JP5341482B2 - Groundwater heat exchange method and groundwater heat exchange equipment - Google Patents

Groundwater heat exchange method and groundwater heat exchange equipment Download PDF

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JP5341482B2
JP5341482B2 JP2008290767A JP2008290767A JP5341482B2 JP 5341482 B2 JP5341482 B2 JP 5341482B2 JP 2008290767 A JP2008290767 A JP 2008290767A JP 2008290767 A JP2008290767 A JP 2008290767A JP 5341482 B2 JP5341482 B2 JP 5341482B2
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建夫 奥村
義博 三輪
芳郎 柴
恭 佐々木
誠 中迎
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東邦地水株式会社
ゼネラルヒートポンプ工業株式会社
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24TGEOTHERMAL COLLECTORS; GEOTHERMAL SYSTEMS
    • F24T10/00Geothermal collectors
    • F24T10/20Geothermal collectors using underground water as working fluid; using working fluid injected directly into the ground, e.g. using injection wells and recovery wells
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
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    • Y02E10/10Geothermal energy

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Abstract

<P>PROBLEM TO BE SOLVED: To provide an underground water heat exchange method and an underground water heat exchange device enabling efficient heat use and heat exchange by the use of underground water heat. <P>SOLUTION: A movable separator 4 for vertically separating inside of a casing 1 is vertically movably arranged within the casing 1 inside a well, and a lower pipe 6 and an upper pipe 7 are inserted to inside of the casing 1. An upper screen 2 is formed in the upper casing 1 of the movable separator 4, and a lower screen 3 is formed in the lower casing 1 of the movable separator 4. When the water injection amount from an upper chamber 16 within the casing 1 is decreased, or periodically, a pumping function of the lower pipe 6 and an injection function of the upper pipe 7 are switched to each other, and water is pumped up from the upper chamber 16 within the upper casing 1 of the movable separator 4 via the upper pipe 7. Underground water after heat use is injected to a lower chamber 15 within the lower casing 1 of the movable separator 4 via the lower pipe 6 and is returned to the ground. <P>COPYRIGHT: (C)2010,JPO&amp;INPIT

Description

本発明は、1本の井戸で地下水を循環し、その間で地下水熱を利用して、冷暖房、融雪などのために、熱交換を行う地下水熱交換方法と地下水熱交換装置に関する。   The present invention relates to a groundwater heat exchanging method and a groundwater heat exchanging apparatus for exchanging heat for cooling and heating, snow melting and the like by circulating groundwater in one well and using groundwater heat therebetween.

地下水の温度は、一般に一年を通して略一定であるため、揚水井を掘削し、そこから揚水した地下水を、建物の冷暖房や融雪などに利用することが、従来、行なわれている。従来のこの種の地下水熱を利用する装置では、通常、熱利用した後の地下水を河川などに放流するか、或いは2本の井戸を掘削し、一方の揚水井から地下水を揚水し、ヒートポンプまたはフリークーリングにより熱交換した後、他方の井戸に戻すように使用していた。   Since the temperature of groundwater is generally constant throughout the year, it has been conventionally practiced to excavate a pumping well and use the groundwater pumped from the pumping well for air conditioning and snow melting of a building. In conventional devices using this type of groundwater heat, the groundwater after heat use is usually discharged into a river or the like, or two wells are excavated and groundwater is pumped from one pumping well, and a heat pump or After heat exchange by free cooling, it was used to return to the other well.

しかし、このような地下水熱交換装置は、排水費用が必要となり、或いは2本の井戸を掘削する必要があるため、設置スペースに余裕のない場合には設置することができず、また、井戸の掘削コストが高くなる問題があった。加えて、井戸内に設置されたスクリーン部の目詰まりにより、揚水量が低下したり、注水ができなくなる不具合があった。   However, such a groundwater heat exchange device requires drainage costs or needs to drill two wells, so it cannot be installed if there is not enough space for installation, There was a problem that the drilling cost was high. In addition, due to clogging of the screen installed in the well, there was a problem that the amount of pumped water decreased or water injection could not be performed.

そこで、従来、1本の井戸を用いて、地下水を揚水し、揚水した地下水をヒートポンプなどに供給して、熱交換を行なった後、使用後の水を再び井戸のケーシング内に戻すように使用する地下水熱交換装置が、下記特許文献1により提案されている。
特開2004−317102号公報
Therefore, conventionally, a single well is used to pump groundwater, the pumped groundwater is supplied to a heat pump, etc., heat exchange is performed, and used water is returned to the well casing again. Japanese Patent Application Laid-Open No. 2004-228561 proposes a groundwater heat exchange device that performs the following.
JP 2004-317102 A

従来のこの種の地下水熱交換装置は、掘削した1本の井戸にケーシングを挿入し、ケーシングの下部の帯水層から揚水を行なう一方、使用後の水をケーシングの上部の透水層に戻すように構成される。このために、そのケーシングには、揚水用に下部ストレーナ部を形成すると共に、使用後の水をケーシング内に戻すために、ケーシングの上部に上部ストレーナ部を形成し、上部ストレーナ部と下部ストレーナ部の間のケーシング内に、その間を上下に遮断する仕切り板を不透水層位置に取り付けて形成されていた。   In this type of conventional groundwater heat exchange device, a casing is inserted into one excavated well, and water is pumped from the aquifer at the bottom of the casing, while the used water is returned to the permeable layer at the top of the casing. Configured. For this purpose, in the casing, a lower strainer portion is formed for pumping water, and an upper strainer portion is formed on the upper portion of the casing in order to return used water into the casing, and an upper strainer portion and a lower strainer portion are formed. In the casing between, the partition plate which interrupts | blocks between the upper and lower sides was attached and formed in the impermeable layer position.

しかし、この仕切り板は、下部管の対応部分にフランジを溶接する一方、ケーシング内の対応位置にフランジ受け板を固定し、下部管をケーシング内に下げる際、そのフランジをフランジ受け板に当接させるようになっている。このため、新規の井戸には対応可能であるが、仕切り板の設置位置はおのずと不透水層の深度で決まり、既設の井戸では、フランジ受け板を固定することができない。   However, this partition plate welds the flange to the corresponding part of the lower pipe, while fixing the flange receiving plate at the corresponding position in the casing, and abuts the flange against the flange receiving plate when lowering the lower pipe into the casing It is supposed to let you. For this reason, although it can respond to a new well, the installation position of a partition plate is decided naturally by the depth of an impermeable layer, and a flange receiving plate cannot be fixed in the existing well.

また、この地下水熱交換装置は、下部ストレーナ部の周囲の帯水層から下部ストレーナ部を通して揚水を行なう一方、上部ストレーナ部内に使用後の水を圧送して上部の透水層に注水して運転されるが、地下水に汚れや異物が多い場合、注水用の上部ストレーナ部に目詰まりが生じやすく、さらに、揚水を行なう下部ストレーナ部においても、地下水中の懸濁物質などにより目詰まりが生じやすく、上部または下部ストレーナ部に目詰まりが生じると、熱交換を効率よく行なうことができなくなる。   In addition, this groundwater heat exchanger is operated by pumping water from the aquifer around the lower strainer through the lower strainer while pumping the used water into the upper strainer and pouring it into the upper permeable layer. However, if there is a lot of dirt or foreign matter in the groundwater, the upper strainer for pouring water is likely to be clogged, and also in the lower strainer where water is pumped, clogging is likely due to suspended substances in the groundwater. If clogging occurs in the upper or lower strainer, heat exchange cannot be performed efficiently.

さらに、この種の地下水熱交換装置は不透水層深度で井戸内を分離し、下部ストレーナ部の周囲の帯水層から揚水し、上部ストレーナ部内に利用後の水を注水して、地下水の循環を行なうため、一般に能力の小さい上部の注水能力に基づき、その装置の熱交換能力が決定されるという課題があった。   In addition, this type of groundwater heat exchanger separates the inside of the well at the depth of the impermeable layer, pumps water from the aquifer around the lower strainer part, injects the used water into the upper strainer part, and circulates the groundwater Therefore, there is a problem that the heat exchange capacity of the apparatus is generally determined based on the upper water injection capacity with a small capacity.

本発明は、上述の課題を解決するものであり、地下水熱を利用して効率の良い熱利用や熱交換を行なうことができる地下水熱交換方法と地下水熱交換装置を提供することを目的とする。   This invention solves the above-mentioned subject, and it aims at providing the groundwater heat exchange method and groundwater heat exchange apparatus which can perform efficient heat use and heat exchange using groundwater heat. .

本発明の請求項1に係る地下水熱交換方法は、
地中の帯水層に設置された1本の井戸内に上スクリーン部と下スクリーン部を有したケーシングが挿入され、該上スクリーン部と下スクリーン部内との間に可動式分離装置が上下移動可能に配設され、該可動式分離装置の上側のケーシング内に上側室が形成され、該可動式分離装置の下側のケーシング内に下側室が形成され、該ケーシング内には下部管と上部管が挿入され、該下部管の先端は該可動式分離装置の下側の下側室内に位置し、該上部管の先端は該可動式分離装置の上側の上側室内に位置し、該下部管または該上部管を通して該ケーシング内の地下水を揚水し、熱利用した後の地下水を該ケーシング内の該上部管または下部管を通して地中に戻す地下水熱交換方法であって、
該下部管または上部管を通して該下側室または上側室から揚水し、熱利用後の地下水を、該上部管または下部管を通して該上側室または下側室に注水して地中に戻しているとき、該上側室または下側室への注水量が低下してきた場合或いは定期的に、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替えて揚水・注水を行ない、
前記可動式分離装置は、前記下部管または上部管を通して前記下側室または上側室から揚水する揚水量と前記上部管または下部管を通して前記上側室または下側室に注水する注水量とが、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替え時に変動しないように、その上下位置を移動して調整することを特徴とする。
The groundwater heat exchange method according to claim 1 of the present invention includes:
A casing having an upper screen portion and a lower screen portion is inserted into one well installed in the underground aquifer, and the movable separator moves up and down between the upper screen portion and the lower screen portion. An upper chamber is formed in an upper casing of the movable separation device, a lower chamber is formed in a lower casing of the movable separation device, and a lower pipe and an upper portion are formed in the casing. A tube is inserted, the tip of the lower tube is located in the lower chamber below the movable separator, the tip of the upper tube is located in the upper chamber above the movable separator, and the lower tube Or a groundwater heat exchange method in which groundwater in the casing is pumped through the upper pipe, and groundwater after heat utilization is returned to the ground through the upper pipe or lower pipe in the casing,
When pumping water from the lower chamber or upper chamber through the lower pipe or the upper pipe, and pouring groundwater after use of heat into the upper chamber or lower chamber through the upper pipe or the lower pipe and returning it to the ground, When the amount of water injected into the upper chamber or the lower chamber has decreased or periodically, the pumping function of the lower pipe or the upper pipe and the injection function of the upper pipe or the lower pipe are switched to each other to perform pumping / water injection. Yes,
The movable separation device is configured such that the amount of water pumped from the lower chamber or the upper chamber through the lower tube or the upper tube and the amount of water injected into the upper chamber or the lower chamber through the upper tube or the lower tube are the lower pipe. Alternatively, the pumping function of the upper pipe and the injection function of the upper pipe or the lower pipe are adjusted by moving their vertical positions so that they do not fluctuate during switching .

ここで、定期的にとは、冷暖房の切り替え時、或いは一月毎などを含む概念である。   Here, “regularly” is a concept that includes, for example, switching between cooling and heating, or every month.

この発明によれば、可動式分離装置の下側の下側室または上側の上側室から揚水していたときに生じた下スクリーン部または上スクリーン部の目詰まりが、下側室または上側室の地下水の逆流により解消され、可動式分離装置の上側の上側室または下側の下側室から注水していたときに生じた上スクリーン部または下スクリーン部の目詰まりが、上側室または下側室の地下水の逆流により解消される。このため、このような地下水の逆流によるスクリーン部の逆洗を、定期的にまたは注水量の低下時などに行なうことにより、地下水熱利用の最大化を図り、地下水熱の利用を効率よく行なうことができる。   According to the present invention, the clogging of the lower screen portion or the upper screen portion that occurs when water is pumped from the lower chamber or the upper chamber on the lower side of the movable separation device is the groundwater in the lower chamber or the upper chamber. The clogging of the upper screen or the lower screen that occurred when water was poured from the upper chamber or the lower chamber on the upper side of the movable separation device was eliminated by the reverse flow, and the reverse flow of the groundwater in the upper or lower chamber Is eliminated. For this reason, the use of backwashing of the screen due to such backflow of groundwater is performed regularly or when the amount of water injection is reduced, etc., to maximize the use of groundwater heat and to efficiently use groundwater heat. Can do.

この発明によれば、1本の井戸の下部から揚水する揚水量と上部に注水する注水量を同じにすることにより、地下水熱の利用の最適化を図ることができる。   According to this invention, the utilization of groundwater heat can be optimized by making the amount of water pumped from the bottom of one well the same as the amount of water poured into the top.

また、請求項2の発明は、地中に設置された1本の井戸内に上スクリーン部と下スクリーン部を有したケーシングが挿入され、該上スクリーン部と下スクリーン部内との間に可動式分離装置が上下移動可能に配設され、該可動式分離装置の上側のケーシング内に上側室が形成され、該可動式分離装置の下側のケーシング内に下側室が形成され、該ケーシング内には下部管と上部管が挿入され、該下部管の先端は該可動式分離装置の下側の下側室内に位置し、該上部管の先端は該可動式分離装置の上側の上側室内に位置し、該下部管または該上部管を通して該ケーシング内の地下水を揚水し、熱利用した後の地下水を該ケーシング内の該上部管または下部管を通して地中に戻す地下水熱交換方法であって、
該下部管または上部管を通して該下側室または上側室から揚水し、熱利用後の地下水を、該上部管または下部管を通して該上側室または下側室に注水して地中に戻しているとき、該上側室または下側室への注水量が低下してきた場合または定期的に、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替えて揚水・注水を行ない、
前記下側室または上側室から揚水する揚水量に比べ前記上側室または下側室に注水可能な注水量が少ない場合、該揚水量と該注入量の差分の地下水を、熱利用後に、地上に設けた浸透施設に流して地中に浸透させることを特徴とする。
According to the invention of claim 2, a casing having an upper screen portion and a lower screen portion is inserted into one well installed in the ground, and is movable between the upper screen portion and the lower screen portion. A separation device is arranged to be movable up and down, an upper chamber is formed in an upper casing of the movable separation device, a lower chamber is formed in a lower casing of the movable separation device, and the casing is formed in the casing. The lower tube and the upper tube are inserted, the tip of the lower tube is located in the lower chamber below the movable separation device, and the tip of the upper tube is located in the upper chamber above the movable separation device A groundwater heat exchange method in which groundwater in the casing is pumped through the lower pipe or the upper pipe, and groundwater after heat utilization is returned to the ground through the upper pipe or the lower pipe in the casing,
When pumping water from the lower chamber or upper chamber through the lower pipe or the upper pipe, and pouring groundwater after use of heat into the upper chamber or lower chamber through the upper pipe or the lower pipe and returning it to the ground, When the amount of water injected into the upper chamber or the lower chamber has decreased or periodically, the pumping function of the lower pipe or the upper pipe and the injection function of the upper pipe or the lower pipe are switched to each other to perform pumping and water injection,
When the amount of water that can be injected into the upper chamber or the lower chamber is smaller than the amount of water pumped from the lower chamber or the upper chamber, groundwater of the difference between the pumped amount and the injected amount is provided on the ground after heat utilization. It is characterized by flowing into the infiltration facility and infiltrating into the ground.

この発明によれば、その井戸における最大の揚水能力で揚水を行なうと共に、揚水した地下水の全量を地盤に還元し、地下水熱の熱利用効率を可能な限り高くすることができる。   According to this invention, while pumping up with the maximum pumping capacity in the well, the whole quantity of groundwater pumped can be reduced to the ground, and the heat utilization efficiency of groundwater heat can be made as high as possible.

一方、本発明の請求項に係る地下水熱交換装置は、地中の帯水層に設置された1本の井戸内に上スクリーン部と下スクリーン部を有したケーシングが挿入され、該上スクリーン部と下スクリーン部内との間に可動式分離装置が上下移動可能に配設され、該可動式分離装置の上側のケーシング内に上側室が形成され、該可動式分離装置の下側のケーシング内に下側室が形成され、該ケーシング内には下部管と上部管が挿入され、該下部管の先端は該可動式分離装置の下側の下側室内に位置し、該上部管の先端は該可動式分離装置の上側の上側室内に位置し、該下部管または該上部管を通して該ケーシング内の地下水を揚水し、熱利用した後の地下水を該ケーシング内の該上部管または下部管を通して地中に戻す地下水熱交換装置であって、
該下部管と該上部管の地上部分に流路切替装置が、該下部管と該上部管のポンプ側または熱交換器側と井戸側を相互に切り替えるように接続され、該上部管または該下部管を通して該上側室または該下側室に注水する注水量が低下してきたとき、該下部管または該上部管の地上部を該上部管または該下部管の地上部に切り替えて接続し、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替えて揚水・注水を行なうことを特徴とする。
On the other hand, in the groundwater heat exchange device according to claim 3 of the present invention, a casing having an upper screen portion and a lower screen portion is inserted into one well installed in an underground aquifer, and the upper screen A movable separation device is disposed between the upper portion and the lower screen portion so as to be movable up and down, and an upper chamber is formed in an upper casing of the movable separation device. A lower tube and an upper tube are inserted into the casing, the tip of the lower tube is located in the lower chamber of the lower side of the movable separation device, and the tip of the upper tube is Located in the upper chamber on the upper side of the movable separator, the groundwater in the casing is pumped through the lower pipe or the upper pipe, and the groundwater after heat utilization is grounded through the upper pipe or the lower pipe in the casing. A groundwater heat exchange device to return to
A flow path switching device is connected to the ground portion of the lower pipe and the upper pipe so as to switch between the pump side or the heat exchanger side and the well side of the lower pipe and the upper pipe, and the upper pipe or the lower pipe. When the amount of water injected into the upper chamber or the lower chamber through the pipe decreases, the ground part of the lower pipe or the upper pipe is switched to the ground part of the upper pipe or the lower pipe, and the lower pipe is connected. Alternatively, pumping / water pouring is performed by switching between the pumping function of the upper pipe and the injection function of the upper pipe or the lower pipe.

この発明によれば、通常運転時に可動式分離装置の下側の下側室または上側の上側室から揚水していたときに生じた下スクリーン部または上スクリーン部の目詰まりが地下水の逆流により解消され、可動式分離装置の上側の上側室または下側の下側室に注水していたときに生じた上スクリーン部または下スクリーン部の目詰まりが地下水の逆流により解消される。このため、このような地下水の逆流によるスクリーン部の逆洗を定期的にまたは自動的に行なうことにより、地下水熱利用の最大化を図り、地下水熱の利用を効率よく行なうことができる。   According to the present invention, the clogging of the lower screen portion or the upper screen portion that occurs when water is pumped from the lower lower chamber or the upper upper chamber of the movable separation device during normal operation is eliminated by the reverse flow of groundwater. The clogging of the upper screen portion or the lower screen portion that occurs when water is poured into the upper upper chamber or the lower lower chamber of the movable separation device is eliminated by the backflow of groundwater. For this reason, by regularly or automatically performing backwashing of the screen portion by such a reverse flow of groundwater, it is possible to maximize the utilization of groundwater heat and efficiently use the groundwater heat.

請求項の発明は、請求項の地下水熱交換装置において、上記下部管または上部管の地上部にポンプの吸引側が接続され、該ポンプの吐出側がヒートポンプを通して前記上部管または下部管に接続され、該上部管と下部管の地上部分に前記流路切替装置が揚水と注水の流路を切替可能に接続され、該上部管と下部管の地上部には、該流路切替装置と該ヒートポンプの間に、調整弁が接続され、一方の下側室または上部室の揚水能力に比べ他方の上側室または下側室の注水能力が少ない場合、該調整弁を開き、熱利用後の地下水を、地上に設けた浸透施設に流して地中に浸透させることを特徴とする。 According to a fourth aspect of the present invention, in the groundwater heat exchanger according to the third aspect , a suction side of a pump is connected to the ground portion of the lower pipe or the upper pipe, and a discharge side of the pump is connected to the upper pipe or the lower pipe through a heat pump. The flow path switching device is connected to the ground portion of the upper pipe and the lower pipe so as to be able to switch between pumping and water injection flow paths, and the flow path switching device and the heat pump are connected to the ground portion of the upper pipe and the lower pipe. When the regulating valve is connected and the water injection capacity of the other upper chamber or lower chamber is less than the pumping capacity of the other lower chamber or upper chamber, the regulating valve is opened and groundwater after heat utilization is It is characterized by flowing into the infiltration facility provided in the ground and allowing it to penetrate into the ground.

この発明によれば、井戸の持つ最大の揚水能力で揚水を行なうと共に、揚水した地下水の全量を地盤に還元し、地下水熱の熱利用効率を可能な限り高くすることができる。   According to this invention, while pumping up with the maximum pumping capacity which a well has, the whole quantity of groundwater pumped can be returned to the ground, and the heat utilization efficiency of groundwater heat can be made as high as possible.

請求項の発明は、請求項の地下水熱交換装置において、上記流路切替装置と前記ヒートポンプの間に、スケール除去用の熱交換器が接続されたことを特徴とする。 A fifth aspect of the present invention is the groundwater heat exchanger according to the fourth aspect , wherein a heat exchanger for removing the scale is connected between the flow path switching device and the heat pump.

この発明によれば、地下水の水質が悪い場合、熱交換器内を通すことにより、地下水中の懸濁物質などを、熱交換器内に、スケールとして付着させ、定期的に熱交換器内を洗浄して、ヒートポンプなどのパイプ内表面へのスケールの付着を防止することができる。   According to this invention, when the quality of the groundwater is poor, the suspended matter in the groundwater is adhered as a scale in the heat exchanger by passing through the heat exchanger, and the inside of the heat exchanger is periodically Washing can prevent the scale from adhering to the inner surface of a pipe such as a heat pump.

本発明の地下水熱交換方法と地下水熱交換装置によれば、下側室の下スクリーン部の目詰まり、或いは上側室の上スクリーン部の目詰まりが、地下水の逆流により解消され、地下水の逆流によるスクリーン部の逆洗を、定期的にまたは注水量の低下時などに行なうことにより、地下水熱利用の最大化を図り、地下水熱を利用して効率の良い熱利用や熱交換を行なうことができる。   According to the groundwater heat exchange method and the groundwater heat exchange apparatus of the present invention, the clogging of the lower screen portion of the lower chamber or the clogging of the upper screen portion of the upper chamber is eliminated by the reverse flow of the groundwater, and the screen is caused by the reverse flow of the groundwater. By performing backwashing of the section regularly or when the amount of water injection is reduced, the utilization of groundwater heat can be maximized, and efficient heat utilization and heat exchange can be performed using the groundwater heat.

以下、本発明の一実施形態を図面に基づいて説明する。図1は地下水熱交換装置の断面説明図を示している。地中に、地下水熱利用のための1本の井戸が設置される。井戸は地中の複数の帯水層に達する深さまで掘削された掘削井に、パイプ状のケーシング1を打設・挿入して設置される。パイプ状のケーシング1には、その下部に下スクリーン部3が、多数の細いスリット或いは丸孔を設けて形成され、下スクリーン部3の上方にも上スクリーン部2が、同様な構造で形成されている。   Hereinafter, an embodiment of the present invention will be described with reference to the drawings. FIG. 1 shows a cross-sectional explanatory view of a groundwater heat exchanger. One well for groundwater heat utilization will be installed in the ground. The well is installed by placing and inserting a pipe-like casing 1 in a well that has been drilled to a depth that reaches a plurality of underground aquifers. The pipe-shaped casing 1 has a lower screen portion 3 formed at the lower portion thereof with a large number of thin slits or round holes, and the upper screen portion 2 is also formed above the lower screen portion 3 with the same structure. ing.

上スクリーン部2と下スクリーン部3は、その間に通常のパイプ部を配置して上下に分離された形態で設けられるが、上下に連続して設けることもできる。ケーシング1内における上スクリーン部2内には後述の上側室16が形成され、下スクリーン部3内には後述の下側室15が形成されるが、その上側室16と下側室15の間には、上側室16と下側室15を隔壁状に分離する可動式分離装置4が上下移動(昇降)可能に配設される。   The upper screen portion 2 and the lower screen portion 3 are provided in a form separated from the upper and lower sides by arranging a normal pipe portion therebetween, but can also be provided continuously in the upper and lower directions. An upper chamber 16 which will be described later is formed in the upper screen portion 2 in the casing 1, and a lower chamber 15 which will be described later is formed in the lower screen portion 3, but between the upper chamber 16 and the lower chamber 15. The movable separation device 4 that separates the upper chamber 16 and the lower chamber 15 into a partition shape is disposed so as to be vertically movable (up and down).

可動式分離装置4は、ケーシング1の内部に、例えば膨張可能なパッカー4aを密着可能に配設して構成される。パッカー4aは、例えばゴムまたはゴム状弾性体などにより風船状に形成され、圧送用チューブ5により内部に空気などの流体を圧送して、その外径を膨張させ、内部の流体を抜くことにより、収縮させる。また、可動式分離装置4のパッカー4aは、下部管6に接続され、接続位置を上下させることにより、パッカー4aの上下位置を調整可能としている。   The movable separation device 4 is configured such that, for example, an expandable packer 4a is disposed inside the casing 1 so as to be in close contact. The packer 4a is formed into a balloon shape by, for example, rubber or a rubber-like elastic body, and by pumping a fluid such as air into the inside by the pumping tube 5, expanding its outer diameter, and extracting the fluid inside, Shrink. Further, the packer 4a of the movable separator 4 is connected to the lower pipe 6, and the vertical position of the packer 4a can be adjusted by moving the connection position up and down.

パッカー4aは、図1のように、ケーシング1内の下側室15と上側室16との間に密着し、ケーシング1内の下側室15と上側室16との間を分離する。つまり、可動式分離装置4の上側に上側室16が形成され、可動式分離装置4の下側に下側室15が形成される。一方、収縮した状態のパッカー4aは、下部管6との接続位置を上方にまたは下方に調整し、上側室16と下側室15の分離位置を上下に変えるようになっている。   As shown in FIG. 1, the packer 4 a is in close contact between the lower chamber 15 and the upper chamber 16 in the casing 1 and separates the lower chamber 15 and the upper chamber 16 in the casing 1. That is, the upper chamber 16 is formed on the upper side of the movable separation device 4, and the lower chamber 15 is formed on the lower side of the movable separation device 4. On the other hand, the packer 4a in the contracted state adjusts the connection position with the lower pipe 6 upward or downward, and changes the separation position of the upper chamber 16 and the lower chamber 15 up and down.

なお、可動式分離装置4は、上記のようなパッカー4aを用いる他、プラスチック製などの円柱体をケーシング1内に上下摺動可能に挿入して構成することもできる。   In addition, the movable separation device 4 can be configured by inserting a cylindrical body made of plastic or the like into the casing 1 so as to be slidable up and down, in addition to using the packer 4a as described above.

可動式分離装置4のパッカー4aは、ケーシング1内の下側室15と上側室16を分離するものであるが、地中においては、下側室15及び上側室16共に帯水層21内に配置される。   The packer 4a of the movable separation device 4 separates the lower chamber 15 and the upper chamber 16 in the casing 1, but both the lower chamber 15 and the upper chamber 16 are disposed in the aquifer 21 in the ground. The

さらに、ケーシング1内には、揚水と注水を行なう下部管6と上部管7が挿入され、下部管15は、可動式分離装置4を貫通し、下部管6の開口先端は、ケーシング1内下部の下側室15に位置し、上部管7の開口先端は、ケーシング1内上部の上側室16に位置するように、挿入されている。下部管6と上部管7は、相互に揚水管または注水管として、切り替えて動作するように使用され、下部管6が揚水を行なう場合、上部管7は注水を行なう注水管となり、上部管7が揚水を行なう場合、下部管6が注水管となる。   Further, a lower pipe 6 and an upper pipe 7 for pumping and pouring water are inserted into the casing 1, the lower pipe 15 penetrates the movable separation device 4, and the opening tip of the lower pipe 6 is located at the lower part in the casing 1. Located in the lower chamber 15, the opening tip of the upper tube 7 is inserted so as to be positioned in the upper chamber 16 in the upper part of the casing 1. The lower pipe 6 and the upper pipe 7 are used as a pumping pipe or a water injection pipe so as to switch and operate. When the lower pipe 6 pumps water, the upper pipe 7 becomes a water injection pipe for water injection, and the upper pipe 7 When pumping up water, the lower pipe 6 serves as a water injection pipe.

図1に示すように、下部管6と上部管7の地上部分は流路切替装置9に接続され、流路切替装置9の他方の側にポンプ8とヒートポンプ11が管路により接続される。つまり、下部管6の地上部分は、流路切替装置9を介してポンプ8の吸入側に管路で接続され、ポンプ8の運転時、下部管6を通して下側室15の地下水を揚水し、または上部管7を通して上側室16の地下水を揚水する。   As shown in FIG. 1, the ground portions of the lower pipe 6 and the upper pipe 7 are connected to a flow path switching device 9, and a pump 8 and a heat pump 11 are connected to the other side of the flow path switching device 9 by a pipe line. That is, the ground portion of the lower pipe 6 is connected to the suction side of the pump 8 via the flow path switching device 9 and pumps the ground water in the lower chamber 15 through the lower pipe 6 when the pump 8 is operated. Groundwater in the upper chamber 16 is pumped through the upper pipe 7.

流路切替装置9は、ポンプ8に接続される吸入側の管路を下部管6と上部管7との間で切り替えると共に、注水用に接続される管路(ポンプ8の吐出側にヒートポンプ11と調整弁10を介して接続される管路)を、上部管7と下部管6との間で切り替えるように構成されている。   The flow path switching device 9 switches the suction side pipe line connected to the pump 8 between the lower pipe 6 and the upper pipe 7 and also connects the pipe line connected for water injection (the heat pump 11 on the discharge side of the pump 8). And the pipe line connected via the regulating valve 10) are switched between the upper pipe 7 and the lower pipe 6.

ポンプ8は、地下水を揚水すると共に、熱利用した後の地下水を地中に注水するためのポンプで、ポンプ8の吐出側は、ヒートポンプ11に管路で接続される。そして、ヒートポンプ11の吐出側は調整弁10を介して流路切替装置9の入口ポートに接続される。流路切替装置9の出口ポートには上記のポンプの吸入側が管路で接続され、流路切替装置9の2個の切替ポートに、上記下部管6と上部管7が切替可能に接続される。   The pump 8 is a pump for pumping up groundwater and injecting groundwater after heat utilization into the ground. The discharge side of the pump 8 is connected to the heat pump 11 through a pipe line. The discharge side of the heat pump 11 is connected to the inlet port of the flow path switching device 9 via the adjustment valve 10. The outlet side of the flow path switching device 9 is connected to the suction side of the pump by a pipe line, and the lower pipe 6 and the upper pipe 7 are connected to the two switching ports of the flow path switching device 9 in a switchable manner. .

調整弁10は、上側室16または下側室15への注水量が下側室15または上側室16からの揚水量より少ない場合、揚水量と注水量の差分を、熱利用した後の地下水の一部として浸透施設24に流すように調整する弁である。   When the amount of water injected into the upper chamber 16 or the lower chamber 15 is smaller than the amount of water pumped from the lower chamber 15 or the upper chamber 16, the regulating valve 10 uses a difference between the pumped water amount and the water injected amount as a part of groundwater after heat utilization. As a valve that adjusts to flow through the infiltration facility 24.

ケーシング1に地上部の近傍には、水を地下に浸透させるための浸透施設24が排水枡のような形態で形成され、調整弁10により地下水の一部が排水されたとき、その地下水を浸透施設24に流し、地下に浸透させるようになっている。ポンプ8の吐出側が接続されるヒートポンプ11は、地下水熱を利用する冷房用または暖房用に使用されるヒートポンプであり、取り入れた地下水熱を、ヒートポンプの冷媒との間で熱交換する。   A permeation facility 24 for allowing water to permeate into the basement is formed in the casing 1 in the vicinity of the ground. When a part of the groundwater is drained by the regulating valve 10, the groundwater is permeated. It flows into the facility 24 and penetrates underground. The heat pump 11 to which the discharge side of the pump 8 is connected is a heat pump that is used for cooling or heating that uses groundwater heat, and exchanges the heat of the taken groundwater with the refrigerant of the heat pump.

なお、浸透施設24は、要求される揚水能力と注水能力を有し、ヒートポンプの熱交換能力を満足する場合、調整弁10を含めて不要な施設であり、必ずしも必要とするものでない。   The infiltration facility 24 is an unnecessary facility including the regulating valve 10 when it has the required pumping capacity and water injection capacity and satisfies the heat exchange capacity of the heat pump, and is not necessarily required.

次に、上記構成の地下水熱交換装置を使用して行なう地下水熱交換方法について説明する。1本の井戸を使用するこの地下水熱交換装置は、図1、図2に示すように、地中の帯水層21から地下水の揚水と注水を、可動式分離装置4を上下に挟んだ上側室16と下側室15との間で、相互に切り替えながら行なう。   Next, the groundwater heat exchange method performed using the groundwater heat exchange apparatus of the said structure is demonstrated. As shown in FIG. 1 and FIG. 2, this groundwater heat exchange device using one well is composed of a groundwater aquifer 21 for groundwater pumping and water injection, with a movable separator 4 sandwiched vertically. This is performed while switching between the side chamber 16 and the lower chamber 15.

このために、地下水熱交換装置のケーシング1は、地中における帯水層21に、ケーシング1の上スクリーン部2(上側室16)と、可動式分離装置4を介して上側室16の下側に、下スクリーン部3(下側室15)を配置するように、設置される。   For this purpose, the casing 1 of the groundwater heat exchange device is connected to the aquifer 21 in the ground with the upper screen portion 2 (upper chamber 16) of the casing 1 and the lower side of the upper chamber 16 via the movable separation device 4. The lower screen part 3 (lower chamber 15) is disposed in the upper part.

また、この地下水熱交換装置では、下部管6を揚水管または注水管として切り替え、上部管7を注水管または揚水管として切り替えて使用し、下側室15を揚水部または注水部として切り替え、上側室16を注水部または揚水部として切り替えて使用するため、注水部と揚水部を切り替えた場合でも、その揚水量と注水量に変化が生じないように、可動式分離装置4の深度を決定し、下側室15と上側室16を設置することが、地下水熱を長期間安定して利用するために必要となる。   In this groundwater heat exchange device, the lower pipe 6 is switched as a pumping pipe or a water injection pipe, the upper pipe 7 is switched as a water injection pipe or a water pumping pipe, and the lower chamber 15 is switched as a pumping section or a water injection section. 16 is used as a water injection unit or a pumping unit, so that even when the water injection unit and the water pumping unit are switched, the depth of the movable separation device 4 is determined so that the pumping amount and the water injection amount do not change, It is necessary to install the lower chamber 15 and the upper chamber 16 in order to stably use the groundwater heat for a long period of time.

このため、ケーシング1内における可動式分離装置4の位置は、地層状況や帯水層厚、ストレーナ位置、および事前の揚水試験や注水試験などで決定される。そして、可動式分離装置4の上下一方の揚水部から揚水し、地下水熱利用後、他方の注水部に戻すように地下水を循環させ、その際、最適な地下水熱利用が可能な循環水量となるように、可動式分離装置4の上下位置が決定される。   For this reason, the position of the movable separation device 4 in the casing 1 is determined by the formation condition, the aquifer thickness, the strainer position, and a preliminary pumping test or water injection test. And it pumps up from one pumping part of the upper and lower sides of the movable separation apparatus 4, circulates groundwater so that it may return to the other water pouring part after using groundwater heat, and it becomes the amount of circulating water which can use optimal groundwater heat in that case As described above, the vertical position of the movable separation device 4 is determined.

このようにして決定された可動式分離装置4の位置で、地下水熱交換装置の運転が行われ、このような運転時、図1、図2に示すように、ポンプ8の動作により、下部管6または上部管7を通してケーシング1内下部の下側室15または上部の上側室16から、地下水を揚水し、地上のポンプ8からヒートポンプ11に送って、熱交換つまり熱利用を行なう。   The operation of the groundwater heat exchanger is performed at the position of the movable separation device 4 determined in this way. During such operation, the lower pipe is operated by the operation of the pump 8 as shown in FIGS. The ground water is pumped from the lower chamber 15 in the lower part of the casing 1 or the upper upper chamber 16 in the casing 1 through the upper pipe 7 or the upper pipe 7, and is sent from the ground pump 8 to the heat pump 11 for heat exchange, that is, heat utilization.

ヒートポンプ11では、例えば、夏季において、外気温より低い温度の地下水により冷媒を冷却して室内などを冷房し、冬季には外気温より高い温度の地下水により冷媒を暖めて暖房する。そして、熱利用した後の地下水は、調整弁10、流路切替装置9を通して、上部管7または下部管6に送られ、ケーシング1内上部の上側室16または下部の下側室15に注水し、地下水を地中に戻すように運転される。   In the heat pump 11, for example, in summer, the refrigerant is cooled by groundwater having a temperature lower than the outside temperature to cool the room and the like, and in winter, the refrigerant is heated by groundwater having a temperature higher than the outside temperature and heated. Then, the groundwater after heat utilization is sent to the upper pipe 7 or the lower pipe 6 through the regulating valve 10 and the flow path switching device 9, and poured into the upper chamber 16 or the lower lower chamber 15 in the upper part of the casing 1, Driven to return groundwater to the ground.

上記のような地下水循環の運転は、基本的には、定期的に例えば冷暖房の切り替え時に、揚水と注水を、下部管6または上部管7(下側室15と上側室16)との間で相互に切り替えて、実施される。このため、ケーシング1の下部の下スクリーン部3または上部の上スクリーン部2に、地下水中の懸濁物質などは溜まりにくく、スクリーン部における目詰まりは生じにくくなる。   In the operation of the groundwater circulation as described above, basically, for example, when switching between cooling and heating, the pumping and the water injection are performed between the lower pipe 6 or the upper pipe 7 (the lower chamber 15 and the upper chamber 16). It is carried out by switching to. For this reason, suspended substances or the like in the ground water are unlikely to accumulate in the lower screen part 3 or the upper screen part 2 at the lower part of the casing 1, and clogging in the screen part is less likely to occur.

ところで、同じ井戸においては、揚水量(揚水能力)と注水量(注水能力)が同じになることは少なく、通常、揚水量(揚水能力)が注水量(注水能力)に比べて多く、注水量は揚水量より少なくなり、地下水熱利用の循環水量は、この小さい注水量の範囲内で行なわれることとなる。   By the way, in the same well, the pumped volume (pumping capacity) and the injected quantity (pumping capacity) are rarely the same, and usually the pumped volume (pumped capacity) is larger than the injected quantity (pumped capacity). Is less than the amount of pumped water, and the amount of circulating water used for groundwater heat will be within this small amount of water injection.

このような場合、調整弁10を調整して、そこから地下水の一部を浸透施設24に排水するようにし、揚水量から注水量を差し引いた量の地下水を、浸透施設24に流す。これにより、揚水量と注水量の差分の地下水は浸透施設24から地中に浸透し、揚水量と注水量を合わせるように、地下水熱交換装置の運転が行なわれる。これにより、注水量(注水能力)が実質的に増大し、最大揚水量(最大揚水能力)まで熱利用を行なうことが可能となる。   In such a case, the regulating valve 10 is adjusted so that a part of the groundwater is drained to the infiltration facility 24, and an amount of groundwater obtained by subtracting the water injection amount from the pumped amount is allowed to flow to the infiltration facility 24. Thereby, the groundwater of the difference between the pumped water amount and the injected water amount permeates into the ground from the infiltration facility 24, and the groundwater heat exchanger is operated so that the pumped water amount and the injected water amount are matched. Thereby, the amount of water injection (water injection capacity) is substantially increased, and heat can be used up to the maximum water output (maximum water output capacity).

一方、水循環の切替期間が比較的長く、定期的な揚水と注水の切り替え時期の前に、ケーシング1の下スクリーン部3または上スクリーン部2に、帯水層21の地下水中の懸濁物質などが溜まって、目詰まりが生じた場合、揚水量(揚水能力)及び注水量(注水能力)が低下してくる。   On the other hand, the switching period of the water circulation is relatively long, and suspended matter in the groundwater of the aquifer 21 is placed on the lower screen part 3 or the upper screen part 2 of the casing 1 before the regular pumping and pouring time. When clogging occurs and clogging occurs, the amount of pumped water (pumping capacity) and the amount of water poured (pumping capacity) decrease.

このような場合、これらの揚水量または注水量が予め設定された設定値より低下したとき、揚水と注水を下部管6または上部管7(下側室15と上側室16)との間で相互に切り替えて逆洗運転を行なう。   In such a case, when the pumped water amount or the injected water amount falls below a preset value, the pumped water and the injected water are mutually exchanged between the lower pipe 6 or the upper pipe 7 (the lower chamber 15 and the upper chamber 16). Switch over and perform backwash operation.

この逆洗運転は、流路切替装置9を切り替え操作して行ない、流路切替装置9を切り替えると、図1または図2に示すように、ポンプ8の吸入側が上部管7または下部管6に接続され、ポンプ8の吐出側つまり調整弁10の出口ポート側が下部管6または上部管7に接続されるように切り替えられる。このため、ポンプ8の運転により、図1または図2の如く、ケーシング1内上部の上側室16から上部管7を通して、または下側室15から下部管6を通して揚水が行なわれ、ケーシング1内下部の下側室15から下部管6を通して、または上側室16から上部管7を通して注水が行なわれる。これにより、ケーシング1の上スクリーン部2と下スクリーン部3では、それまでとは逆方向に地下水が流れ、その水流により、下スクリーン部3に溜まった帯水層21の地下水中の懸濁物質など除去されて目詰まりが解消され、ケーシング1の上部の上スクリーン部2に溜まった懸濁物質などが除去されてその目詰まりが解消される。   This backwashing operation is performed by switching the flow path switching device 9, and when the flow path switching device 9 is switched, the suction side of the pump 8 is connected to the upper pipe 7 or the lower pipe 6 as shown in FIG. The discharge side of the pump 8, that is, the outlet port side of the regulating valve 10, is switched so as to be connected to the lower pipe 6 or the upper pipe 7. For this reason, as shown in FIG. 1 or FIG. 2, the pump 8 is operated to pump water from the upper chamber 16 in the upper part of the casing 1 through the upper pipe 7 or from the lower chamber 15 through the lower pipe 6. Water is injected from the lower chamber 15 through the lower pipe 6 or from the upper chamber 16 through the upper pipe 7. Thereby, in the upper screen part 2 and the lower screen part 3 of the casing 1, groundwater flows in the opposite direction, and suspended water in the groundwater of the aquifer 21 accumulated in the lower screen part 3 due to the water flow. The clogging is removed by removing the clogging, and the suspended substances accumulated in the upper screen portion 2 at the upper part of the casing 1 are removed to eliminate the clogging.

このように、上記構成の地下水熱交換装置を用いた地下水熱交換方法によれば、下側室15の下スクリーン部3の目詰まり、上側室16の上スクリーン部2の目詰まりが、地下水の逆流により解消され、地下水の逆流によるスクリーン部の逆洗を、定期的にまたは上側室16または下側室15への注水量の低下時などに行なうことにより、地下水熱利用の最大化を図り、地下水熱を利用して効率の良い熱利用や熱交換を行なうことができる。   Thus, according to the groundwater heat exchange method using the groundwater heat exchange apparatus having the above-described configuration, clogging of the lower screen portion 3 of the lower chamber 15 and clogging of the upper screen portion 2 of the upper chamber 16 are caused by reverse flow of groundwater. In order to maximize the utilization of groundwater heat by performing backwashing of the screen portion by backflow of groundwater regularly or when the amount of water injected into the upper chamber 16 or the lower chamber 15 is reduced, etc. Can be used for efficient heat utilization and heat exchange.

また、調整弁10の調整によって、揚水した地下水の一部を浸透施設24に排水するようにし、揚水量から注水量を差し引いた量の地下水を、浸透施設24に流すことにより、注水量(注水能力)を実質的に増大させ、最大揚水量(最大揚水能力)まで熱利用を行なうことができる。   In addition, by adjusting the regulating valve 10, a part of the pumped ground water is drained to the infiltration facility 24, and the amount of water injected (the amount of water injected) is caused to flow through the infiltration facility 24 by subtracting the amount of water injected from the pumped amount. Capacity) can be substantially increased and heat can be utilized up to the maximum yield (maximum pumping capacity).

なお、地下水の水質が悪い場合、ヒートポンプ11内の熱交換用流路などにスケールが堆積し、熱交換の効率が低下する。このような場合、図3に示すように、ヒートポンプ11の前段にスケール除去用の熱交換器12を設置して、熱交換器の熱交換用フィンの表面などにスケールを付着させて、地下水中のスケール成分を除去することができる。   In addition, when the quality of groundwater is bad, a scale accumulates in the heat exchange flow path etc. in the heat pump 11, and the efficiency of heat exchange falls. In such a case, as shown in FIG. 3, a heat exchanger 12 for removing the scale is installed in the front stage of the heat pump 11, and the scale is attached to the surface of the heat exchange fins of the heat exchanger to The scale component of can be removed.

また、上記実施形態では、地下水熱をヒートポンプ11に利用したが、ヒートポンプの他、地下水熱を直接融雪に利用し、或いは地下水熱を冷房に直接使用するフリークーリングにも利用することができる。   Moreover, in the said embodiment, although groundwater heat was utilized for the heat pump 11, in addition to a heat pump, groundwater heat can be directly utilized for snow melting, or it can be utilized also for free cooling which directly uses groundwater heat for cooling.

本発明の一実施形態を示す地下水熱交換装置の断面説明図である。It is a section explanatory view of a groundwater heat exchange device showing one embodiment of the present invention. 逆洗運転時の地下水熱交換装置の断面説明図である。It is a section explanatory view of a groundwater heat exchange device at the time of backwash operation. 他の実施形態を示す地下水熱交換装置の断面説明図である。It is sectional explanatory drawing of the groundwater heat exchange apparatus which shows other embodiment.

符号の説明Explanation of symbols

1 ケーシング
2 上スクリーン部
3 下スクリーン部
4 可動式分離装置
5 圧送用チューブ
6 下部管
7 上部管
8 ポンプ
9 流路切替装置
10 調整弁
11 ヒートポンプ
12 熱交換器
15 下側室
16 上側室
21 帯水層
24 浸透施設
DESCRIPTION OF SYMBOLS 1 Casing 2 Upper screen part 3 Lower screen part 4 Movable separation apparatus 5 Pumping tube 6 Lower pipe 7 Upper pipe 8 Pump 9 Flow path switching device 10 Control valve 11 Heat pump 12 Heat exchanger 15 Lower chamber 16 Upper chamber 21 Aquifer Tier 24 penetration facility

Claims (5)

地中に設置された1本の井戸内に上スクリーン部と下スクリーン部を有したケーシングが挿入され、該上スクリーン部と下スクリーン部内との間に可動式分離装置が上下移動可能に配設され、該可動式分離装置の上側のケーシング内に上側室が形成され、該可動式分離装置の下側のケーシング内に下側室が形成され、該ケーシング内には下部管と上部管が挿入され、該下部管の先端は該可動式分離装置の下側の下側室内に位置し、該上部管の先端は該可動式分離装置の上側の上側室内に位置し、該下部管または該上部管を通して該ケーシング内の地下水を揚水し、熱利用した後の地下水を該ケーシング内の該上部管または下部管を通して地中に戻す地下水熱交換方法であって、
該下部管または上部管を通して該下側室または上側室から揚水し、熱利用後の地下水を、該上部管または下部管を通して該上側室または下側室に注水して地中に戻しているとき、該上側室または下側室への注水量が低下してきた場合または定期的に、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替えて揚水・注水を行ない、
前記可動式分離装置は、前記下部管または上部管を通して前記下側室または上側室から揚水する揚水量と前記上部管または下部管を通して前記上側室または下側室に注水する注水量とが、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替え時に変動しないように、その上下位置を移動して調整することを特徴とする地下水熱交換方法。
A casing having an upper screen portion and a lower screen portion is inserted into one well installed in the ground, and a movable separation device is disposed between the upper screen portion and the lower screen portion so as to be movable up and down. An upper chamber is formed in the upper casing of the movable separation device, a lower chamber is formed in the lower casing of the movable separation device, and a lower pipe and an upper pipe are inserted into the casing. The tip of the lower tube is located in the lower chamber below the movable separator, and the tip of the upper tube is located in the upper chamber above the movable separator, the lower tube or the upper tube A method of exchanging groundwater in the casing through the groundwater, and returning the groundwater after heat utilization to the ground through the upper pipe or the lower pipe in the casing,
When pumping water from the lower chamber or upper chamber through the lower pipe or the upper pipe, and pouring groundwater after use of heat into the upper chamber or lower chamber through the upper pipe or the lower pipe and returning it to the ground, When the amount of water injected into the upper or lower chamber has dropped or periodically, the pumping function of the lower pipe or the upper pipe and the injection function of the upper pipe or the lower pipe are switched to each other to perform pumping / water injection. Yes,
The movable separation device is configured such that the amount of water pumped from the lower chamber or the upper chamber through the lower tube or the upper tube and the amount of water injected into the upper chamber or the lower chamber through the upper tube or the lower tube are the lower pipe. Alternatively , the groundwater heat exchange method is characterized by moving and adjusting the vertical position so that the pumping function of the upper pipe and the injection function of the upper pipe or the lower pipe do not change during switching .
地中に設置された1本の井戸内に上スクリーン部と下スクリーン部を有したケーシングが挿入され、該上スクリーン部と下スクリーン部内との間に可動式分離装置が上下移動可能に配設され、該可動式分離装置の上側のケーシング内に上側室が形成され、該可動式分離装置の下側のケーシング内に下側室が形成され、該ケーシング内には下部管と上部管が挿入され、該下部管の先端は該可動式分離装置の下側の下側室内に位置し、該上部管の先端は該可動式分離装置の上側の上側室内に位置し、該下部管または該上部管を通して該ケーシング内の地下水を揚水し、熱利用した後の地下水を該ケーシング内の該上部管または下部管を通して地中に戻す地下水熱交換方法であって、
該下部管または上部管を通して該下側室または上側室から揚水し、熱利用後の地下水を、該上部管または下部管を通して該上側室または下側室に注水して地中に戻しているとき、該上側室または下側室への注水量が低下してきた場合または定期的に、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替えて揚水・注水を行ない、
前記下側室または上側室から揚水する揚水量に比べ前記上側室または下側室に注水可能な注水量が少ない場合、該揚水量と該注入量の差分の地下水を、熱利用後に、地上に設けた浸透施設に流して地中に浸透させることを特徴とする地下水熱交換方法。
A casing having an upper screen portion and a lower screen portion is inserted into one well installed in the ground, and a movable separation device is disposed between the upper screen portion and the lower screen portion so as to be movable up and down. An upper chamber is formed in the upper casing of the movable separation device, a lower chamber is formed in the lower casing of the movable separation device, and a lower pipe and an upper pipe are inserted into the casing. The tip of the lower tube is located in the lower chamber below the movable separator, and the tip of the upper tube is located in the upper chamber above the movable separator, the lower tube or the upper tube A method of exchanging groundwater in the casing through the groundwater, and returning the groundwater after heat utilization to the ground through the upper pipe or the lower pipe in the casing,
When pumping water from the lower chamber or upper chamber through the lower pipe or the upper pipe, and pouring groundwater after use of heat into the upper chamber or lower chamber through the upper pipe or the lower pipe and returning it to the ground, When the amount of water injected into the upper chamber or the lower chamber has decreased or periodically, the pumping function of the lower pipe or the upper pipe and the injection function of the upper pipe or the lower pipe are switched to each other to perform pumping and water injection,
When the amount of water that can be injected into the upper chamber or the lower chamber is smaller than the amount of water pumped from the lower chamber or the upper chamber, groundwater of the difference between the pumped amount and the injected amount is provided on the ground after heat utilization. A groundwater heat exchange method characterized by flowing into an infiltration facility and infiltrating into the ground.
地中の帯水層に設置された1本の井戸内に上スクリーン部と下スクリーン部を有したケーシングが挿入され、該上スクリーン部と下スクリーン部内との間に可動式分離装置が上下移動可能に配設され、該可動式分離装置の上側のケーシング内に上側室が形成され、該可動式分離装置の下側のケーシング内に下側室が形成され、該ケーシング内には下部管と上部管が挿入され、該下部管の先端は該可動式分離装置の下側の下側室内に位置し、該上部管の先端は該可動式分離装置の上側の上側室内に位置し、該下部管または該上部管を通して該ケーシング内の地下水を揚水し、熱利用した後の地下水を該ケーシング内の該上部管または下部管を通して地中に戻す地下水熱交換装置であって、
該下部管と該上部管の地上部分に流路切替装置が、該下部管と該上部管のポンプ側または熱交換器側と井戸側を相互に切り替えるように接続され、該上部管または該下部管を通して該上側室または該下側室に注水する注水量が低下してきたとき、該下部管または該上部管の地上部を該上部管または該下部管の地上部に切り替えて接続し、該下部管または該上部管の揚水機能と該上部管または下部管の注入機能を相互に切り替えて揚水・注水を行なうことを特徴とする地下水熱交換装置。
A casing having an upper screen portion and a lower screen portion is inserted into one well installed in the underground aquifer, and the movable separator moves up and down between the upper screen portion and the lower screen portion. An upper chamber is formed in an upper casing of the movable separation device, a lower chamber is formed in a lower casing of the movable separation device, and a lower pipe and an upper portion are formed in the casing. A tube is inserted, the tip of the lower tube is located in the lower chamber below the movable separator, the tip of the upper tube is located in the upper chamber above the movable separator, and the lower tube Or a groundwater heat exchanger that pumps groundwater in the casing through the upper pipe and returns the groundwater after heat utilization to the ground through the upper pipe or lower pipe in the casing,
A flow path switching device is connected to the ground portion of the lower pipe and the upper pipe so as to switch between the pump side or the heat exchanger side and the well side of the lower pipe and the upper pipe, and the upper pipe or the lower pipe. When the amount of water injected into the upper chamber or the lower chamber through the pipe decreases, the ground part of the lower pipe or the upper pipe is switched to the ground part of the upper pipe or the lower pipe, and the lower pipe is connected. Alternatively, a groundwater heat exchange device that performs pumping and water injection by switching between the pumping function of the upper pipe and the injection function of the upper pipe or the lower pipe.
前記下部管または上部管の地上部にポンプの吸引側が接続され、該ポンプの吐出側がヒートポンプを通して前記上部管または下部管に接続され、該上部管と下部管の地上部分に前記流路切替装置が揚水と注水の流路を切替可能に接続され、該上部管と下部管の地上部には、該流路切替装置と該ヒートポンプの間に、調整弁が接続され、一方の下側室または上部室の揚水能力に比べ他方の上側室または下側室の注水能力が少ない場合、該調整弁を開き、熱利用後の地下水を、地上に設けた浸透施設に流して地中に浸透させることを特徴とする請求項記載の地下水熱交換装置。 The suction side of the pump is connected to the ground part of the lower pipe or the upper pipe, the discharge side of the pump is connected to the upper pipe or the lower pipe through a heat pump, and the flow path switching device is connected to the ground part of the upper pipe and the lower pipe. The pumping and pouring flow paths are connected to be switchable, and an adjustment valve is connected between the flow path switching device and the heat pump on the ground part of the upper pipe and the lower pipe. When the water injection capacity of the other upper chamber or lower chamber is less than the pumping capacity of the other, the adjustment valve is opened, and the groundwater after use of heat flows through the infiltration facility provided on the ground and penetrates into the ground. The groundwater heat exchanger according to claim 3 . 前記流路切替装置と前記ヒートポンプの間に、スケール除去用の熱交換器が接続されたことを特徴とする請求項記載の地下水熱交換装置。 The groundwater heat exchanger according to claim 4 , wherein a heat exchanger for removing scale is connected between the flow path switching device and the heat pump.
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