• 제목/요약/키워드: 지중열전도도

검색결과 23건 처리시간 0.038초

수직 밀폐형 지중열교환기 설계를 위한 지중 열전도도의 지역별 분포 (Regional Distribution of Ground Thermal Conductivity for Vertical Closed Type Ground Heat Exchanger Design)

  • 정계훈;손병후;임효재
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2007년도 동계학술발표대회 논문집
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    • pp.423-428
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    • 2007
  • This study was performed to construct a geothermal data base about thermal conductivity of ground heat exchanger and thermal properties of grouting material which used to refill the borehole. We have acquired geothermal data sets from 39 sites over wide area of South Korea except to Jeju island. From data analysis, the range of thermal conductivity is 1.5$\sim$4.0 W/mK. It means that thermal conductivity varies with grouting material as well as regional geology and ground water system.

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현지 측정에 의한 남한지역의 지중유효열전도도, 보어홀 전열저항 및 초기온도 분석 (Analysis of Soil Thermal Conductivities, Borehole Thermal Resistances and Initial Soil Temperature with In-Situ Testing in South Korea)

  • 노정근;연광석;송헌
    • 한국태양에너지학회 논문집
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    • 제32권5호
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    • pp.68-74
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    • 2012
  • Investigation of the effective soil thermal conductivity($k$) is the first step in designing the ground loop heat exchanger(borehole) of a geothermal heat pump system. Another important factor is the borehole thermal resistance($R_b$). Thermal response tests offer a good method to determine the ground thermal properties for the total heat transport in the ground. The first step is measured for initial soil temperature. This is done by supplying a only pump power into a borehole heat exchanger. They need to supply into water unload heat power more than 30 minutes. In this study, the initial soil temperature was found to analysis $14.1{\sim}16.0^{\circ}C$,the ratio was 68.7% represented. In this case of $k$, was 2.1~3.0 $W/m{\cdot}k$, $R_b$ was 0.11~0.20 $m{\cdot}K/W$. In this work, it is also shown that the distribution of a soil thermal conductivity and borehole thermal resistance were on the influence of initial soil temperature. And soil thermal conductivity was related with factors of equation by linear least square method, borehole thermal resistance was on the influence of composite factors.

열응답 실험 및 열저항 해석을 통한 장심도 수직밀폐형 지중열교환기의 성능 분석 (Performance Analysis of a Deep Vertical Closed-Loop Heat Exchanger through Thermal Response Test and Thermal Resistance Analysis)

  • 심병완;박찬희;조희남;이병대;남유진
    • 자원환경지질
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    • 제49권6호
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    • pp.459-467
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    • 2016
  • 300 m 이상의 장심도 지중열교환기는 도심지나 넓은 부지를 확보가기 어려운 지역에 지열냉난방 시스템을 경제적으로 설치하는데 유리하다. 그러나 실제 시공에서는 여러 가지 문제들로 인하여 보편적으로 시도되지 않았고, 일반적으로 100 ~ 200m 심도로 설치되어 왔다. 본 연구에서는 일반적인 시추공 직경 150 mm에 U 파이프는 50A 규격으로 외경 50 mm의 300 m 심도로 지중열교환기를 설치하였다. 고밀도 PE관은 단위 길이당 비중이 $0.94{\sim}0.96g/cm^3$으로 지열공 내부에 채워진 지하수 영향으로 부력이 존재하여, 이를 개선하기 위해 4.6 kg 무게의 금속으로 제작된 하중밴드 10개조를 설치하여 부력의 영향을 감소시켰다. 지중열교환기의 길이 산정 및 성능평가를 위한 기초조사로서 지반조사 및 열응답실험이 실시되었다. 지반내 온도구배는 100 m 심도까지는 주변 지하수 이용에 의한 영향 등으로 $15^{\circ}C$ 정도의 분포를 보이며 그 하부는 $1.9^{\circ}C/100m$의 지온증온율을 나타내고 있다. 열응답실험은 기존에 설정된 표준 방식으로 48 시간 진행되었으며 평균 주입전력은 17.5 kW이며 평균 순환수 유량은 28.5 l/min, 그리고 평균 입출구 온도차는 $8.9^{\circ}C$로 나타났다. 측정된 지중열전도도는 3.0 W/mk이며, 공내열저항은 0.104 mk/W로 나타났다. Stepwise 평가에서 지중열전도도 변화는 초기 13시간을 제외한 이후에는 표준편차가 0.16으로 매우 안정된 값으로 수렴한 것으로 나타났다. 그리고 공내열저항의 민감도를 분석한 결과 파이프의 구경과 그라우팅 물질의 열전도도가 증가함에 따라 그 값이 미미하게 감소하는 경향을 나타내었다.

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

  • 민경천;최재호
    • 한국지열·수열에너지학회논문집
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    • 제7권2호
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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%.

선형열원법에 의한 지중유효열전도도와 보어홀 전열저항 해석 (Analysis of Effective Soil Thermal Conductivities and Borehole Thermal Resistances with a Line Source Method)

  • 이세균;우정선;노정근
    • 한국태양에너지학회 논문집
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    • 제30권4호
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    • pp.71-78
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    • 2010
  • Investigation of the effective soil thermal conductivity(k) is the first step in designing the ground loop heat exchanger(borehole) of a geothermal heat pump system. The line source method is required by New and Renewable Energy Center of Korea Energy Management Corporation in analyzing data obtained from thermal response tests. Another important factor in designing the ground loop heat exchanger is the borehole thermal resistance($R_b$). There are two methods to evaluate $R_b$ : one is to use a line source method, and the other is to use a shape factor of the borehole. In this study, we demonstrated that the line source method produces better results than the shape factor method in evaluating $R_b$. This is because the borehole thermal resistance evaluated with the line source method characteristically reduces the temperature differences between an actual and a theoretical thermal behaviors of the borehole. Evaluation of $R_b$ requires soil volumetric heat capacity. However, the effect of the soil volumetric heat capacity on the borehole thermal resistance is very small. Therefore, it is possible to use a generally accepted average value of soil volumetric heat capacity($=2MJ/m^3{\cdot}K$) in the analysis. In this work, it is also shown that an acceptable range of the initial ignoring time should be in the range of 8~16hrs. Thus, a mean value of 12 hrs is recommended.

부하변동에 의한 지중유효열전도도와 보어홀 전열저항 해석 (Analysis of Effective Soil Thermal Conductivities and Borehole Thermal Resistances with a Power Supply Regulation)

  • 노정근;연광석;송헌
    • 한국태양에너지학회 논문집
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    • 제31권4호
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    • pp.80-86
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    • 2011
  • Investigation of the effective soil thermal conductivity(k) is the first step in designing the ground loop heat exchanger(borehole) of a geothermal heat pump system. Another important factor is the borehole thermal resistance($R_b$). Thermal response tests offer a good method to determine the ground thermal properties for the total heat transport in the ground. This is done by supplying a constant heat power into a borehole heat exchanger. There are two methods to supply a constant heat power. One is to employ the electricity provided by Korea Electric Power Corporation(KEPCO). The other is to use electricity generated by a generator. In this study, the power supply regulation was found to reduce when the electricity generated by the generator was used. This is because the generator evaluated with the power supply characteristically reduces the power supply regulation between an overload and a complex using. But it sometimes occurs a power supply regulation in In-situ thermal response test. In this case getting of k,$R_b$ requires delay times and restored normal state. However, the effect of the delay times and restored normal state on the soil thermal conductivity and borehole thermal resistance is very small. Therefore it is possible to use a generally accepted delay times and restored normal state in the analysis. In this work, it is also shown that an acceptable range of ${\Delta}k$, ${\Delta}R_b$ for normal state and regulation state might be approximately 0.01-0.16W/m k, and -0.004-0.007m K/W, respectively. Thus, restored normal state of power supply regulation is valuable to recommend.

그라우팅 재료가 지중 유효열전도도에 미치는 영향 (Effect of Grouting Materials on Ground Effective Thermal Conductivity)

  • 손병후
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회B
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    • pp.3371-3376
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    • 2007
  • The design of a ground-source heat pump system includes specifications for a ground loop heat exchanger where the heat transfer rate depends on the thermal conductivity of the ground. To evaluate this heat transfer property, in-situ thermal response tests on four vertical test boreholes with different grouting materials were conducted by adding a monitored amount of heat to water over various test lengths. By measuring the water temperatures entering and exiting the loop, water flow rate, and heat load, effective thermal conductivity values of the ground were determined. The effect of increasing thermal conductivity of grouting materials from 0.82 to 1.05 W/m$^{\circ}C$ resulted in overall increases in effective ground thermal conductivity by 25.8% to 69.5%.

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지중열전달특성 평가에 관한 해석 및 실험적 방법에 관한 연구 - 지중 열물성치 및 보어 홀 열 저항 평가 - (Study on Analytical and Empirical Methods for Assessing Geo-Heat Transfer Characteristics)

  • 박준언;백남춘
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2005년도 춘계학술대회
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    • pp.427-432
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    • 2005
  • This study treats the advantage of in situ line source method measuring the heat transfer capacity of a borehole, using mobile equipment, to determine the thermal properties of the entire borehole system such as thermal conductivity, diffusiveity. volumetric heat capacity, and borehole thermal resistance. The results from the response test include not only the thermal properties of the ground and the borehole, but also conditions that are difficult to estimate, e,g. natural convection in the boreholes, asymmetry in the construction, etc. In this study, 1) theoretical in situ methods for assessing working fluid temperature variation in V-type PE tube have been introduced, and 2) TRTE(Thermal Response Test Equipment) has been built based on these kinds of theoretical in situ methods. Basically TRTE consists of a pump, a heater and temperature sensors for measuring the inlet and outlet temperatures of the borehole. In order to make equipment easily transportable it is set up on a small trailer. Since the response test takes above two days to execute, the test was fully automatic in recording measured data using Labview DAS(Data acquisition system) program. The test was demonstrated in the course of intensive research in this field through the one site at Ulsan city in Korea. From this kind of thermal properties test of borehole systems in situ, the design of the borehole system can be optimized regarding the total geological, hydro-geological and technical conditions at the location.

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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.

수직형 지중열교환기 열전도도 측정기술에 관한 연구 (A Study on the Measurement of Thermal conductivity of Vertical Borehole heat Exchanger)

  • 김지영;이의준;장기창;강은철
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2008년도 동계학술발표대회 논문집
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    • pp.39-44
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    • 2008
  • The heat exchange between the Borehole Heat Exchanger(BHE) and the surrounding ground depends directly on ground thermal conductivity k at the certain site. The k is thus a key parameter in designing BHE and coupled geothermal heat pump systems. Currently, although a thermal hydraulic response test(TRT) is mostly used in practice, the thermal hydraulic TRT needs additional power and is generally time-consuming. A new, simple wireless P/T probe for a hi-speed k determination was introduced in this paper. This technique using a wireless P/T probe is less time-consuming and requires no external source of energy for measurement and predicts local thermal properties by measuring soil temperatures along the depth. Measured temperature data along the depth was analyzed. In order to verify the new technique for the determination of ground thermal conductivity, ground thermal conductivity k that calculated from the measured temperature data using a wireless P/T probe was compared with one obtained from conventional hydraulic TRT. When comparing the average k of two methods, the relative error was approximately 10%. As a result, the electronic TRT can replace the conventional hydraulic TRT method after carrying out the additional research on a lot of sites.

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