• 제목/요약/키워드: Greenhouse keeping warm system

검색결과 4건 처리시간 0.021초

2중 단동비닐하우스의 태양열 축열이용 효과 (Solar Energy Storage Effectiveness on Double Layered Single Span Plastic Greenhouse)

  • 이성현;유영선;문종필;윤남규;권진경;이수장;김경원
    • Journal of Biosystems Engineering
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    • 제36권3호
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    • pp.217-222
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    • 2011
  • This study was carried out in order to reduce the amount of underground water which is used in the double layered single span plastic greenhouse for retaining heat. For this research, two plastic green houses of the double layered single span plastic greenhouse were installed. There was equipped of internal small tunnel for keeping warm air in the interior of the house. Then the internal small tunnel for keeping warm air was fitted with PVC duct of 50 cm in diameter filled with subsurface water. The surplus solar energy in the greenhouse was stored in the water in the PVC duct. Four FCUs (Fan Coil Unit), which has the capacity of 8,000 kcal per hour, were installed in the middle of the house, and a circulation motor in heat storage water tank was operated from 10:30 a.m. to 16:00 p.m. in order to circulate water between the water tank and the FCUs. Consequently about 5 degrees celsius could be maintained in the interior of the internal small tunnel for keeping warm air with the external temperature of lower than minus 5 degrees celsius. It appeared that the alteration of an internal temperature of the house was flexible depending on the sunlight during daytime. To prevent the water freezing, mixing antifreezing liquid in the water or operating FCU continuously was needed. Also, in order to use the surplus solar thermal energy on plastic green house of water curtain system efficiently, storing the surplus heat during daytime simultaneously finding a method of using water curtain systematic underground water happened to be important. As a result of this research, when the house's interior temperature is below zero the operation of FCU appeared to be impossible. Considering the amount of water used in the house with water-curtain-heating system is 150~200 ton per day, using the system mentioned in this research showed that reducing the underground water more than 80% in order to maintain the internal temperature as the level of 5 degree celsius at the extreme temperature of minus 5 degrees celsius.

수막재배 단동비닐하우스의 태양열 축열이용 효과분석 (Analysis of Solar Energy Storage Using Effectiveness on Single Span Plastic Greenhouse with Water Curtain System)

  • 이성현;유영선;문종필;윤남규;이수장;김경원
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 춘계학술대회 초록집
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    • pp.200.2-200.2
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    • 2010
  • This study was carried out in order to reduce the amount of underground water which is used in the water curtain system for retaining heat. To proceed to the research, two plastic green houses of water curtain system were installed. One was equipped of internal small tunnel for keeping warm air in the interior of the house. Then the internal small tunnel for keeping warm air was fitted with PVC duct of 50cm in diameter filled with subsurface water. Storing surplus solar energy in the water filled in PVC duct was the method used to this house. Another was installed with FCU in the middle of the house, and was fitted a circulation motor in water tank for heat storage which was operated from 10 a.m. to 4 p.m. in order to interchange heat with FCU. The latter was installed with four FCUs which has a capacity of 8000kcal per hour. Consequently about 5 degrees celsius could be maintained in the interior of the internal small tunnel for keeping warm air with the external temperature of more than minus 5 degrees celsius. It appeared that the alteration of an internal temperature of the house was flexible depending on the sunlight during daytime. It happened that to prevent the water from freezing, mixing antifreezing liquid in the flowing water of FCU or changing the operating method of FCU was a suitable measure. Also, in order to use the surplus solar thermal energy on plastic green house of water curtain system efficiently, storing the surplus heat during daytime simultaneously finding a method of using water curtain systematic underground water happened to be important. As a result of this research, when the house's interior temperature is below zero the operation of FCU appeared to be impossible. Therefore when supposed that the amount of water used in the house is 150~200ton for stable operation of FCU, using the system mentioned in the above research happened to be appropriate of reducing the amount of subsurface water from 80% to 100% when maintaining the interior of internal small tunnel's temperature for keeping warm air of 5 degrees celsius at the extreme temperature of minus 5 degrees celsius.

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다겹보온자재의 보온성 비교 및 커튼개폐장치 개발 (Comparison of Heat Insulation Characteristics of Multi-layer Thermal Screen and Development of Curtain System)

  • 이시영;김학주;전희;염성현;이현주
    • 생물환경조절학회지
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    • 제16권2호
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    • pp.89-95
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    • 2007
  • 겨울철 난방연료가 많이 소모되는 대규모 연동형 온실의 보온성을 향상시키기 위해 터널용 보온자재로 많이 사용되는 다겹보온커튼을 이용하여 기존의 부직포, 알루미늄스크린 등과 보온성을 상대적으로 비교하였다. 또한 다겹보온자재는 보온성이 높으나 두께가 두꺼워 전동모터를 이용한 자동개폐장치를 구성하기 어려운 단점이 있으므로 연동형 온실에 적용할 수 있는 고장이 적고 작동이 원활한 커튼 개폐장치를 개발하여 작물재배 및 난방연료 절감효과를 검토하였다. 다겹보온자재와 부직포, 알루미늄스크린 등의 보온커튼용 자재의 열 관류량을 측정하여 상대적인 보온효과를 비교한 결과 부직포에 비해 알루미늄스크린의 열관류량이 적었고, 알루미늄 및 화학솜의 3겹보온자재와 다겹보온자재는 알루미늄스크린에 비해 열관류량이 각각 23.3%, 43.0% 적게 나타나 다겹보온자재의 보온성이 우수한 것으로 판단되었다. 다겹보온자재는 여러 겹으로 누빈 조합형 보온자재이므로 두께가 두껍고 화학솜, 폴리폼 등 연신되기 쉬운 자재를 이용하므로 장기간 사용시 커튼 개폐장치의 예인선이나 보온자재가 처지게 될 우려가 있으므로 예인식과 권취식 개폐방법을 동시에 적용하여 보온커튼 개페장치를 구성하였다. 시험용 온실 에 다겹보온커튼과 부직포커튼을 설치하고 풋고추를 재배한 결과 다겹보온커튼 설치 온실에서 풋고추의 생육이 유리하였고 초기수량도 27% 정도 증수되었으며, 경유온풍기의 난방연료 소모량은 46%정도 절감되었다.

폐수를 이용한 겨울철 경제적 미세조류 배양 시스템의 개발 (Development of Economic Culture System Using Wastewater for Microalgae in Winter Season)

  • 이상아;이창수;이승훈;안광국;오희목;김희식;안치용
    • 환경생물
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    • 제32권1호
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    • pp.58-67
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    • 2014
  • 우리나라는 겨울철에 미세조류가 성장하기에 적합하지 않은 기후조건을 가진다. 따라서, 차세대 바이오매스의 공급원료로서의 미세조류 배양을 겨울철에 이룩하기는 쉽지 않다. 본 연구에서는 적은 에너지를 이용하여 미세조류가 성장이 불가한 영외환경에서 미세조류를 성장시키기 위해서, 삼중막의 비닐하우스를 설치하였다. 또한 투명한 아크릴 재질로 수조를 제작하여 빛을 수조의 모든 면에서 받을 수 있게 함으로써, 빛의 이용성을 최대화하였다. 6가지의 다양한 실험조건을 설정하여 겨울철 영하의 기후조건에서 최소한의 비용으로 하수종말처리장 폐수를 사용하여 미세조류를 배양하였다. 또한 미세조류 바이오매스를 증가시킴과 동시에 환경오염의 원인이 될 수 있는 영양염류 성분 중 질소를 최대 92%, 인을 최대 99%까지 제거시켰다. 본 연구에서 바이오디젤의 원료가 될 수 있는 가장 주된 지방산은 리놀렌산(C18 : 3n3)으로 총 지질량의 최대 61%까지 차지했다. 지방산의 생산성은 2.4 g $m^{-2}day^{-1}$이었다. 결론적으로, 본 연구를 통하여 차세대 바이오매스 생산을 위한 미세조류 배양을 저온 시기에서도 이룩하였으며, 그에 따른 폐수처리에서도 좋은 성과를 이루었다.