JP3986180B2 - Hot water storage hot water source - Google Patents

Hot water storage hot water source Download PDF

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Publication number
JP3986180B2
JP3986180B2 JP29420798A JP29420798A JP3986180B2 JP 3986180 B2 JP3986180 B2 JP 3986180B2 JP 29420798 A JP29420798 A JP 29420798A JP 29420798 A JP29420798 A JP 29420798A JP 3986180 B2 JP3986180 B2 JP 3986180B2
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hot water
water storage
heating
circulation
state
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JP2000121157A (en
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善隆 柴田
伸 岩田
徹 福知
康人 橋詰
泰 藤川
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Osaka Gas Co Ltd
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Osaka Gas Co Ltd
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Description

【0001】
【発明の属する技術分野】
本発明は、給湯路が上部に接続された貯湯タンクと、
その貯湯タンク内に湯水が温度成層を形成して貯湯されるように、貯湯タンクの底部から取り出した湯水を加熱手段にて加熱したのち、その温水を前記貯湯タンクの上部に供給する貯湯用循環状態で湯水を循環する湯水循環手段と、
運転を制御する制御手段とが設けられた貯湯式の給湯熱源装置に関する。
【0002】
【従来の技術】
上記のような貯湯式の給湯熱源装置は、貯湯タンク内に温度成層を形成して湯水が貯湯されるように加熱手段にて加熱し、貯湯タンク内の上部の湯水を給湯路を介して給湯するとともに、貯湯タンク内の湯水を外部放熱部に循環供給することにより、比較的小型の加熱手段を用いて貯湯タンク内に温度成層を形成して湯水を貯湯し、その貯湯された湯水を給湯および外部放熱部にて有効利用することができるものである。
【0003】
そして、従来、貯湯タンクの下部から取り出した湯水を加熱手段にて加熱したのち、その温水を貯湯タンクの上部に供給するように連絡水管が設けられ、この連絡水管の途中部には、貯湯タンク内の湯水を加熱するための熱交換部と外部放熱部とが兼用するように設けられ、貯湯タンクへの貯湯を行うときには、貯湯タンクの下部から取り出した湯水を加熱手段にて加熱したのち、その温水を貯湯タンクの上部に供給して温度成層を形成して貯湯し、外部放熱部にて放熱を行うときには、外部放熱部に供給される熱媒を加熱手段にて加熱して放熱するものがあった(例えば、実開昭56−34249号公報参照)。
【0004】
【発明が解決しようとする課題】
しかしながら、従来のものでは、貯湯タンクへの貯湯を行う熱交換部と外部放熱部が兼用するように設けられているために、貯湯タンクへの貯湯を行うときには、加熱手段による熱を外部放熱部に奪われ、逆に、外部放熱部における放熱を行うときには、加熱手段による熱を熱交換部に奪われ、貯湯タンクへの貯湯および外部放熱部における放熱のそれぞれを効率よく行えないことがあった。
【0005】
本発明は、かかる点に着目してなされたものであり、その目的は、貯湯タンクへの貯湯および外部放熱部における放熱のそれぞれを効率よく行うことができる貯湯式の給湯熱源装置を提供する点にある。
【0006】
【課題を解決するための手段】
この目的を達成するために、請求項1に記載の発明によれば、湯水循環手段が、加熱手段にて加熱した温水の全量または一部を外部放熱部に分岐供給しかつその外部放熱部からの湯水の全量を貯湯タンクを迂回して加熱手段に直接戻す形態で湯水を循環させる外部放熱用循環状態とに切換え自在に構成され、制御手段が、湯水循環手段を貯湯用循環状態に切換えて加熱手段を加熱作動させる貯湯運転状態と、湯水循環手段を外部放熱用循環状態に切換えて加熱手段を加熱作動させる放熱運転状態とを切換えて、運転制御を実行するように構成され、前記貯湯タンク内における湯水の温度成層の形成状態が高温部分の形成範囲が設定値よりも下方である余剰貯湯状態であるか否かを検出する余剰貯湯状態検出手段が設けられ、前記湯水循環手段が、前記貯湯タンクにおける前記設定値よりも下方側の取り出し部から取り出した湯水を前記外部放熱部に供給して、前記取り出し部よりも下方の戻し部から前記貯湯タンク内に戻す余剰分外部放熱循環状態に切換え自在に構成され、前記制御手段が、前記余剰貯湯状態検出手段の検出情報に基づいて、前記余剰貯湯状態を維持するように、かつ、前記湯水循環手段を余剰分外部放熱循環状態に切換える余剰分放熱運転状態にも切換えて、運転制御を実行するように構成されている。
したがって、貯湯タンクへの貯湯を行うときには、湯水循環手段を貯湯用循環状態に切換えて貯湯運転状態において、加熱手段にて加熱された温水を貯湯タンクの上部に供給して的確に貯湯を行うことができ、外部放熱部における放熱を行うときには、湯水循環手段を外部放熱用循環状態に切換えて放熱運転状態において、加熱手段にて加熱した温水の全量を外部放熱部に供給して外部放熱部における放熱を的確に行うことができ、または、加熱手段にて加熱した温水の一部を外部放熱部に、残りを貯湯タンクの上部に供給して、加熱手段にて余剰に加熱された温水を放熱を行うとともに、貯湯にも利用することができる。
【0007】
そして、外部放熱用循環状態においては、加熱手段にて加熱した温水の全量または一部を外部放熱部に分岐供給しかつその外部放熱部からの湯水の全量を貯湯タンクを迂回して加熱手段に直接戻す形態で湯水を循環させるので、貯湯タンクの底部の給水温度に近い湯水を加熱することなく、外部放熱部にて放熱に使用され、給水温度近くまで温度が低下していない湯水を直接加熱手段にて加熱することができ、外部放熱部における放熱を確実に行うことができる。
また、貯湯タンク内における湯水の温度成層の形成状態が余剰貯湯状態を検出するように、すなわち、余剰貯湯状態を維持するように、循環供給手段にて外部放熱部に貯湯タンク内の湯水を供給して、外部放熱部における放熱を行うことができるので、貯湯タンク内の温水が給湯されても湯切れが生じることのない余剰貯湯状態に確保しながら、余剰貯湯されている温水を有効利用して外部放熱部における放熱を行うことができる。
【0008】
請求項2に記載の発明によれば、湯水循環手段が、貯湯用循環状態および外部放熱用循環状態のいずれにおいても湯水が通流する流路部分に、湯水貯留用の補助タンクを備えて構成されている。
つまり、補助タンクを備えることによって、湯水循環手段にて循環させる保有水量を十分に確保することができ、例えば、加熱手段にて加熱された温水を補助タンク内に貯湯して、貯湯用循環状態および外部放熱用循環状態において、補助タンク内に貯湯されている温水を用いることができ、貯湯タンクへの貯湯および外部放熱部における放熱をより確実に行うことができる。
【0009】
請求項3に記載の発明によれば、湯水循環手段が、外部放熱用循環状態において、外部放熱部に分岐供給する温水量を変更調節自在に構成されているので、外部放熱部における放熱に必要な温水量を外部放熱部に分岐供給することができ、外部放熱部における放熱をより的確に行うことができる。
【0010】
請求項4に記載の発明によれば、加熱手段が、複数種の加熱部を備えて構成され、制御手段が、加熱負荷に応じて、複数種の加熱部の加熱作動を制御するように構成されている。
したがって、貯湯タンクへの貯湯や外部放熱部に対する加熱負荷に応じて、加熱負荷が大きいときには、加熱手段による熱量が大きくなるように複数種の加熱部の加熱作動を制御し、加熱負荷が小さいときには、加熱手段による熱量が小さくなるように複数種の加熱部の加熱作動を制御することができ、加熱手段における加熱をより的確に行うことができる。
【0012】
【発明の実施の形態】
本発明にかかる貯湯式の給湯熱源装置をエンジンヒートポンプ式冷暖房給湯システムに適応した基本実施形態を図面に基づいて説明する。
このエンジンヒートポンプ式冷暖房給湯システムは、図1に示すように、室内の冷暖房をするエンジンヒートポンプ式冷暖房装置Cが設けられ、このエンジンヒートポンプ式冷暖房装置Cのエンジン排熱およびヒートポンプ式冷暖房における排熱、ならびに、補助熱源を利用しながら貯湯タンク1内の湯水を加熱する加熱手段としての加熱部K、貯湯タンク1内の湯を利用して放熱する外部放熱部Hのそれぞれが貯湯タンク1内の湯水を循環するための循環路2に設けられ、循環ポンプ3を作動させて貯湯タンク1内の湯水を循環路2にて循環するようにしている。そして、エンジンヒートポンプ式冷暖房装置Cの運転、加熱部Kおよび循環ポンプ3などの動作を制御する制御手段としての制御装置Sが設けられている。
【0013】
前記貯湯タンク1には、その底部から貯湯タンク1に水道水圧を用いて給水する給水路4が接続され、その上部から風呂場や台所などの給湯栓5に給湯する給湯路6が接続され、給湯栓5で使用された量だけの水を給水路4から貯湯タンク1に給水するようにしている。
また、循環路2を通流する湯水を貯湯タンク1内に戻す、または、貯湯タンク1内の湯水を循環路2に取り出すために、循環路2と貯湯タンク1とが、貯湯タンク1の上部、中間部、底部の3箇所で連通接続されている。
【0014】
つまり、貯湯タンク1の上部には、循環路2と貯湯タンク1とを接続する上部接続路7aと、循環路2と上部接続路7aとの接続箇所に上部用三方弁7bとが設けられ、貯湯タンク1の中間部には、循環路2と貯湯タンク1とを接続する中間部接続路8aと、循環路2と中間部接続路8aとの接続箇所に中間部用三方弁8bとが設けられ、貯湯タンク1の底部には、循環路2と貯湯タンク1とを接続する底部接続路9aと、循環路2と底部接続路9aとの接続箇所に底部用三方弁9bとが設けられている。
【0015】
したがって、各三方弁7b,8b,9bを切換えることによって、循環路2を通流する湯水を貯湯タンク1に戻したり、または、貯湯タンク1内の湯水を循環路2に取り出すようにし、湯水循環手段Jが、循環路2、循環ポンプ3、各接続路7a,8a,9a、各三方弁7b,8b,9bなどによって構成されている。また、上部用三方弁7bにより、加熱部Kにて加熱した温水を、外部放熱部Hに分岐供給する温水量を変更調節自在に構成している。
【0016】
また、貯湯タンク1内に加熱された湯を貯湯する際には、底部接続路9aにより貯湯タンク1の底部の水を循環路2に取り出し、その水を加熱部Kで加熱しながら循環路2を循環させて、その加熱された湯を上部接続路7aにより貯湯タンク1の上部に戻して温度成層を形成して貯湯する。そして、その貯湯量が必要最小貯湯量以上であるかを、その湯温を検出することにより検出する貯湯温サーミスタ10、必要最小貯湯量よりも設定量だけ多い余剰貯湯量以上であるかを、その湯温を検出することにより検出する余剰貯湯状態検出手段としての余剰湯温サーミスタ11が設けられている。なお、必要最小貯湯量とは、給湯栓5にて給湯することが予測される範囲の給湯量で行われるときに、湯切れが生じないように予め貯湯しておく貯湯量のことである。
そして、貯湯温サーミスタ10の設置位置は、貯湯タンク1と中間接続路8aとの接続箇所よりも上方に位置し、余剰湯温サーミスタ11の設置位置は、貯湯タンク1と中間部接続路8aとの接続箇所よりも下方に位置する。
【0017】
前記加熱部Kは、循環路2における湯水の循環方向上手側から下手側に向けて、ヒートポンプ式冷暖房における排熱を利用して加熱する第1熱交換部12、エンジン排熱を利用して加熱する第2熱交換部13、補助熱源としてのバーナBを備える燃焼装置Nにより加熱する第3熱交換部14を順に設けて構成され、それぞれの熱交換部12,13,14において循環路2を通流する湯水を熱交換により加熱できるようにしている。
前記外部放熱部Hは、本基本実施形態においては、循環路2における湯水の循環方向上手側から下手側に向けて、風呂追焚き用熱交換部15、床暖房用熱交換部16を順に設けて構成されている。つまり、浴槽内の湯水を風呂追焚き用循環ポンプ15aの作動により風呂追焚き用循環路15bを介して風呂追焚き用熱交換部15に供給して熱交換により図外の浴槽の湯水を追焚きをできるようにしている。また、床暖房用循環ポンプ16aの作動により床暖房用循環路16bを通流する熱媒を床暖房用熱交換部16にて熱交換して床暖房をできるようにしている。
【0018】
ちなみに、第1熱交換部12が底部用三方弁9bと中間部用三方弁8bとの間の循環路2に設けられ、第2熱交換部13および第3熱交換部14が中間部用三方弁8bと上部用三方弁7bとの間の循環路2に設けられ、循環ポンプ3が第3熱交換部14と上部用三方弁7bとの間の循環路2に設けられている。そして、風呂追焚き用熱交換部15および床暖房用熱交換部16が上部用三方弁7bと底部用三方弁9bとの間の循環路2に設けられている。
【0019】
前記エンジンヒートポンプ式冷暖房装置Cは、室内機Ui、室外機Uoから構成され、室内機Uiと室外機Uoとは、冷媒配管rで接続されている。
前記室内機Uiには、膨張弁Vex、室内熱交換器Ni、その室内熱交換器Niで温調した空気SAを空調対象域へ送出する室内空調用送風機Fiが備えられている。
前記室外機Uoには、ガスエンジンGE、ラジエターRG、ラジエター用送風機RF、圧縮機Cmp、アキュムレータAc、四方弁Vx、室外熱交換器No、その室外熱交換器Noに対し外気TAを通風する室外空調用送風機Foが備えられている。また、ガスエンジンGEの冷却用の冷却水をラジエターRGとの間で循環させる冷却水路wが設けられ、この冷却水路wにラジエター用ポンプRPが設けられている。
【0020】
そして、エンジンヒートポンプ式冷暖房装置Cは、ガスエンジンGEにより圧縮機Cmpを作動させて、四方弁Vxの切換え操作により冷房運転と暖房運転とを選択切換え可能に構成されている。また、エンジンヒートポンプ式冷暖房装置Cには、冷房運転における排熱が冷媒により第1熱交換部12に供給される加熱状態と室外熱交換器Noに供給される排熱状態とに切換える第1排熱切換機構17と、ガスエンジン排熱が冷却水により第2熱交換部13に供給される加熱状態とラジエターRGに供給されて排熱される排熱状態とに切換える第2排熱切換機構18とが設けられている。
【0021】
具体的に説明すると、第1排熱切換機構17は、室外熱交換器Noと第1熱交換部12とが並列になるように冷媒配管rに接続されているバイパス冷媒配管17a、バイパス冷媒配管17aと冷媒配管rとの接続箇所にそれぞれ設けられている三方弁17b,17cから構成されている。
そして、冷房運転における排熱が冷媒により第1熱交換部12に供給される加熱状態においては、冷媒が冷媒配管r、バイパス冷媒配管17a、第1熱交換部12、バイパス冷媒配管17a、冷媒配管rの順に供給される。また、冷房運転における排熱が冷媒により室外熱交換器Noに供給される排熱状態においては、冷媒が冷媒配管r、室外熱交換器No、冷媒配管rの順に供給される。
【0022】
第2排熱切換機構18は、ラジエターRGと第2熱交換部13とが並列になるように冷却水路wに接続されているバイパス冷却水路18a、バイパス冷却水路18aと冷却水路wとの接続箇所にそれぞれ設けられている三方弁18b,18cから構成されている。
そして、ガスエンジン排熱が冷却水により第2熱交換部13に供給される加熱状態においては、冷却水が冷却水路w、バイパス冷却水路18a、第2熱交換部13、バイパス冷却水路18a、ラジエター用ポンプRP、冷却水路wの順に供給される。また、ガスエンジン排熱が冷却水によりラジエタRGに供給されて排熱される排熱状態においては、冷却水が冷却水路w、ラジエターRG、ラジエター用ポンプRP、冷却水路wの順に供給される。
【0023】
そして、冷房運転においては、室内熱交換器Niを蒸発器として機能させて、空調対象域への供給空気を冷却温調し、第1排熱切換機構17が排熱状態に切り換えられていると、室外熱交換器Noを凝縮器として機能させて外気に対して放熱し、第1排熱切換機構17が加熱状態に切り換えられていると、第1熱交換部12にて循環路2を通流する湯水に対して放熱する。
また、暖房運転においては、室内熱交換器Niを凝縮器として機能させて、空調対象域への供給空気を加熱温調し、室外熱交換器Noを蒸発器として機能させて外気から吸熱するようにしている。
【0024】
このようにして、冷房運転または暖房運転が実行されるときにおいて、冷却水によりガスエンジンGEの排熱を回収して、第2排熱切換機構18が排熱状態に切り換えられていると、ラジエター用送風機RFを駆動させラジエターRGにおいて放熱し、第2排熱切換機構18が加熱状態に切り換えられていると、第2熱交換部13にて循環路2を通流する湯水に対して放熱するように構成されている。
【0025】
さらに詳述すると、冷房運転においては、圧縮機Cmpから吐出される高圧乾き蒸気冷媒を、四方弁Vxを介して室外熱交換器Noに供給し、第1排熱切換機構17が排熱状態に切り換えられている場合には、この室外熱交換器Noにおいて外気との熱交換により凝縮させる。
【0026】
そして、凝縮器としての室外熱交換器Noから送出される凝縮工程通過冷媒を、膨張弁Vexを介して室内熱交換器Niに供給し、この室内熱交換器Niにおいて冷却対象空気との熱交換により蒸発される。
その後、蒸発器としての室内熱交換器Niから送出される低圧乾き蒸気冷媒を、四方弁VxおよびアキュムレータAcを介して圧縮機Cmpの吸入口に戻す。このようにして、冷却対象域である室内が冷房されることになる。
【0027】
また、暖房運転については、圧縮機Cmpから吐出される高圧乾き蒸気冷媒を、四方弁Vxを介して室内熱交換器Niに供給し、この室内熱交換器Niにおいて加熱対象空気との熱交換により凝縮させる。
【0028】
そして、凝縮器としての室内熱交換器Niから送出される凝縮構成通過冷媒を、膨張弁Vexを介して室外熱交換器Noに供給し、この室外熱交換器Noにおいて外気との熱交換により蒸発させる。
その後、蒸発器としての室外熱交換器Noから送出される低圧乾き蒸気冷媒を四方弁VxおよびアキュムレータAcを介して圧縮機Cmpの吸入口に戻す。このようにして、加熱対象域である室内が暖房されることになる。
【0029】
前記制御装置Sは、図2に示すように、燃焼装置N、循環ポンプ3および各三方弁7b,8b,9bなどの貯湯タンク1側の動作を制御する給湯用コントローラTC、エンジンヒートポンプ式冷暖房装置Cの運転を制御する冷暖房装置用コントローラRCから構成され、この給湯用コントローラTCと冷暖房装置用コントローラRCが通信可能に構成されている。
【0030】
つまり、給湯用コントローラTCは、給湯用操作装置KSの指令に基づいて、循環ポンプ3、燃焼装置N、各三方弁7b,8b,9bの動作を制御するように構成され、冷暖房装置用コントローラRCは、冷暖房用操作装置RSの指令に基づいて、ガスエンジンGE、第1排熱切換機構17、第2排熱切換機構18の動作を制御するように構成されている。
そして、前記冷暖房装置用コントローラRCは、冷暖房用操作装置RSの指令に基づいて、冷房運転または暖房運転を実行するとともに、第1排熱切換機構17と第2排熱切換機構18の切換えを行うように構成されている。
【0031】
前記貯湯用コントローラTCは、給湯用操作装置KSにより運転が指令されている状態で、貯湯運転を実行する時間帯などの貯湯運転の実行タイミングであって、貯湯タンク1内に必要最小貯湯量の貯湯がされていないと、すなわち、貯湯温サーミスタ10による検出温度が設定温度未満であると、貯湯用循環状態において貯湯運転状態に切換えて貯湯タンク1への貯湯処理を行う。そして、貯湯タンク1への貯湯が行われた後に、外部放熱部Hにおける放熱要求に伴って外部放熱用循環状態において放熱運転状態に切り換えて外部放熱部Hにて放熱処理を行う。
【0032】
具体的に説明すると、給湯用操作装置KSにより運転が指令されている状態で、貯湯タンク1内に必要最小貯湯量の貯湯がされていないと、すなわち、貯湯温サーミスタ10による検出温度が設定温度未満であると、図3に示すように、循環ポンプ3を作動させ、貯湯タンク1の底部の水を循環路2に取り出すように底部用三方弁9bを切換えて、貯湯タンク1の底部の水を加熱部Kにて加熱しながら循環させる。
そして、例えば、循環路2を通流する湯水が十分に加熱される設定時間が経過すると、あるいは、循環路2における湯水の温度が設定温度以上になると、循環路2を通流する湯を貯湯タンク1の上部に戻すように上部用三方弁7bを切り換えて、加熱された湯を貯湯タンク1の上部に戻して貯湯を行う。
【0033】
このようにして、貯湯タンク1内に湯水が温度成層を形成して貯湯されるように、その貯湯量が必要最小貯湯量よりも設定量だけ多い余剰貯湯量になるまで、すなわち、余剰湯温サーミスタ11による検出温度が設定温度以上になるまで、貯湯タンク1の底部から取り出した湯水を加熱部Kにて加熱したのち、その温水を貯湯タンク1の上部に供給する貯湯用循環状態において貯湯を行う貯湯運転を実行する。
【0034】
また、上述の貯湯タンク1への貯湯が行われた後、給湯用操作装置KSの指令により風呂追焚きが指令されるか、床暖房装置の運転が開始されるか、または、その両方がされて、風呂追焚き用循環ポンプ15aや床暖房用循環ポンプ16aが作動され、放熱処理の実行が要求されると、循環ポンプ3を作動させ、底部接続路9aからの湯水と循環路2からの湯水とが混合するように底部用三方弁9bを切り換え、加熱部Kにて加熱された温水の全量または一部を外部放熱部Hに分岐供給するように上部用三方弁7bを切り換える。
そして、図4に示すように、加熱部Kにて加熱した温水の全量または一部を外部放熱部Hに分岐供給しかつその外部放熱部Hからの湯水の全量を貯湯タンク1を迂回して加熱部Kに直接戻す形態で湯水を循環させる外部放熱用循環状態において、貯湯タンク1の底部の湯水を加熱部Kにて加熱して、その一部を貯湯タンク1の上部に戻して貯湯するとともに、残りの湯水を熱源として外部放熱部Hにて放熱する。その後、貯湯タンク1の底部の湯水と外部放熱部Hにて熱源として放熱された湯水を混合させて、再び加熱部Kにて加熱するように循環させる。
【0035】
このようにして、貯湯タンクへの貯湯を行うときには、湯水循環手段を貯湯用循環状態に切換えて貯湯運転状態において、加熱手段にて加熱された温水を貯湯タンクの上部に供給して的確に貯湯を行うことができ、外部放熱部における放熱を行うときには、湯水循環手段を外部放熱用循環状態に切換えて放熱運転状態において、加熱手段にて加熱した温水の全量を外部放熱部に供給して外部放熱部における放熱を的確に行うことができ、または、加熱手段にて加熱した温水の一部を外部放熱部に、残りを貯湯タンクの上部に供給して、加熱手段にて余剰に加熱された温水を放熱を行うとともに、貯湯にも利用することができる。
【0036】
そして、外部放熱用循環状態においては、加熱手段にて加熱した温水の全量または一部を外部放熱部に分岐供給しかつその外部放熱部からの湯水の全量を貯湯タンクを迂回して加熱手段に直接戻す形態で湯水を循環させるので、貯湯タンクの底部の給水温度に近い湯水を加熱することなく、外部放熱部にて放熱に使用され、給水温度近くまで温度が低下していない湯水を直接加熱手段にて加熱することができ、外部放熱部における放熱を確実に行うことができる。
【0037】
また、加熱部Kの動作について説明すると、エンジンヒートポンプ式冷暖房装置Cが冷房運転を実行している状態で、かつ、第1排熱切換機構17が加熱状態に切換えられると、第1熱交換部12において、ヒートポンプ式冷暖房における排熱を熱源として循環路2を通流する湯水を加熱することが可能となる。
また、エンジンヒートポンプ式冷暖房装置Cが作動されている状態で、かつ、第2排熱切換機構18が加熱状態に切り換えられると、第2熱交換部13において、ガスエンジン排熱を熱源として循環路2を通流する湯水を加熱することが可能となる。
そして、第3熱交換部14においては、燃焼装置Nを作動させてバーナBの燃焼により循環路2を通流する湯水を加熱することができる。
【0038】
このようにして、第1〜3熱交換部12,13,14のそれぞれの熱交換部において加熱可能であるが、貯湯タンク1への貯湯や外部放熱部Hに対する加熱負荷に応じて、第1熱交換部12、第2熱交換部13、および、第3熱交換部14における加熱作動の実行が制御される。
つまり、例えば、運転の立ち上がりなどのように加熱負荷が大きいときには、第1排熱切換機構および第2排熱切換機構を加熱状態に切換え、かつ、バーナBによる燃焼を行い、第1〜3熱交換部12,13,14の全ての熱交換部において加熱可能にする。
【0039】
また、通常時には、エンジンヒートポンプ式冷暖房装置Cの運転状態よって第1および第2熱交換部12,13における加熱が可能となるために、第1および第2熱交換部12,13において加熱されるか否かに基づいて、燃焼装置Nを作動させてバーナBの燃焼により第3熱交換部14において加熱されるか否かが判別される。
つまり、エンジンヒートポンプ式冷暖房装置Cの運転状態よって第1および第2熱交換部12,13における加熱が行われないときには、あるいは、第1および第2熱交換部12,13における加熱では貯湯タンク1への貯湯に対する加熱負荷に不足するときには、燃焼装置Nを作動させてバーナBの燃焼により第3熱交換部14における加熱を実行して、貯湯タンク1への貯湯や外部放熱部Hに対する加熱負荷に対応するように加熱部Kの動作を制御するようにしている。
【0040】
このときの制御装置Sの制御動作について図5のフローチャートに基づいて説明する。
まず、給湯用操作装置KSにより運転が指令されている状態で、貯湯運転を実行する時間帯などの貯湯運転の実行タイミングであって、貯湯タンク1内に必要最小貯湯量の貯湯がされていないと、すなわち、貯湯温サーミスタ10の検出温度TKが設定温度未満であると、貯湯運転を開始して貯湯処理を実行する。
【0041】
つまり、循環ポンプ3を作動させ、底部用三方弁9bを貯湯タンク1の水を循環路2に取り出すように切換えて、貯湯タンク1の底部の水を加熱部Kにて加熱しながら循環させ、例えば、循環路2を通流する湯水が十分に加熱される設定時間が経過すると、あるいは、循環路2における湯水の温度が設定温度以上になると、循環路2を通流する湯を貯湯タンク1に戻すように上部用三方弁7bを切り換えて、加熱された湯を貯湯タンク1の上部に戻して貯湯を行う。
【0042】
このようにして、貯湯処理を実行して、その貯湯量が必要最小貯湯量よりも設定量だけ多い余剰貯湯量になると、すなわち、余剰湯温サーミスタ11による検出温度TYが設定温度以上になると、貯湯処理の終了が要求されて、停止処理を実行して貯湯運転を終了する。
つまり、循環ポンプ3が作動中であればその作動を停止させ、第1〜3熱交換部12,13,14にて循環路2の湯水が加熱されないように、第1排熱切換機構17および第2排熱切換機構18が加熱状態に切換えられていると排熱状態に切換えるとともに、バーナBが燃焼中であればバーナBでの燃焼を停止させる。
【0043】
また、貯湯運転を実行する時間帯などの貯湯運転の実行タイミングであって、貯湯タンク1内に必要最小貯湯量の貯湯がされているときに、すなわち、貯湯温サーミスタ10の検出温度TKが設定温度以上のときに、貯湯タンク1への貯湯を行う貯湯処理を実行している貯湯運転中であると、その貯湯処理が継続して実行される。
そして、貯湯タンク1内に余剰貯湯量の貯湯が行われて、貯湯運転が終了された後に、給湯用操作装置KSの指令により風呂追焚きが指令されるか、床暖房装置の運転が開始されるか、または、その両方がされて、放熱処理の実行が要求されると、放熱運転を開始して放熱処理を実行する。
つまり、循環ポンプ3を作動させ、底部接続路9aからの湯水と循環路2からの湯水とが混合するように底部用三方弁9bを切り換え、循環路2の湯水の一部を貯湯タンク1に戻すように上部用三方弁7bを切り換える。
そして、貯湯タンク1の底部の湯水を加熱部Kにて加熱して、その一部を貯湯タンク1の上部に戻して貯湯するとともに、残りの湯水を熱源として外部放熱部Hにて放熱する。その後、貯湯タンク1の底部の湯水と外部放熱部Hにて熱源として放熱された湯水を混合させて、再び加熱部Kにて加熱するように循環させる。
【0044】
そして、上述のように貯湯運転が終了しているときに、給湯用操作装置KSの指令により風呂追焚きが指令されず、かつ、床暖房装置の運転が停止された状態で、放熱処理の実行が要求されていない場合には、待機処理を実行する。
つまり、循環ポンプ3が作動していればその作動を停止させ、第1排熱切換機構17および第2排熱切換機構18が加熱状態に切換えられていると排熱状態に切換えるとともに、バーナBが燃焼中であればバーナBでの燃焼を停止させる。
【0045】
このようにして、貯湯運転を実行する時間帯などの貯湯運転の実行タイミングにおいては、貯湯運転や放熱運転が実行されるが、貯湯運転の実行タイミングでなければ、上述の停止処理が実行される。
つまり、循環ポンプ3が作動中であればその作動を停止させ、第1〜3熱交換部12,13,14にて循環路2の湯水が加熱されないように、第1排熱切換機構17および第2排熱切換機構18が加熱状態に切換えられていると排熱状態に切換えるとともに、バーナBが燃焼中であればバーナBでの燃焼を停止させる。
【0046】
本発明の実施形態〕
基本実施形態では、加熱部Kにて加熱した温水の一部を外部放熱部Hに分岐供給する形態で湯水を循環させる外部放熱用循環状態において放熱処理を実行するようにしているが、外部放熱用循環状態に加え、貯湯タンク1の中間部から取り出した湯水の全量または一部を外部放熱部Hに供給して貯湯タンク1の底部に戻す形態で湯水を循環させる余剰分外部放熱循環状態において余剰分放熱状態にて外部放熱部Hにて放熱するようにしてもよい。
具体的に説明すると、図6に示すように、貯湯温サーミスタ10の検出温度が設定温度以上のときにおいて、給湯用操作装置KSの指令により風呂追焚きが指令されたり、床暖房装置の運転が開始されたりして、風呂追焚き用循環ポンプ15aや床暖房用循環ポンプ16aが作動されるに伴って、貯湯タンク1内の湯水を循環路2に取り出すように中間部用三方弁8bを切り換え、循環路2の湯水の一部を貯湯タンク1に戻すように上部用三方弁7bを切り換える。
そして、貯湯タンク1の中間部の湯水の一部を貯湯タンク1の上部に戻して貯湯するとともに、残りの湯水を熱源として外部放熱部Hにて放熱して貯湯タンク1の底部に戻す。
【0047】
〔別実施形態〕
)上記基本実施形態では、加熱部Kにて加熱した温水の一部を外部放熱部Hに分岐供給する形態で湯水を循環させる外部放熱用循環状態において放熱処理を実行するようにしているが、外部放熱用循環状態に加え、貯湯タンク1の上部から取り出した湯水を外部放熱部Hに供給して貯湯タンク1の底部に戻す外部放熱専用循環状態において放熱専用運転状態に切り換えて放熱処理を実行するようにしてもよい。
つまり、図7に示すように、上部接続路7aよりも湯水循環方向下流側の循環路2に上部取出し用ポンプ3aを設けて、この上部取出し用ポンプ3aを作動させて、貯湯タンク1内の湯水を循環路2に取り出すように上部用三方弁7bを切換え、循環路2の湯水を貯湯タンク1内に戻すように底部用三方弁9bを切換えて、貯湯タンク1の上部から取り出した湯水を外部放熱部Hに供給して貯湯タンクの底部に戻す形態で、外部放熱部Hにおける放熱を行うようにする
【0048】
また、上述のように、貯湯タンク1の上部から湯水を取り出す際には、上部用三方弁7bを切換えるようにしているが、次のように構成してもよい。
つまり、図8に示すように、循環路2に対して循環ポンプ3を設けてバイパス循環路2aが設けられ、このバイパス循環路2aと循環路2との接続箇所のそれぞれに三方弁7c,7dが設けられ、三方弁7cと三方弁7dとの間の循環路2と貯湯タンク1とを接続する接続路7eが設けられている。
【0049】
そして、三方弁7cと三方弁7dを切換えることによって、循環路2の湯水を貯湯タンク1に戻す状態(図8(イ))と、貯湯タンク1内の湯水を循環路2に取り出す状態(図8(ロ))と、循環路2の湯水を貯湯タンク1に戻すことなくそのまま下流側に供給する状態(図8(ハ))とに切換える。
【0050】
)上記基本実施形態では、貯湯タンク1の上部、中間部、底部のそれぞれにおいて、上部接続路7a、中間部接続路8a、底部接続路9aを介して循環路2と貯湯タンク1とを接続するようにしているが、次のように構成してもよい。
なお、上記基本実施形態と同様の構成は同符号を記すことで、その説明を省略する。
つまり、図9に示すように、貯湯タンク1の底部から湯水を取り出して加熱部Kにて加熱したのち、貯湯タンク1の上部に戻す第1循環路19が設けられ、加熱部Kよりも湯水循環方向上流側の第1循環路19には循環ポンプ3が設けられ、加熱部Kよりも湯水循環方向下流側の第1循環路19には比例弁21が設けられている。
また、加熱部Kと比例弁21との間の第1循環路19には、外部放熱部Hに湯水を供給し、その全量を貯湯タンク1を迂回して加熱部Kに直接戻す第2循環路20が設けられている。
【0051】
そして、貯湯運転状態においては、循環ポンプ3を作動させ、比例弁21の開度を調節して、貯湯タンク1の底部から取り出した湯水を加熱部Kにて加熱したのち、貯湯タンク1の上部に戻す形態で湯水を循環させて貯湯タンク1への貯湯を行う。
放熱運転状態においては、循環ポンプ3を作動させ、比例弁21の開度を調節して、貯湯タンク1の底部から取り出した湯水を加熱部Kにて加熱したのち、その温水の全量または一部を外部放熱部Hに供給しかつその外部放熱部Hからの湯水の全量を貯湯タンク1を迂回して加熱部Kに直接戻す形態で湯水を循環させて外部放熱部Hにおける放熱を行う。なお、比例弁21の開度は、加熱部Kにて加熱された湯水が外部放熱部Hに対して余剰に加熱されると、貯湯タンク1の上部に多量に戻すように調節され、加熱部Kにて加熱された湯水の温度が外部放熱部Hに対して低い場合には、外部放熱部Hに多量に供給するように調節される。
【0052】
上述のような構成に、次の構成を追加してもよい。
なお、図9と同様の構成は、同符号を記すことで、その説明を省略する。
つまり、図10に示すように、貯湯用循環状態および外部放熱用循環状態のいずれにおいても湯水が通流する流路部分に、湯水貯留用の補助タンク22を備える。
そして、加熱部Kにて加熱された湯水を補助タンク22に貯湯することにより、比例弁21の開度調節が頻繁に行われないようにすることができる。つまり、比例弁21の開度調節は第1循環路21における湯水の温度に基づいて行われるが、補助タンク22を設けることにより、第1循環路21における湯水の温度が極端に変化しないようにしている。
【0053】
)上記基本実施形態では、貯湯タンク1から循環路2に湯水を取り出したり、循環路2から貯湯タンク1に湯水を戻すのを、上部三方弁7b、中間部三方弁8b、および、底部三方弁9bを用いて行っているが、三方弁に限ることなく、断続弁や比例弁を用いて行うことも可能である。
【0054】
)上記基本実施形態では、エンジンヒートポンプ式冷暖房装置Cのエンジン排熱およびヒートポンプ式冷暖房における排熱を利用して加熱部Kにおける加熱を可能としているが、家庭用コージェネレーションシステムにおけるエンジン排熱および発電機排熱を利用して加熱部Kにおいて加熱するようにしてもよい。
【図面の簡単な説明】
【図1】 エンジンヒートポンプ式冷暖房給湯システムの概略構成図
【図2】 制御装置の制御ブロック図
【図3】 エンジンヒートポンプ式冷暖房給湯システムの概略構成図
【図4】 エンジンヒートポンプ式冷暖房給湯システムの概略構成図
【図5】 制御装置の制御動作を示すフローチャート
【図6】施形態を示すエンジンヒートポンプ式冷暖房給湯システムの概略構成図
【図7】 別実施形態を示すエンジンヒートポンプ式冷暖房給湯システムの概略構成図
【図8】 別実施形態におけるエンジンヒートポンプ式冷暖房給湯システムの要部を示す図
【図9】 別実施形態におけるエンジンヒートポンプ式冷暖房給湯システムの要部を示す図
【図10】 別実施形態におけるエンジンヒートポンプ式冷暖房給湯システムの要部を示す図
【符号の説明】
1 貯湯タンク
6 給湯路
11 余剰貯湯状態検出手段
22 貯湯用の補助タンク
H 外部放熱部
J 湯水循環手段
K 加熱手段
S 制御手段
[0001]
BACKGROUND OF THE INVENTION
The present invention comprises a hot water storage tank having a hot water supply channel connected to the upper part,
The hot water circulation is performed by heating the hot water taken out from the bottom of the hot water storage tank with a heating means so that the hot water is stored in the hot water tank by forming a temperature stratification. Hot water circulation means for circulating hot water in a state;
The present invention relates to a hot water storage type hot water supply heat source apparatus provided with a control means for controlling operation.
[0002]
[Prior art]
The hot water storage type hot water heat source apparatus as described above is heated by heating means so that hot water is stored by forming a temperature stratification in the hot water storage tank, and hot water in the upper part of the hot water storage tank is supplied via a hot water supply channel. In addition, the hot water in the hot water storage tank is circulated and supplied to the external heat radiating section, so that a relatively small heating means is used to form a temperature stratification in the hot water storage tank to store the hot water, and the stored hot water is supplied to the hot water. And it can be used effectively in the external heat radiation part.
[0003]
Conventionally, after the hot water taken out from the lower part of the hot water storage tank is heated by the heating means, a communication water pipe is provided so as to supply the hot water to the upper part of the hot water storage tank. It is provided so that the heat exchanging part for heating the hot water in the water and the external heat radiating part are combined, and when hot water is stored in the hot water storage tank, the hot water taken out from the lower part of the hot water storage tank is heated by the heating means, When the hot water is supplied to the upper part of the hot water storage tank to form a temperature stratification and the hot water is stored and heat is radiated by the external heat radiating part, the heat medium supplied to the external heat radiating part is heated by the heating means to radiate heat (See, for example, Japanese Utility Model Publication No. 56-34249).
[0004]
[Problems to be solved by the invention]
However, in the conventional one, since the heat exchanging part for storing hot water in the hot water storage tank and the external heat radiating part are provided in combination, when the hot water is stored in the hot water storage tank, the heat from the heating means is transferred to the external heat radiating part. On the contrary, when heat is radiated in the external heat radiating section, the heat from the heating means is deprived by the heat exchanging section, and the hot water storage in the hot water storage tank and the heat radiated in the external heat radiating section may not be performed efficiently. .
[0005]
The present invention has been made paying attention to such points, and an object thereof is to provide a hot water storage type hot water supply heat source device capable of efficiently performing hot water storage in a hot water storage tank and heat dissipation in an external heat radiating unit. It is in.
[0006]
[Means for Solving the Problems]
In order to achieve this object, according to the first aspect of the present invention, the hot water circulation means branches and supplies all or part of the hot water heated by the heating means to the external heat radiating portion, and from the external heat radiating portion. The hot water is circulated in a form that bypasses the hot water storage tank and returns directly to the heating means. The hot water storage tank is configured to execute operation control by switching between a hot water storage operation state in which the heating means is heated and a hot water circulation means in an external heat radiation circulation state to switch the heating means to a heat radiation operation state. An excess hot water storage state detecting means for detecting whether or not the hot water temperature stratification state is an excessive hot water storage state in which the formation range of the high temperature portion is below a set value is provided, and the hot water circulation means The hot water taken out from the take-out part below the set value in the hot water tank is supplied to the external heat radiating part, and is returned to the hot water tank from the return part below the take-out part. It is configured to be switchable to a state, and the control means maintains the excess hot water storage state based on detection information of the excessive hot water storage state detection means, and the hot water circulation means is set to an external heat radiation circulation state by an excess amount. It is configured to perform operation control by switching to a surplus heat radiation operation state to be switched .
Therefore, when hot water is stored in the hot water storage tank, the hot water circulation means is switched to the hot water circulation state, and hot water heated by the heating means is supplied to the upper part of the hot water storage tank to accurately store hot water in the hot water storage operation state. When radiating heat in the external heat radiating section, the hot water circulating means is switched to the external heat radiating circulation state, and in the heat radiating operation state, the entire amount of hot water heated by the heating means is supplied to the external heat radiating section. Heat can be accurately radiated, or a part of the hot water heated by the heating means is supplied to the external heat radiating section and the rest is supplied to the upper part of the hot water storage tank to dissipate the hot water heated excessively by the heating means. Can be used for hot water storage.
[0007]
In the circulation state for external heat radiation, all or part of the hot water heated by the heating means is branched and supplied to the external heat radiating portion, and all the hot water from the external heat radiating portion is bypassed the hot water storage tank to the heating means. Since the hot water is circulated in the form of direct return, the hot water that is used for heat dissipation in the external heat radiating unit and does not drop to near the water supply temperature is directly heated without heating the hot water close to the water supply temperature at the bottom of the hot water storage tank. It can heat by a means and can thermally radiate in an external radiating part.
In addition, the hot water in the hot water storage tank is supplied to the external heat radiating section by the circulation supply means so that the hot water temperature stratification in the hot water storage tank detects the excessive hot water storage state, that is, to maintain the excessive hot water storage state. Since the heat can be radiated in the external heat radiating section, it is possible to effectively use the hot water stored in excess hot water while ensuring that the hot water in the hot water storage tank does not run out even when hot water is supplied. Thus, heat can be radiated in the external heat radiation part.
[0008]
According to the second aspect of the present invention, the hot water circulation means includes an auxiliary tank for hot water storage in the flow path portion through which hot water flows in both the hot water circulation state and the external heat dissipation circulation state. Has been.
That is, by providing an auxiliary tank, it is possible to secure a sufficient amount of retained water to be circulated by the hot water circulation means. For example, hot water heated by the heating means is stored in the auxiliary tank to circulate the hot water. And in the circulation state for external heat dissipation, the hot water stored in the auxiliary tank can be used, so that the hot water stored in the hot water storage tank and the heat dissipation in the external heat dissipation portion can be performed more reliably.
[0009]
According to the third aspect of the present invention, the hot water circulation means is configured so that the amount of hot water branched and supplied to the external heat radiating portion can be changed and adjusted in the external heat radiating circulation state. Therefore, it is possible to branch and supply an appropriate amount of hot water to the external heat radiating portion, and to perform heat radiation in the external heat radiating portion more accurately.
[0010]
According to the invention described in claim 4, the heating means is configured to include a plurality of types of heating units, and the control unit is configured to control the heating operation of the plurality of types of heating units according to the heating load. Has been.
Therefore, when the heating load is large according to the hot water storage in the hot water storage tank and the heating load on the external heat radiating unit, the heating operation of the plurality of types of heating units is controlled so that the amount of heat by the heating means increases, and when the heating load is small The heating operation of the plurality of types of heating units can be controlled so that the amount of heat by the heating unit is small, and the heating in the heating unit can be performed more accurately.
[0012]
DETAILED DESCRIPTION OF THE INVENTION
A basic embodiment in which a hot water storage type hot water supply heat source apparatus according to the present invention is applied to an engine heat pump type air conditioning hot water supply system will be described with reference to the drawings.
As shown in FIG. 1, this engine heat pump type air conditioning and hot water supply system is provided with an engine heat pump type air conditioner C that cools and heats the room. In addition, the heating part K as a heating means for heating the hot water in the hot water storage tank 1 while using the auxiliary heat source, and the external heat radiating part H for radiating heat using the hot water in the hot water storage tank 1 are respectively hot water in the hot water storage tank 1. The circulation pump 3 is operated to circulate hot water in the hot water storage tank 1 through the circulation path 2. And the control apparatus S as a control means which controls operation | movement of the engine heat pump type | formula air conditioning apparatus C, operation | movement of the heating part K, the circulation pump 3, etc. is provided.
[0013]
The hot water storage tank 1 is connected to a hot water supply path 4 for supplying water to the hot water storage tank 1 from the bottom using tap water pressure, and is connected to a hot water supply path 6 for supplying hot water to a hot water tap 5 such as a bathroom or kitchen from the upper part. The amount of water used by the hot water tap 5 is supplied from the water supply channel 4 to the hot water storage tank 1.
Further, in order to return the hot water flowing through the circulation path 2 into the hot water storage tank 1 or to take out the hot water in the hot water storage tank 1 to the circulation path 2, the circulation path 2 and the hot water storage tank 1 are arranged above the hot water storage tank 1. The middle part and the bottom part are connected in communication.
[0014]
In other words, the upper part of the hot water storage tank 1 is provided with an upper connection path 7a for connecting the circulation path 2 and the hot water storage tank 1, and an upper three-way valve 7b at the connection point between the circulation path 2 and the upper connection path 7a. An intermediate portion connection path 8a for connecting the circulation path 2 and the hot water storage tank 1 is provided at the intermediate portion of the hot water storage tank 1, and an intermediate portion three-way valve 8b is provided at a connection point between the circulation path 2 and the intermediate portion connection path 8a. The bottom of the hot water storage tank 1 is provided with a bottom connection path 9a for connecting the circulation path 2 and the hot water storage tank 1, and a bottom three-way valve 9b at a connection point between the circulation path 2 and the bottom connection path 9a. Yes.
[0015]
Therefore, by switching each of the three-way valves 7b, 8b, 9b, the hot water flowing through the circulation path 2 is returned to the hot water storage tank 1, or the hot water in the hot water storage tank 1 is taken out to the circulation path 2 to circulate the hot water. The means J is constituted by the circulation path 2, the circulation pump 3, the connection paths 7a, 8a, 9a, the three-way valves 7b, 8b, 9b, and the like. In addition, the upper three-way valve 7b is configured to freely change and adjust the amount of hot water heated and supplied by the heating unit K to the external heat radiating unit H.
[0016]
Further, when hot water is stored in the hot water storage tank 1, the water at the bottom of the hot water storage tank 1 is taken out to the circulation path 2 through the bottom connection path 9a, and the circulation path 2 is heated while the water is heated by the heating section K. The heated hot water is returned to the upper part of the hot water storage tank 1 through the upper connection path 7a to form a temperature stratification and store hot water. And, whether the hot water storage amount is more than the necessary minimum hot water storage amount, by detecting the hot water temperature, the hot water storage temperature thermistor 10, whether the hot water storage amount is more than the required minimum hot water storage amount, or more than the excess hot water storage amount, A surplus hot water temperature thermistor 11 is provided as surplus hot water storage state detection means for detecting by detecting the hot water temperature. The necessary minimum hot water storage amount is the amount of hot water stored in advance so that hot water does not run out when the hot water supply amount of the hot water tap 5 is predicted.
And the installation position of the hot water storage temperature thermistor 10 is located above the connection location of the hot water storage tank 1 and the intermediate connection path 8a, and the installation position of the excess hot water temperature thermistor 11 is the hot water storage tank 1 and the intermediate part connection path 8a. It is located below the connection point.
[0017]
The heating unit K is heated from the upper side toward the lower side in the hot water circulation direction in the circulation path 2 by using the exhaust heat in the heat pump type air conditioning, and is heated using the engine exhaust heat. The second heat exchanging part 13 and the third heat exchanging part 14 heated by the combustion device N provided with the burner B as the auxiliary heat source are provided in order, and the circulation path 2 is provided in each of the heat exchanging parts 12, 13, 14. The flowing hot water is heated by heat exchange.
In the basic embodiment, the external heat radiating unit H is provided with a heat exchanger 15 for reheating a bath and a heat exchanger 16 for floor heating in order from the upper side to the lower side in the hot water circulation direction in the circulation path 2. Configured. In other words, the hot water in the bathtub is supplied to the bath heat exchanger 15 through the bath recirculation circuit 15b by the operation of the bath recirculation pump 15a, and the hot water in the bathtub not shown in the figure is replenished by heat exchange. I am able to whisper. Further, the floor heating heat exchanging section 16 exchanges heat with the heat medium flowing through the floor heating circulation path 16b by the operation of the floor heating circulation pump 16a so that the floor heating can be performed.
[0018]
Incidentally, the first heat exchange section 12 is provided in the circulation path 2 between the bottom three-way valve 9b and the intermediate three-way valve 8b, and the second heat exchange section 13 and the third heat exchange section 14 are three-way intermediate sections. The circulation path 3 between the valve 8b and the upper three-way valve 7b is provided, and the circulation pump 3 is provided in the circulation path 2 between the third heat exchange section 14 and the upper three-way valve 7b. A bath-heating heat exchanging section 15 and a floor heating heat exchanging section 16 are provided in the circulation path 2 between the upper three-way valve 7b and the bottom three-way valve 9b.
[0019]
The engine heat pump air conditioner C includes an indoor unit Ui and an outdoor unit Uo, and the indoor unit Ui and the outdoor unit Uo are connected by a refrigerant pipe r.
The indoor unit Ui is provided with an expansion valve Vex, an indoor heat exchanger Ni, and an indoor air conditioner Fi that sends out the air SA temperature-controlled by the indoor heat exchanger Ni to the air-conditioning target area.
The outdoor unit Uo includes a gas engine GE, a radiator RG, a radiator fan RF, a compressor Cmp, an accumulator Ac, a four-way valve Vx, an outdoor heat exchanger No, and an outdoor unit that ventilates the outdoor air TA to the outdoor heat exchanger No. An air conditioner blower Fo is provided. In addition, a cooling water path w for circulating cooling water for cooling the gas engine GE with the radiator RG is provided, and a radiator pump RP is provided in the cooling water path w.
[0020]
The engine heat pump air-conditioning apparatus C is configured to be able to selectively switch between a cooling operation and a heating operation by operating the compressor Cmp by the gas engine GE and switching the four-way valve Vx. Further, the engine heat pump air conditioner C has a first exhaust that switches between a heating state in which the exhaust heat in the cooling operation is supplied to the first heat exchange unit 12 by the refrigerant and an exhaust heat state that is supplied to the outdoor heat exchanger No. A heat switching mechanism 17, a second exhaust heat switching mechanism 18 that switches between a heating state in which the exhaust heat of the gas engine is supplied to the second heat exchanging unit 13 by cooling water and an exhaust heat state in which the exhaust heat is supplied to the radiator RG and exhausted. Is provided.
[0021]
Specifically, the first exhaust heat switching mechanism 17 includes a bypass refrigerant pipe 17a and a bypass refrigerant pipe connected to the refrigerant pipe r so that the outdoor heat exchanger No and the first heat exchange unit 12 are in parallel. The three-way valves 17b and 17c are provided at connection points between the 17a and the refrigerant pipe r.
In the heating state in which exhaust heat in the cooling operation is supplied to the first heat exchange unit 12 by the refrigerant, the refrigerant is the refrigerant pipe r, the bypass refrigerant pipe 17a, the first heat exchange unit 12, the bypass refrigerant pipe 17a, and the refrigerant pipe. They are supplied in the order of r. In the exhaust heat state in which the exhaust heat in the cooling operation is supplied to the outdoor heat exchanger No. by the refrigerant, the refrigerant is supplied in the order of the refrigerant pipe r, the outdoor heat exchanger No, and the refrigerant pipe r.
[0022]
The second exhaust heat switching mechanism 18 includes a bypass cooling water channel 18a connected to the cooling water channel w so that the radiator RG and the second heat exchanging unit 13 are in parallel, and a connection point between the bypass cooling water channel 18a and the cooling water channel w. The three-way valves 18b and 18c are provided respectively.
And in the heating state where gas engine exhaust heat is supplied to the 2nd heat exchanging part 13 with cooling water, cooling water is cooling water channel w, bypass cooling water channel 18a, 2nd heat exchanging part 13, bypass cooling water channel 18a, radiator The pump RP and the cooling water channel w are supplied in this order. In the exhaust heat state in which the exhaust heat from the gas engine is supplied to the radiator RG by the cooling water and exhausted, the cooling water is supplied in the order of the cooling water channel w, the radiator RG, the radiator pump RP, and the cooling water channel w.
[0023]
In the cooling operation, the indoor heat exchanger Ni is caused to function as an evaporator so that the temperature of the air supplied to the air-conditioning target area is cooled and the first exhaust heat switching mechanism 17 is switched to the exhaust heat state. When the outdoor heat exchanger No. functions as a condenser to dissipate heat to the outside air and the first exhaust heat switching mechanism 17 is switched to the heating state, the first heat exchange unit 12 passes the circulation path 2. Dissipates heat against flowing hot water.
Further, in the heating operation, the indoor heat exchanger Ni is caused to function as a condenser, the supply air to the air-conditioning target area is heated and temperature-controlled, and the outdoor heat exchanger No. is functioned as an evaporator so as to absorb heat from the outside air. I have to.
[0024]
In this way, when the cooling operation or the heating operation is performed, if the exhaust heat of the gas engine GE is recovered by the cooling water and the second exhaust heat switching mechanism 18 is switched to the exhaust heat state, the radiator When the second blower heat switching mechanism 18 is switched to the heated state, the second heat exchange unit 13 radiates heat to hot water flowing through the circulation path 2 by driving the blower RF and radiating heat in the radiator RG. It is configured as follows.
[0025]
More specifically, in the cooling operation, the high-pressure dry vapor refrigerant discharged from the compressor Cmp is supplied to the outdoor heat exchanger No via the four-way valve Vx, and the first exhaust heat switching mechanism 17 is in the exhaust heat state. When switched, it is condensed in this outdoor heat exchanger No. by heat exchange with the outside air.
[0026]
And the condensation process passage refrigerant | coolant sent out from the outdoor heat exchanger No as a condenser is supplied to indoor heat exchanger Ni via the expansion valve Vex, and heat exchange with air to be cooled in this indoor heat exchanger Ni Is evaporated.
Thereafter, the low-pressure dry vapor refrigerant sent from the indoor heat exchanger Ni as an evaporator is returned to the suction port of the compressor Cmp through the four-way valve Vx and the accumulator Ac. In this way, the room that is the cooling target area is cooled.
[0027]
As for the heating operation, the high-pressure dry vapor refrigerant discharged from the compressor Cmp is supplied to the indoor heat exchanger Ni through the four-way valve Vx, and heat exchange with the air to be heated is performed in the indoor heat exchanger Ni. Condense.
[0028]
And the condensation composition passage refrigerant sent out from indoor heat exchanger Ni as a condenser is supplied to outdoor heat exchanger No via expansion valve Vex, and is evaporated by heat exchange with outside air in this outdoor heat exchanger No. Let
Thereafter, the low-pressure dry vapor refrigerant sent from the outdoor heat exchanger No. as the evaporator is returned to the suction port of the compressor Cmp through the four-way valve Vx and the accumulator Ac. In this way, the room that is the heating target area is heated.
[0029]
As shown in FIG. 2, the control device S includes a hot water supply controller TC for controlling the operation of the hot water storage tank 1 such as the combustion device N, the circulation pump 3, and the three-way valves 7b, 8b, 9b, and an engine heat pump type air conditioner. The controller RC for the air conditioning apparatus which controls the driving | operation of C is comprised, This controller TC for hot water supply and the controller RC for air conditioning apparatus are comprised so that communication is possible.
[0030]
That is, the hot water supply controller TC is configured to control the operations of the circulation pump 3, the combustion device N, and the three-way valves 7b, 8b, and 9b based on a command from the hot water supply operation device KS, and the controller RC for the air conditioning device Is configured to control operations of the gas engine GE, the first exhaust heat switching mechanism 17, and the second exhaust heat switching mechanism 18 based on a command from the air conditioning operating device RS.
The air conditioner controller RC executes the cooling operation or the heating operation based on a command from the air conditioner operating device RS, and switches between the first exhaust heat switching mechanism 17 and the second exhaust heat switching mechanism 18. It is configured as follows.
[0031]
The hot water storage controller TC is the execution timing of the hot water storage operation such as a time zone in which the hot water storage operation is executed in a state where the operation is instructed by the hot water supply operation device KS, and has a minimum required hot water storage amount in the hot water storage tank 1. If hot water is not stored, that is, if the temperature detected by the hot water temperature thermistor 10 is lower than the set temperature, the hot water storage process is performed in the hot water storage tank 1 by switching to the hot water storage operation state in the hot water circulation state. Then, after the hot water is stored in the hot water storage tank 1, the external heat radiating section H performs a heat radiating process by switching to the heat radiating operation state in the external heat radiating circulation state according to the heat radiating request in the external heat radiating section H.
[0032]
More specifically, when the operation is instructed by the hot water supply operating device KS, the hot water storage tank 1 has not stored the required minimum amount of hot water, that is, the temperature detected by the hot water temperature thermistor 10 is the set temperature. 3, the bottom of the hot water storage tank 1 is switched by operating the circulation pump 3 and switching the bottom three-way valve 9b so as to take out the water at the bottom of the hot water storage tank 1 to the circulation path 2. Is circulated while being heated in the heating section K.
Then, for example, when a set time for sufficiently heating the hot water flowing through the circulation path 2 has elapsed, or when the temperature of the hot water in the circulation path 2 becomes equal to or higher than the set temperature, the hot water flowing through the circulation path 2 is stored. The upper three-way valve 7b is switched so as to return to the upper part of the tank 1, and the hot water is returned to the upper part of the hot water storage tank 1 to store the hot water.
[0033]
In this way, until the hot water is stored in the hot water storage tank 1 by forming a temperature stratification, the hot water storage amount is larger than the minimum required hot water storage amount by a set amount, that is, the excess hot water temperature. The hot water taken out from the bottom of the hot water storage tank 1 is heated by the heating unit K until the temperature detected by the thermistor 11 becomes equal to or higher than the set temperature, and then the hot water is stored in the hot water circulating state where the hot water is supplied to the upper part of the hot water storage tank 1. The hot water storage operation to be performed is executed.
[0034]
In addition, after hot water is stored in the hot water storage tank 1 described above, bath reheating is instructed by the instruction of the hot water supply operating device KS, the operation of the floor heating device is started, or both are performed. When the bath recirculation circulation pump 15a and the floor heating circulation pump 16a are activated and the execution of the heat dissipation process is requested, the circulation pump 3 is activated, and the hot water from the bottom connection path 9a and the circulation path 2 are The bottom three-way valve 9b is switched so that it mixes with hot water, and the upper three-way valve 7b is switched so that all or part of the hot water heated by the heating unit K is branched and supplied to the external heat radiating unit H.
Then, as shown in FIG. 4, all or part of the hot water heated by the heating unit K is branched and supplied to the external heat radiating unit H, and all the hot water from the external heat radiating unit H is bypassed the hot water storage tank 1. In an external heat radiation circulation state in which hot water is circulated in a form of returning directly to the heating unit K, hot water at the bottom of the hot water storage tank 1 is heated by the heating unit K, and a part thereof is returned to the upper part of the hot water storage tank 1 to store hot water. At the same time, heat is radiated at the external heat radiating portion H using the remaining hot water as a heat source. Thereafter, hot water at the bottom of the hot water storage tank 1 and hot water radiated as a heat source in the external heat radiating part H are mixed and circulated so as to be heated by the heating part K again.
[0035]
In this way, when hot water is stored in the hot water storage tank, the hot water circulation means is switched to the hot water circulation state, and hot water heated by the heating means is supplied to the upper portion of the hot water storage tank in the hot water storage operation state to accurately store hot water. When radiating heat in the external heat radiating section, the hot water circulating means is switched to the external heat radiating circulation state, and in the heat radiating operation state, the entire amount of hot water heated by the heating means is supplied to the external heat radiating section. Heat can be accurately radiated in the heat radiating part, or a part of the hot water heated by the heating means is supplied to the external heat radiating part, and the rest is supplied to the upper part of the hot water storage tank, and is heated excessively by the heating means. Hot water can be dissipated and used for hot water storage.
[0036]
In the circulation state for external heat radiation, all or part of the hot water heated by the heating means is branched and supplied to the external heat radiating portion, and all the hot water from the external heat radiating portion is bypassed the hot water storage tank to the heating means. Since the hot water is circulated in the form of direct return, the hot water that is used for heat dissipation in the external heat radiating unit and does not drop to near the water supply temperature is directly heated without heating the hot water close to the water supply temperature at the bottom of the hot water storage tank. It can heat by a means and can thermally radiate in an external radiating part.
[0037]
Further, the operation of the heating unit K will be described. When the engine heat pump type air conditioner C is performing the cooling operation and the first exhaust heat switching mechanism 17 is switched to the heating state, the first heat exchange unit 12, the hot water flowing through the circulation path 2 can be heated using the exhaust heat in the heat pump type air conditioning as a heat source.
In addition, when the engine heat pump type air conditioner C is in operation and the second exhaust heat switching mechanism 18 is switched to the heating state, the second heat exchange unit 13 uses the gas engine exhaust heat as a heat source as a circulation path. It becomes possible to heat the hot water flowing through 2.
And in the 3rd heat exchange part 14, the combustion apparatus N is operated and the hot water flowing through the circulation path 2 by combustion of the burner B can be heated.
[0038]
In this way, heating can be performed in each of the first to third heat exchanging units 12, 13, and 14, but depending on the hot load in the hot water storage tank 1 and the heating load on the external heat radiating unit H, Execution of the heating operation in the heat exchange unit 12, the second heat exchange unit 13, and the third heat exchange unit 14 is controlled.
That is, for example, when the heating load is large, such as at the start of operation, the first exhaust heat switching mechanism and the second exhaust heat switching mechanism are switched to the heating state, and combustion is performed by the burner B, whereby the first to third heats Heating is possible in all the heat exchanging parts of the exchanging parts 12, 13, and 14.
[0039]
Further, in normal times, heating in the first and second heat exchange units 12 and 13 is possible depending on the operating state of the engine heat pump type air conditioner C, so that heating is performed in the first and second heat exchange units 12 and 13. Whether or not the third heat exchanging unit 14 is heated by the combustion of the burner B by operating the combustion device N is determined.
That is, when the first and second heat exchanging units 12 and 13 are not heated by the operating state of the engine heat pump type air conditioner C, or when the first and second heat exchanging units 12 and 13 are heated, the hot water storage tank 1 is used. When the heating load for the hot water storage is insufficient, the combustion device N is operated to heat the third heat exchanging unit 14 by the combustion of the burner B, so that the hot load for the hot water storage tank 1 and the external heat radiation unit H is heated. The operation of the heating unit K is controlled so as to correspond to the above.
[0040]
The control operation of the control device S at this time will be described based on the flowchart of FIG.
First, in the state where the operation is commanded by the hot water supply operating device KS, the hot water storage operation is performed at a hot water storage operation timing such as a time zone during which the hot water storage operation is performed, and the hot water storage tank 1 is not storing the required minimum amount of hot water. That is, if the detected temperature TK of the hot water storage temperature thermistor 10 is lower than the set temperature, the hot water storage operation is started and hot water storage processing is executed.
[0041]
That is, the circulation pump 3 is operated, the bottom three-way valve 9b is switched to take out the water in the hot water storage tank 1 to the circulation path 2, and the water at the bottom of the hot water storage tank 1 is circulated while being heated in the heating part K. For example, when a set time for sufficiently heating the hot water flowing through the circulation path 2 elapses or when the temperature of the hot water in the circulation path 2 becomes equal to or higher than the set temperature, the hot water flowing through the circulation path 2 is stored in the hot water storage tank 1. The upper three-way valve 7b is switched so that the hot water is returned to the upper part of the hot water storage tank 1 for hot water storage.
[0042]
In this way, when the hot water storage process is executed and the amount of stored hot water becomes a surplus hot water amount that is larger than the necessary minimum hot water storage amount by a set amount, that is, when the detected temperature TY by the surplus hot water temperature thermistor 11 is equal to or higher than the set temperature, The end of the hot water storage process is requested, the stop process is executed, and the hot water storage operation is ended.
That is, if the circulation pump 3 is operating, the operation is stopped, and the first exhaust heat switching mechanism 17 and the first to third heat exchange units 12, 13, 14 are not heated by the first to third heat exchange units 12, 13, 14. When the second exhaust heat switching mechanism 18 is switched to the heating state, the second exhaust heat switching mechanism 18 is switched to the exhaust heat state, and if the burner B is in combustion, the combustion in the burner B is stopped.
[0043]
Further, when the hot water storage operation is performed in the hot water storage operation such as a time zone in which the hot water storage operation is executed and when the required minimum hot water storage amount is stored in the hot water storage tank 1, that is, the detected temperature TK of the hot water temperature thermistor 10 is set. When the temperature is equal to or higher than the temperature, if the hot water storage operation is being performed in which the hot water storage process for storing hot water in the hot water storage tank 1 is being performed, the hot water storage process is continuously executed.
Then, after the hot water storage is performed in the hot water storage tank 1 and the hot water storage operation is ended, the bath reheating is instructed by the instruction of the hot water supply operation device KS or the operation of the floor heating device is started. If both of them are performed and the execution of the heat dissipation process is requested, the heat dissipation operation is started and the heat dissipation process is executed.
That is, the circulation pump 3 is operated, the bottom three-way valve 9b is switched so that the hot water from the bottom connection path 9a and the hot water from the circulation path 2 are mixed, and a part of the hot water in the circulation path 2 is transferred to the hot water storage tank 1. The upper three-way valve 7b is switched to return.
Then, the hot water at the bottom of the hot water storage tank 1 is heated by the heating unit K, and a part of the hot water is returned to the upper part of the hot water storage tank 1 to store hot water, and the remaining hot water is used as a heat source to radiate heat. Thereafter, hot water at the bottom of the hot water storage tank 1 and hot water radiated as a heat source in the external heat radiating part H are mixed and circulated so as to be heated by the heating part K again.
[0044]
Then, when the hot water storage operation is finished as described above, the heat dissipation process is executed in a state where the bath reheating operation is not instructed by the instruction of the hot water supply operation device KS and the operation of the floor heating device is stopped. If no request is made, standby processing is executed.
That is, if the circulation pump 3 is operating, the operation is stopped, and if the first exhaust heat switching mechanism 17 and the second exhaust heat switching mechanism 18 are switched to the heating state, the operation is switched to the exhaust heat state, and the burner B Is burning, the combustion in the burner B is stopped.
[0045]
In this way, the hot water storage operation and the heat dissipation operation are executed at the hot water storage operation execution timing such as the time zone during which the hot water storage operation is executed. However, if the hot water storage operation is not executed, the above-described stop processing is executed. .
That is, if the circulation pump 3 is operating, the operation is stopped, and the first exhaust heat switching mechanism 17 and the first to third heat exchange units 12, 13, 14 are not heated by the first to third heat exchange units 12, 13, 14. When the second exhaust heat switching mechanism 18 is switched to the heating state, the second exhaust heat switching mechanism 18 is switched to the exhaust heat state, and if the burner B is in combustion, the combustion in the burner B is stopped.
[0046]
Embodiment of the present invention
Above Symbol basic embodiment has been adapted to perform the heat radiation processing in external heat circulation state for circulating the hot water in the branch supply form part of the heated hot water in the external heat radiation part H at the heating section K, In addition to the circulation state for external heat dissipation, supply the entire amount or a part of the hot water taken out from the intermediate part of the hot water storage tank 1 to the external heat radiation part H and return it to the bottom of the hot water storage tank 1 to circulate the hot water in excess. In the state, heat may be dissipated by the external heat dissipating part H in an excessive heat dissipating state.
More specifically, as shown in FIG. 6, when the detected temperature of the hot water storage temperature thermistor 10 is equal to or higher than the set temperature, bath reheating is instructed by the instruction of the hot water supply operating device KS, or the operation of the floor heating device is performed. The intermediate three-way valve 8b is switched so that the hot water in the hot water storage tank 1 is taken out into the circulation path 2 as the bath recirculation pump 15a and the floor heating circulation pump 16a are operated. Then, the upper three-way valve 7 b is switched so that a part of the hot water in the circulation path 2 is returned to the hot water storage tank 1.
Then, a part of the hot water in the intermediate part of the hot water storage tank 1 is returned to the upper part of the hot water storage tank 1 to store hot water, and the remaining hot water is radiated by the external heat radiating part H as a heat source and returned to the bottom of the hot water storage tank 1.
[0047]
[Another embodiment]
( 1 ) In the basic embodiment, the heat radiation process is performed in an external heat radiation circulation state in which hot water is circulated in a form in which a part of hot water heated by the heating unit K is branched and supplied to the external heat radiation unit H. However, in addition to the external heat radiation circulation state, the hot water taken out from the upper part of the hot water storage tank 1 is supplied to the external heat radiation part H and returned to the bottom of the hot water storage tank 1. May be executed.
That is, as shown in FIG. 7, an upper take-out pump 3a is provided in the circulation path 2 downstream of the upper connection path 7a in the hot water circulation direction, and the upper take-out pump 3a is operated to The upper three-way valve 7b is switched so that hot water is taken out into the circulation path 2, and the bottom three-way valve 9b is switched so that the hot water in the circulation path 2 is returned into the hot water storage tank 1, so that the hot water taken out from the upper part of the hot water storage tank 1 is removed. The heat radiation in the external heat radiation part H is performed in a form that is supplied to the external heat radiation part H and returned to the bottom of the hot water storage tank .
[0048]
Further, as described above, when the hot water is taken out from the upper part of the hot water storage tank 1, the upper three-way valve 7b is switched, but it may be configured as follows.
In other words, as shown in FIG. 8, a circulation pump 3 is provided for the circulation path 2 to provide a bypass circulation path 2a, and three-way valves 7c and 7d are respectively provided at connection points between the bypass circulation path 2a and the circulation path 2. And a connection path 7e for connecting the circulation path 2 between the three-way valve 7c and the three-way valve 7d and the hot water storage tank 1 is provided.
[0049]
Then, by switching between the three-way valve 7c and the three-way valve 7d, a state in which the hot water in the circulation path 2 is returned to the hot water storage tank 1 (FIG. 8 (a)) and a state in which the hot water in the hot water storage tank 1 is taken out into the circulation path 2 (see FIG. 8 (b)) and the state in which the hot water in the circulation path 2 is supplied to the downstream side without being returned to the hot water storage tank 1 (FIG. 8 (c)).
[0050]
In (2) the basic embodiment, the upper portion of the savings hot water tank 1, an intermediate portion, in each of the bottom, the upper connection passage 7a, the intermediate portion connecting channel 8a, and the circulation path 2 and the hot water storage tank 1 through the bottom connection passage 9a However, it may be configured as follows.
In addition, the same structure as the said basic embodiment attaches | subjects the same code | symbol, and abbreviate | omits the description.
That is, as shown in FIG. 9, a first circulation path 19 is provided that takes hot water from the bottom of the hot water storage tank 1 and heats it with the heating unit K, and then returns to the upper part of the hot water storage tank 1. A circulation pump 3 is provided in the first circulation path 19 on the upstream side in the circulation direction, and a proportional valve 21 is provided in the first circulation path 19 on the downstream side in the hot water circulation direction from the heating unit K.
In addition, in the first circulation path 19 between the heating unit K and the proportional valve 21, a second circulation is performed in which hot water is supplied to the external heat radiating unit H, and the entire amount is bypassed the hot water storage tank 1 and directly returned to the heating unit K. A path 20 is provided.
[0051]
In the hot water storage operation state, the circulating pump 3 is operated, the opening degree of the proportional valve 21 is adjusted, the hot water taken out from the bottom of the hot water storage tank 1 is heated by the heating unit K, and then the upper portion of the hot water storage tank 1 is reached. The hot water is circulated in such a manner that the hot water is stored in the hot water storage tank 1.
In the heat radiation operation state, the circulating pump 3 is operated, the opening degree of the proportional valve 21 is adjusted, the hot water taken out from the bottom of the hot water storage tank 1 is heated by the heating unit K, and then the total amount or a part of the hot water. Is supplied to the external heat radiating portion H, and the entire amount of hot water from the external heat radiating portion H is circulated in the form of bypassing the hot water storage tank 1 and returning directly to the heating portion K to radiate heat in the external heat radiating portion H. The opening degree of the proportional valve 21 is adjusted so that when the hot water heated by the heating unit K is excessively heated with respect to the external heat radiating unit H, the proportional valve 21 is returned to the upper part of the hot water storage tank 1 in a large amount. When the temperature of the hot water heated at K is lower than that of the external heat radiating portion H, the temperature is adjusted so as to supply a large amount to the external heat radiating portion H.
[0052]
The following configuration may be added to the configuration described above.
Note that the same components as those in FIG. 9 are denoted by the same reference numerals, and the description thereof is omitted.
That is, as shown in FIG. 10, the hot water storage auxiliary tank 22 is provided in the flow path portion through which the hot water flows in both the hot water circulation state and the external heat radiation circulation state.
Then, the hot water heated by the heating unit K is stored in the auxiliary tank 22 so that the opening degree of the proportional valve 21 is not frequently adjusted. That is, the opening degree of the proportional valve 21 is adjusted based on the temperature of the hot water in the first circulation path 21, but the auxiliary tank 22 is provided so that the temperature of the hot water in the first circulation path 21 does not change extremely. ing.
[0053]
( 3 ) In the above basic embodiment, the hot water is taken out from the hot water storage tank 1 to the circulation path 2 and the hot water is returned from the circulation path 2 to the hot water storage tank 1 to the upper three-way valve 7b, the intermediate three-way valve 8b, and the bottom part. Although it is performed using the three-way valve 9b, the present invention is not limited to the three-way valve, and can be performed using an intermittent valve or a proportional valve.
[0054]
( 4 ) In the basic embodiment, the engine exhaust heat of the engine heat pump air conditioner C and the exhaust heat in the heat pump air conditioner are used to enable heating in the heating section K. However, the engine exhaust heat in the home cogeneration system Further, heating may be performed in the heating unit K using the generator exhaust heat.
[Brief description of the drawings]
FIG. 1 is a schematic configuration diagram of an engine heat pump type air conditioning and hot water supply system. FIG. 2 is a control block diagram of a controller. FIG. 3 is a schematic configuration diagram of an engine heat pump type air conditioning and hot water supply system. diagram 5 shows the control device schematic of an engine heat pump type cooling and heating hot water supply system according to another embodiment schematic view 7 of the engine heat pump type cooling and heating hot water supply system according to the flowchart Figure 6 implementation form showing the control operation of the FIG. 8 is a diagram showing the main part of an engine heat pump type air conditioning and hot water supply system in another embodiment. FIG. 9 is a diagram showing the main part of an engine heat pump type air conditioning and hot water system in another embodiment. Diagram showing the main parts of an engine heat pump air-conditioning and hot-water supply system ]
DESCRIPTION OF SYMBOLS 1 Hot water storage tank 6 Hot water supply path 11 Excess hot water storage state detection means 22 Auxiliary tank for hot water storage H External heat radiation part J Hot water circulation means K Heating means S Control means

Claims (4)

給湯路が上部に接続された貯湯タンクと、
その貯湯タンク内に湯水が温度成層を形成して貯湯されるように、貯湯タンクの底部から取り出した湯水を加熱手段にて加熱したのち、その温水を前記貯湯タンクの上部に供給する貯湯用循環状態で湯水を循環する湯水循環手段と、
運転を制御する制御手段とが設けられた貯湯式の給湯熱源装置であって、
前記湯水循環手段が、前記加熱手段にて加熱した温水の全量または一部を外部放熱部に分岐供給しかつその外部放熱部からの湯水の全量を前記貯湯タンクを迂回して前記加熱手段に直接戻す形態で湯水を循環させる外部放熱用循環状態とに切換え自在に構成され、
前記制御手段が、前記湯水循環手段を前記貯湯用循環状態に切換えて前記加熱手段を加熱作動させる貯湯運転状態と、前記湯水循環手段を前記外部放熱用循環状態に切換えて前記加熱手段を加熱作動させる放熱運転状態とを切換えて、運転制御を実行するように構成され
前記貯湯タンク内における湯水の温度成層の形成状態が高温部分の形成範囲が設定値よりも下方である余剰貯湯状態であるか否かを検出する余剰貯湯状態検出手段が設けられ、
前記湯水循環手段が、前記貯湯タンクにおける前記設定値よりも下方側の取り出し部から取り出した湯水を前記外部放熱部に供給して、前記取り出し部よりも下方の戻し部から前記貯湯タンク内に戻す余剰分外部放熱循環状態に切換え自在に構成され、
前記制御手段が、前記余剰貯湯状態検出手段の検出情報に基づいて、前記余剰貯湯状態を維持するように、かつ、前記湯水循環手段を余剰分外部放熱循環状態に切換える余剰分放熱運転状態にも切換えて、運転制御を実行するように構成されている貯湯式の給湯熱源装置。
A hot water storage tank with a hot water supply channel connected to the top;
The hot water circulation is performed by heating the hot water taken out from the bottom of the hot water storage tank with a heating means so that the hot water is stored in the hot water tank by forming a temperature stratification. Hot water circulation means for circulating hot water in a state;
A hot water storage hot water source device provided with a control means for controlling operation,
The hot water circulation means branches and supplies all or part of the hot water heated by the heating means to the external heat radiating section, and the entire amount of hot water from the external heat radiating section bypasses the hot water storage tank and directly to the heating means. It is configured to be freely switchable to an external heat dissipation circulation state in which hot water is circulated in a return form,
The control means switches the hot water circulation means to the hot water circulation state and heats the heating means, and switches the hot water circulation means to the external heat dissipation circulation state and heats the heating means. switching between radiating operation state to be configured to perform operation control,
Surplus hot water state detection means for detecting whether or not the hot water temperature stratification in the hot water tank is an excessive hot water state where the formation range of the high temperature portion is below a set value is provided,
The hot water circulating means supplies hot water taken out from the take-out portion below the set value in the hot water storage tank to the external heat radiating portion and returns it into the hot water storage tank from a return portion below the take-out portion. It is configured to be switchable to the external heat circulation state
Based on the detection information of the surplus hot water state detection means, the control means maintains the surplus hot water state, and the surplus hot water circulation operation state switches the hot water circulation means to the external heat radiation circulation state. A hot water storage type hot water source apparatus configured to switch and execute operation control .
前記湯水循環手段が、前記貯湯用循環状態および前記外部放熱用循環状態のいずれにおいても湯水が通流する流路部分に、湯水貯留用の補助タンクを備えて構成されている請求項1記載の貯湯式の給湯熱源装置。  2. The hot water circulation means includes an auxiliary tank for storing hot water in a flow path portion through which hot water flows in both the hot water circulation state and the external heat dissipation circulation state. Hot water storage heat source device. 前記湯水循環手段が、前記外部放熱用循環状態において、前記外部放熱部に分岐供給する温水量を変更調節自在に構成されている請求項1記載の貯湯式の給湯熱源装置。  The hot water storage type hot water supply heat source device according to claim 1, wherein the hot water circulation means is configured to be able to change and adjust the amount of hot water to be branched and supplied to the external heat radiation portion in the external heat radiation circulation state. 前記加熱手段が、複数種の加熱部を備えて構成され、
前記制御手段が、加熱負荷に応じて、前記複数種の加熱部の加熱作動を制御するように構成されている請求項1または2記載の貯湯式の給湯熱源装置。
The heating means includes a plurality of types of heating units,
The hot water storage type hot water supply heat source device according to claim 1 or 2, wherein the control means is configured to control heating operations of the plurality of types of heating units in accordance with a heating load.
JP29420798A 1998-10-15 1998-10-15 Hot water storage hot water source Expired - Lifetime JP3986180B2 (en)

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JP4004453B2 (en) * 2003-11-11 2007-11-07 大阪瓦斯株式会社 Waste heat recovery water heater
JP4656994B2 (en) * 2005-04-19 2011-03-23 東京瓦斯株式会社 Hot water storage hot water supply device
GB0508080D0 (en) 2005-04-21 2005-06-01 Clean Heat Provision Ltd Hot water installations
JP2006349227A (en) * 2005-06-14 2006-12-28 Takuma Co Ltd Co2 heat pump circulation hot water supply system
JP4545691B2 (en) * 2006-01-17 2010-09-15 リンナイ株式会社 Hot water storage system
JP4817916B2 (en) * 2006-03-24 2011-11-16 三洋電機株式会社 Heat pump type water heater
JP4818780B2 (en) * 2006-04-04 2011-11-16 東芝キヤリア株式会社 Water heater
JP4912792B2 (en) * 2006-08-23 2012-04-11 リンナイ株式会社 Hot water storage unit
JP5158745B2 (en) * 2006-12-22 2013-03-06 株式会社長府製作所 Fuel cell cogeneration system
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JP2010085091A (en) * 2009-11-19 2010-04-15 Sanyo Electric Co Ltd Heat pump type hot water supply device
JP2010223582A (en) * 2010-04-27 2010-10-07 Sanyo Electric Co Ltd Heat pump type water heater
JP6636390B2 (en) * 2016-05-26 2020-01-29 パーパス株式会社 Hot water supply system and hot water supply control program
CA3134117A1 (en) * 2019-03-27 2020-10-01 Daikin Industries, Ltd. Hot water supply apparatus

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