Heat transfer analysis of U-type deep borehole heat exchangers of geothermal energy

The paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, the circulating fluid flows through every borehole in turn and therefore more underground heat can be absorbed. T...

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Veröffentlicht in:Energy and buildings 2021-04, Vol.237, p.110794, Article 110794
Hauptverfasser: Zhang, Wenke, Wang, Jianhua, Zhang, Fangfang, Lu, Wei, Cui, Ping, Guan, Chunmin, Yu, Mingzhi, Fang, Zhaohong
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container_start_page 110794
container_title Energy and buildings
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creator Zhang, Wenke
Wang, Jianhua
Zhang, Fangfang
Lu, Wei
Cui, Ping
Guan, Chunmin
Yu, Mingzhi
Fang, Zhaohong
description The paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, the circulating fluid flows through every borehole in turn and therefore more underground heat can be absorbed. The boreholes are called as descending, horizontal and ascending boreholes, and the heat transfer tubes in the corresponding boreholes are called as descending, horizontal and ascending tubes, respectively. The backfill grout is set between borehole wall and the corresponding tube. The characteristics and the working principles of the U-type DBHE are discussed. The governing equations of heat transfer are established, and the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium, and the pursuit method is taken into consideration to obtain the temperatures used in the node equations. In addition, An actual project that uses U-type DBHE to heat the buildings was investigated. The research work can promote the further development and application of medium-deep geothermal heating technology. [Display omitted] •Describe the structural composition and working principle of borehole heat exchanger.•Explain the governing equations and the corresponding conditions.•Establish the node equations for fluid of tubes.•Establish the node equations for underground rock soil.•Investigate the change of important parameters of one actual project. This paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, and presents the heat exchanger’s characteristics and the working principles. Compared with the single DBHE, the ability of the U-type DBHE to extract underground energy is better, and therefore a higher heating load of buildings can be assumed. First, the preconditions are explained, and the governing equations of heat transfer are established. Second, the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium. In addition, the pursuit method is taken into consideration to obtain the temperatures used in the node equations. Accordingly, the temperatures of the different locations in both the tubes and the underground medium can be acquired. Finally, one actual proj
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The boreholes are called as descending, horizontal and ascending boreholes, and the heat transfer tubes in the corresponding boreholes are called as descending, horizontal and ascending tubes, respectively. The backfill grout is set between borehole wall and the corresponding tube. The characteristics and the working principles of the U-type DBHE are discussed. The governing equations of heat transfer are established, and the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium, and the pursuit method is taken into consideration to obtain the temperatures used in the node equations. In addition, An actual project that uses U-type DBHE to heat the buildings was investigated. The research work can promote the further development and application of medium-deep geothermal heating technology. [Display omitted] •Describe the structural composition and working principle of borehole heat exchanger.•Explain the governing equations and the corresponding conditions.•Establish the node equations for fluid of tubes.•Establish the node equations for underground rock soil.•Investigate the change of important parameters of one actual project. This paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, and presents the heat exchanger’s characteristics and the working principles. Compared with the single DBHE, the ability of the U-type DBHE to extract underground energy is better, and therefore a higher heating load of buildings can be assumed. First, the preconditions are explained, and the governing equations of heat transfer are established. Second, the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium. In addition, the pursuit method is taken into consideration to obtain the temperatures used in the node equations. Accordingly, the temperatures of the different locations in both the tubes and the underground medium can be acquired. Finally, one actual project is studied based on the models and the corresponding equations; the nominal heat absorption is analyzed, and the factors that exert an influence on it are discussed; the inlet and outlet temperatures of the circulating fluid in vertical and horizontal boreholes are investigated, and then, the temperatures of the underground medium at typical locations near the DBHEs are explored. The research results for the U-type DBHEs are beneficial to the improvement of heat transfer models of medium-deep geothermal energy, and they promote the development of heating technology used in geothermal energy applications.</description><identifier>ISSN: 0378-7788</identifier><identifier>EISSN: 1872-6178</identifier><identifier>DOI: 10.1016/j.enbuild.2021.110794</identifier><language>eng</language><publisher>Lausanne: Elsevier B.V</publisher><subject>Boreholes ; Computational fluid dynamics ; Deep borehole heat exchanger ; Difference method ; Energy ; Finite difference method ; Geothermal energy ; Geothermal power ; Governing equation ; Heat exchangers ; Heat transfer ; Heating load ; Mathematical models ; Medium-deep geothermal energy ; Node equation ; Numerical methods ; Tubes ; U-type</subject><ispartof>Energy and buildings, 2021-04, Vol.237, p.110794, Article 110794</ispartof><rights>2021</rights><rights>Copyright Elsevier BV Apr 15, 2021</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c337t-2bdf31cd4f54cb09b91b05f18c38621f432ec498c526d51106a4b866a4fbbe9d3</citedby><cites>FETCH-LOGICAL-c337t-2bdf31cd4f54cb09b91b05f18c38621f432ec498c526d51106a4b866a4fbbe9d3</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://www.sciencedirect.com/science/article/pii/S0378778821000785$$EHTML$$P50$$Gelsevier$$H</linktohtml><link.rule.ids>314,776,780,3537,27901,27902,65306</link.rule.ids></links><search><creatorcontrib>Zhang, Wenke</creatorcontrib><creatorcontrib>Wang, Jianhua</creatorcontrib><creatorcontrib>Zhang, Fangfang</creatorcontrib><creatorcontrib>Lu, Wei</creatorcontrib><creatorcontrib>Cui, Ping</creatorcontrib><creatorcontrib>Guan, Chunmin</creatorcontrib><creatorcontrib>Yu, Mingzhi</creatorcontrib><creatorcontrib>Fang, Zhaohong</creatorcontrib><title>Heat transfer analysis of U-type deep borehole heat exchangers of geothermal energy</title><title>Energy and buildings</title><description>The paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, the circulating fluid flows through every borehole in turn and therefore more underground heat can be absorbed. The boreholes are called as descending, horizontal and ascending boreholes, and the heat transfer tubes in the corresponding boreholes are called as descending, horizontal and ascending tubes, respectively. The backfill grout is set between borehole wall and the corresponding tube. The characteristics and the working principles of the U-type DBHE are discussed. The governing equations of heat transfer are established, and the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium, and the pursuit method is taken into consideration to obtain the temperatures used in the node equations. In addition, An actual project that uses U-type DBHE to heat the buildings was investigated. The research work can promote the further development and application of medium-deep geothermal heating technology. [Display omitted] •Describe the structural composition and working principle of borehole heat exchanger.•Explain the governing equations and the corresponding conditions.•Establish the node equations for fluid of tubes.•Establish the node equations for underground rock soil.•Investigate the change of important parameters of one actual project. This paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, and presents the heat exchanger’s characteristics and the working principles. Compared with the single DBHE, the ability of the U-type DBHE to extract underground energy is better, and therefore a higher heating load of buildings can be assumed. First, the preconditions are explained, and the governing equations of heat transfer are established. Second, the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium. In addition, the pursuit method is taken into consideration to obtain the temperatures used in the node equations. Accordingly, the temperatures of the different locations in both the tubes and the underground medium can be acquired. Finally, one actual project is studied based on the models and the corresponding equations; the nominal heat absorption is analyzed, and the factors that exert an influence on it are discussed; the inlet and outlet temperatures of the circulating fluid in vertical and horizontal boreholes are investigated, and then, the temperatures of the underground medium at typical locations near the DBHEs are explored. The research results for the U-type DBHEs are beneficial to the improvement of heat transfer models of medium-deep geothermal energy, and they promote the development of heating technology used in geothermal energy applications.</description><subject>Boreholes</subject><subject>Computational fluid dynamics</subject><subject>Deep borehole heat exchanger</subject><subject>Difference method</subject><subject>Energy</subject><subject>Finite difference method</subject><subject>Geothermal energy</subject><subject>Geothermal power</subject><subject>Governing equation</subject><subject>Heat exchangers</subject><subject>Heat transfer</subject><subject>Heating load</subject><subject>Mathematical models</subject><subject>Medium-deep geothermal energy</subject><subject>Node equation</subject><subject>Numerical methods</subject><subject>Tubes</subject><subject>U-type</subject><issn>0378-7788</issn><issn>1872-6178</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2021</creationdate><recordtype>article</recordtype><recordid>eNqFkE1LxDAURYMoOI7-BCHgujUfTZquRAZ1hAEXOuuQpC_Tlk5bk444_96Ode_mvc25F-5B6JaSlBIq75sUOnuo2zJlhNGUUpIX2RlaUJWzRNJcnaMF4blK8lypS3QVY0MIkSKnC_S-BjPiMZguegjYdKY9xjri3uNtMh4HwCXAgG0foOpbwNUJh29XmW4H4ZfbQT9WEPamxdBB2B2v0YU3bYSbv79E2-enj9U62by9vK4eN4njPB8TZkvPqSszLzJnSWELaonwVDmuJKM-4wxcVignmCzFtEqazCo5XW8tFCVforu5dwj95wHiqJv-EKYFUTNBJeMF5WKixEy50McYwOsh1HsTjpoSffKnG_3nT5_86dnflHuYczBN-Koh6Ohq6ByUdQA36rKv_2n4AYIoe9Q</recordid><startdate>20210415</startdate><enddate>20210415</enddate><creator>Zhang, Wenke</creator><creator>Wang, Jianhua</creator><creator>Zhang, Fangfang</creator><creator>Lu, Wei</creator><creator>Cui, Ping</creator><creator>Guan, Chunmin</creator><creator>Yu, Mingzhi</creator><creator>Fang, Zhaohong</creator><general>Elsevier B.V</general><general>Elsevier BV</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7ST</scope><scope>8FD</scope><scope>C1K</scope><scope>F28</scope><scope>FR3</scope><scope>KR7</scope><scope>SOI</scope></search><sort><creationdate>20210415</creationdate><title>Heat transfer analysis of U-type deep borehole heat exchangers of geothermal energy</title><author>Zhang, Wenke ; Wang, Jianhua ; Zhang, Fangfang ; Lu, Wei ; Cui, Ping ; Guan, Chunmin ; Yu, Mingzhi ; Fang, Zhaohong</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c337t-2bdf31cd4f54cb09b91b05f18c38621f432ec498c526d51106a4b866a4fbbe9d3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2021</creationdate><topic>Boreholes</topic><topic>Computational fluid dynamics</topic><topic>Deep borehole heat exchanger</topic><topic>Difference method</topic><topic>Energy</topic><topic>Finite difference method</topic><topic>Geothermal energy</topic><topic>Geothermal power</topic><topic>Governing equation</topic><topic>Heat exchangers</topic><topic>Heat transfer</topic><topic>Heating load</topic><topic>Mathematical models</topic><topic>Medium-deep geothermal energy</topic><topic>Node equation</topic><topic>Numerical methods</topic><topic>Tubes</topic><topic>U-type</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Zhang, Wenke</creatorcontrib><creatorcontrib>Wang, Jianhua</creatorcontrib><creatorcontrib>Zhang, Fangfang</creatorcontrib><creatorcontrib>Lu, Wei</creatorcontrib><creatorcontrib>Cui, Ping</creatorcontrib><creatorcontrib>Guan, Chunmin</creatorcontrib><creatorcontrib>Yu, Mingzhi</creatorcontrib><creatorcontrib>Fang, Zhaohong</creatorcontrib><collection>CrossRef</collection><collection>Environment Abstracts</collection><collection>Technology Research Database</collection><collection>Environmental Sciences and Pollution Management</collection><collection>ANTE: Abstracts in New Technology &amp; Engineering</collection><collection>Engineering Research Database</collection><collection>Civil Engineering Abstracts</collection><collection>Environment Abstracts</collection><jtitle>Energy and buildings</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Zhang, Wenke</au><au>Wang, Jianhua</au><au>Zhang, Fangfang</au><au>Lu, Wei</au><au>Cui, Ping</au><au>Guan, Chunmin</au><au>Yu, Mingzhi</au><au>Fang, Zhaohong</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Heat transfer analysis of U-type deep borehole heat exchangers of geothermal energy</atitle><jtitle>Energy and buildings</jtitle><date>2021-04-15</date><risdate>2021</risdate><volume>237</volume><spage>110794</spage><pages>110794-</pages><artnum>110794</artnum><issn>0378-7788</issn><eissn>1872-6178</eissn><abstract>The paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, the circulating fluid flows through every borehole in turn and therefore more underground heat can be absorbed. The boreholes are called as descending, horizontal and ascending boreholes, and the heat transfer tubes in the corresponding boreholes are called as descending, horizontal and ascending tubes, respectively. The backfill grout is set between borehole wall and the corresponding tube. The characteristics and the working principles of the U-type DBHE are discussed. The governing equations of heat transfer are established, and the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium, and the pursuit method is taken into consideration to obtain the temperatures used in the node equations. In addition, An actual project that uses U-type DBHE to heat the buildings was investigated. The research work can promote the further development and application of medium-deep geothermal heating technology. [Display omitted] •Describe the structural composition and working principle of borehole heat exchanger.•Explain the governing equations and the corresponding conditions.•Establish the node equations for fluid of tubes.•Establish the node equations for underground rock soil.•Investigate the change of important parameters of one actual project. This paper describes a U-type deep borehole heat exchanger (DBHE) containing both two vertical boreholes and one horizontal boreholes for the application of medium-deep geothermal energy, and presents the heat exchanger’s characteristics and the working principles. Compared with the single DBHE, the ability of the U-type DBHE to extract underground energy is better, and therefore a higher heating load of buildings can be assumed. First, the preconditions are explained, and the governing equations of heat transfer are established. Second, the numerical finite difference methods are employed to build the node equations for both the fluids in the heat transfer tubes and the underground medium. In addition, the pursuit method is taken into consideration to obtain the temperatures used in the node equations. Accordingly, the temperatures of the different locations in both the tubes and the underground medium can be acquired. Finally, one actual project is studied based on the models and the corresponding equations; the nominal heat absorption is analyzed, and the factors that exert an influence on it are discussed; the inlet and outlet temperatures of the circulating fluid in vertical and horizontal boreholes are investigated, and then, the temperatures of the underground medium at typical locations near the DBHEs are explored. The research results for the U-type DBHEs are beneficial to the improvement of heat transfer models of medium-deep geothermal energy, and they promote the development of heating technology used in geothermal energy applications.</abstract><cop>Lausanne</cop><pub>Elsevier B.V</pub><doi>10.1016/j.enbuild.2021.110794</doi></addata></record>
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ispartof Energy and buildings, 2021-04, Vol.237, p.110794, Article 110794
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1872-6178
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source Elsevier ScienceDirect Journals
subjects Boreholes
Computational fluid dynamics
Deep borehole heat exchanger
Difference method
Energy
Finite difference method
Geothermal energy
Geothermal power
Governing equation
Heat exchangers
Heat transfer
Heating load
Mathematical models
Medium-deep geothermal energy
Node equation
Numerical methods
Tubes
U-type
title Heat transfer analysis of U-type deep borehole heat exchangers of geothermal energy
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