• Title/Summary/Keyword: 년간 집열효율

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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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A Study on the Annual Storage Efficiency of Concentric Evacuated Tube Solar Energy Collector System (이중진공관형 태양열 집열기의 연간 집열효율에 관한 연구)

  • Kim, Ki-Chul;Paeng, Jin-Gi;Yoon, Young-Hwan
    • Journal of the Korean Solar Energy Society
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    • v.28 no.4
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    • pp.50-55
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    • 2008
  • The Storage efficiency of concentric evacuated tube solar collector is tested for one year from January 1st to December 31st under the real sun condition. The testing equipment is operated continuously for three days without cooling the storage tank. Daily storage efficiency is obtained from dividing stored energy in the storage tank by solar insolation on the solar collector for each day. Daily averaged temperature of the storage tank is lowest in January and highest in August. Monthly averaged storage efficiency is also lowest in November and highest in June. Therefore, it can be said that the storage temperature and the storage efficiency are roughly proportional to outdoor temperature. Furthermore, the daily storage efficiency is reversely proportional to $(T_s-T_a)/I_c$ where $T_s$ and $T_a$ are daily averaged storage temperature and outdoor temperature from sunrise to sunset, and $I_c$ is total insolation on the solar collector for a day.

Heating Efficiency of Difference Heat Collection Methods for Greenhouse (유리온실의 태양열 집열방법별 집열효과)

  • 최영하;이재한;권준국;박동금;이한철
    • Journal of Bio-Environment Control
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    • v.9 no.3
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    • pp.166-170
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    • 2000
  • Three methods for heat collection, which were the flat solar collector, two fan with radiator, and square pipe method, were studied to sue efficiently solar energy in the three different glasshouses for two years. The flat plate solar collector method was made use of the commercial solar collector with collection area of 24$m^2$, the method of two fans with radiators collected solar energy at the top of the glasshouse. An thermal storage tank was constructed underneath in teach glasshouses. When an area of 1,000$m^2$ was heated to the minimum temperature of 9$^{\circ}C$, the decrease rate of heating fuel for the flat plate solar collector, the fan attached radiator and the square pipe methods were 7%, 19% and 28% respectively. The flat plate solar collector method, which could be heated approximately 40-50$m^2$, was currently used by most of the farmer. Under the condition, the decrease rate of annual heating fuel was 14% which was not better for an economic annual heating fuel. If the fan with radiator method was operated, the use of installation and maintenance were required. So, it could not be good economic efficiency of solar heating. The heating efficiency of the square pipe method was relatively better thant those of the flat plate solar collector or the fan attached radiator. Since the cost of materials and its installation of the use of square pipe method was lower than any other method. However, corrosion of the pipe, greater shade in the greenhouse and strength against the square pipe were problems that should be overcome in the square pipe method.

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