JP2010255986A - Hot water storage type hot water supply system - Google Patents

Hot water storage type hot water supply system Download PDF

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JP2010255986A
JP2010255986A JP2009109744A JP2009109744A JP2010255986A JP 2010255986 A JP2010255986 A JP 2010255986A JP 2009109744 A JP2009109744 A JP 2009109744A JP 2009109744 A JP2009109744 A JP 2009109744A JP 2010255986 A JP2010255986 A JP 2010255986A
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hot water
heat source
heat
water storage
circulation circuit
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JP5311128B2 (en
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Yasuto Hashizume
康人 橋詰
Yoshihiro Zushi
良広 図子
Itaru Yamamoto
格 山本
Yasushi Fujikawa
泰 藤川
Atsushi Iwamoto
淳 岩本
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Noritz Corp
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Noritz Corp
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a hot water storage type hot water supply system capable of effectively utilizing at a maximum a heat amount of stored hot water in a hot water storage tank in which heat is stored by heat recovery from an outside heat source. <P>SOLUTION: The system includes a circulation circuit 2 for making hot water taken from a bottom part 32 of the hot water storage tank 3 pass through a liquid-liquid heat exchanger 21 for heat exchanging with engine cooling water, a pump 22, and an auxiliary heat source machine 6 to return the hot water to a top part 33 of the hot water storage tank. A hot water supply passage 53 is diverged from a diverging point 26. A downstream end of a taking-out passage 51 for taking out stored hot water from the top part 34 of the hot water storage tank is connected to a mixing valve 52, which allows the hot water to be supplied to the circulation circuit on the auxiliary heat source machine side, after mixing stored hot water on the bottom part side of the hot water storage tank and stored hot water on the top part side of the hot water storage tank. The system includes a mode for circulating/supplying only the stored hot water in the hot water storage tank as a heat source of a heating circuit 8, and a mode for circulating/supplying hot water bypassing the hot water storage tank and heated by waste heat of the liquid-liquid heat exchanger 21 as the heat source. <P>COPYRIGHT: (C)2011,JPO&INPIT

Description

本発明は、ガスエンジンもしくは燃料電池等の冷却水排熱、ヒートポンプの冷媒が有する熱や、自然エネルギーの太陽熱等の外部熱源からの熱回収によって貯湯にして蓄熱し、蓄熱された貯湯を給湯に用いるようにした貯湯式給湯システムに関し、特に蓄熱された貯湯を最大限に有効活用し得るようにした技術に係る。   The present invention stores hot water by storing heat from an external heat source such as cooling water exhaust heat from a gas engine or a fuel cell, heat from a heat pump refrigerant, or natural energy solar heat, and the stored hot water is used as hot water. The present invention relates to a hot water storage hot water supply system that is used, and particularly relates to a technique that can make the most effective use of stored hot water storage.

従来、貯湯式給湯システムとして、エンジンヒートポンプ式冷暖房装置の冷媒を循環させてその冷媒からの熱回収により加熱した湯を貯湯槽に貯湯するものが知られている(例えば特許文献1参照)。特許文献1では、貯湯槽の頂部から湯を取り出して給湯する給湯路と、貯湯槽の底部の一端から取り出されて同じ底部の他端に戻される循環路とが配管され、この循環路の途中に上記冷媒からの熱回収部と補助熱源機とからなる加熱手段が介装され、さらに、加熱手段の下流側位置から分岐して上記給湯路に合流しこの給湯路を共用することで循環路内の湯を貯湯槽に戻したり、給湯路内の給湯用の湯に混合したりし得るようにしている。そして、貯湯温度が設定給湯温度を基準にして定めた加熱開始用温度以上であれば、貯湯槽の頂部から取り出した湯と給水とを混合することにより設定給湯温度に温調した上で給湯する一方、貯湯温度が上記加熱開始用温度からそれより低い混合用下限温度までの間であれば、上記冷媒からの熱回収部及び補助熱源機により構成される加熱手段で加熱した湯水に貯湯槽の頂部から取り出した湯を混合した上で給湯用に供給するという給湯形態が開示されている。   2. Description of the Related Art Conventionally, a hot water storage hot water supply system is known that circulates a refrigerant of an engine heat pump air conditioner and stores hot water heated by heat recovery from the refrigerant in a hot water storage tank (see, for example, Patent Document 1). In Patent Document 1, a hot water supply path for extracting hot water from the top of a hot water tank and a circulation path that is taken out from one end of the bottom of the hot water tank and returned to the other end of the same bottom are piped. Is provided with a heating means comprising a heat recovery part from the refrigerant and an auxiliary heat source unit, and further branched from the downstream position of the heating means and joined to the hot water supply path to share the hot water supply path. The hot water inside can be returned to the hot water storage tank or mixed with hot water for hot water supply in the hot water supply passage. If the hot water storage temperature is equal to or higher than the heating start temperature determined based on the set hot water temperature, the hot water extracted from the top of the hot water tank and the hot water are mixed to adjust the temperature to the set hot water temperature, and then hot water is supplied. On the other hand, if the hot water storage temperature is between the heating start temperature and the lower mixing lower limit temperature, the hot water stored in the hot water tank is heated by the heating means constituted by the heat recovery unit from the refrigerant and the auxiliary heat source unit. A hot water supply form is disclosed in which hot water taken out from the top is mixed and then supplied for hot water supply.

特開2003−28504号公報JP 2003-28504 A

ところが、上記の従来の貯湯式給湯システムでの給湯形態によると、排熱を回収して貯湯として貯湯槽内に蓄熱された熱の有効利用が十分ではなく、無駄に消費されているおそれがある。すなわち、貯湯温度が設定給湯温度よりも十分に高い場合は問題なくそのまま給湯用に使用し得るものの、給湯用に貯湯槽の頂部から順次取り出していくと、貯湯温度が次第に低下して設定給湯温度に近づいていくことになる。そして、ついには貯湯槽内の湯を加熱手段により加熱した上で、その加熱した後の湯を、貯湯槽の頂部から給湯路に取り出されている湯に対し混合するという給湯形態に移行される。この際、循環路内の加熱された湯と、給湯路内の貯湯槽からの湯とが成り行きで合流・混合されるため、設定給湯温度への温調のために、下流側位置でさらに給水との混合部を経て給湯されることになる。要するに、貯湯槽内の蓄熱量が僅かでも不足することになると、その不足分を大きく上回る熱エネルギー消費により補うという手法に他ならず、排熱回収により蓄熱された熱の有効利用が十分ではないという不都合を生じている。   However, according to the hot water supply form in the above-described conventional hot water storage hot water system, the exhaust heat is recovered and the heat stored in the hot water tank as the hot water is not sufficiently utilized, and there is a possibility that it is wasted. . In other words, if the hot water storage temperature is sufficiently higher than the set hot water temperature, it can be used for hot water supply without any problem, but when it is taken out from the top of the hot water tank for hot water supply, the hot water storage temperature gradually decreases and the set hot water temperature Will approach. And finally, after the hot water in the hot water tank is heated by the heating means, the hot water after the heating is mixed with the hot water taken out from the top of the hot water tank to the hot water supply passage, and then the hot water supply mode is changed. . At this time, the heated hot water in the circulation path and the hot water from the hot water storage tank in the hot water supply path are merged and mixed in a random manner. Therefore, in order to control the temperature to the set hot water temperature, water is further supplied at the downstream position. Hot water is supplied through the mixing section. In short, if the amount of heat stored in the hot water tank is small, there is nothing but a method of compensating for the heat energy consumption that greatly exceeds the shortage, and the effective use of the heat stored by exhaust heat recovery is not sufficient. The inconvenience is caused.

かかる不都合は貯湯槽内の貯湯を外部熱負荷(例えば暖房温水回路や、風呂追い焚き回路等)の加熱用熱源として用いる場合にも、同様に生じ得る。   Such inconvenience can also occur when the hot water in the hot water tank is used as a heat source for heating an external heat load (for example, a heating hot water circuit or a bath reheating circuit).

本発明は、このような事情に鑑みてなされたものであり、その目的とするところは、外部熱源からの熱回収により蓄熱された貯湯槽の貯湯の熱量を最大限に有効活用し得るようにした貯湯式給湯システムを提供することにある。   This invention is made | formed in view of such a situation, The place made into the objective is to be able to utilize the calorie | heat amount of the hot water of the hot water tank stored by the heat | fever recovery | restoration from an external heat source to the maximum effectively. It is to provide a hot water storage type hot water supply system.

上記目的を達成するために、第1の発明では、外部熱源からの排熱回収により貯湯として蓄熱するための貯湯槽と、貯湯槽の底部から取り出した湯水を貯湯槽の頂部に戻すように循環させる循環回路とを備え、この循環回路には、上記外部熱源から排熱回収して循環湯水を加熱する熱回収部と、循環湯水を循環作動させる循環ポンプと、循環湯水に対し燃焼熱により補助加熱する補助熱源機とが上流側からこの順に介装される一方、上記補助熱源機よりも下流側位置の循環回路から給湯路が分岐接続されている、貯湯式給湯システムを対象にして次の特定事項を備えるようにした。すなわち、上記貯湯槽の頂部に上流端が接続されて貯湯槽内の頂部側から貯湯を取り出すための取り出し路を、上記熱回収部と循環ポンプとの間の位置の循環回路に対し接続し、かつ、この接続点に対し、上記循環回路により取り出される貯湯槽の底部側の貯湯と、上記取り出し路により取り出される貯湯槽の頂部側の貯湯とを互いに混合した上で補助熱源機側の循環回路に供給し得る混合手段を配設することとした(請求項1)。   In order to achieve the above object, according to the first aspect of the present invention, a hot water storage tank for storing hot water as heat storage by recovering exhaust heat from an external heat source, and hot water taken out from the bottom of the hot water storage tank are returned to the top of the hot water storage tank. A circulation circuit for recovering exhaust heat from the external heat source to heat the circulating hot water, a circulation pump for circulating the circulating hot water, and assisting the circulating hot water with combustion heat. While the auxiliary heat source machine to be heated is interposed in this order from the upstream side, the hot water storage type hot water supply system in which the hot water supply path is branched and connected from the circulation circuit located downstream from the auxiliary heat source machine is described below. A specific item was prepared. That is, an upstream end is connected to the top of the hot water tank, and a take-out path for taking out hot water from the top side in the hot water tank is connected to a circulation circuit at a position between the heat recovery unit and the circulation pump, And the hot water storage on the bottom side of the hot water tank taken out by the circulation circuit and the hot water storage on the top side of the hot water tank taken out by the take-out path are mixed with each other to the connection point, and then the circulation circuit on the auxiliary heat source machine side. The mixing means that can be supplied to the vehicle is disposed (claim 1).

この発明の場合、混合手段の混合比を0〜100%の間で変更させることで、補助熱源機側の循環回路に対し、循環回路により貯湯槽の底部側から取り出した貯湯と、取り出し路により貯湯槽の頂部側から取り出した貯湯とのいずれか一方を選択的に供給切換したり、所定量ずつ混合したりした上で給湯等として流すことが可能になる。このため、給湯路を介して給湯させる際も、貯湯槽内の貯湯温度の状況如何に応じて貯湯槽内の蓄熱を最適に使用し得ることになる。外部熱源からの熱回収により蓄熱された貯湯槽の貯湯の熱量を最大限に有効活用することが可能になる。   In the case of the present invention, by changing the mixing ratio of the mixing means between 0 to 100%, the hot water taken out from the bottom side of the hot water storage tank by the circulation circuit and the take-out path with respect to the circulation circuit on the auxiliary heat source machine side One of the hot water taken out from the top side of the hot water storage tank can be selectively switched or mixed by a predetermined amount, and then supplied as hot water or the like. For this reason, even when hot water is supplied through the hot water supply passage, the heat storage in the hot water tank can be optimally used depending on the state of the hot water temperature in the hot water tank. It is possible to make the most effective use of the amount of hot water stored in the hot water storage tank, which is stored by heat recovery from an external heat source.

上記発明の貯湯式給湯システムにおいて、上記取り出し路と、循環回路とを貯湯槽の頂部近傍位置で互いに合流させ、その合流点と貯湯槽の頂部とを共通の流路により接続させるようにすることができる(請求項2)。このようにすることで、貯湯槽内に頂部から温度成層状態を容易に形成し得ることとなり、温度成層を形成することで少ない蓄熱量であっても貯湯槽内の蓄熱の有効利用がより容易になる。   In the hot water storage hot water supply system of the above invention, the take-out path and the circulation circuit are joined together at a position near the top of the hot water tank, and the junction and the top of the hot water tank are connected by a common flow path. (Claim 2). By doing so, the temperature stratification state can be easily formed in the hot water tank from the top, and the effective use of the heat storage in the hot water tank is easier even with a small amount of heat storage by forming the temperature stratification. become.

又、上記補助熱源機よりも下流側位置であって上記給湯路への分岐点よりも上流側位置の循環回路から分岐されて循環回路内の湯を外部熱源負荷に対する熱源として循環供給する熱源供給路と、この熱源供給路に対する熱源供給を制御する外部熱負荷制御手段とをさらに備えるようにすることもできる。この場合、上記外部熱負荷制御手段として、貯湯槽内の貯湯を単独で上記熱源供給路に対する熱源として循環供給する貯湯単独モードと、上記貯湯槽をバイパスして循環回路内の湯水を上記熱回収部で排熱回収により加熱しつつ循環回路及び熱源供給路に循環供給する排熱利用モードとを選択実行可能に切換える構成とすることができる(請求項3)。このようにすることにより、例えば貯湯槽内の蓄熱が十分にあるときには貯湯単独モードにより貯湯槽内の蓄熱を有効利用し、例えば蓄熱が不十分のときには排熱利用モードにより排熱の有効利用が可能となる。   Also, a heat source supply that is branched from the circulation circuit at a position downstream of the auxiliary heat source device and upstream of the branch point to the hot water supply path and circulates the hot water in the circulation circuit as a heat source for the external heat source load. It is also possible to further include a path and external heat load control means for controlling the heat source supply to the heat source supply path. In this case, as the external heat load control means, the hot water storage mode that supplies the hot water in the hot water tank alone as a heat source for the heat source supply path, and the hot water in the circulation circuit bypassing the hot water tank is recovered as the heat. The exhaust heat recovery mode can be selectively switched between the circulation circuit and the exhaust heat supply mode for circulating supply to the heat source supply path while heating by exhaust heat recovery. By doing so, for example, when there is sufficient heat storage in the hot water storage tank, the heat storage in the hot water storage tank is effectively used in the hot water storage only mode, and for example, when the heat storage is insufficient, the exhaust heat use mode can effectively use the exhaust heat. It becomes possible.

さらに、その際に、上記外部熱負荷制御手段として、上記取り出し路から取り出した貯湯槽内の貯湯と、貯湯槽をバイパスして熱回収部で加熱した循環回路内の湯水とを上記混合手段により混合した上で上記熱源供給路に熱源として循環供給する貯湯混合モードをさらに備えるようにすることができる(請求項4)。このようにすることにより、貯湯槽内の蓄熱がそれほど十分ではない場合であっても、熱回収部で加熱した循環回路内の湯水との混合により、貯湯槽内の蓄熱を十分に有効利用することが可能となる。   Furthermore, at that time, as the external heat load control means, the hot water in the hot water tank taken out from the take-out path and the hot water in the circulation circuit bypassed by the hot water tank and heated in the heat recovery section by the mixing means. It is possible to further comprise a hot water storage mixing mode for mixing and supplying the heat source supply passage as a heat source after mixing. By doing so, even if the heat storage in the hot water tank is not so much, the heat storage in the hot water tank is sufficiently effectively utilized by mixing with the hot water in the circulation circuit heated by the heat recovery unit. It becomes possible.

第2の発明では、外部熱源からの排熱回収により貯湯として蓄熱するための貯湯槽と、貯湯槽の底部から取り出した湯水を貯湯槽の頂部に戻すように循環させる循環回路とを備え、この循環回路には、上記外部熱源から排熱回収して循環湯水を加熱する熱回収部と、循環湯水を循環作動させる循環ポンプと、循環湯水に対し燃焼熱により補助加熱する補助熱源機とが上流側からこの順に介装される一方、上記補助熱源機よりも下流側位置の循環回路から給湯路が分岐接続されている貯湯式給湯システムを対象にして次の特定事項を備えることとした。すなわち、上記貯湯槽の頂部に上流端が接続されて貯湯槽内の頂部側から貯湯を取り出すための取り出し路を、上記熱回収部と循環ポンプとの間の位置の循環回路に対し接続させ、かつ、この接続点に対し、上記補助熱源機側の循環回路に供給する対象を上記循環回路により取り出される貯湯槽の底部側の貯湯と、上記取り出し路により取り出される貯湯槽の頂部側の貯湯とのいずれかに切換える切換手段を配設するようにした(請求項5)。   The second invention includes a hot water storage tank for storing heat as hot water storage by recovering exhaust heat from an external heat source, and a circulation circuit for circulating the hot water taken out from the bottom of the hot water storage tank back to the top of the hot water storage tank, The circulation circuit includes a heat recovery unit that recovers exhaust heat from the external heat source and heats the circulating hot water, a circulation pump that circulates the circulating hot water, and an auxiliary heat source device that auxiliary heats the circulating hot water with combustion heat. On the other hand, the following specific items are provided for a hot water storage type hot water supply system in which a hot water supply path is branched and connected from a circulation circuit at a position downstream of the auxiliary heat source device while being interposed in this order from the side. That is, an upstream end is connected to the top of the hot water tank, and a take-out path for taking out the hot water from the top side in the hot water tank is connected to a circulation circuit at a position between the heat recovery unit and the circulation pump, And with respect to this connection point, the hot water storage on the bottom side of the hot water tank taken out by the circulation circuit, the hot water storage on the top side of the hot water tank taken out by the take-off path, to be supplied to the circulation circuit on the auxiliary heat source machine side, Switching means for switching to any one of the above is provided (claim 5).

この発明の場合、第1の発明の混合手段に代えて簡易な切換手段を適用したとしても、混合手段を用いた第1の発明の場合と殆ど同じ作用を得ることが可能となる。   In the case of this invention, even if a simple switching means is applied instead of the mixing means of the first invention, it is possible to obtain almost the same effect as in the case of the first invention using the mixing means.

又、この場合にも、上記補助熱源機よりも下流側位置であって上記給湯路への分岐点よりも上流側位置の循環回路から分岐されて循環回路内の湯を外部熱源負荷に対する熱源として循環供給する熱源供給路と、この熱源供給路に対する熱源供給を制御する外部熱負荷制御手段とを備えるようにし、上記外部熱負荷制御手段として、貯湯槽内の貯湯を単独で上記熱源供給路に対する熱源として循環供給する貯湯単独モードと、上記貯湯槽をバイパスして循環回路内の湯水を上記熱回収部で排熱回収により加熱しつつ循環回路及び熱源供給路に循環供給する排熱利用モードとを選択実行可能に切換える構成とすることができる(請求項6)。このようにすることにより、切換手段を切換えることで、例えば貯湯槽内の蓄熱が十分にあるときには貯湯単独モードにより貯湯槽内の蓄熱を有効利用し、例えば蓄熱が不十分のときには排熱利用モードにより排熱の有効利用が可能となる。   Also in this case, the hot water in the circulation circuit is used as a heat source for the external heat source load by branching from the circulation circuit at a position downstream of the auxiliary heat source device and upstream of the branch point to the hot water supply passage. A heat source supply path for circulating supply and an external heat load control means for controlling the heat source supply to the heat source supply path are provided, and as the external heat load control means, the hot water in the hot water storage tank is independently supplied to the heat source supply path. A hot water storage single mode that circulates and supplies as a heat source, and a waste heat utilization mode that circulates and supplies hot water in the circulation circuit to the circulation circuit and the heat source supply path while heating the hot water in the circulation circuit by exhaust heat recovery in the heat recovery section. Can be switched to be executable (Claim 6). In this way, by switching the switching means, for example, when there is sufficient heat storage in the hot water tank, the heat storage in the hot water tank is effectively used by the hot water storage single mode, for example, when the heat storage is insufficient, the exhaust heat use mode This makes it possible to effectively use exhaust heat.

以上、説明したように、請求項1〜請求項4の貯湯式給湯システムによれば、混合手段の混合比を0〜100%の間で変更させることで、補助熱源機側の循環回路に対し、循環回路により貯湯槽の底部側から取り出した貯湯と、取り出し路により貯湯槽の頂部側から取り出した貯湯とのいずれか一方を選択的に供給切換したり、所定量ずつ混合したりした上で給湯等として流すことが容易に行うことができるようになる。これにより、給湯路を介して給湯させる際も、貯湯槽内の貯湯温度の状況如何に応じて貯湯槽内の蓄熱を最適に使用することができ、外部熱源からの熱回収により蓄熱された貯湯槽の貯湯の熱量を最大限に有効活用することができるようになる。   As described above, according to the hot water storage hot water supply system of claims 1 to 4, the mixing ratio of the mixing means is changed between 0 to 100%, so that the circulation circuit on the auxiliary heat source machine side is changed. After selectively switching the supply of hot water taken out from the bottom side of the hot water tank through the circulation circuit and hot water taken out from the top side of the hot water tank through the take-out path, or mixing each predetermined amount It can be easily performed as hot water supply or the like. As a result, even when hot water is supplied through the hot water supply path, the heat stored in the hot water tank can be optimally used depending on the state of the hot water temperature in the hot water tank, and the hot water stored by heat recovery from the external heat source can be used. It will be possible to make the most effective use of the heat stored in the tank.

特に請求項2によれば、貯湯槽内に頂部から温度成層状態を容易に形成することができ、温度成層を形成することで少ない蓄熱量であっても貯湯槽内の蓄熱の有効利用をより容易に実現させることができるようになる。   In particular, according to claim 2, the temperature stratification state can be easily formed from the top in the hot water tank, and the effective use of the heat storage in the hot water tank can be achieved even if the heat storage amount is small by forming the temperature stratification. It can be easily realized.

請求項3によれば、外部熱源負荷に対する熱源供給路と、この熱源供給路に対する熱源供給を制御する外部熱負荷制御手段とをさらに備え、外部熱負荷制御手段として、貯湯単独モードと、排熱利用モードとを選択実行可能に切換えるようにすることで、例えば貯湯槽内の蓄熱が十分にあるときには貯湯単独モードにより貯湯槽内の蓄熱を有効利用したり、例えば蓄熱が不十分のときには排熱利用モードにより排熱を有効利用したりするということを容易に実現させることができるようになる。   According to the third aspect of the present invention, the heat source supply path for the external heat source load and the external heat load control means for controlling the heat source supply to the heat source supply path are further provided. For example, when there is sufficient heat storage in the hot water storage tank, the heat storage in the hot water storage tank can be effectively used in the hot water storage mode alone, or for example, when the heat storage is insufficient Effective use of exhaust heat can be easily realized by the use mode.

請求項4によれば、さらに、貯湯混合モードを備えるようにすることで、貯湯槽内の蓄熱がそれほど十分ではない場合であっても、熱回収部で加熱した循環回路内の湯水との混合により、貯湯槽内の蓄熱を十分に有効利用することができるようになる。   According to claim 4, by further comprising a hot water storage mixing mode, even if the heat storage in the hot water storage tank is not sufficient, mixing with the hot water in the circulation circuit heated in the heat recovery section As a result, the heat stored in the hot water tank can be used sufficiently effectively.

請求項5又は請求項6の貯湯給湯システムによれば、上記注湯給湯システムにおける混合手段に代えて簡易な切換手段を適用することができ、切換手段を適用したとしても、混合手段を用いた上記の発明の場合と殆ど同じ効果を得ることができるようになる。   According to the hot water storage and hot water supply system of claim 5 or claim 6, a simple switching means can be applied instead of the mixing means in the pouring hot water supply system, and even if the switching means is applied, the mixing means is used. Almost the same effect as in the case of the above invention can be obtained.

特に請求項6によれば、上記の請求項3の場合と同様に、切換手段を切換えることで、例えば貯湯槽内の蓄熱が十分にあるときには貯湯単独モードにより貯湯槽内の蓄熱を有効利用し、又、例えば蓄熱が不十分のときには排熱利用モードにより排熱を有効利用することが容易に実現させることができるようになる。   In particular, according to claim 6, as in the case of claim 3 above, by switching the switching means, for example, when there is sufficient heat storage in the hot water storage tank, the heat storage in the hot water storage tank is effectively utilized in the hot water storage only mode. Moreover, for example, when the heat storage is insufficient, it is possible to easily realize the effective use of the exhaust heat by the exhaust heat utilization mode.

本発明の実施形態を示す模式図である。It is a schematic diagram which shows embodiment of this invention. 作動制御に係るブロック図である。It is a block diagram concerning operation control. 蓄熱モードの場合の作動を説明するための図1対応図である。FIG. 2 is a diagram corresponding to FIG. 1 for explaining an operation in a heat storage mode. 貯湯単独給湯モードの場合の作動を説明するための図1対応図である。FIG. 2 is a view corresponding to FIG. 1 for explaining an operation in a hot water storage single hot water supply mode. 補助加熱給湯モードの場合の作動を説明するための図1対応図である。FIG. 2 is a view corresponding to FIG. 1 for explaining an operation in an auxiliary heating hot water supply mode. 貯湯単独暖房モードの場合の作動を説明するための図1対応図である。FIG. 2 is a view corresponding to FIG. 1 for explaining an operation in a hot water storage single heating mode. 排熱利用暖房モードの場合の作動を説明するための図1対応図である。FIG. 2 is a diagram corresponding to FIG. 1 for explaining the operation in the case of the exhaust heat utilization heating mode. 貯湯混合暖房モードの場合の作動を説明するための図1対応図である。FIG. 2 is a view corresponding to FIG. 1 for explaining an operation in a hot water storage and heating mode. 他の形態を示す図1対応図である。It is a figure corresponding to FIG. 1 which shows another form.

以下、本発明の実施形態を図面に基づいて説明する。   Hereinafter, embodiments of the present invention will be described with reference to the drawings.

図1は、本発明の実施形態に係る貯湯式給湯システムを示す。同図中の符号1は外部熱源としてのガスエンジン、2は貯湯槽3内の湯水を底部から取り出して頂部に戻す間にガスエンジンのエンジン冷却水の排熱を熱回収し貯湯として蓄熱するための循環回路、4は外部から水道水等を給水する給水回路、5は貯湯槽3からの貯湯又は補助熱源機6からの補助加熱後の湯を用いて給湯栓7に給湯する給湯回路、8は循環回路2からの湯を暖房熱源とする外部熱負荷としての暖房回路、9は同様に循環回路2からの湯を追い焚き熱源とする他の外部熱負荷としての風呂追い焚き回路、10はこの貯湯式給湯システムの作動制御を行うコントローラである。   FIG. 1 shows a hot water storage hot water supply system according to an embodiment of the present invention. In the figure, reference numeral 1 indicates a gas engine as an external heat source, and 2 indicates that the exhaust heat of the gas engine engine coolant is recovered and stored as hot water while hot water in the hot water tank 3 is taken out from the bottom and returned to the top. 4 is a water supply circuit for supplying tap water from the outside, 5 is a hot water supply circuit for supplying hot water to the hot water tap 7 using hot water stored in the hot water storage tank 3 or hot water after auxiliary heating from the auxiliary heat source unit 6, Is a heating circuit as an external heat load using hot water from the circulation circuit 2 as a heating heat source, and 9 is a bath reheating circuit as another external heat load using the hot water from the circulation circuit 2 as a heat source. It is a controller that controls the operation of this hot water storage hot water supply system.

ガスエンジン1には、内部のエンジン冷却水を熱源熱媒として液−液熱交換器21との間で循環させる熱媒循環路11が接続され、この熱媒循環路11には循環ポンプ12と、膨張タンク13とが介装されている。   The gas engine 1 is connected to a heat medium circulation path 11 that circulates between the engine coolant in the interior and the liquid-liquid heat exchanger 21 as a heat source heat medium. The expansion tank 13 is interposed.

貯湯槽3は密閉式に構成され、適所(少なくとも頂部位置)に貯湯の温度を検出するための貯湯温度センサ31が設けられている。そして、循環回路2は、この貯湯槽3の底部32から内部の湯水を取り出して熱回収部としての液−液熱交換器21に通し、さらに補助熱源機6を通過して貯湯槽3の頂部33に戻すように配設されている。液−液熱交換器21と補助熱源機6との間の循環回路2には循環ポンプ22が介装され、補助熱源機6を出た後、閉止機能付きの流量調整弁23を介して貯湯槽3の頂部33に至るようになっている。又、補助熱源機6と流量調整弁23との間には後述の分岐点24、分岐点25が配設され、流量調整弁23の下流側位置には分岐点26が配設されている。以下、この分岐点26から貯湯槽3の頂部33までの循環回路2の一部を頂部側回路部27と呼ぶことにする。さらに、液−液熱交換器21と循環ポンプ22との間の循環回路2には貯湯槽3の頂部34から湯水を取り出す取り出し路51の下流端が混合手段としての第1混合弁52を介して接続されている。すなわち、循環回路2により貯湯槽3の底部から取り出した湯水と、取り出し路51により貯湯槽3の頂部から取り出した湯水とを第1混合弁52において所定の混合比(0〜100%:100〜0%)で混合した上で、下流側である補助熱源機6の側に流し得るようになっている。なお、図1の符号61は補助熱源機6から出た直後の循環回路2内の湯水温度を検出する補助熱源機下流側の温度センサである。   The hot water storage tank 3 is configured in a sealed manner, and a hot water storage temperature sensor 31 for detecting the temperature of the hot water storage is provided at an appropriate place (at least at the top position). And the circulation circuit 2 takes out the internal hot water from the bottom part 32 of this hot water tank 3, passes it through the liquid-liquid heat exchanger 21 as a heat recovery part, and further passes through the auxiliary heat source unit 6 to the top of the hot water tank 3. It is arranged to return to 33. A circulation pump 22 is interposed in the circulation circuit 2 between the liquid-liquid heat exchanger 21 and the auxiliary heat source unit 6, and after exiting the auxiliary heat source unit 6, hot water is stored via a flow rate adjusting valve 23 with a closing function. It reaches the top 33 of the tank 3. Further, a branch point 24 and a branch point 25 described later are disposed between the auxiliary heat source unit 6 and the flow rate adjustment valve 23, and a branch point 26 is disposed at a downstream position of the flow rate adjustment valve 23. Hereinafter, a part of the circulation circuit 2 from the branch point 26 to the top portion 33 of the hot water tank 3 will be referred to as a top side circuit portion 27. Further, in the circulation circuit 2 between the liquid-liquid heat exchanger 21 and the circulation pump 22, the downstream end of the take-out path 51 for taking out hot water from the top 34 of the hot water tank 3 is connected via a first mixing valve 52 as a mixing means. Connected. That is, the hot water taken out from the bottom of the hot water tank 3 by the circulation circuit 2 and the hot water taken from the top of the hot water tank 3 by the take-out path 51 are mixed at a predetermined mixing ratio (0 to 100%: 100 to 100). 0%), and then it can be flowed to the auxiliary heat source unit 6 on the downstream side. In addition, the code | symbol 61 of FIG. 1 is a temperature sensor of the auxiliary | assistant heat source machine downstream which detects the hot water temperature in the circulation circuit 2 immediately after having come out of the auxiliary | assistant heat source apparatus 6. FIG.

給水回路4は、主給水路41の上流端が外部の水道管等に接続され、下流端が逆止弁42を介して貯湯槽3の底部32近傍位置の循環回路2に接続されて、貯湯槽3の底部32に対し給水したり、循環回路2の下流側に給水したりすることができるようになっている。又、主給水路41の上流側から逆止弁43を介して分岐した混水用給水路44が給湯回路5の後述の第2混合弁54に対し給水可能に接続されている。なお、図1の符号46は給水回路4により給水される水の温度を検出する給水温度センサである。   In the water supply circuit 4, the upstream end of the main water supply channel 41 is connected to an external water pipe or the like, and the downstream end is connected to the circulation circuit 2 in the vicinity of the bottom 32 of the hot water tank 3 via a check valve 42. Water can be supplied to the bottom 32 of the tank 3 or can be supplied downstream of the circulation circuit 2. A mixed water supply passage 44 branched from the upstream side of the main water supply passage 41 via a check valve 43 is connected to a later-described second mixing valve 54 of the hot water supply circuit 5 so that water can be supplied. In addition, the code | symbol 46 of FIG. 1 is a water supply temperature sensor which detects the temperature of the water supplied by the water supply circuit 4. FIG.

給湯回路5は、循環回路2の上記の分岐点26に上流端が接続されて循環回路2から分岐するように接続されて下流端側が給湯栓7まで延びるように接続された給湯路53と、この給湯路53に介装された第2混合弁54と、第2混合弁54の下流側位置に配設された給湯温度センサ55とを備えている。上記の第2混合弁54は、給湯路53の上流側から供給される湯水と、上記の混水用給水路44から給水とを所定の混合比で混合(混水)させることにより所定の設定給湯温度に温調した上で、給湯栓7に給湯するものである。そして、上記の給湯温度センサ55は、温調後に最終的に給湯させる湯の温度を検出してコントローラ10に出力するようになっており、この給湯温度センサ55からの出力に基づいて第2混合弁54による温調制御がコントローラ10により行われるようになっている。   The hot water supply circuit 5 is connected to the branch point 26 of the circulation circuit 2 so that the upstream end is connected to branch from the circulation circuit 2 and the downstream end side is connected so as to extend to the hot water tap 7; A second mixing valve 54 interposed in the hot water supply passage 53 and a hot water supply temperature sensor 55 disposed at a downstream position of the second mixing valve 54 are provided. The second mixing valve 54 has a predetermined setting by mixing (mixed water) hot water supplied from the upstream side of the hot water supply channel 53 and water supplied from the mixed water supply channel 44 at a predetermined mixing ratio. Hot water is supplied to the hot-water tap 7 after adjusting the temperature to the hot water supply temperature. The hot water supply temperature sensor 55 detects the temperature of hot water to be finally supplied after temperature adjustment and outputs the detected temperature to the controller 10. The second mixing is performed based on the output from the hot water supply temperature sensor 55. Temperature control by the valve 54 is performed by the controller 10.

上記の給湯路53に対しては、後述の貯湯単独給湯モードでは貯湯槽3の頂部33から湯水が頂部側回路部27及び分岐点26を通して給湯用の湯として供給され、補助加熱給湯モードでは貯湯槽3の頂部34から湯水が取り出し路51及び第1混合弁52を通して補助熱源機6に供給されて補助加熱後の湯が分岐点26を介して給湯用の湯として供給されるようになっている。なお、図1中の符号56は機器異常の発生等に起因する高温水の給湯を阻止して回避するための回避弁である。   With respect to the hot water supply passage 53, hot water is supplied as hot water for hot water supply from the top 33 of the hot water tank 3 through the top side circuit portion 27 and the branch point 26 in the hot water storage single hot water supply mode described later, and in the auxiliary heating hot water supply mode, hot water is stored. Hot water is supplied from the top 34 of the tank 3 to the auxiliary heat source unit 6 through the take-out path 51 and the first mixing valve 52, and the hot water after the auxiliary heating is supplied as hot water for hot water supply via the branch point 26. Yes. In addition, the code | symbol 56 in FIG. 1 is an avoidance valve for preventing and avoiding hot water supply of high temperature water resulting from an apparatus abnormality.

補助熱源機6は、例えば瞬間式湯沸器により構成され、循環回路2の途中に介装されたものである。コントローラ10からの指令により燃焼作動されると、循環回路2の一方から流入する湯水を熱交換加熱して、加熱後の湯水を循環回路2の他方に出湯させることにより、循環回路2を流れる湯水を補助加熱するようになっている。   The auxiliary heat source unit 6 is constituted by an instantaneous water heater, for example, and is interposed in the middle of the circulation circuit 2. When the combustion operation is performed in response to a command from the controller 10, hot water flowing from one side of the circulation circuit 2 is subjected to heat exchange heating, and the heated hot water is discharged to the other side of the circulation circuit 2 to flow through the circulation circuit 2. Auxiliary heating is intended.

暖房回路8は、暖房循環路81内の暖房用の循環熱媒を熱交換器82で液−液熱交換により加熱し、加熱した循環熱媒を高温暖房端末(例えば浴室乾燥機)83や、低温暖房端末(例えば床暖房)84に対し循環供給するようになっている。そして、上記の熱交換器82での液−液熱交換の加熱源(暖房用熱源)として、循環回路2から所定の湯が熱交換器82の熱源側に循環供給されるようになっている。すなわち、補助熱源機6の下流側の循環回路2の分岐点24から分岐した熱源供給路85を通して所定の湯が熱交換器82に暖房用熱源として供給され、液−液熱交換により温度低下した湯が三方切換弁86を経て、貯湯槽3の底部32と液−液熱交換器21との間の循環回路2に対し導出され、この循環回路2を介して次の3通りの経路を経て循環されることになる。すなわち、後述の貯湯単独暖房モードであれば貯湯槽3の底部32の側に対し、排熱利用暖房モードであれば液−液熱交換器21を介して補助熱源機6の側に対し、あるいは貯湯混合暖房モードであれば上記の双方の側に対し、上記の温度低下した湯が切換選択可能に戻されて循環されることになる。そして、暖房回路8の側では、熱交換器82での液−液熱交換により加熱された循環熱媒が、高温暖房端末83又は低温暖房端末84に供給されて放熱された後、膨張タンク87及び暖房ポンプ88を経て上記熱交換器82に戻されて再加熱されることになるようになっている。   The heating circuit 8 heats the circulating heat medium for heating in the heating circuit 81 by liquid-liquid heat exchange in the heat exchanger 82, and the heated circulating heat medium is heated to a high-temperature heating terminal (for example, a bathroom dryer) 83, A low temperature heating terminal (for example, floor heating) 84 is circulated and supplied. A predetermined hot water is circulated and supplied from the circulation circuit 2 to the heat source side of the heat exchanger 82 as a heating source (heating heat source) for liquid-liquid heat exchange in the heat exchanger 82. . That is, predetermined hot water is supplied to the heat exchanger 82 as a heat source for heating through the heat source supply path 85 branched from the branch point 24 of the circulation circuit 2 on the downstream side of the auxiliary heat source unit 6, and the temperature is lowered due to liquid-liquid heat exchange. Hot water is led to the circulation circuit 2 between the bottom 32 of the hot water tank 3 and the liquid-liquid heat exchanger 21 through the three-way switching valve 86, and passes through the following three paths through the circulation circuit 2. It will be circulated. That is, in the hot water storage single heating mode to be described later, on the bottom 32 side of the hot water storage tank 3, in the exhaust heat utilization heating mode, on the auxiliary heat source unit 6 side through the liquid-liquid heat exchanger 21, or In the hot water storage and heating mode, the hot water whose temperature has been lowered is returned to the both sides so that it can be switched and circulated. On the heating circuit 8 side, the circulating heat medium heated by the liquid-liquid heat exchange in the heat exchanger 82 is supplied to the high-temperature heating terminal 83 or the low-temperature heating terminal 84 and radiated, and then the expansion tank 87. And, it is returned to the heat exchanger 82 via the heating pump 88 and reheated.

風呂追い焚き回路9は、追い焚きポンプ91を作動させることにより浴槽92内の湯水を追い焚き循環路93を通して熱交換器94との間で循環させ、この熱交換器94での液−液熱交換により追い焚き加熱するようになっている。熱交換器94の熱源側には、補助熱源機6の下流側の循環回路2の分岐点25から分岐した熱源供給路95を通して所定の湯が風呂追い焚き加熱用熱源として供給され、液−液熱交換により温度低下した湯が三方切換弁86を経て、暖房回路8と同様に、貯湯槽3の底部32と液−液熱交換器21との間の循環回路2に対し導出され、この循環回路2を介して上記と同様の3通りの経路を経て循環されることになる。すなわち、貯湯単独追い焚きモードであれば貯湯槽3の底部32の側に対し、排熱利用追い焚きモードであれば液−液熱交換器21を介して補助熱源機6の側に対し、あるいは貯湯混合追い焚きモードであれば上記の双方の側に対し、上記の温度低下した湯が切換選択可能に戻されて循環されることになる。   The bath reheating circuit 9 operates the reheating pump 91 to circulate hot water in the bathtub 92 through the recirculation path 93 and the heat exchanger 94, and the liquid-liquid heat in the heat exchanger 94 is obtained. It is designed to heat up by exchanging. Predetermined hot water is supplied to the heat source side of the heat exchanger 94 as a heat source for reheating the bath through a heat source supply path 95 branched from the branch point 25 of the circulation circuit 2 on the downstream side of the auxiliary heat source machine 6. The hot water whose temperature has decreased due to heat exchange passes through the three-way switching valve 86 and is led out to the circulation circuit 2 between the bottom 32 of the hot water tank 3 and the liquid-liquid heat exchanger 21 in the same manner as the heating circuit 8 and this circulation. It is circulated through the circuit 2 through the same three paths as described above. That is, in the case of the single hot water storage reheating mode, the bottom 32 side of the hot water tank 3, in the exhaust heat reheating mode, the auxiliary heat source unit 6 via the liquid-liquid heat exchanger 21, or In the hot water mixing and chasing mode, the hot water whose temperature has decreased is returned to the both sides and circulated so that it can be switched.

以上の各回路2,5,8,9の運転作動は、リモコン101からの入力設定信号や操作信号の出力や、種々の温度センサ31,46,55,61等からの検出信号の出力を受けて、コントローラ10により作動制御されるようになっている。コントローラ10は、そのような作動制御のために、蓄熱制御部102(図2参照)や、給湯制御部103に加え、外部熱負荷制御手段としての暖房制御部104又は/及び追い焚き制御部105等の種々の制御を備えている。   The operation of each of the circuits 2, 5, 8, and 9 receives the output of input setting signals and operation signals from the remote controller 101, and the output of detection signals from various temperature sensors 31, 46, 55, 61, and the like. Thus, the operation is controlled by the controller 10. For such operation control, the controller 10 provides a heating control unit 104 or / and a reheating control unit 105 as external heat load control means in addition to the heat storage control unit 102 (see FIG. 2) and the hot water supply control unit 103. And various other controls.

以下、主として本実施形態の特徴的な給湯制御について図2以降を参照しつつ説明する。図2はコントローラ10を構成する各種制御部を部分的に図示したものであり、給湯制御部103は2種類の給湯モードとして貯湯単独給湯モードと補助加熱給湯モードとを備え、暖房制御部104は3種類の暖房モードとして貯湯単独暖房モードと貯湯混合暖房モードと排熱利用暖房モードとを備え、追い焚き制御部105も3種類の追い焚きモードとして貯湯単独追い焚きモードと貯湯混合追い焚きモードと排熱利用追い焚きモードとを備え、各制御部103,104,105は貯湯槽3内の貯湯温度(貯湯温度センサ31の検出温度)に応じてモード切換えを行うようになっている。又、各制御部102,103,104,105は必要に応じて2以上の組み合わせで同時作動状態での運転作動も行い得るようになっている。   Hereinafter, the hot water control characteristic of this embodiment will be mainly described with reference to FIG. FIG. 2 partially illustrates various control units constituting the controller 10. The hot water supply control unit 103 includes two types of hot water supply modes, that is, a single hot water storage hot water supply mode and an auxiliary heating hot water supply mode. The three types of heating modes include a hot water storage single heating mode, a hot water storage mixed heating mode, and a waste heat utilization heating mode. The control unit 103, 104, 105 performs mode switching according to the hot water storage temperature in the hot water tank 3 (detected temperature of the hot water storage temperature sensor 31). Moreover, each control part 102,103,104,105 can also perform the driving | operation operation | movement in a simultaneous operation state by a combination of 2 or more as needed.

蓄熱制御部102による蓄熱制御はガスエンジン1が駆動中でエンジン冷却水が所定温度以上の高温状態になっていることを条件に開始され、図3(流れが生じる部分を太線で表示)に示すように、第1混合弁52の取り出し路51側を0%、つまり閉止し、貯湯槽3の底部32からの循環回路2の側を100%の開度とし、熱媒循環路11の循環ポンプ12と、循環回路2の循環ポンプ22とを共に作動させる。すると、貯湯槽3内の湯水は、底部32から循環回路2により取り出され、液−液熱交換器21を通過して、補助熱源機6を素通りし頂部側回路部27を経て貯湯槽3の頂部33に戻されるという循環を繰り返すことになる。一方、上記の液−液熱交換器21には、熱媒循環路11を通してガスエンジン1から高温状態のエンジン冷却水が供給されため、液−液熱交換器21において循環回路2の循環湯水はエンジン冷却水との液−液熱交換によって熱交換加熱され、加熱された湯水が貯湯槽3の頂部33に順次戻されて貯湯槽3内の貯湯温度が上昇することになり、これが繰り返されて蓄熱されることになる。   The heat storage control by the heat storage control unit 102 is started on the condition that the gas engine 1 is being driven and the engine coolant is in a high temperature state that is equal to or higher than a predetermined temperature, and is shown in FIG. Thus, the take-out path 51 side of the first mixing valve 52 is closed at 0%, that is, the circulation circuit 2 side from the bottom 32 of the hot water tank 3 is set at 100% opening, and the circulation pump of the heat medium circulation path 11 12 and the circulation pump 22 of the circulation circuit 2 are operated together. Then, the hot water in the hot water tank 3 is taken out from the bottom 32 by the circulation circuit 2, passes through the liquid-liquid heat exchanger 21, passes through the auxiliary heat source unit 6, passes through the top side circuit part 27, and is stored in the hot water tank 3. The circulation of returning to the top 33 is repeated. On the other hand, since the high-temperature engine cooling water is supplied from the gas engine 1 to the liquid-liquid heat exchanger 21 through the heat medium circulation path 11, the circulating hot water in the circulation circuit 2 in the liquid-liquid heat exchanger 21 is Heat exchange heating is performed by liquid-liquid heat exchange with the engine cooling water, and the heated hot water is sequentially returned to the top 33 of the hot water tank 3 so that the hot water temperature in the hot water tank 3 rises, and this is repeated. It will be stored heat.

給湯制御部103による貯湯単独給湯モードは、給湯栓7がユーザにより開操作されて給水回路4から所定流量以上の給水の流れが生じた際、つまり給湯使用要求が生じた際に、貯湯槽3内に設定給湯温度よりも高温の高温水が貯湯されている場合、換言すれば十分な蓄熱量を有している場合に、貯湯槽3内の貯湯を単独かつ直接に給湯として出湯するものである。この貯湯単独給湯モードでは、図4(流れが生じる部分を太線で表示)に示すように、流量調整弁23を閉状態に維持したままにすることで、給湯栓7がユーザにより開操作されると、給水回路4の主給水路41から貯湯槽3の底部32に給水され、この給水により貯湯槽3内の貯湯が頂部から押し出されて頂部側回路部27及び分岐点26を通して第2混合弁54に出湯されることになる。貯湯温度センサ31からの貯湯温度などに基づいて第2混合弁54での混水用給水路44からの給水との混合比を設定し、給水との混合により、リモコン101に設定された設定給湯温度に温調した上で給湯栓7に給湯する。なお、上記混合比については給湯温度センサ55の給湯温度に基づいてフィードバック制御すればよい。   In the hot water storage single hot water supply mode by the hot water supply control unit 103, when the hot water tap 7 is opened by the user and a flow of water of a predetermined flow rate or more is generated from the water supply circuit 4, that is, when a request for using hot water is generated, When hot water having a temperature higher than the set hot water temperature is stored in the inside, in other words, when there is a sufficient amount of heat storage, the hot water stored in the hot water tank 3 is discharged alone and directly as hot water. is there. In this hot water storage single hot water supply mode, as shown in FIG. 4 (the portion where the flow is generated is indicated by a thick line), the hot water tap 7 is opened by the user by keeping the flow rate adjustment valve 23 closed. Then, water is supplied from the main water supply path 41 of the water supply circuit 4 to the bottom 32 of the hot water tank 3, and the hot water in the hot water tank 3 is pushed out from the top by this water supply, and the second mixing valve is passed through the top side circuit part 27 and the branch point 26. 54 will be poured out. Based on the hot water storage temperature from the hot water storage temperature sensor 31 or the like, a mixing ratio with the water supply from the mixed water supply passage 44 at the second mixing valve 54 is set, and the set hot water supply set in the remote controller 101 by mixing with the water supply Hot water is supplied to the hot-water tap 7 after the temperature is adjusted. The mixing ratio may be feedback-controlled based on the hot water temperature of the hot water temperature sensor 55.

補助加熱給湯モードは、貯湯槽3内の貯湯温度が設定給湯温度よりも低温である場合、換言すれば蓄熱量が不足している場合に適用される給湯モードのことであり、補助熱源機6を燃焼作動させて補助加熱する。すなわち、図5(流れが生じる部分を太線で表示)に示すように、第1混合弁52の取り出し路51側を100%の開度とし、貯湯槽3の底部32からの循環回路2側を0%、つまり閉止させる。給湯栓7がユーザにより開操作されると、給水回路4の主給水路41から貯湯槽3の底部に給水され、この給水により貯湯槽3内の貯湯が頂部から押し出されて取り出し路51及び第1混合弁52を通して補助熱源機6に供給されることになる。図示省略の流量センサにより所定流量以上の給水の流れを検知した上で循環ポンプ22を作動させて補助熱源機6を燃焼作動させ、供給されたぬるま湯状態の貯湯が所定温度以上まで補助加熱される。この補助加熱された湯が開状態の流量調整弁23及び給湯路53を通して第2混合弁54に出湯され、第2混合弁54において温度センサ61からの給湯温度と、給水温度センサ46からの給水温度などに基づく所定の混合比での混水により設定給湯温度に温調されて給湯栓7に給湯されることになる。   The auxiliary heating hot water supply mode is a hot water supply mode applied when the hot water storage temperature in the hot water storage tank 3 is lower than the set hot water supply temperature, in other words, when the heat storage amount is insufficient, and the auxiliary heat source machine 6 Auxiliary heating is performed by combustion. That is, as shown in FIG. 5 (the portion where the flow is generated is indicated by a thick line), the opening of the first mixing valve 52 on the side of the take-out path 51 is 100%, and the circulation circuit 2 side from the bottom 32 of the hot water tank 3 is 0%, that is, close. When the hot water tap 7 is opened by the user, water is supplied from the main water supply path 41 of the water supply circuit 4 to the bottom of the hot water tank 3, and the hot water in the hot water tank 3 is pushed out from the top by this water supply, and the extraction path 51 and the The auxiliary heat source unit 6 is supplied through the 1 mixing valve 52. The flow rate sensor (not shown) detects the flow of feed water at a predetermined flow rate or higher, and then the circulation pump 22 is operated to cause the auxiliary heat source unit 6 to perform a combustion operation. The supplied hot water in the warm water state is auxiliary heated to a predetermined temperature or higher. . The auxiliary heated hot water is discharged to the second mixing valve 54 through the open flow rate adjusting valve 23 and the hot water supply passage 53, and the hot water supply temperature from the temperature sensor 61 and the water supply from the water supply temperature sensor 46 in the second mixing valve 54. The temperature is adjusted to the set hot-water supply temperature by mixed water at a predetermined mixing ratio based on temperature and the like, and hot water is supplied to the hot-water tap 7.

次に、暖房制御部104による貯湯単独暖房モードは、ユーザのリモコン101の操作により暖房要求指令が出力された際に、貯湯槽3内に暖房用熱源として要求される温度よりも高温の高温水が貯湯されている場合、つまり十分な蓄熱量を有している場合に、貯湯槽3内の貯湯を単独で暖房用熱源として供給して循環させるものである。この貯湯単独暖房モードでは、図6(流れが生じる部分を太線で表示)に示すように、流量調整弁23を閉状態に維持し、第1混合弁52の取り出し路51側を100%の開度とし、貯湯槽3の底部32からの循環回路2の側を0%、つまり閉止させ、三方切換弁86を熱源供給路85側に連通するように切換える一方、暖房回路8側の循環ポンプ88を作動させる。   Next, in the hot water storage single heating mode by the heating control unit 104, when a heating request command is output by the user's operation of the remote controller 101, the hot water having a temperature higher than the temperature required as a heating heat source in the hot water storage tank 3 is used. When hot water is stored, that is, when it has a sufficient amount of heat storage, the hot water in the hot water storage tank 3 is independently supplied as a heating heat source and circulated. In this hot water storage single heating mode, as shown in FIG. 6 (the portion where the flow is generated is indicated by a bold line), the flow rate adjusting valve 23 is kept closed, and the take-out path 51 side of the first mixing valve 52 is opened 100%. The circulation circuit 2 side from the bottom 32 of the hot water tank 3 is 0%, that is, closed, and the three-way switching valve 86 is switched to communicate with the heat source supply path 85 side, while the circulation pump 88 on the heating circuit 8 side. Is activated.

すると、熱源側では貯湯槽3内の湯が頂部34から取り出し路51及び第1混合弁52を通して、又、補助熱源機6を素通りして分岐点24から熱源供給路85に流入して熱交換器82に供給されることになる。この熱交換器82において暖房回路8側の循環熱媒が熱交換加熱され、加熱後の循環熱媒が高温暖房端末83や低温暖房端末84に対し循環供給され、暖房端末82,84で放熱後の循環熱媒が再び熱交換器82に戻されて熱交換加熱される。この熱交換により熱交換器82の熱源側に供給された湯が低温となり、これが三方切換弁86を通して貯湯槽3の底部32から内部に戻されることになる。   Then, on the heat source side, hot water in the hot water storage tank 3 flows from the top 34 through the take-out path 51 and the first mixing valve 52, passes through the auxiliary heat source unit 6 and flows from the branch point 24 to the heat source supply path 85 to exchange heat. To be supplied to the vessel 82. In this heat exchanger 82, the circulating heat medium on the heating circuit 8 side is subjected to heat exchange heating, and the heated circulating heat medium is circulated and supplied to the high-temperature heating terminal 83 and the low-temperature heating terminal 84, and is radiated by the heating terminals 82 and 84. The circulating heat medium is returned to the heat exchanger 82 and heat-exchanged. By this heat exchange, the hot water supplied to the heat source side of the heat exchanger 82 becomes low temperature, and this is returned to the inside from the bottom 32 of the hot water tank 3 through the three-way switching valve 86.

一方、貯湯槽3内の貯湯温度が暖房用熱源として要求される温度よりも低温である場合、つまり十分な蓄熱量を有していない場合には、貯湯槽3内の蓄熱ではなくて外部熱源であるガスエンジン1からの排熱回収により加熱した湯を上記の熱交換器82に供給する排熱利用暖房モードを選択実行させることになる。この排熱利用暖房モードでは、図7(流れが生じる部分を太線で表示)に示すように、第1混合弁52の取り出し路51側を0%、つまり閉止し、貯湯槽3の底部32からの循環回路2の側を100%の開度とし、熱媒循環路11の循環ポンプ12と、循環回路2の循環ポンプ22とを共に作動させる。すると、循環回路2内の湯が液−液熱交換器21でエンジン冷却水により液−液熱交換加熱され、加熱された湯が第1混合弁52を通り、補助熱源機6を素通りして分岐点24から熱源供給路85に流入して熱交換器82に供給されることになる。この熱交換器82で暖房回路8の側の循環熱媒を熱交換加熱した後、三方切換弁86を通して循環回路2に戻されて液−液熱交換器21で再び加熱されることになる。   On the other hand, when the hot water storage temperature in the hot water storage tank 3 is lower than the temperature required as the heat source for heating, that is, when the heat storage amount is not sufficient, it is not the heat storage in the hot water storage tank 3 but an external heat source. The exhaust heat utilization heating mode in which hot water heated by exhaust heat recovery from the gas engine 1 is supplied to the heat exchanger 82 is selected and executed. In this exhaust heat utilization heating mode, as shown in FIG. 7 (the portion where the flow is generated is indicated by a bold line), the take-out path 51 side of the first mixing valve 52 is 0%, that is, closed, and from the bottom 32 of the hot water tank 3 The circulation circuit 2 side is set to 100% opening, and the circulation pump 12 of the heat medium circulation path 11 and the circulation pump 22 of the circulation circuit 2 are operated together. Then, the hot water in the circulation circuit 2 is heated in the liquid-liquid heat exchanger 21 by liquid-liquid heat exchange with the engine cooling water, and the heated hot water passes through the first mixing valve 52 and passes through the auxiliary heat source unit 6. From the branch point 24, it flows into the heat source supply path 85 and is supplied to the heat exchanger 82. The heat exchanger 82 heats and heats the circulating heat medium on the heating circuit 8 side, and then returns to the circulation circuit 2 through the three-way switching valve 86 and is heated again by the liquid-liquid heat exchanger 21.

以上の貯湯単独暖房モードと、排熱利用暖房モードとの間の過渡期には、双方のモードの中間的なモードである貯湯混合暖房モードを選択実行することになる。すなわち、貯湯温度が暖房用熱源として十分ではないものの、排熱利用暖房モードにしなければならない程度まで低温ではないという段階に、あるいは、ガスエンジン1の側のエンジン冷却水の温度がさほど高くはない段階に、この貯湯混合暖房モードを選択実行させることで、貯湯槽3内の蓄熱の有効活用をより一層十分に図ることができるようになる。この貯湯混合暖房モードでは、上記の排熱利用暖房モードによる制御における第1混合弁52の開度設定を取り出し路51側の開度をより大きくし、液−液熱交換器21からの循環回路2側をより小さく絞り、大半の熱源を貯湯槽3内の蓄熱に負担させるようにする。このようにすることにより、熱交換器82に供給される湯は、取り出し路51から取り出される貯湯槽3の貯湯と、液−液熱交換器21を通過することにより多少熱交換加熱された循環回路2内の湯とが混合されたものとなる。もちろん、この貯湯混合暖房モードと、上記の排熱利用暖房モードとにおいて、ガスエンジン1の運転状況等により熱不足に陥る場合には、補助熱源機6を燃焼作動させて補助加熱を併用させるようにすればよい。   During the transition period between the hot water storage single heating mode and the exhaust heat utilization heating mode, the hot water storage heating mode, which is an intermediate mode between the two modes, is selected and executed. That is, although the hot water storage temperature is not sufficient as a heat source for heating, the temperature of the engine cooling water on the gas engine 1 side is not so high at a stage where the temperature is not low enough to be in the exhaust heat utilization heating mode. By selecting and executing this hot water storage heating mode at the stage, it becomes possible to more effectively utilize the heat storage in the hot water storage tank 3. In this hot water storage mixed heating mode, the opening of the first mixing valve 52 in the control in the above-described exhaust heat utilization heating mode is set so that the opening on the take-out path 51 side is larger, and the circulation circuit from the liquid-liquid heat exchanger 21 The second side is squeezed smaller so that most of the heat source bears the heat storage in the hot water tank 3. By doing in this way, the hot water supplied to the heat exchanger 82 is circulated in which the hot water in the hot water storage tank 3 taken out from the take-out passage 51 and the liquid-liquid heat exchanger 21 are somewhat heat exchange heated. The hot water in the circuit 2 is mixed. Of course, in this hot water storage mixed heating mode and the above-described exhaust heat utilization heating mode, when the heat is insufficient due to the operating state of the gas engine 1 or the like, the auxiliary heat source unit 6 is combusted and the auxiliary heating is used together. You can do it.

風呂追い焚き制御部105における各制御は、三方切換弁86を熱源供給路95が連通状態になるように切換える点のみ異なる他、貯湯単独追い焚きモードは上記の貯湯単独暖房モードと同じであり、排熱利用追い焚きモードは上記の排熱利用暖房モードと同じであり、貯湯混合追い焚きモードは上記の貯湯混合暖房モードと同じである。   Each control in the bath reheating control unit 105 is different only in that the three-way switching valve 86 is switched so that the heat source supply path 95 is in a communication state, and the single hot water reheating mode is the same as the above single hot water heating mode. The exhaust heat utilization reheating mode is the same as the above exhaust heat utilization heating mode, and the hot water storage reheating mode is the same as the above hot water mixing heating mode.

以上の各制御部103,104,105による運転制御においては、取り出し路51を通して貯湯槽3の頂部からの貯湯を第1混合弁52に取り出すことができるため、給湯においては補助熱源機6での補助加熱対象を貯湯槽3の底部32から取り出す場合よりも高温のものとすることができ、貯湯槽3の蓄熱を有効利用して補助加熱に要するエネルギー消費を低減化させることができる。又、外部熱負荷(暖房回路8や風呂追い焚き回路9)に対しそれらの熱源として供給する場合には、熱源として取り出し路51からより高温の頂部33側の貯湯を取り出して利用することができ、貯湯槽3の蓄熱の有効利用を図ることができる。さらに、貯湯混合暖房モードや貯湯混合追い焚きモードにおいては、貯湯槽3に残る蓄熱を少しでも有効利用することができるようになる。   In the operation control by the control units 103, 104, and 105, the hot water stored from the top of the hot water tank 3 can be taken out to the first mixing valve 52 through the take-out path 51. The temperature of the auxiliary heating object can be higher than when the hot water storage tank 3 is taken out from the bottom 32, and the energy consumption required for the auxiliary heating can be reduced by effectively using the heat storage of the hot water storage tank 3. In addition, when supplying the external heat load (heating circuit 8 or bath reheating circuit 9) as the heat source, the hot water stored on the top 33 side can be taken out from the take-out path 51 as the heat source. The heat storage in the hot water tank 3 can be effectively used. Furthermore, in the hot water storage and heating mode and the hot water storage and reheating mode, the heat storage remaining in the hot water storage tank 3 can be effectively utilized as much as possible.

そして、上記の如く貯湯槽3内の蓄熱の有効利用を図り得る取り出し路51を、液−液熱交換器21と循環ポンプ22との間に第1混合弁52を介して合流させるようにしているため、取り出し路51を通した頂部33側からの貯湯の取り出しと、循環回路2を通した底部32側からの貯湯の取り出しとの双方を、1台の共通の循環ポンプ22で行うことができ、それぞれの取り出し用に個別に循環ポンプを設置することを省略することができるようになる。この点においても、省エネルギー化や省力化を図ることができる。   Then, the take-out path 51 that can effectively use the heat storage in the hot water tank 3 as described above is joined between the liquid-liquid heat exchanger 21 and the circulation pump 22 via the first mixing valve 52. Therefore, both the removal of hot water from the top 33 side through the take-out path 51 and the removal of hot water from the bottom 32 side through the circulation circuit 2 can be performed by one common circulation pump 22. It is possible to omit the installation of a circulation pump for each takeout. In this respect as well, energy saving and labor saving can be achieved.

<他の実施形態>
なお、本発明は上記実施形態に限定されるものではなく、その他種々の実施形態を包含するものである。すなわち、上記実施形態では貯湯槽3に貯湯して蓄熱する熱回収の対象である外部熱源をガスエンジン(エンジン冷却水排熱)にした場合を示したが、これに限らず、外部熱源として、太陽熱(太陽熱集熱)、燃料電池(冷却水排熱)、あるいは、ヒートポンプ(冷媒の排熱)を用いて、貯湯にして蓄熱するようにしてもよく、このような場合においても本発明を適用することができる。
<Other embodiments>
In addition, this invention is not limited to the said embodiment, Various other embodiments are included. That is, in the said embodiment, although the case where the external heat source which is the object of the heat recovery which stores hot water in the hot water storage tank 3 was made into the gas engine (engine cooling water exhaust heat) was shown, not only this but as an external heat source, Solar heat (solar heat collection), fuel cell (cooling water exhaust heat), or heat pump (refrigerant exhaust heat) may be used to store hot water and store the heat. In this case, the present invention is applied. can do.

又、以上の実施形態では取り出し路51を、第1混合弁52によって循環回路2に合流させているが、これに限らず、切換弁52aによって循環回路2に合流させるようにしてもよい。要するに、第1混合弁52の取り出し路51側の開度を0%にして循環回路2側を100%の開度にしたり、逆に循環回路2側の開度を0%にして取り出し路51側の開度100%の開度にしたりする作動制御と同じ作動を切換弁52aによって実現させることができる。このように切換弁52aを用いることで、簡易な部品構成にしたり簡易な制御にしたりすることができ、それでいて混合弁を用いた場合と殆ど同じ作用効果を得ることができる。但し、貯湯混合暖房モード等の混合を行う制御は不能とはなる。   In the above embodiment, the take-out path 51 is joined to the circulation circuit 2 by the first mixing valve 52. However, the present invention is not limited to this, and may be joined to the circulation circuit 2 by the switching valve 52a. In short, the opening on the take-out path 51 side of the first mixing valve 52 is set to 0% and the opening on the circulation circuit 2 side is set to 100%, or conversely, the opening on the circulation circuit 2 side is set to 0%. The switching valve 52a can realize the same operation as the operation control for setting the opening degree to 100% on the side. By using the switching valve 52a in this way, a simple component configuration or simple control can be achieved, and almost the same operational effects as when the mixing valve is used can be obtained. However, it is impossible to perform mixing such as hot water storage and heating mode.

図9に示すように、貯湯槽3の頂部側において、頂部側回路部27と取り出し路51とを合流点28で合流させ、この合流点28を頂部33と連通させるようにしてもよい。このようにすることで、貯湯槽3の頂部側からの貯湯において温度成層状態の形成を容易に行うことができるようになる。   As shown in FIG. 9, on the top side of the hot water tank 3, the top side circuit portion 27 and the take-out path 51 may be joined at a joining point 28, and the joining point 28 may be communicated with the top portion 33. By doing in this way, formation of a temperature stratification state can be easily performed in the hot water storage from the top side of the hot water tank 3.

外部熱源からの熱回収の手段としては実施形態の如く液−液熱交換器21を用いずとも、貯湯槽3内に配設した例えばコイル式の熱交換器を用いるようにしてもよい。この場合は、そのコイル式の熱交換器に対し外部熱源の排熱媒体を循環させて、貯湯槽3内で湯水を直接に熱交換加熱することにより蓄熱させるようにすればよい。   As a means for recovering heat from the external heat source, for example, a coil heat exchanger disposed in the hot water tank 3 may be used without using the liquid-liquid heat exchanger 21 as in the embodiment. In this case, the exhaust heat medium of the external heat source may be circulated through the coil heat exchanger so that the hot water is directly heat-exchanged and heated in the hot water storage tank 3 to store the heat.

上記実施形態の貯湯式給湯システムでは、流量調整弁23を閉止機能付きにしているが、暖房回路8や風呂追い焚き回路9が附属しない場合には、閉止機能付きである必要はなく、通常の流量調整機能を有するものでよい。すなわち、熱源循環路85,95に対し熱源を循環供給する必要が無ければ閉止機能は不要になるからである。なお、貯湯単独給湯モードの実行の際には、補助熱源機6の存在等に基づく流路抵抗が生じているため、流量調整弁23を閉止しなくても絞るだけで、貯湯槽3内の貯湯は頂部側回路部27及び給湯路53の側に流れるようになる。このため、流量調整弁23は必ずしも閉止機能付きである必要はなく、必須事項ではない。   In the hot water storage type hot water supply system of the above embodiment, the flow rate adjustment valve 23 is provided with a closing function. However, when the heating circuit 8 and the bath reheating circuit 9 are not attached, it is not necessary to have a closing function, It may have a flow rate adjusting function. That is, if it is not necessary to circulate and supply the heat source to the heat source circulation paths 85 and 95, the closing function becomes unnecessary. In addition, when the hot water storage single hot water supply mode is executed, a flow path resistance based on the presence of the auxiliary heat source unit 6 and the like is generated. The hot water storage flows to the top circuit portion 27 and the hot water supply passage 53 side. For this reason, the flow regulating valve 23 does not necessarily have a closing function, and is not an essential matter.

1 ガスエンジン(外部熱源)
2 循環回路
3 貯湯槽
6 補助熱源機
8 暖房回路(外部熱負荷)
9 風呂追い焚き回路(外部熱負荷)
10 コントローラ
21 液−液熱交換器(熱回収部)
28 合流点
32 底部
33 頂部
51 取り出し路
52 第1混合弁(混合手段)
52a 切換弁(切換手段)
53 給湯路
85,95 熱源供給路
104 暖房制御部(外部熱負荷制御手段)
105 風呂追い焚き制御部(外部熱負荷制御手段)
1 Gas engine (external heat source)
2 Circulation circuit 3 Hot water tank 6 Auxiliary heat source machine 8 Heating circuit (external heat load)
9 Bath chasing circuit (external heat load)
10 Controller 21 Liquid-liquid heat exchanger (heat recovery part)
28 Junction point 32 Bottom 33 Top 51 Extraction path 52 First mixing valve (mixing means)
52a Switching valve (switching means)
53 Hot water supply path 85, 95 Heat source supply path 104 Heating control unit (external heat load control means)
105 Bath reheating control unit (external heat load control means)

Claims (6)

外部熱源からの排熱回収により貯湯として蓄熱するための貯湯槽と、貯湯槽の底部から取り出した湯水を貯湯槽の頂部に戻すように循環させる循環回路とを備え、この循環回路には、上記外部熱源から排熱回収して循環湯水を加熱する熱回収部と、循環湯水を循環作動させる循環ポンプと、循環湯水に対し燃焼熱により補助加熱する補助熱源機とが上流側からこの順に介装される一方、上記補助熱源機よりも下流側位置の循環回路から給湯路が分岐接続されている、貯湯式給湯システムであって、
上記貯湯槽の頂部に上流端が接続されて貯湯槽内の頂部側から貯湯を取り出すための取り出し路が、上記熱回収部と循環ポンプとの間の位置の循環回路に対し接続され、かつ、この接続点に対し、上記循環回路により取り出される貯湯槽の底部側の貯湯と、上記取り出し路により取り出される貯湯槽の頂部側の貯湯とを互いに混合した上で補助熱源機側の循環回路に供給し得る混合手段が配設されている、
ことを特徴とする貯湯式給湯システム。
A hot water storage tank for storing heat as hot water by recovering exhaust heat from an external heat source, and a circulation circuit for circulating the hot water taken out from the bottom of the hot water storage tank back to the top of the hot water storage tank, A heat recovery unit that recovers exhaust heat from an external heat source and heats the circulating hot water, a circulation pump that circulates the circulating hot water, and an auxiliary heat source that supplements the circulating hot water with combustion heat are installed in this order from the upstream side. On the other hand, a hot water storage hot water supply system in which a hot water supply path is branched and connected from a circulation circuit located downstream of the auxiliary heat source machine,
An upstream end is connected to the top of the hot water tank, and a take-out path for taking out the hot water from the top side in the hot water tank is connected to a circulation circuit at a position between the heat recovery part and the circulation pump, and The hot water stored on the bottom side of the hot water tank taken out by the circulation circuit and the hot water stored on the top side of the hot water tank taken out by the take-out path are mixed with each other and supplied to the circulation circuit on the auxiliary heat source machine side. Possible mixing means are arranged,
This is a hot water storage hot water system.
請求項1に記載の貯湯式給湯システムであって、
上記取り出し路と、循環回路とが貯湯槽の頂部近傍位置で互いに合流され、その合流点と貯湯槽の頂部とが共通の流路により接続されている、貯湯式給湯システム。
The hot water storage hot water supply system according to claim 1,
A hot water storage hot water supply system in which the extraction path and the circulation circuit are joined together at a position near the top of the hot water tank, and the junction and the top of the hot water tank are connected by a common flow path.
請求項1又は請求項2に記載の貯湯式給湯システムであって、
上記補助熱源機よりも下流側位置であって上記給湯路への分岐点よりも上流側位置の循環回路から分岐されて循環回路内の湯を外部熱源負荷に対する熱源として循環供給する熱源供給路と、この熱源供給路に対する熱源供給を制御する外部熱負荷制御手段とを備え、
上記外部熱負荷制御手段は、貯湯槽内の貯湯を単独で上記熱源供給路に対する熱源として循環供給する貯湯単独モードと、上記貯湯槽をバイパスして循環回路内の湯水を上記熱回収部で排熱回収により加熱しつつ循環回路及び熱源供給路に循環供給する排熱利用モードとを選択実行可能に切換えるように構成されている、貯湯式給湯システム。
The hot water storage hot water supply system according to claim 1 or 2,
A heat source supply path branched from the circulation circuit at a position downstream of the auxiliary heat source machine and upstream of the branch point to the hot water supply path, and for circulating the hot water in the circulation circuit as a heat source for the external heat source load; And an external heat load control means for controlling the heat source supply to the heat source supply path,
The external heat load control means includes a single hot water storage mode in which hot water in the hot water tank is circulated alone as a heat source for the heat source supply path, and hot water in the circulation circuit bypassing the hot water tank is discharged by the heat recovery unit. A hot water storage type hot water supply system configured to switch between a circulation circuit and an exhaust heat utilization mode that circulates and supplies the heat source supply path while being heated by heat recovery.
請求項3に記載の貯湯式給湯システムであって、
上記外部熱負荷制御手段は、上記取り出し路から取り出した貯湯槽内の貯湯と、貯湯槽をバイパスして熱回収部で加熱した循環回路内の湯水とを上記混合手段により混合した上で上記熱源供給路に熱源として循環供給する貯湯混合モードをさらに備えている、貯湯式給湯システム。
The hot water storage hot water supply system according to claim 3,
The external heat load control means mixes the hot water in the hot water tank taken out from the take-out path and the hot water in the circulation circuit bypassed by the hot water tank and heated in the heat recovery section by the mixing means, and then the heat source. A hot water storage hot water supply system that further includes a hot water storage mixing mode in which the supply channel is circulated and supplied as a heat source.
外部熱源からの排熱回収により貯湯として蓄熱するための貯湯槽と、貯湯槽の底部から取り出した湯水を貯湯槽の頂部に戻すように循環させる循環回路とを備え、この循環回路には、上記外部熱源から排熱回収して循環湯水を加熱する熱回収部と、循環湯水を循環作動させる循環ポンプと、循環湯水に対し燃焼熱により補助加熱する補助熱源機とが上流側からこの順に介装される一方、上記補助熱源機よりも下流側位置の循環回路から給湯路が分岐接続されている、貯湯式給湯システムであって、
上記貯湯槽の頂部に上流端が接続されて貯湯槽内の頂部側から貯湯を取り出すための取り出し路が、上記熱回収部と循環ポンプとの間の位置の循環回路に対し接続され、かつ、この接続点に対し、上記補助熱源機側の循環回路に供給する対象を上記循環回路により取り出される貯湯槽の底部側の貯湯と、上記取り出し路により取り出される貯湯槽の頂部側の貯湯とのいずれかに切換える切換手段が配設されている、
ことを特徴とする貯湯式給湯システム。
A hot water storage tank for storing heat as hot water by recovering exhaust heat from an external heat source, and a circulation circuit for circulating the hot water taken out from the bottom of the hot water storage tank back to the top of the hot water storage tank, A heat recovery unit that recovers exhaust heat from an external heat source and heats the circulating hot water, a circulation pump that circulates the circulating hot water, and an auxiliary heat source that supplements the circulating hot water with combustion heat are installed in this order from the upstream side. On the other hand, a hot water storage hot water supply system in which a hot water supply path is branched and connected from a circulation circuit located downstream of the auxiliary heat source machine,
An upstream end is connected to the top of the hot water tank, and a take-out path for taking out the hot water from the top side in the hot water tank is connected to a circulation circuit at a position between the heat recovery part and the circulation pump, and With respect to this connection point, either the hot water storage on the bottom side of the hot water tank taken out by the circulation circuit or the hot water storage on the top side of the hot water tank taken out by the take-out path is to be supplied to the circulation circuit on the auxiliary heat source machine side. Switching means is provided for switching between
This is a hot water storage hot water system.
請求項5に記載の貯湯式給湯システムであって、
上記補助熱源機よりも下流側位置であって上記給湯路への分岐点よりも上流側位置の循環回路から分岐されて循環回路内の湯を外部熱源負荷に対する熱源として循環供給する熱源供給路と、この熱源供給路に対する熱源供給を制御する外部熱負荷制御手段とを備え、
上記外部熱負荷制御手段は、貯湯槽内の貯湯を単独で上記熱源供給路に対する熱源として循環供給する貯湯単独モードと、上記貯湯槽をバイパスして循環回路内の湯水を上記熱回収部で排熱回収により加熱しつつ循環回路及び熱源供給路に循環供給する排熱利用モードとを選択実行可能に切換えるように構成されている、貯湯式給湯システム。
The hot water storage hot water supply system according to claim 5,
A heat source supply path branched from the circulation circuit at a position downstream of the auxiliary heat source machine and upstream of the branch point to the hot water supply path, and for circulating the hot water in the circulation circuit as a heat source for the external heat source load; And an external heat load control means for controlling the heat source supply to the heat source supply path,
The external heat load control means includes a single hot water storage mode in which hot water in the hot water tank is circulated alone as a heat source for the heat source supply path, and hot water in the circulation circuit bypassing the hot water tank is discharged by the heat recovery unit. A hot water storage type hot water supply system configured to switch between a circulation circuit and an exhaust heat utilization mode that circulates and supplies the heat source supply path while being heated by heat recovery.
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