• Title/Summary/Keyword: Open-loop groundwater heat pump (GWHP) system

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A Study on Significant Parameters for Efficient Design of Open-loop Groundwater Heat Pump (GWHP) Systems (개방형 지열시스템의 효율적 설계를 위한 영향인자에 대한 연구)

  • Park, Byeong-Hak;Joun, Won-Tak;Lee, Bo-Hyun;Lee, Kang-Kun
    • Journal of Soil and Groundwater Environment
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    • v.20 no.4
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    • pp.41-50
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    • 2015
  • Open-loop groundwater heat pump (GWHP) system generally has benefits such as a higher coefficient of performance (COP), lower initial cost, and flexible system size. The hydrogeological conditions in Korea have the potential to facilitate the use of the GWHP system because a large number of monitoring wells show stable groundwater temperatures, shallow water levels, and high well yields. However, few studies have been performed in Korea regarding the GWHP system and the most studies among them dealt with Standing Column Well (SCW). Because the properties of the aquifer have an influence on designing open-loop systems, it is necessary to perform studies on various hydrogeological settings. In this study, the hydrogeological and thermal properties were estimated through various tests in the riverside alluvial layer where a GWHP system was installed. Under different groundwater flow velocities and pumping and injection rates, a sensitivity analysis was performed to evaluate the effect of such properties on the design of open-loop systems. The results showed that hydraulic conductivity and thermal dispersivity of the aquifer are the most sensitive parameters in terms of performance and environmental aspects, and sensitivities of the properties depend on conditions.

Development of a Groundwater Source Heat Pump in a Fractured Rock Aquifer (암반 대수층에서 개방형 지열 시스템의 개발 및 적용)

  • Shim, Byoung Ohan;Kim, Seong-Kyun;Choi, Hanna;Lee, Soo-Hyoung;Ha, Kyoochul;Kim, Yongchul
    • New & Renewable Energy
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    • v.17 no.3
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    • pp.32-41
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    • 2021
  • A groundwater source heat pump (GWHP) was developed in this study by adapting a borehole heat exchanger with closed-loop and open-loop systems in a new building. In the pilot test building, the air-conditioning on the second floor was designed to employ a closed-loop system and that on the third floor had an open-loop system. The GWHP design is based on the feasibility of groundwater resources at the installation site. For the hydrogeological survey of the study site, pumping and injection tests were conducted, and the feasibility of GWHP installation was evaluated based on the air-conditioning load demand of the building. The site was found to be satisfactory for the design capacity of the thermal load and water quality. In addition, the effect of groundwater movement on the performance of the closed-loop system was tested under three different operational scenarios of groundwater pumping. The performance of the system was sustainable with groundwater flow but declined without appropriate groundwater flow. From long-term observations of the operation, the aquifer temperature change was less than 2℃ at the observation well and 5℃ at the injection well with respect to the initial groundwater temperature. This pilot study is expected to be of guidance for developing GWHPs at fractured rock aquifers.

The Effect of Soil Permeability and Pumping Rate on Performance of Two-well Geothermal Heat Pump System (지반 투수계수와 양수량 조건이 복수정 지열 히트펌프 시스템의 성능에 미치는 영향)

  • Cho, Jeong-Heum;Nam, Yujin
    • Journal of the Korean Society for Geothermal and Hydrothermal Energy
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    • v.11 no.4
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    • pp.28-34
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    • 2015
  • The groundwater heat pump (GWHP) systems have great potential for heating-cooling system which use annual constant groundwater temperature for heat source. Generally, the performance of GWHP system significantly depends on the geological and hydraulic properties such as hydraulic conductivity, thermal conductivity, soil condition so on. Therefore, in order to use GWHP systems efficiently, it is necessary to analyze the effect of design factors on the system performance. However, there are a few researches on the optimum design method for the open-loop geothermal system. In this research, the design factor in the open-loop geothermal system was analyzed quantitatively for the optimal design method by using numerical simulation. As a result, it was found that the temperature change of heat source depends on the design factor.

Study on the Underground Thermal Environment around Wells for a Design Method of Open-Loop Geothermal System (개방형 지열 시스템 설계법 개발을 위한 관정 주위 지중 온도 환경 검토)

  • Bae, Sangmu;Kim, Hongkyo;Kim, Hyeon-Woo;Nam, Yujin
    • Journal of the Korean Society for Geothermal and Hydrothermal Energy
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    • v.13 no.1
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    • pp.14-20
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    • 2017
  • Groundwater heat pump (GWHP) system can achieve higher performance of the system by utilizing heat source of the annual constant groundwater temperature. The performance of GWHP system depends on the ground thermal environment such as groundwater temperature, groundwater flow rate and hydraulic conductivity. In this study, the geothermal environment was analyzed by using numerical simulation for develop the two-well geothermal system. As the result, this paper shows the change of the groundwater level and underground temperature around wells according to the conditions of flow rate and hydraulic conductivity.

Hydraulic feasibility study on the open-loop geothermal system using a pairing technology (복수정 페어링 기술을 이용한 개방형 지열 시스템의 수리적 타당성 검토)

  • Bae, Sangmu;Kim, Hongkyo;Kim, Hyeon-woo;Nam, Yujin
    • KIEAE Journal
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    • v.17 no.3
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    • pp.119-124
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    • 2017
  • Purpose: Groundwater heat pump (GWHP) system has high coefficient of performance than conventional air-source heat pump system and closed-loop type geothermal system. However, there is problem in long-term operation that groundwater raise at the diffusion well and reduced at the supply well. Therefore, it is necessary to accurately predict the groundwater flow, groundwater movement and control the groundwater level in the wells. In this research, in consideration of hydrogeological characteristic, groundwater level and groundwater movement were conducted analysis in order to develop the optimal design method of the two-well system using the pairing pipe. Method: For the optimum design of the two-well system, this research focused on the design method of the pairing pipe in the simulation model. Especially, in order to control the groundwater level in wells, pairing pipe between the supply well and diffusion well was developed and the groundwater level during the system operation was analyzed by the numerical simulation. Result: As the result of simulation, the groundwater level increased to -2.65m even in the condition of low hydraulic conductivity and high pumping flow rate. Consequently, it was found that the developed system can be operated stably.