• 제목/요약/키워드: GHE : Ground Heat Exchanger

검색결과 20건 처리시간 0.024초

벤토나이트 그라우트의 열물성 측정 및 열물성이 수직 지중열교환기 설계 길이에 미치는 영향 (Thermal Property Measurement of Bentonite-Based Grouts and Their Effects on Design Length of Vertical Ground Heat Exchanger)

  • 손병후
    • 한국지열·수열에너지학회논문집
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    • 제15권2호
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    • pp.1-9
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    • 2019
  • In a ground-source heat pump (GSHP) system, a vertical ground heat exchanger (GHE) is widely accepted due to a higher thermal performance. In the vertical GHE, grout (also called grouting material) plays an important role in the heat transfer performance and the initial installation cost of the GHE. Bentonite-based grout has been used in practice because of its high swelling potential and low hydraulic conductivity. This study evaluated the thermo-physical properties of the bentonite-based grouts through lab-scale measurements. In addition, we conducted performance simulation to analyze the effect of mixed ratio of grouts on the design length and thermal performance of the vertical GHE. The simulation results show that thermally-enhanced grouts improve the heat transfer performance of the vertical GHE and thus reduce the design length of GHE pipe.

하이브리드 지중열교환기 적용 지열 히트펌프 시스템의 난방 성능 분석 (Heating Performance Analysis of Ground-Source Heat Pump (GSHP) System using Hybrid Ground Heat Exchanger (HGHE))

  • 손병후
    • 한국지열·수열에너지학회논문집
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    • 제16권3호
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    • pp.8-16
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    • 2020
  • This paper presents the heating performance analysis results of a ground-source heat pump (GSHP) system using hybrid ground heat exchanger (HGHE). In this paper, the HGHE refers to the ground heat exchanger (GHE) using both a surface water heat exchanger (SWHE) and a vertical GHE. In order to evaluate the system performance, we installed monitoring sensors for measuring temperatures and power consumption, and then measured operation data with 4 different load burdened ratios of the HGHE. During the entire measurement period, the average heating capacity of the heat pump was 37.3 kW. In addition, the compressor of the heat pump consumed 9.4 kW of power, while the circulating pump of the HGHE used 6.7 kW of power. Therefore, the average heating coefficient of performance (COP) for the heat pump unit was 4.0, while the system including the circulating pump was 2.7. Finally, the parallel use of SWHE and VGHE was beneficial to the system performance; however, further researches are needed to optimize the design data for various load ratios of the HGHE.

하이브리드 지중열교환기 적용 히트펌프 시스템의 냉방 성능 분석 (Cooling Performance Analysis of Ground-Source Heat Pump (GSHP) System with Hybrid Ground Heat Exchanger (HGHE))

  • 손병후
    • 한국지열·수열에너지학회논문집
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    • 제14권4호
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    • pp.43-52
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    • 2018
  • This paper presents the cooling performance analysis results of a ground-source heat pump (GSHP) system using hybrid ground heat exchanger (HGHE). In this paper, the HGHE refers to the ground heat exchanger (GHE) using both a vertical GHE and a surface water heat exchanger (SWHE). In order to evaluate the system performance, we installed monitoring sensors for measuring temperatures and power consumption, and then measured operation data with 4 different load burdened ratios of the hybrid GHE, Mode 1~Mode 4. The measurement results show that the system with HGHE mainly operates in Mode 1 and Mode 2 over the entire measurement period. The average cooling coefficient of performance (COP) for heat pump unit was 5.18, while the system was 2.79. In steady state, the heat pump COP was slightly decreased with an increase of entering source temperature. In addition, the parallel use of SWHE and VGHE was beneficial to the system performance; however, further research are needed to optimize the design data for various load ratios of the HGHE.

지중열전도도 측정과 지중열교환기의 열확산 특성 분석 (Measurement of Ground Thermal Conductivity and Characteristics of Thermal Diffusion by the Ground Heat Exchanger)

  • 정영만;구경민;황유진;장세용;이영호;이동혁;이재근
    • 설비공학논문집
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    • 제20권11호
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    • pp.739-745
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    • 2008
  • This paper presents the measurement of ground thermal conductivity and the characteristics of ground thermal diffusion by a ground heat exchanger(GHE). A borehole is installed to a depth of 175 m with a diameter of 150 mm. To analyze the thermal diffusion property of the GHE, thermocouples are installed under the ground near the GHE. The outdoor temperature, the ground temperature, and the water temperature of the GHE are monitored for evaluating the characteristics of ground thermal diffusion. The ground thermal conductivity is evaluated by the in-situ thermal response tester and the line source model. It is found to be 3.08 W/$m^{\circ}C$ in this study. The ground temperature is greatly dependent on the outdoor temperature from the ground surface to 2.5 m in depth and is stable below 10 m in depth. The surface temperature of the GHE varies as a function of the temperature of circulating water. But the ground temperature at 1.5 m far from the GHE is not changed in accordance with the temperature of circulating water.

지표수 열교환기의 용량과 적용 효과에 대한 설계 인자의 영향 (Impact of Design Parameters on Length and Application Effect of Surface Water Heat Exchanger(SWHE))

  • 손병후;민경천
    • 대한기계학회논문집 C: 기술과 교육
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    • 제4권1호
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    • pp.49-56
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    • 2016
  • 본 연구에서는 설계 인자가 지표수 열교환기 길이에 미치는 영향을 분석하였다. 또한 수직 밀폐형 지중열교환기와 지표수 열교환기를 같이 이용한다고 가정한 후, 지중 순환수의 온도 변화를 분석하였다. 지표수 열교환기 출구 온도와 연못 온도의 차이를 크게 하면, 열교환기 파이프 길이는 줄어들었다. 아울러 연못 온도가 높을수록 파이프 길이는 감소하지만, 파이프 바깥지름의 영향은 상대적으로 적었다. 또한 파이프 두께가 얇을수록 전도 열전달에서 열저항의 영향이 감소하기 때문에 파이프 길이는 감소하였다. 수직 밀폐형 시스템에 지표수 열교환기를 추가 적용하면, 지중열교환기 순환수 온도는 시간이 지날수록 감소하였다.

밀폐형과 개방형이 결합된 복합지열시스템의 지중열교환기 성능 분석 (Performance Analysis of Ground Heat Exchanger in Combined Well and Open-Closed Loops Geothermal (CWG) System)

  • 박영윤;송재용;이근춘;김기준;목종구;박유철
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제22권5호
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    • pp.23-29
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    • 2017
  • This study was conducted to evaluate performance of geothermal heat exchanger (GHE) in the combined well and open-closed loops geothermal (CWG) systems. The CWG systems were designed to combine open loop geothermal heat pumps and closed loop geothermal heat pumps for high energy efficiency. GHE of the CWG systems could be installed at pumping wells for agricultural usage. To get optimal heat exchange capacity of GHE of the CWG systems, 4 GHEs with various materials and apertures were tested at laboratory scale. Polyethylene (PE) and stainless steel (STS) were selected as GHE materials. The maximum heat exchange capacity of GHEs were estimated to be in the range of 33.0~104 kcal/min. The heat exchange capacity of STS GHEs was 2.4~3.2 times higher than that of PE GHE. The optimal cross section area of GHE and flow rate of circulating water of GHE were estimated to be $2,500mm^2$ and 113 L/min, respectively. For more complicated GHE of the CWG systems, it is necessary to evaluate GHEs at various scales.

수평 직선형 지중 열교환기 설계 방안 제안 (Suggestions of Design Method for a Horizontal Straight Ground Heat Exchanger)

  • 김민준;이승래;윤석;전준서
    • 한국지열·수열에너지학회논문집
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    • 제12권4호
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    • pp.1-7
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    • 2016
  • This paper presents a design method for the horizontal straight ground heat exchanger (GHE) based on the Kavanaugh design method. In order to examine suitability of the suggested design method, a horizontal line type GHE was installed in a steel box of which the size was $5m{\times}1m{\times}1m$ filled with dried Joomunjin standard, and a thermal response test (TRT) was conducted for 21 hours. A numerical analysis was performed for a simulation of a peak month operation and for its verification by finite element method (FEM). According to the simulation results, it was concluded that the suggested design method for a horizontal straight GHE is reliable for the estimation of a design length.

수평형 지중 열교환기 시스템의 시공비 및 영향인자 분석 (Analysis of Construction Cost and Influence Factors on Horizontal Ground Heat Exchangers)

  • 윤석;이승래
    • 신재생에너지
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    • 제10권3호
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    • pp.6-13
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    • 2014
  • This paper presents a computational study of thermal performance and construction cost of horizontal ground heat exchangers (GHEs). GLD (ground loop design) simulations of various type of GHEs were carried out. Construction costs were also calculated based on standard estimating, and compared with vertical type GHE system. Besides that, dummy regression analysis was conducted to study the influence of design parameters on the simulation results in horizontal ground heat exchanger system.

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.

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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