• Title/Summary/Keyword: 온실냉방

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Natural Ventilation Effect of Bending Panel Type Windows in Greenhouse (굴절패널방식 환기창의 자연환기 효과)

  • Lee, Si-Young;Kim, Jin-Young;Kim, Hyun-Hwan;Jeon, Hee
    • Proceedings of the Korean Society for Bio-Environment Control Conference
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    • 2000.10b
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    • pp.71-74
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    • 2000
  • 일반적으로 온실은 저온기에는 보온이나 난방을 하면서 적극 사용하고 있으나 고온기에는 냉방에 소요되는 에너지가 난방에 비해 상대적으로 많이 소요되므로 온실의 활용도가 떨어지게 된다. 자연환기 시스템은 에너지를 사용하지 않거나 최소한으로 줄여 온실내 온도를 최소한 외부와 동일하게 하거나 낮게 하기 위한 장치라고 할 수 있다. 자연환기를 위한 환기창으로 유리온실이나 경질판 온실과 같은 양지붕형 온실에서는 측창으로 3Way방식이나 권취식, 프로젝트방식 등 다양한 환기창을 사용하고 있으나 천창은 주로 온실 길이방향의 연속형 창틀을 랙앤피니언이나 X형 개폐암으로 개폐하는 프로젝트 방식을 많이 사용하고 있다. (중략)

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Analysis of Greenhouse Thermal Environment by Model Simulation (시뮬레이션 모형에 의한 온실의 열환경 분석)

  • 서원명;윤용철
    • Journal of Bio-Environment Control
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    • v.5 no.2
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    • pp.215-235
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    • 1996
  • The thermal analysis by mathematical model simulation makes it possible to reasonably predict heating and/or cooling requirements of certain greenhouses located under various geographical and climatic environment. It is another advantages of model simulation technique to be able to make it possible to select appropriate heating system, to set up energy utilization strategy, to schedule seasonal crop pattern, as well as to determine new greenhouse ranges. In this study, the control pattern for greenhouse microclimate is categorized as cooling and heating. Dynamic model was adopted to simulate heating requirements and/or energy conservation effectiveness such as energy saving by night-time thermal curtain, estimation of Heating Degree-Hours(HDH), long time prediction of greenhouse thermal behavior, etc. On the other hand, the cooling effects of ventilation, shading, and pad ||||&|||| fan system were partly analyzed by static model. By the experimental work with small size model greenhouse of 1.2m$\times$2.4m, it was found that cooling the greenhouse by spraying cold water directly on greenhouse cover surface or by recirculating cold water through heat exchangers would be effective in greenhouse summer cooling. The mathematical model developed for greenhouse model simulation is highly applicable because it can reflects various climatic factors like temperature, humidity, beam and diffuse solar radiation, wind velocity, etc. This model was closely verified by various weather data obtained through long period greenhouse experiment. Most of the materials relating with greenhouse heating or cooling components were obtained from model greenhouse simulated mathematically by using typical year(1987) data of Jinju Gyeongnam. But some of the materials relating with greenhouse cooling was obtained by performing model experiments which include analyzing cooling effect of water sprayed directly on greenhouse roof surface. The results are summarized as follows : 1. The heating requirements of model greenhouse were highly related with the minimum temperature set for given greenhouse. The setting temperature at night-time is much more influential on heating energy requirement than that at day-time. Therefore It is highly recommended that night- time setting temperature should be carefully determined and controlled. 2. The HDH data obtained by conventional method were estimated on the basis of considerably long term average weather temperature together with the standard base temperature(usually 18.3$^{\circ}C$). This kind of data can merely be used as a relative comparison criteria about heating load, but is not applicable in the calculation of greenhouse heating requirements because of the limited consideration of climatic factors and inappropriate base temperature. By comparing the HDM data with the results of simulation, it is found that the heating system design by HDH data will probably overshoot the actual heating requirement. 3. The energy saving effect of night-time thermal curtain as well as estimated heating requirement is found to be sensitively related with weather condition: Thermal curtain adopted for simulation showed high effectiveness in energy saving which amounts to more than 50% of annual heating requirement. 4. The ventilation performances doting warm seasons are mainly influenced by air exchange rate even though there are some variations depending on greenhouse structural difference, weather and cropping conditions. For air exchanges above 1 volume per minute, the reduction rate of temperature rise on both types of considered greenhouse becomes modest with the additional increase of ventilation capacity. Therefore the desirable ventilation capacity is assumed to be 1 air change per minute, which is the recommended ventilation rate in common greenhouse. 5. In glass covered greenhouse with full production, under clear weather of 50% RH, and continuous 1 air change per minute, the temperature drop in 50% shaded greenhouse and pad & fan systemed greenhouse is 2.6$^{\circ}C$ and.6.1$^{\circ}C$ respectively. The temperature in control greenhouse under continuous air change at this time was 36.6$^{\circ}C$ which was 5.3$^{\circ}C$ above ambient temperature. As a result the greenhouse temperature can be maintained 3$^{\circ}C$ below ambient temperature. But when RH is 80%, it was impossible to drop greenhouse temperature below ambient temperature because possible temperature reduction by pad ||||&|||| fan system at this time is not more than 2.4$^{\circ}C$. 6. During 3 months of hot summer season if the greenhouse is assumed to be cooled only when greenhouse temperature rise above 27$^{\circ}C$, the relationship between RH of ambient air and greenhouse temperature drop($\Delta$T) was formulated as follows : $\Delta$T= -0.077RH+7.7 7. Time dependent cooling effects performed by operation of each or combination of ventilation, 50% shading, pad & fan of 80% efficiency, were continuously predicted for one typical summer day long. When the greenhouse was cooled only by 1 air change per minute, greenhouse air temperature was 5$^{\circ}C$ above outdoor temperature. Either method alone can not drop greenhouse air temperature below outdoor temperature even under the fully cropped situations. But when both systems were operated together, greenhouse air temperature can be controlled to about 2.0-2.3$^{\circ}C$ below ambient temperature. 8. When the cool water of 6.5-8.5$^{\circ}C$ was sprayed on greenhouse roof surface with the water flow rate of 1.3 liter/min per unit greenhouse floor area, greenhouse air temperature could be dropped down to 16.5-18.$0^{\circ}C$, whlch is about 1$0^{\circ}C$ below the ambient temperature of 26.5-28.$0^{\circ}C$ at that time. The most important thing in cooling greenhouse air effectively with water spray may be obtaining plenty of cool water source like ground water itself or cold water produced by heat-pump. Future work is focused on not only analyzing the feasibility of heat pump operation but also finding the relationships between greenhouse air temperature(T$_{g}$ ), spraying water temperature(T$_{w}$ ), water flow rate(Q), and ambient temperature(T$_{o}$).

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Cooling Effect of Air in Greenhouse Using A Fog Sprayer Consisted of Two-fluid Nozzle with Turbo Fan (터보 팬 2류체 노즐로 구성한 포그 분무장치를 이용한 온실 내 공기의 냉각 효과)

  • Kim, Tae-Kyu;Min, Young-Bong;Kim, Do-Wan;Kim, Myung-Kyu;Moon, Sung-Dong;Chung, Tae-Sang
    • Journal of agriculture & life science
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    • v.46 no.3
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    • pp.119-127
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    • 2012
  • For the promotion of the evaporative cooling efficiency of hot air in greenhouse in summer, a fog sprayer consisted of a high volume spraying two-fluid nozzle with turbo fan and a blowing fan was set up at 2.2 m height from bottom of small glass greenhouse and tested to estimate the possibility of the greenhouse cooling. The mean droplet size and the volume sprayed by one of fog sprayer were $29{\mu}m$ and $160m{\ell}/min$. All the droplets sprayed and blown by the fog sprayer were evaporated within 2 m radius. The result from the cooling test that two sprayers set up in glass greenhouse of plane area $228m^2$ was represented lower cooling effect that the temperature and relative humidity of inside air of greenhouse were $28.8^{\circ}C$ and 87.5% when those of outside air of greenhouse were $30.2^{\circ}C$ and 81.2%. Through investigation of literatures and results of the cooling test, it was estimated that the water spraying rate of evaporative cooling of single span greenhouse with 50% light curtain and with air change rate of 1 volume/min was $10m{\ell}/min/m^2$ so that the inside air temperature may cool down $2{\sim}3^{\circ}C$ on the basis of $35^{\circ}C$ atmospheric temperature in summer of south korean area.

Adaptability of Evaporative Cooling System for Greenhouses to the Weather Conditions of Korea (증발냉각시스템의 온실냉방 적용성 평가)

  • 남상운
    • Journal of Bio-Environment Control
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    • v.7 no.4
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    • pp.283-289
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    • 1998
  • The adaptability of an evaporative cooling system to hot summer climate in greenhouses was comprehensively judged by fuzzy theory, based on the 20 years(1975~1994) weather data of nine representative regions in Korea. As uses the evaporative cooling system for greenhouses during summer in Korea, the inside air temperature of most regions except the southwest coastal areas, the south coastal areas, and Cheju island can be basically controlled below 32.5$^{\circ}C$, and ventilating air can be cooled 5$^{\circ}C$ and more. The analyzed results in this paper are on the basis of good ventilation system. When the evaporative cooling system is applied, the ventilation system which has good air flow organization is needed. Although the summer climate in Korea is high temperature and humidity, evaporative cooling systems are suitable for farm buildings in most regions. This facts better meet the needs of cooling for greenhouse in summer and provides a scientific basis for spreading the evaporative cooling system It is proposed that the further research is needed about the application of evaporative cooling system to greenhouses.

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Analysis of the Heating and Cooling Energy Load for Facade Variation in Plant Factory (식물공장의 건물 형태에 따른 냉난방부하 분석)

  • Lee, Chan-Kyu;Kim, Woo-Tae
    • Proceedings of the KAIS Fall Conference
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    • 2012.05b
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    • pp.569-572
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    • 2012
  • 식물공장의 다양한 건물형태에 따른 냉난방부하의 차이를 DesignBuilder를 이용하여 해석하였다. 엽채류 중 상추의 생육 적정온도인 $20^{\circ}C$를 실내온도로 설정하고 식물공장 외벽에 단일창호를 적용하여 온실형태에 따른 냉난방부하 변화를 계산하였다. 보광이 없는 건물자체의 냉난방부하를 계산한 결과 KNU 식물공장 단위유닛과 반원 온실형 식물공장이 냉방부하가 가장 적었다. 보광 적용 후에는 전반적으로 KNU 식물공장 단위유닛과 직사각형 식물공장이 양호한 냉난방 성능을 보여주었다. KNU 식물공장 창호의 면적이 와이드 스팬형보다 크기 때문에 건설비용의 증가가 예상되지만 회전형 스마트 조명 제어시스템을 적용하게 되면 재배면적을 넓히고 공간활용에 유리하다. 또한 LED 사용량을 줄일 수 있어 냉방부하와 보광에 드는 비용을 절감할 수 있다.

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Greenhouse Cooling by Fog System (FOG SYSTEM 을 이용한 여름철 온실냉방)

  • 서원명
    • Magazine of the Korean Society of Agricultural Engineers
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    • v.41 no.1
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    • pp.60-71
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    • 1999
  • This study was performed to improve underirable warm greenhouse environment by fog cooling system in summer season. The resultsof droplet size analysis and cooling effects for fog cooling system are summarized as follows ; 1. At the pump pressure of 70kgf/$\textrm{cm}^2$ , the mean (SMD) drop size was 22.6${\mu}{\textrm}{m}$ and the maximum and minimum drop size was 45.68${\mu}{\textrm}{m}$ and 1.73${\mu}{\textrm}{m}$ , respectively, and almost all of the drop size was less than 40${\mu}{\textrm}{m}$. 2. The temperature of fog cooling greenhouse with 60% shading was dropped more than 2$^{\circ}C$ below the ambient temperature , while the greenhouse temperature without shading was 1$^{\circ}C$ higher than the ambient temperature. 3. It was found that fog spraying intervals were significantly influential on cooling effect. 4. When the greenhouse was ventilated sufficiently by natural vent system, green house temperature could be maintained by 2.5$^{\circ}C$ lower than the ambient temperature, while it was difficult to drop the greenhouse temperature below ambient temeperature without sufficient ventilation. 5. It was found that the temperature of experimental greenhouse could be maintained 3$^{\circ}C$ to 14$^{\circ}C$ lower that of control greenhouse though there were variations depending on experimental and weather conditions.

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Dehumidification and Increment of Efficiency of Evaporative Cooling in Greenhouse with Water Pipe (냉수배관에 의한 온실의 제습 및 증발냉각효율 증대효과)

  • 김문기;남상운;윤남규
    • Proceedings of the Korean Society for Bio-Environment Control Conference
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    • 1995.10a
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    • pp.103-106
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    • 1995
  • 최근 시설재배 면적이 급증하고 있는 것에 부응하여 시설을 이용한 작물의 주년안정생산에 관한 연구가 활성화되고 있다. 그러나 여름철의 고온극복과 냉방에 관한 연구는 아직까지도 많은 어려움을 겪고 있다. 우리나라와 같이 사계절이 뚜렷한 기후여건에서는 겨울철의 난방 및 보온에 못지 않게 여름철의 냉방 및 고온극복 대책이 주년안정생산에 있어서 빼놓을 수 없는 중요한 과제가 아닐 수 없다. (중략)

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Methods to Raise the Efficiency of External Shading in Greenhouse (온실에서 외부차광의 효율성 증대 방안)

  • 이현우;이석건;김길동;이종원
    • Proceedings of the Korean Society for Bio-Environment Control Conference
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    • 2000.10b
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    • pp.124-127
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    • 2000
  • 시설원예의 궁극적인 목적은 인위적인 환경조절을 통해 주년생산과 단위면적당 생산성을 증대시키면서 품질향상을 극대화시키는 것이라 할 수 있다. 특히, 시설원예의 주년생산과 관련하여 냉ㆍ난방에너지의 절약에 관한 많은 연구가 수행되어 왔으며, 현재 많은 냉ㆍ난방장치들이 실용화되어지고 있다. 그 중에서, 여름철의 적극적인 냉방방법으로 증발냉각방식, 히터펌프, 에어컨 등이 농가에 보급되어 널리 이용되고 있으나 항상 경제성에 있어서 문제점으로 제기되고 있으며 이런 경제적인 부담을 줄이고자 냉방장치의 보조적 수단으로서 차광시스템이 널리 이용되고 있는 실정이다. (중략)

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Performance Test of Heat Pump System for Low Temperature Treatment of Phalaenopsis (히트펌프를 이용한 호접란(팔레놉시스) 저온 처리 시스템의 성능 평가)

  • 유영선;장진택;김영중;이건중;윤진하
    • Proceedings of the Korean Society for Bio-Environment Control Conference
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    • 1999.11a
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    • pp.95-99
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    • 1999
  • 자연에너지와 전기에너지를 조합하여 냉방과 난방을 수행할 수 있는 방법중의 하나로 히트펌프 이용기술이 있으며, 국내의 경우 히트펌프는 주로 냉방 또는 냉동을 목적으로 이용되고 있으나, 1980년 이후 전기가 풍부한 경제선진국을 중심으로 난방 또는 냉난방겸용의 히트펌프가 개발되어 주택, 빌딩, 온실 등의 공조시스템에 이용되고 있다. (중략)

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