• 제목/요약/키워드: Shallow Geothermal

검색결과 45건 처리시간 0.021초

천부 지열에너지로서의 지하 열에너지 저장 기술 동향 (Status of Underground Thermal Energy Storage as Shallow Geothermal Energy)

  • 심병완;이철우
    • 자원환경지질
    • /
    • 제43권2호
    • /
    • pp.197-205
    • /
    • 2010
  • 최근 급격한 기후변화가 세계적 또는 국지적으로 발생하고 있으며, 지구온난화에 대한 대책으로 $CO_2$ 저감 기술들이 중요한 해결책으로 여겨지고 있다. 이 기술들에 대한 한 방법으로서 대체에너지를 개발하고 있는 대부분의 국가에서 천부 지하 열에너지 저장 (UTES: underground thermal energy storage)은 신뢰성 있는 냉난방 기술로 적용되어 왔다. 천부의 토양이나 암반, 대수층내 지하수 및 지하공간내 저장된 유체 등의 열 에너지원을 이용하는 지열 시스템은 일반적으로 열에너지의 회복과 저장의 개념을 기반으로 한다. 아직 국내에서는 이러한 기술 개발이 기초적이지만 지속적인 연구들을 수행한다면 보다 친환경적이며 경제성 및 효율이 높은 시스템을 개발할 수 있을 것으로 본다. 국내 지반은 대수층이 전국적으로 분포하고 있으므로 수리지열학적 특성을 활용한 고효율의 시스템 개발이 용이하다. 그러나 UTES에 대한 이해 부족 및 제도적 문제들로 다양한 시스템이 개발되지 못하고 국내에는 90% 이상이 단편적인 폐회로형 지열시스템으로 보급되고 있다. 비효율적인 지열시스템의 보급 확산을 방지하기 위해서는 지반의 수리 지열학적 특성을 반영한 선진화된 UTES 시스템들을 개발할 필요가 있다. 개선된 시스템 보급을 위하여 국제적인 협력이 필수적이며, 지속적인 UTES 연구를 통하여 천부 지열시스템의 효율을 개선시킬 수 있다.

수직 밀폐형 심부지열 순환 시뮬레이터의 성능 평가에 관한 연구 (A Study on Performance Evaluation of a Vertically Closed Deep Geothermal Circulation Simulator)

  • 배정형;이동운;윤충만;류연수;정상화
    • 한국기계가공학회지
    • /
    • 제15권5호
    • /
    • pp.8-17
    • /
    • 2016
  • While greenhouses have been utilized as a sustainable alternative to traditional soil farming, they are often powered by diesel boilers that necessitate vast amounts of non-renewable energy and emit toxic fumes. Thus, geothermal heat pumps have been proposed as a more energy-efficient substitution for diesel boilers. Currently, most horticultural facilities in the United States use shallow geothermal systems, and are often equipped with horizontal underground heat exchangers as well as heat pump equipment. These shallow geothermal systems require a large drilling site and heat pump to function, which results in high maintenance costs. The heat pump itself consumes a large amount of power, which degrades system performance. Conversely, high temperatures can be attained within a single borehole in deep geothermal vertical closing systems without using a heat pump. This setup can dramatically reduce the power consumption and improve system performance. In this study, we have modeled a circulation simulator after the circulation systems in deep geothermal facilities to analyze a 2000-meter borehole in Naju-Sanpo-myeon. The simulator is operated by manipulating various putative parameters affecting system performance to analyze the system's coefficient of performance.

지표수 열교환기 설계 변수와 적용 효과에 대한 선행 분석 (Preliminary Analysis on Design Parameters and Application Effects of Surface Water Heat Exchanger (SWHE))

  • 손병후
    • 한국지열·수열에너지학회논문집
    • /
    • 제12권3호
    • /
    • pp.24-32
    • /
    • 2016
  • Commercial buildings and institutions are generally cooling-dominated and therefore reject more heat to a borehole ground heat exchanger (BHE) than they extract over the annual cycle. Shallow ponds can provide a cost-effective means to balance the thermal loads to the ground and to reduce the length of BHE. This paper presents the analysis results of the impact of design parameters on the length of SWHE pipe and its application effect on geothermal heat pump (GHP) system using BHE. In order to analysis, we applied ${\varepsilon}-NTU$ method on designing the length of SWHE pipe. Analysis results show that the required pipe length of SWHE was decreased with the increase of approach temperature difference and with the decrease of pipe wall thickness. In addition, when the SWHE was applied to the GHP system, the temperature of BHE was more stable than that of standalone BHE system.

한국의 지열 연구와 개발 (Geothermal Research and Development in Korea)

  • 송윤호;김형찬;이상규
    • 자원환경지질
    • /
    • 제39권4호
    • /
    • pp.485-494
    • /
    • 2006
  • 1920년대의 온천조사에서부터 현재에 이르기까지 우리나라 지열연구의 역사를 간략히 요약하고, 우리나라의 지열류량 연구 결과 및 추세, 지열의 근원 연구, 그리고 지열에너지 개발 및 활용분야에 대한 연구활동을 정리하였다. 우리나라에서의 지열연구는 1970년대까지 주로 온천조사와 관련되어 있다. 1980년대에 들어서 연구소와 학계에서 온천조사 뿐만 아니라, 지열류량에 대한 연구도 많이 수행하게 되었으며 1996년도에는 우리나라 전국적인 지온경사 분포도와 지열류량 분포도를 발간하게 되었다. 또한 우리나라 온천수에 대한 지화학적 동위원소 분석과 화강암 지대의 열생산율 측정도 1990년대에 주로 이루어졌다. 지열개발과 활용에 대한 시도는 1990년대 초반부터 시도되었으나 실제 개발을 위한 시추로 이어지게 된 것은 2000년대에 들어와서 가능해졌다. 최근의 활발한 심부 지열수 자원 개발이나 천부 지중열을 활용한 냉난방 수요의 증가 등 주변여건이 호전됨에 따라 우리나라 지열연구개발의 전망은 밝다고 판단된다.

Assessment of geothermal potential in an area of sulfate-rich hot springs, Bugok, southern Korea

  • 박성숙;윤성택;채기택;소칠섭;고영권;최현수
    • 한국지하수토양환경학회:학술대회논문집
    • /
    • 한국지하수토양환경학회 2006년도 총회 및 춘계학술발표회
    • /
    • pp.303-306
    • /
    • 2006
  • Using a variety of chemical geothermometers we estimate the temperature of a deep geothermal reservoir in relation to thermal groundwater in the Bugok area, southern Korea, in order to assess the potential use of geothermal energy in South Korea. Thermal water at Bugok has been exploited down to about 400 m below the land surface and shows the highest outflow temperatures (up to $78{\circ}C$) in South Korea. Based on the hydrochemical data and occurrence, groundwater in Bugok can be classified into three groups: $Na-SO_4$ type thermal groundwater (CTGW) occurring in the central part (about 0.24 $km^2$) $Ca-HCO_3$ type cold groundwater (SCGW) occurring in shallow peripheral parts of CTGW; and the intermediate type groundwater (STGW). CTGW waters are typical of thermal water in the area, because they have the highest outflow temperatures and contain very high concentrations of Na, K and $SiO_2$ due to the sufficient reaction with silicate minerals in deep reservoir. Their enriched $SO_4$ was likely formed by gypsum dissolution. The major ion composition of CTGW shows the general approach to a partial equilibrium state with rocks at depth. The application of various alkali ion geothermometers yields temperature estimates in the range of 88 to $198{\circ}C$ for the thermal reservoir. Multiple mineral equilibrium calculation indicates asimilar but narrower temperature range between about 100 and $155{\circ}C$. These temperature estimates are not significantly higher than the measured outflow temperatures for CTGW Considering the heat loss during the ascent- of thermal waters, this fact may suggest that a thermal reservoir in the study area is likely located at relatively shallow depths (possibly close to the depth of preexisting wells). Therefore, we suggest a high potential for geothermal energy development around the Bugok area in southern Korea.

  • PDF

공학적인 지열시스템(EGS)을 이용한 지열발전 기술 (Geothermal Power Generation using Enhanced or Engineered Geothermal System(EGS))

  • 한정상;한혁상
    • 한국지반공학회:학술대회논문집
    • /
    • 한국지반공학회 2008년도 추계 학술발표회
    • /
    • pp.3-32
    • /
    • 2008
  • The potential deep geothermal resources span a wide range of heat sources from the earth, including not only the more easily developed, currently economic hydrothermal resources; but also the earth's deeper, stored thermal energy, which is present anywhere. At shallow depths of 3,000~10,000m, the coincidence of substantial amounts heat in hot rock, fluids that heat up while flowing through the rock and permeability of connected fractures can result in natural hot water reservoirs. Although conventional hydrothermal resources which contain sufficient fluids at high temperatures and geo-pressures are used effectively for both electric and nonelectric applications in the world, they are somewhat limited in their location and ultimate potential for supplying electricity. A large portion of the world's geothermal resource base consists of hot dry rock(HDR) with limited permeability and porosity, an inadquate recharge of fluids and/or insufficient water for heat transport. An alternative known as engineered or enhanced geothermal systems(EGS), to dependence on naturally occurring hydrothermal reservoirs involves human intervention to engineer hydrothermal reservoirs in hot rocks for commercial use. Therefore EGS resources are with enormous potential for primary energy recovery using an engineered heat mining technology, which is designed to extract and utilize the earth's stored inexthermal energy. Because EGS resources have a large potential for the long term, United States focused his effort to provide 100GW of 24-hour-a-day base load electric-generating capacity by 2050.

  • PDF

Thermo-fluid engineering in deep geothermal energy

  • 김영원
    • 한국진공학회:학술대회논문집
    • /
    • 한국진공학회 2015년도 제49회 하계 정기학술대회 초록집
    • /
    • pp.84.1-84.1
    • /
    • 2015
  • Recent years in particular in Korea see intensive interests in a deep geothermal engineering and its application in different uses as far as from direct uses to power generation sectors, that are achieved by harnessing hot energy sources from the earth. For instance widespread interest has been generated because the geothermal energy is the source that one extracts it for more than 20 hours per day and for about 30 years of an operation of the plant, which enables to give base load as for heating as well as an electric generation. In retrospect, shallow geothermal energy using heat pumps is commonplace in Korea while the deep geothermal is in the early stage of the development. Geothermal energies in view of the way of extracting heat are mainly categorized into several types such as a single well system, a hydrothermal system, an enhanced geothermal system (EGS) etc. In this talk, this speaker focuses on the thermo-fluid engineering of the single well system by introducing the modeling in order to harness hot fluid that is thermally balanced with the fluid of an injection well, which provides a challenge to assess the life time of the well. To avoid the loss of the temperature in producing the hot fluid, a specialized pipe or a borehole heat exchanger has been designed, and its concept is introduced. On the other hand, a binary system or an organic Rankine cycle, which provides the methodology to convert the heat into an electricity, is briefly introduced. Some experimental results of the binary system which has been constructed in our lab will be presented. Lastly as for the future direction, some comments for the industrialization of the deep geothermal energy in this country will be discussed.

  • PDF

시설원예의 지열냉·난방시스템 경제성 분석 (Economic Analysis of Cooling-Heating System Using Ground Source Heat in Horticultural Greenhouse)

  • 류연수;주혜진;김진욱;박미란
    • 한국태양에너지학회 논문집
    • /
    • 제32권6호
    • /
    • pp.60-67
    • /
    • 2012
  • Government Geothermal Cooling-Heating Projects has made efforts to reduce GHG(Greenhouse Gas) emissions and to manage cost of greenhouse farm households. This study evaluated the economic benefits of heating load rate of change by comparing Geothermal Cooling-Heating System with the existing system(greenhouse diesel heating) in the Government Geothermal Cooling-Heating Projects. Economic analysis results shows that, 1) When installing the Cooling-Heating system according to the ratio of 70% heating load in policy standards, the geothermal cooling-heating system has economic efficiency with greenhouse type or scale independent because the investment cost is recovered within 7 years. And It was more economic efficiency the ratio of 50% heating load than70% heating load. 2) When installing the Cooling-Heating system according to the glass greenhouse of the ratio of 90% heating load, pay period of investment cost is recovered within 5 years. Therefore it is necessary to apply flexible heating sharing according to greenhouse type or scale.

지중 열교환기 성능 분석을 위한 지반 열물성 조사 (Investigation of ground thermal characteristics for performance analysis of borehole heat exchanger)

  • 심병완;송윤호;김형찬;조병욱;박덕원;임도형;이영민
    • 한국신재생에너지학회:학술대회논문집
    • /
    • 한국신재생에너지학회 2005년도 제17회 워크샵 및 추계학술대회
    • /
    • pp.587-590
    • /
    • 2005
  • A detailed geothermal characteristics survey with numerical simulations of the heat transfer in a site for ground source heat pump system is necessary for deploying a shallow geothermal utilization system. Density, specific heat, thermal diffusivity, and thermal conductivity are measured on 91 core samples from a 300 m deep borehole in KIGAM(Korea Institute of Geoscience and Mineral Resources). The heat flow is estimated from the thermal gradient and average thermal conductivity and the correlation between fracture system and hydraulic conductivity is analyzed. From the obtained ground information of the study site the performance of the ground heat pump system can be analyzed with some detailed numerical simulations for seasonal heat pump operation skill and optimal system design techniques.

  • PDF