• 제목/요약/키워드: Underground heat exchanger

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지하수 이용을 위한 열교환기 개발. I - 냉각핀의 설계제작 - (Development of heat exchanger by the utilization of underground water. I - Design for plat fin tube -)

  • 이운용;안덕현;김상철;박우풍;강용구;김선배
    • 현장농수산연구지
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    • 제4권1호
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    • pp.119-127
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    • 2002
  • 지하수의 열(15℃)을 농업시설의 난방과 냉방에 사용하기 위하여, 관에 종방향으로 부착되는 plat fin tube 형 알루미늄(Al 6063) 열교환기를 개발하여 알루히트(의장등록 : 0247164)로 명명하였다. 열교환 핀을 관에 종방향으로 배치하여 송풍과 대류에 유체 흐름저항을 최소화 하였으며, 핀표면에 돌기를 만들어 결로와 fouling factor를 감소시켰다. 1. 알루히트의 제원은 관 내경 0.03m, 외경 0.036m, 두께 0.003m이며, 냉각핀의 두께 0.0012m, 핀 길이 0.032m로 하였다. 2. 단위 길이당 관 외부의 전열면적은 1.3946m2이며, 관내부 전열면적은 0.0942m2였고, 내외면적비 Ra = 14.805였다. 3. 핀의 길이 0.032m로 하였을 때, 핀의 효율이 93%정도인 것으로 나타났으며, 핀두께 0.0012m는 h𝛿/k<0.2를 만족하여 적합한 것으로 판단된다. 4. 알루히트의 온수 방열 성능실험에서 열매체의 온도가 높고 유량이 많을수록 방열 열량이 많은 것으로 나타났고, 열매체의 온도 60℃, 유량 10 𝑙/min일 때 방열열량은 504kJ/h·m 였으며, 80℃, 40 𝑙/min일 때는 방열열량이 6,048kJ/h·m로 나타났다. 5. 방열성능에서 각각의 열매체 온도간 상관계수 $R^2_1=0.9898$, 유량간 상관계수 $R^2_2=0.9721$로 실험 데이터를 신뢰할 수 있었다.

창원지역의 지중온도 예측에 관한 연구 (The Study on the Prediction of Underground Temperature in Changwon District)

  • 조성우;임병찬
    • 설비공학논문집
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    • 제26권3호
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    • pp.97-102
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    • 2014
  • For an analysis of the horizontal-type geothermal heat exchanger system, an understanding of the ground temperature distributions is required in order to predict system performance. Because it is difficult to decide on the underground temperature due to the adjustment of its temperature cycle, numerous calculations are required in order to decide on the temperature cycle. In this paper, Buggs formula is utilized to decide a phase shift for outdoor temperature and ground surface temperature, which are obtained from Korea Meteorological Administration. Overall, the underground temperature distribution in the Changwon region is predicted as $10.5^{\circ}C{\sim}20.3^{\circ}C$ at a depth of 3 m.

수치 시뮬레이션을 이용한 수직밀폐형 지열시스템의 채열특성에 관한 연구 (Study on the characteristic of heat exchange for vertical geothermal system using the numerical simulation)

  • 남유진;오진환
    • 한국태양에너지학회 논문집
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    • 제34권2호
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    • pp.66-72
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    • 2014
  • Ground source heat pump system can achieve high efficiency of performance by utilizing annually constant underground temperature to provide heat source for space heating and cooling. Generally, the depth of constant-temperature zone under the ground depends on surface heat flux and soil properties. The deeper the ground heat exchanger is installed, the higher the heat exchange rate can be acquired. However, in order to optimally design the system, it is necessary to consider both the installation cost and the system performance. In this study, performance analysis of ground source heat pump system according to the depth has been conducted through the case study.

지열시스템의 지중 설계요소와 지중열교환기 길이 분석 (Analysis of Earth Design Parameter and Geothermal Heat Exchanger Length in Geothermal System)

  • 박종일;박경순
    • 한국지열·수열에너지학회논문집
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    • 제11권3호
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    • pp.1-6
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    • 2015
  • In this study, we analyzed t he design condition for appropriate design factor at geothermal system design documents. It is intended to provide the proper information of geothermal system design condition when construct new building, designer can use design conditions more efficiently. Therefore, it is possible to plan for domestic geothermal system, through utilization at design element, to provide as a good information that can predict the approximate underground condition. Thus, provided the basic design conditions that can predict the capacity of the geothermal system. It will be the first step to solve the problem.

여과수열원 히트펌프를 이용한 온실난방기술 개발 (Development of Heating Technology for Greenhouse by Use of Ground Filtration Water Source Heat Pump)

  • 문종필;이성현;강연구;이수장;김경원
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 춘계학술대회 초록집
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    • pp.172.2-172.2
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    • 2010
  • This study was carried out in order to reduce the installation expense of heating system for greenhouse comparing to geothermal heat pump and develope the coefficient of performance (COP) for a heat pump. For getting plenty of heat flux from geothermal energy. Surface water in river channel was used for getting a lots of geothermal heat by penetrating water through underground soil layer of the river bank that make heat transmission to passing water. The range of water temperature after the process of Ground filtration is 13~18 degrees celsius which is very similar to low heat source of geothermal heat pump system and the plenty amount of heat source from that make the number of geothermal heat exchanging hole and the expense for geothermal heat exchanger construction reduced. Drainage well is also used for returning filtration water to the aquifer that keep the water good recirculation from losing geothermal heat and water resource. For the COP improvement of Heat pump, thermal storage tank with separating insulation plate according to the temperature difference make the COP of Heat pump that is similar to thermal storage tank with diffuser. Developed thermal storage tank make construction expense cheaper than customarily used one's. and that sand filter and oxidation sand (FELOX) are going to be used for improving ground filtration water quality that make heat exchanger efficiency better. All above developed component skill are going to be set on the Ground filtration water source heat pump system and applied for medium, large scale for protected greenhouse in riverside area and on-site experiment is going to do for optimizing the heating system function and overcome the problem happening in the process of on-site application afterward.

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PX-An Innovative Safety Concept for an Unmanned Reactor

  • Yi, Sung-Jae;Song, Chul-Hwa;Park, Hyun-Sik
    • Nuclear Engineering and Technology
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    • 제48권1호
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    • pp.268-273
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    • 2016
  • An innovative safety concept for a light water reactor has been developed at the Korea Atomic Energy Research Institute. It is a unique concept that adopts both a fast heat transfer mechanism for a small containment and a changing mechanism of the cooling geometry to take advantage of the potential, thermal, and dynamic energies of the cold water in the containment. It can bring about rapid cooling of the containment and long-term cooling of the decay heat. By virtue of this innovative concept, nuclear fuel damage events can be prevented. The ultimate heat transfer mechanism contributes to minimization of the heat exchanger size and containment volume. A small containment can ensure the underground construction, which can use river or seawater as an ultimate heat sink. The changing mechanism of the cooling geometry simplifies several safety systems and unifies diverse functions. Simplicity of the present safety system does not require any operator actions during events or accidents. Therefore, the unique safety concept of PX can realize both economic competitiveness and inherent safety.

지중온도 경사를 이용한 효율적 지중에너지 이용 방안에 관한 연구 (A Study on Effective Energy Use of the Open Type Ground Heat Exchanger Using Underground Temperature Gradient)

  • 류형규;정민호;이병석;류효준;최현준;최항석
    • 설비공학논문집
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    • 제26권9호
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    • pp.401-408
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    • 2014
  • This paper proposes an optimum operation method for open type ground heat exchangers. A series of TRTs and artificial heating/cooling operations were carried out while monitoring temperature in the hole of SCW. The ground temperature naturally increases with depth, but a switch between the cooling/heating mode results in a change in the distribution of ground temperature. The effect of the mode change was evaluated by performing LMTD and COMSOL multiphysics analysis for a reduced model with the depth of 150 m. As a result, in the cooling mode, the upstream operation is more efficient than the downstream operation and reduces EWT by $2.26^{\circ}C$. On the other hand, in the heating mode, the downstream operation is advantageous over the upstream operation and increases EWT by $3.19^{\circ}C$. The merit of the optimum operation will be enhanced for the typical dimension of SCW with a depth of 400~500 m. In the future, an open type ground heat exchanger system adopting the optimum operation with variation in the ground temperature will be used in practice.

2000m 단일 시추공에서 밀폐 동축 방식 지중 열교환기의 취득온도 성능평가 (Performance Evaluation of Closed Co-axial Ground Heat Exchanger in the case of 2000m-Depth Single Well)

  • 류연수;김재혁;정상화
    • 한국기계가공학회지
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    • 제15권4호
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    • pp.83-92
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    • 2016
  • The Korean government has been making efforts to use renewable energy to reduce the consumption of fossil fuels for the heating system in greenhouses. The number of greenhouses that installed a geothermal heat pump system is 201 EA with the volume of 132.8 ha and 108,467kW from 2010-2014. The geothermal system, called a shallow geothermal system, with the temperature of $10-20^{\circ}C$ has accessories composed of a BHE and heat pump. Moreover, it is necessary to have a wide area to install the BHE and to drill to the depth of 200 m. On the other hand, even though the deep geothermal system needs a high drilling cost to obtain the temperature of $40-150^{\circ}C$, the system has the advantages of the small area required for the BHE and operation without a heat pump. In this study, the temperature of the return water and heat capacity were measured to obtain the geothermal energy efficiently on the condition of the water flow being changed in the BHE. The temperature according to the return water changes through the heat conduction based on the increase of ground temperature up to the underground depth has been calculated to conduct a simulation and is compared with the field experiment test results.

냉방설비 성능개선 및 에너지 절약을 위한 응결수 활용성 분석 (An analysis on the utility of congealing water to improve efficiency of the air cooling equipment and save energy)

  • 박근수;박영호;유정범
    • 한국철도학회:학술대회논문집
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    • 한국철도학회 2007년도 추계학술대회 논문집
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    • pp.974-981
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    • 2007
  • Seoul Metro has operated the air cooling equipment established in a machine room of a station building to improve our services focused on our customers who use Seoul Metro during the summer season. However, a new set of problems has arisen with the cooling tower to support a heat exchange of cooling water. One of them is loss of efficiency in the air conditioner. The leading cause of this problem is that we use an underground type of the cooling tower. As the machine room of a station building is located in the underground of inner city because of the nature of the subway, it is difficult to establish the cooling tower on the ground. The underground structure of the No. $1{\sim}4$ subway line is unsuitable for the location requirements of the underground type of the one because it has a limited space to set up the air cooling equipment, for example, the cooling tower and a ventilating opening. As a result of such an unfavorable condition, the cooling tower doesn't work efficiently and the warmth of cooling water because of insufficiency of a heat exchange and a refrigerator's technical obstacle such as a high-temperature and a high-pressure has arisen. Accordingly, the efficiency of the air conditioning is getting lower and lower. Another problem is too wasteful with water. Each station uses the water over 30 tons every day with waterworks to replenish the cooling tower such as a evaporation, a scattering and a distribution of water. Nevertheless, the more an air conditioner increase, the more the use of water supply increase. For this reason, we can't help wasting an enormous amount of water and discharging the congelation of a low temperature(about $15^{\circ}C$) occurred in a heat exchanger inside an air conditioner. The purpose of this study is to analyze the utility of congealing water to improve efficiency of the air cooling equipment and save energy as a supplementary water for the cooling tower.

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공조시스템용 지열히트펌프의 실증평가에 관한 연구 (In-situ Performance Evaluation of a Ground Source Heat Pump for an Air Conditioning System)

  • 박윤철;박성구
    • Journal of Advanced Marine Engineering and Technology
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    • 제32권1호
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    • pp.66-72
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    • 2008
  • In this study, the ground source heat pump was installed at a research center in Jeju Island to verify the performance of the system and to give an information for a economic feasibility. The performance test was conducted until the heat storage tank temperature reached at $5^{\circ}C$ from $50^{\circ}C$ in the cooling operation, and until the storage temperature goes up to $50^{\circ}C$ from $10^{\circ}C$ in the heating mode. As results, the system performance shows that $2.2{\sim}3.5$ for the cooling operation and $2.5{\sim}3.5$ for heating operation. It is found that the underground is good heat source for the heat pump with $3{\sim}10^{\circ}C$ variation range. The ground source heat pump could be connected one of air conditioning system without any problem in system performance. Based on the economic analysis, the initial cost for the ground source heat pump will be compensated after 4 years operation. If the system runs 20 years, approximately 300 million Won will be saved when the air conditioning system adapt the ground source heat pump based on Life Cycle Cost analysis.