• Title/Summary/Keyword: 태양열집열판

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모듈화된 신형저가 고효율 평판형 태양열 집열기 개발

  • Lee, Dong-Won
    • 한국신재생에너지학회:학술대회논문집
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    • 2005.11a
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    • pp.373-380
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    • 2005
  • 알루미늄 재질의 찬넬을 흡열판으로 이용하는 평판형 태양열 집열기를 개발하였다. 이러한 흡열판은 찬넬 내부 전체로 전열매체가 흐르기 때문에 집열기의 열적성능을 향상시킬 것으로 예상되며, 모듈화되어 있어 제작 및 설치가 기존 흡열판보다 용이하다는 장점이 있다. 제작된 찬넬형 평판형 태양열 집열기에 대한 집열효율 시험을 수차례 수행하면서 성능을 개선시키고 있으며, 그 결과 기존 상용화된 집열기 수준의 우수한 열적성능을 갖는 것으로 나타났다. 알루미늄 재질 흡열판 외에 플라스틱 재질의 찬넬형 흡열판도 적용하였으며, 기타 실용화 및 성능 향상에 필요한 요소들에 대해 연구하였다.

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Comparison of Heat Collection Performance of Water Heating System Using Fixed and Azimuth-Tracking Solar Collectors (고정식과 방위추적식 태양열 급탕시스템의 집열성능 비교)

  • Lee, Jong Suk
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.38 no.2
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    • pp.191-196
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    • 2014
  • The solar water heating system is one of the seven green campus items installed at the Gangneung campus of Gangneung-Wonju National University. The solar water heating system has two types of solar collectors, four storage tanks and monitoring equipment. Fixed and azimuth-tracking solar collectors were installed to collect heat from the sun. The amount of heat collected by the two different types of solar collectors was calculated from the temperature of the monitored storage tanks. Our results showed that the amount of solar heat collected by the azimuth-tracking solar collector was 19% greater on a sunny day and 23% greater on a rainy day than that collected by the fixed solar collector; therefore, the azimuth-tracking solar collectors are, on an average, 21% more efficient than the fixed solar collectors.

An Experimental Study on the Heat Transfer Characteristics for a Flat Plate Solar Collector with a Heat Pipe (열파이프가 부착된 평판형 태양열 집열기의 열전달 특성에 대한 실험적 고찰)

  • 김철주;임광빈
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.17 no.5
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    • pp.1237-1245
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    • 1993
  • In this study, a model of a flat plate solar collector using a heat pipe was manufactured and tested to investigate such operational characteristics of the present system of solar collector as start-up process, temperature distribution on the absorber plate and operation of the heat pipe. Moreover, collector efficiency was measured for 20-30 minutes of operation at various conditions of weather and the result was compared with that tested by Hill et. a. for a flat plate solar collector using direct circulation of coolant. Some results obtained in this study could be summarized as follows. (1) The required time for the initial start-up process was about 5-6 minutes, but the heat pipe began to operate as soon as the absorber plate was exposed to solar radiation. (2) On the absorber plate, the temperature distributions in axial direction maintained nearly constant, while temperature distributions in transversal direction showed smooth decrease with $3-5^{\cird}C$ along with solar radiation. (3) Thermal inertia of the collector system had a favorable effect to damp the turbulent variation of solar radiation. (4) The collector efficiency of the present system showed nearly the same tendency but a decrease of about 10% compared with that using direct circulation of coolant.

Analysis of the Top Loss Coefficient for Flat Plate Collector in a Solar Air-Conditioning System during Winter (태양열 이용 냉난방 공조시스템중 평판형 집열기의 동계 상부 열손실 해석)

  • Kim, B.C.;Choi, K.H.;Kum, J.S.;Kim, J.R.
    • Solar Energy
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    • v.18 no.3
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    • pp.15-24
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    • 1998
  • There are mainly 3 heat losses from solar collector; top, bottom, and edge heat loss. Usually edge heat loss is small so that could be neglected. Of the total thermal losses occurring in a flat plate solar collector, top loss heat losses are dominant. Therefore it is necessary to calculate the top loss coefficient accurately in order to find out performance of solar collector. The flat plate solar collector(regenerator in summer) used in this study was made for year-round all conditioning. In order to find out collector efficiency for heating in winter without a system change, outdoor experiment was done. The top loss coefficient of this collector was about 3 to $4.5W/m^2^{\circ}C$. Futhermore use of selective coating in trickling surface can improve a performance of flat plate solar collector.

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가정용 태양발전 랭킨시스템

  • 한국온돌난방시공협회
    • 보일러설비
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    • s.71
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    • pp.59-67
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    • 1999
  • 이 논문에서는 태양발전과 저장을 위한 환경친화적 장치에 대하여 기술하였다. 컴퓨터 모델에 주안점을 두고 시스템의 최적 발전조건을 계산하였는데, 여기에는 작동유체 효율과 태양열 집열판의 크기와 효율 그리고 출력이 포함되어 있다. 영국과 멕시코의 기후조건들이 분석되고, 각 위도에 대한 신뢰 할만한 최근 기상자료가 컴퓨터 수치모사에 사용되었다. 결과를 보면, 연간 출력 4000kW.h를 얻기 위해서, 영국의 경우 시스템 설치에 필요한 집열 면적은 $92m^{\2}$이며, 멕시코의 경우에는 유사 모사조건하에서 동일한 출력을 얻기 위해서는 $48m^{\2}$의 집열면적이 필요하다. 터빈과 이송펌프, 발전기 등의 효율에 민감하여 약간의 효율향상이 있으면 집열 면적을 현저히 감소시킬 수 있다.

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A Development of Automation system and a way to use Solar Energy System Eefficiently in Greenhouse -Study on Growth and Yield of a cucumber in soil heating- (시설원예용 태양열 시스템의 효율적 이용과 자동화 장치개발(2) -지중가온에 의한 오이 생육 및 수량에 관한 연구-)

  • 김진현;오중열;구건효;김태욱
    • Proceedings of the Korean Society for Bio-Environment Control Conference
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    • 1998.05a
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    • pp.61-67
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    • 1998
  • 1973년과 1978년의 1,2차 Oil Shock로 인하여 정부는 대체에너지 개발을 입법화하여 태양열의 이용을 촉진시켜왔다. 그 후 약 20년간 태양열 이용에 대한 효과적인 집열과 축열기술의 개발에 연구가 추진되었으며, 집열판(Flat-plate collector)의 개발과 열교환기, 축열장치의 설계 등 효율향상을 통하여 건축의 난방, 온수급탕 등이 주종을 이루었다. (중략)

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Study on Characteristics Comparison of Unpowered Cooling and Heating Combined Device using Solar Heat (태양열을 이용한 무동력 냉난방 겸용장치의 특성 비교 연구)

  • Lee, Jaehan;Chun, Taekyu;Yang, Youngjoon
    • Journal of Energy Engineering
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    • v.27 no.4
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    • pp.20-26
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    • 2018
  • As the global warming due to greenhouse effect has become serious problem, it is necessary to introduce the technology, for instance, such as diversity or saving of energy to reduce the use of fossil fuel. The purpose of this study was to investigate the characteristics on materials of absorption plate, unpowered and minimum use of power in cooling and heating combined device. As the results, it was observed that, in case of summer, since temperature of absorption device of solar heat(ADSH) was lower than that of no ADSH, cooling effect was insignificant in case of being not installed cold-reservoir. However, in case of winter, heating effect was certified even though the power was not used. At secondhand, the performance of ADSH with Cu was higher 2 times than that of ADSH with Al.

A study of geothermal heat dump for solar collectors overheat protection (태양열 집열관 과열방지를 위한 지중열교환기 연구)

  • Hwang, Hyun-Chang;Chi, Ri-Guang;Lee, Kye-Bock;Rhi, Seok-Ho
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.17 no.7
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    • pp.616-622
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    • 2016
  • The heating load using solar hot water is lower in summer than in the other seasons. This decreased heating load leads to the overheating solar collectors and related components. To prevent overheating of the solar collectors, air cooling and shading shields were used. On the other hand, it requires additional mechanical components, and reduces the system reliability. The geothermal heat dump system to release the high temperature heat (over $150^{\circ}C$) transferred from the heat pipe solar collectors was investigated in the present study. Research on the heat dump to cool the solar collector is rare. Therefore, the present study was carried out to collect possible data of a geothermal heat dump to cool the solar collector. A helical type geothermal heat exchanger was buried at a 1.2m depth. Experimentally and numerically, the geothermal heat dump was investigated in terms of the effects of parameters, such as the quantity of solar radiation, aperture area of the collector and the mass flow rate. A pipe length of 50m on the geothermal heat exchanger was suitable with a 0.33 kg/s flow rate. The water reservoir was a possible co-operation solution linked to the geothermal heat exchanger.

Thermal and Fluid Flow of the air layer in a solar collector (태양열 집열판 공기층의 열 및 유체유동)

  • Bae, Kang-Youl;Yi, Chung-Sop;Lee, Kwang-Sung;Jeong, Hyo-Min;Chung, Han-Shik
    • Proceedings of the KSME Conference
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    • 2001.06d
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    • pp.642-647
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    • 2001
  • This study represents numerical analysis on the thermal and fluid flow of the air layer in a solar collector. The boundary conditions was assumed that the top and bottom wall of the air layer have a heating and cooling surface. respectively. and this calculation model have a solid body with a cooling temperature of $20^{\circ}C$. As the results of simulations. the magnitudes of the velocity vectors and isotherms are increased proportionally to the tilt angles. As the tilt angle is increased. the mean Nusselt numbers are increased and the maximum value of the mean Nusselt number was appeared at tilt angle ${\theta}=75^{\circ}$.

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Performance of Natural Circulation Hot Water System with Flat-Plate Solar Collectors (평만형 태양열 집열기 를 설치한 자연 순환식 급탕시스템 의 성능 에 관한 연구)

  • 윤석범;전문헌
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.9 no.5
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    • pp.579-589
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    • 1985
  • The storage tank of the natural-circulation-solar-hot-water system equipped with flat-plate solar collectors is located at higher elevation than the solar collectors. Therefore, the heat loss from the system due to a reversed flow during the night-time is an important factor as well as the day-time thermal performance of the system. The thermal performance of the natural-circulation-solar-hot-water system with flat-plate solar collectors during the day-time depends mainly on the heat collecting efficiency of the solar collectors, whereas its thermal performance during the night-time depends on the system configuration , such as the elevation of the water storage tank with respect to the solar collectors and the piping connections between the storage tank and the solar collectors, as well as thermo-physical properties of the circulating fluid. In the present work, a computer program has been developed to simulate a typical natural-circulation-solar-hot-water-system, and a series of simulation tests have been carried out with the computer program to examine the thermal performance of the system during the day-time as well as the hight-time. In addition , a series of experiment have been conducted under a real sun condition using a natural-circulation-solar-hot-water-system constructed and installed at the KAIST building to compare with the results obtained from computer simulations.