G Water pressure detection means 23A Pump output detection means 40 Target hot water temperature determination means 41 Flow rate comparison means 42 Water pressure Comparison means 43 Pump output comparison means 44 Target hot water temperature setting means 45 Expansion valve opening operation amount determination means 46 Expansion valve opening degree control means

Claims (2)

圧縮機、給湯用熱交換器、膨張弁、蒸発器を冷媒配管により順次環状に接続して構成されるヒートポンプサイクルと、給湯用の液体を貯える貯湯タンクと、前記貯湯タンク内の下部から前記給湯用熱交換器を介して前記貯湯タンクの上部へ接続される水回路と、前記水回路内の湯水を搬送するための循環ポンプと、前記水回路内の流量を検出する流量検出手段と、前記給湯用熱交換器で熱交換された後の湯水の目標出湯温度を設定する目標出湯温度設定手段と、前記循環ポンプの出力を検出するポンプ出力検出手段とを備え、前記循環ポンプを駆動して運転する時に、前記ポンプ出力検出手段で検出する循環ポンプの出力が、前回運転した時の循環ポンプの出力と同じであるにもかかわらず、前記流量検出手段で検出する流量が低下している場合には、前記目標出湯温度の制限を行うことを特徴とするヒートポンプ給湯装置。 A heat pump cycle in which a compressor, a hot water heat exchanger, an expansion valve, and an evaporator are sequentially connected in an annular manner by a refrigerant pipe; a hot water storage tank for storing hot water liquid; and the hot water supply from the lower part of the hot water storage tank A water circuit connected to the upper part of the hot water storage tank via a heat exchanger for use, a circulation pump for conveying hot water in the water circuit, a flow rate detecting means for detecting a flow rate in the water circuit, and A target hot water temperature setting means for setting a target hot water temperature after heat exchange in the hot water heat exchanger, and a pump output detection means for detecting an output of the circulation pump, and driving the circulation pump. Even when the output of the circulating pump detected by the pump output detecting means during operation is the same as the output of the circulating pump at the previous operation, the flow rate detected by the flow rate detecting means is reduced. Expediently, the heat pump hot water supply apparatus and performs restriction of the target hot water temperature. 圧縮機、給湯用熱交換器、膨張弁、蒸発器を冷媒配管により順次環状に接続して構成されるヒートポンプサイクルと、給湯用の液体を貯える貯湯タンクと、前記貯湯タンク内の下部から前記給湯用熱交換器を介して前記貯湯タンクの上部へ接続される水回路と、前記水回路内の湯水を搬送するための循環ポンプと、前記水回路内の水圧を検出する水圧力検出手段と、前記給湯用熱交換器で熱交換された後の湯水の目標出湯温度を設定する目標出湯温度設定手段と、前記循環ポンプの出力を検出するポンプ出力検出手段とを備え、前記循環ポンプを駆動して運転する時に、前記ポンプ出力検出手段で検出する循環ポンプの出力が、前回運転した時の循環ポンプの出力と同じであるにもかかわらず、前記水圧力検出手段で検出する水圧が低下している場合には、前記目標出湯温度の制限を行うことを特徴とするヒートポンプ給湯装置。 A heat pump cycle in which a compressor, a hot water heat exchanger, an expansion valve, and an evaporator are sequentially connected in an annular manner by a refrigerant pipe; a hot water storage tank for storing hot water liquid; and the hot water supply from the lower part of the hot water storage tank A water circuit connected to the upper part of the hot water storage tank via a heat exchanger for use, a circulation pump for conveying hot water in the water circuit, a water pressure detecting means for detecting the water pressure in the water circuit, A target hot water temperature setting means for setting a target hot water temperature after heat exchange in the hot water heat exchanger, and a pump output detection means for detecting an output of the circulation pump, and driving the circulation pump. Although the output of the circulation pump detected by the pump output detection means is the same as the output of the circulation pump at the previous operation, the water pressure detected by the water pressure detection means decreases. If that is the heat pump hot water supply apparatus and performs restriction of the target hot water temperature.
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JPWO2020240758A1 (en) * 2019-05-30 2021-10-21 三菱電機株式会社 Hot water supply system
JP7134346B2 (en) 2019-05-30 2022-09-09 三菱電機株式会社 hot water system
EP4015919A1 (en) * 2020-12-15 2022-06-22 Bosch Termoteknik Isitmave Klima Sanayi Ticaret Anonim Sirketi System for detecting clogging in the central heating circuit

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