• Title/Summary/Keyword: Ground thermal conductivity

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An Empirical application of high-performance cement grout for ground heat exchanger (지중열교환기용 고성능 시멘트 그라우트 실증 적용)

  • Yang, Hee-Jung;Lee, Dong-Chul;Jeon, Joong-Kyu;Seo, Shin-Seok;Choi, Yong-Min
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.05a
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    • pp.201.1-201.1
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    • 2011
  • Ground heat exchanger is the most important part which than 14% of the cost of construction and the performance of Ground heat exchanger is depended on it. Grout is inserted into the hole to the ground fixed and serves to enhance the thermal conductivity. So the research and development is needed. We were using cement grout. The result of the test thermal conductivity is 3.14 W/mK. It is much better than the existing grout is the thermal conductivity. The developed materials was examined by applying the grout in the field.

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Thermal Conductivity Enhancement of Bentonite Grout Using Silica Sands (실리카샌드 첨가에 의한 벤토나이트 그라우트의 열전도도 증가)

  • Sohn, Byong-Hu
    • Proceedings of the SAREK Conference
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    • 2006.06a
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    • pp.713-718
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    • 2006
  • This paper concerns the measurement of thermal conductivity of grouting materials for ground loop heat exchanger. A thermal conductivity meter, QTM-500 based on modified transient hot wire method was used to measure the thermal conductivity of neat bentonite and mixtures of bentonite and various additives. Relative to the total mixture mass, as the percent additive was increased the mixture thermal conductivity increased. For the bentonite-silica sand mixtures, the higher density of the sand particles resulted in much higher mixture thermal conductivity.

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A Study on Regional Distribution of the Ground Effective Thermal Conductivity (지중 유효 열전도도의 지역별 분포)

  • Kong, Hyoung Jin;Kwon, Soon-Ki;Ji, Seung Gyu
    • Transactions of the KSME C: Technology and Education
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    • v.4 no.1
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    • pp.43-47
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    • 2016
  • Ground source heat pump(GSHP) systems is known as environmental friendly and energy saving. Especially a ground heat exchanger is an important unit that determines the thermal performance of a system and initial cost. In design phase of vertical GSHP system, it is recommended that the effective borehole thermal resistance, be determined from in-situ thermal response test. In this study, ground effective thermal conductivity was categorized by a region. As a result of the study, the ground thermal conductivity of national average was analyzed as 2.56 W/mK. The highest regional average of thermal conductivity is 2.68 W/mK in Seoul, and the lowest is 2.28 W/mK in Busan. Also, the thermal conductivity on the coast has been analyzed approximately 30% lower than the average.

Thermal conductivity and viscosity of graphite-added bentonite grout for backfilling ground heat exchanger (지중 열교환기용 뒤채움재로서 흑연을 첨가한 벤토나이트 그라우트재의 열전도도 및 점도 특성)

  • Lee, Chul-Ho;Lee, Kang-Ja;Choi, Hang-Seok;Choi, Hyo-Pum
    • Journal of the Korean Society for Geothermal and Hydrothermal Energy
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    • v.5 no.1
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    • pp.19-24
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    • 2009
  • Bentonite-based grouting has been usually used for sealing a borehole installed for a closed-loop vertical ground heat exchanger in a geothermal heat pump system (GHP) because of its high swelling potential and low hydraulic conductivity. The bentonite-based grout, however, has relatively lower thermal conductivity than that of ground formation. Accordingly, it is common to add some additives such as silica sand into the bentonite-based grout for enhancing heat transfer. In this study, graphite is adapted to substitute silica sand as an addictive because graphite has very high thermal conductivity. The effect of graphite on the thermal conductivity of bentonite-based grouts has been quantitatively evaluated for seven bentonite grouts from different product sources. In addition, the viscosity of graphite-added bentonite grout was measured to evaluate the field pumpability of the grout.

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Prediction of Ground Thermal Properties from Thermal Response Test (현장 열응답 시험을 통한 지중 열물성 추정)

  • Yoon, Seok;Lee, Seung-Rae;Kim, Young-Sang;Kim, Geon-Young;Kim, Kyungsu
    • Journal of the Korean Geotechnical Society
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    • v.32 no.7
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    • pp.5-14
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    • 2016
  • The use of geothermal energy has increased for economically and environmentally friendly utilization, and a geothermal heat pump (GSHP) system for space heating and cooling is being used widely. As ground thermal properties such as ground thermal conductivity and ground thermal diffusivity are substantial parameters in the design of geothermal heat pump system, ground thermal conductivity should be obtained from in-situ thermal response test (TRT). This paper presents an experimental study of ground thermal properties of U and 2U type ground heat exchangers (GHEs) measured by TRTs. The U and 2U type GHEs were installed in a partially saturated dredged soil deposit, and TRTs were conducted for 48 hours. A method to derive the thermal diffusivity as well as thermal conductivity was proposed from a non-linear regression analysis. In addition, remolded soil samples from different layers were collected from the field, and soil specimens were reconstructed according to the field ground condition. Then equivalent ground thermal conductivity and ground thermal diffusivity were calculated from the lab test results and they were compared with the in-situ TRT results.

Thermal Conductivity Estimate of Ground Using Energy Piles (PHC 에너지 파일을 이용한 지반의 열전도도 산정)

  • Yoon, Seok;Go, Gyu-Hyun;Park, Hyun-Ku;Park, Skhan;Lee, Seung-Rae;Cho, Kyung-Jin;Song, Chi-Yong
    • Journal of the Korean Society for Geothermal and Hydrothermal Energy
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    • v.8 no.4
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    • pp.8-16
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    • 2012
  • The use of energy pile foundation has been increased for economic utilization of geothermal energy. This paper describes an experimental and numerical study on thermal response tests (TRTs) using W and 3U-shaped ground heat exchangers (GHEs) in precast-high strength concrete (PHC) energy piles. Ground thermal conductivity and borehole thermal resistance were measured and compared with those numerical analysis. W-shpaed GHE showed higher heat transfer behavior than 3U-shaped one because of different conditions such as pile size and volume of grout. That is, ground thermal conductivity using W-shaped GHE was higher than that of 3U shaped GHE, and borehole thermal resistance vice versa. The relative error of borehole resistance values between numerical and analytical solution was less than 5%.

Effect of the Design Parameters of Geothermal Heat Exchanger Design Length (설계변수가 수직밀폐형 지중열교환기 설계길이에 미치는 영향)

  • Min, Kyong-Chon;Choi, Jae-Ho
    • Journal of the Korean Society for Geothermal and Hydrothermal Energy
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    • v.7 no.2
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    • pp.10-15
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    • 2011
  • A ground loop heat exchanger for the ground source heat pump system is the core equipment determining the thermal performance and initial cost of the system The length and performance of the heat exchanger is dependent on the ground thermal conductivity, the operation hours, the ground loop diameter, the grout, the ground loop arrangement, the pipe placement and the design temperature. The result of this simulation shows that higher thermal conductivity of grouting materials leads to the decrease length of geothermal heat exchanger from 100.0 to 84.4%.

Study on physical characteristics of Graphite-added bentonite grout for backfilling closed-loop groud heat exchanger (수직 밀폐형 지중 열교환기용 뒤채움재로서 흑연(Graphite)을 첨가한 벤토나이트 그라우트재의 물리적 특성연구)

  • Lee, Kang-Ja;Gil, Hu-Jeong;Lee, Chul-Ho;Choi, Hang-Seok;Choi, Hyo-Pum
    • Proceedings of the Korean Geotechical Society Conference
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    • 2009.03a
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    • pp.179-187
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    • 2009
  • Bentonite-based grouting has been popularly used to seal a borehole installed for a closed-loop vertical ground heat exchanger in a geothermal heat pump system (GHP) because of its high swelling potential and low hydraulic conductivity. The bentonite-based grout, however, has relatively lower thermal conductivity than that of ground formation. Accordingly, it is common to add some additives such as silica sand to the bentonite-based grout for enhancing thermal performance. In this study, graphite is adapted to substitute silica sand as an addictive because graphite has very high thermal conductivity. The effect of graphite on the thermal conductivity of bentonite-based grouts has been quantitatively evaluated for seven bentonite grouts from different product sources. In addition, comparisons of viscosity between applications of graphite and silica sand as additives has been carried out. In conclusion, using graphite has thermal conductivity about three times higher than that of silica sand.

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Study on physical characteristics of grouts for backfilling ground heat exchanger (수직 밀폐형 지중 열교환기용 뒤채움재의 물리적 특성 연구)

  • Lee, Chul-Ho;Gil, Hu-Jeong;Choi, Hang-Seok;Choi, Hyo-Pum;Woo, Sang-Baik
    • Proceedings of the Korean Geotechical Society Conference
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    • 2008.03a
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    • pp.533-544
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    • 2008
  • To obtain the physical properties of grout materials, that is the thermal conductivity and viscosity, which are used for backfilling ground heat exchangers, nine bentonite grouts and cement grouts being adapted in the United State have been considered in this study. The bentonite grouts show that the thermal conductivity and viscosity increase with the content of bentonite or filler (silica sand). The saturated cement grouts appear to possess much higher thermal conductivity than the saturated bentonite grouts, and the reduction of thermal conductivity in the cement grouts after drying specimens is less than the case of the bentonite grouts. To investigate the performance of cement grouts, fifteen samples were prepared by varying the water/cement ratio and the amount of sand and bentonite added into the cement mortar. Maintaining the moisture content of grouts is a crucial factor in enhancing the efficiency of ground heat exchangers.

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Estimation of Thermal Conductivity of Weathered Granite Soils (화강풍화토의 열전도도 산정에 대한 연구)

  • Park, Hyunku;Park, Hansol;Lee, Seung-Rae;Go, Gyu-Hyun
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.32 no.2C
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    • pp.69-77
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    • 2012
  • In general, geothermal energy pile and horizontal ground heat exchangers are installed in shallower depths than conventional vertical ground coupled heat pumps. Consequently their heat exchange performance is strongly governed by thermal conductivity of soil layer. Previous studies have shown that the thermal conductivity of soil above ground water table significantly affects the heat exchange rate because of partially saturated condition in soil and consequent variation of soil thermal conductivity. This paper presents a study result on the prediction of thermal conductivity of weathered granite soils. For weathered granite soils sampled from 5 locations, thermal conductivity tests were conducted with varying porosity and degree of saturation. The existing thermal conductivity models in literatures appeared inappropriate to the weathered granite soils. Hence, an empirical equation was proposed in this paper and its validity was examined by applying it to thermal conductivity test results obtained for weathered granite soils in this study and from literatures.