• 제목/요약/키워드: Geothermal heat exchanger

검색결과 201건 처리시간 0.026초

열교환기의 흐름개선을 통한 고효율 지열 히트펌프 시스템에 관한 연구 (A Study on High Efficiency Geothermal Heat Pump System by Improving Flow of Heat Exchanger)

  • 안성환;최재상;김상범;안형환
    • 한국가스학회지
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    • 제21권4호
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    • pp.42-46
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    • 2017
  • 화석연료의 무분별한 사용으로 인한 이산화탄소의 대기 중 방출은 지구의 연평균 기온을 상승시키는 원인으로 작용하고 있다. 이를 해결하기 위한 대체에너지로써 지열은 연중 일정한 온도를 갖는 무한자원이다. 지열에너지를 널리 보급하기 위해서는 히트펌프의 성능과 지중열교환기의 열교환 효율이 매우 중요하다. 이에 본 연구는 히트펌프의 성능을 증가시키기 위해 팽창변을 이중으로 구성하고 지중열교환기의 열교환 효율을 높이기 위해 입출관과 유입관 사이에 간격유지부재를 사용하여 실험하였다. 실험한 결과 팽창변을 이중으로 구성하였을 때 냉난방 능력이 최대 11.4%가 증가됨을 얻을 수 있었고, 간격유지부재를 사용 시 열교환 효율이 17.5% 향상되었다. 이러한 결과를 토대로 지열시스템의 설치 시 히트펌프의 성능과 지중열교환기의 열교환 효율의 상승으로 인해 설치비용이 많이 절감될 것으로 판단된다.

지하수 열원 복수정 지열 열펌프 시스템의 성능에 관한 실험적 연구 (An Experimental Study of Ground Water Source Two Well Type Geothermal Heat Pump System)

  • 임효재;권정태;김창업;공형진;박성구
    • 설비공학논문집
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    • 제21권8호
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    • pp.468-474
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    • 2009
  • Ground water source heat pump system is the oldest one of the ground source heat pump systems. Despite of this, little formal design information has been available until recently. The important design parameters for open system are the identification of optimum ground water flow, heat exchanger selection and well pump. In this study, the capacity of 50 RT system of two well type ground water heat pump system was used. As a result, static water level was -7 m and the level during the heating operation was -32 m, cooling operation was -40 m. The initial static water level recovered within 48 hrs. The temperature of ground water is $15.6^{\circ}C$ for heating season and $16.2^{\circ}C$ for cooling season and does not depend on the outdoor temperature. Operation efficiency of the system shows that, COP 3.1 for heating and COP 4.2 for cooling.

외기 온도 제어 방식을 적용한 지열 히트펌프 시스템의 냉방 성능 분석 (Cooling Performance Analysis of Ground-Source Heat Pump System with Capacity Control with Outdoor Air Temperature)

  • 손병후
    • 한국지열·수열에너지학회논문집
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    • 제17권4호
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    • pp.68-78
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    • 2021
  • In order to solve the increasing deterioration of the energy shortage problem, ground-source heat pump (GSHP) systems have been widely installed. The control method is a significant component for maintaining the long-term performance and for reducing operation cost of GSHP systems. This paper presents the measurement and analysis results of the cooling performance of a GSHP system using capacity control with outdoor air temperature. For this, we installed monitoring equipments including sensors for measuring temperature, flow rate and power consumption, and then monitored operation parameters from July 9, 2021 to October 2, 2021. From measurement results, we analyze the effect of capacity control with outdoor air temperature on the cooling performance of the system. The average performace factor (PF) of the heat pump was 6.95, while the whole system was 5.54 over the measurement period. Because there was no performance data of the existing GSHP system, it was not possible to directly compare the existing control method and the outdoor air temperature method. However, it is expected that the performance of the entire system will be improved by adjusting the temperature of cold water produced by the heat pump, that is, the temperature of cold water on the load side according to the outside air temperature.

이중관형 지중열교환기 구성에 따른 현장 열성능 평가 (Evaluation on in-situ Thermal Performance of Coaxial-type Ground Heat Exchanger with Different Configurations)

  • 이석재;정현석;오광근;박상우;최항석
    • 한국지열·수열에너지학회논문집
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    • 제15권4호
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    • pp.8-15
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    • 2019
  • In order to design coaxial-type Ground Heat Exchangers (GHEXs) efficiently, the effect of components (i.e, heat exchange pipe and grouting material) on the thermal performance of coaxial-type GHEXs should be identified in advance. In this paper, three coaxial-type GHEXs with different configurations were constructed in a test bed. Then, the effect of heat exchange pipes and grouting materials on the thermal performance of coaxial-type GHEXs was investigated by performing in-situ thermal response tests (TRTs) and thermal performance tests (TPTs). In the TRTs, the effective thermal conductivities of the coaxial-type GHEXs with concrete grouting and STS pipes were improved by 6.15 and 22.7%, respectively compared to those of bentonite grouting and HDPE pipes. Additionally, in the TPTs, the use of concrete grouting and STS pipes in the coaxial-type GHEXs enhanced the in-situ thermal performance by 15 and 33.8%, respectively.

Energy Lining Segment 적용성 평가를 위한 기초연구 (Basic Study for Evaluation on Application of Energy Lining Segment)

  • 한상현;박시삼
    • 한국지반신소재학회논문집
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    • 제12권4호
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    • pp.143-147
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    • 2013
  • 지열 에너지는 지구에 저장된 활용하기 쉬운 재생에너지 이며, 열교환 배관 시스템을 통해 수집될 수 있다. 본 연구에서는 터널 주변 라이닝에 지열 에너지를 포집할 수 있는 열교환 파이프 루프를 간편하게 설치할 수 있는 시스템을 개발하였다. 터널 세그먼트에 결합된 열 교환 파이프 루프 시스템은 수송 유체 순환을 통해, 지중 주변의 열을 인근 구조물 또는 지역의 냉난방 열원으로 사용할 수 있다. 터널 세그먼트에 통합 연결된 열 교환 파이프 루프 시스템을 에너지 라이닝 세그먼트(Energy Lining Segment)이라고 명하도록 하겠다. 유럽에서는 터널 라이닝에 열 교환 파이프 루프 시스템을 통합한 수차례의 사례가 있다. 본 연구에서는 에너지 라이닝 세그먼트에 대한 적용성 평가를 위해, 독일 사례와 유럽 도시에 적용된 사례를 조사해 보았다. 또한, 에너지 라이닝 세그먼트의 열 전도특성을 파악하기 위해, 전산유체해석(CFD)을 수행해 보았다.

시설원예용 수평형 지열히트펌프 시스템 실증연구 (A Study on Field test of the Horizontal Ground Source Heat Pump for Greenhouse)

  • 박용정;강신형
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2007년도 추계학술대회 논문집
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    • pp.505-510
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    • 2007
  • Greenhouses should be heated during nights and co Id days in order to fit growth conditions in greenhouses. Ground source heat pump(GSHP) or geothermal heat pump system(GHPs) is recognized to be outstanding heating and cooling system. Horizontal GSHP system is typically less expensive than vertical GSHP system but requires wide ground area to bury ground heat exchanger (GHE). In this study, a horizontal GSHP system with thermal storage tank was installed in greenhouse and investigated as performance characteristics. In the daytime, heating load of greenhouse is very small or needless because solar radiation increases inner air temperature. The results of study showed that the heating coefficient of performance of the heat pump($COP_h$) was 2.9 and the overall heating coefficient of performance of the system($COP_{sys}$) was 2.4. Heating energy cost was saved 76% using the horizontal GSHP system with thermal storage tank.

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시설원예용 수평형 지열 히트펌프 시스템의 성능분석 (Performance Analysis of the Horizontal Ground Source Heat Pump for Greenhouse)

  • 박용정;강신형
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2007년도 동계학술발표대회 논문집
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    • pp.447-452
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    • 2007
  • Greenhouses should be heated during nights and cold days in order to fit growth conditions in greenhouses. Ground source heat pump(GSHP) or geothermal heat pump system(GHPs) is recognized to be outstanding heating and cooling system. Horizontal GSHP system is typically less expensive than vertical GSHP system but requires wide ground area to bury ground heat exchanger(GHE). In this study, a horizontal GSHP system with thermal storage tank was installed in greenhouse and investigated as performance characteristics. In the daytime, heating load of greenhouse is very small or needless because solar radiation increases inner air temperature. The results of study showed that the heating coefficient of performance of the heat pump ($COP_h$) was 2.9 and the overall heating coefficient of performance of the system($COP_{sys}$) was 2.4. Heating energy cost was saved 76% using the horizontal GSHP system with thermal storage tank.

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건물구조체를 이용한 수평형 지열시스템의 시공법에 관한 연구 (Study on construction method of horizontal ground heat pump system using the building structure)

  • 채호병;남유진
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2013년도 추계 학술논문 발표대회
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    • pp.139-140
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    • 2013
  • Ground source heat pump systems can achieve the energy saving of building and reduce CO2 emission by utilizing stable ground temperature. However, they have many barriers such as high cost of installation, incompletion of design tool, lack of recognition as heating and cooling systems. In order to solve the problems, the building integrated geothermal system (BIGS) developed by several researches which use building foundation as a heat exchanger. In order to establish the optimum design tool of BIGS with the horizontal heat exchanger, the prediction method of ground heat exchange rate developed with numerical simulation model. In this study, the economic analysis for BIGS was conducted based on simulation results and the optimal design method was suggested. As a result, it was found that the case of 32 A, piping space 0.3 m, piping deep 0.5 m and flow rate 9.52 L/min was the best case as 50.1 W/m2 of heat exchange rate. In this case the initial cost was reduced to 115 million won.

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지중 열교환기 종류에 따른 성능 및 시공비 분석 (Performance and Initial Cost Analysis on Various Type of Ground Heat Exchangers)

  • 이승래;윤석;조남현;김민준;고규현
    • 한국지열·수열에너지학회논문집
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    • 제10권1호
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    • pp.14-19
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    • 2014
  • This paper presents a preliminary experimental and computational study on the evaluation of thermal performance and initial cost of U, W and coil type ground heat exchangers (GHEs). Heat exchange rate of the individual GHE was evaluated from the thermal resperformance test (TPT) results, and the construction cost was also calculated. For more information, GLD (ground loop design) simulations of various piping size are carried out. From simulation results, the optimized GHE was suggested based on the thermal performance and construction cost as well. Besides, the required borehole length of U and W type GHEs was calculated considering a real construction condition using GLD program.

지열히트펌프 시스템의 국내 적용현황 조사 및 분석 (Investigation and Analysis on the present state of Geothermal Source Heat Pump System Applied in Korea)

  • 최미영;고명진;김용식;박진철;이언구
    • 설비공학논문집
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    • 제21권5호
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    • pp.267-272
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    • 2009
  • This study aims to investigate and analyze the present state of ground source heat pump(GSHP) system applied in Korea. It is based on the statistic from the New and Renewable Energy Center in Korea and construction results of the professional companies registered to the center. The research items were installed area, installed year, building use, ground heat exchange type and heat exchanger type of the pump. According to the result of investigation, the using GSHP system have been increasing steadily as the space heating and cooling system in a building. The capacity of this system is also becoming lager based on technical and economical feasibility analysis about the system since GSHP system first introduced in 2000.