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Featured researches published by Young-Sun Ryou.


Journal of The Korean Society of Agricultural Engineers | 2009

Estimation of Surplus Solar Energy in Greenhouse (I) - Case Study Based on 1-2W Type -

Won-Myung Suh; Yong-Han Bae; Young-Sun Ryou; Sung-Hyoun Lee; Yong-Cheol Yoon

This research performed to analyze surplus solar energy, which is generated from a greenhouse during daytime, and to make the basic materials for designing thermal energy storage system for surplus solar energy. For this goal, it analyzed the surplus solar energy coming from two types of greenhouse. The results of this research are as per the below: In the case of 1-2W-type greenhouse, this research gave the same temperature and ventilation condition regardless of regions, but it was judged that the quantity of surplus solar energy could be greatly changed, depending on the energy consumed for the photosynthesis and evapotranspiration of crops in the greenhouse, on the heating temperature during daytime and night, on the existence/non-existence of a curtain and its warming effect, and on the ventilation temperature suitable for the overcoming of high temperature troubles or for the optimum cultivation temperature. In the case of a single-span greenhouse, there was a big difference in energy incoming and outgoing by month, but throughout seasons, 85.0 % of the total energy put into the greenhouse was solar energy and the energy input by heating was just 15.0 % of the total. 26.4 % of the total energy input for the greenhouse was used for photosynthesis and evapotranspiration of crops, and 44.2 % of the remaining 73.6 % went out in the form of radiant heat through the surface of the greenhouse. That is, 25.2 % of the total energy loss was just the surplus solar energy. 67.6 % of the total heating energy was concentrically used for 3 months from December to February next year, but the surplus solar energy during the same period was just 19.4 % of the total annual quantity so it was found that the given condition was more restrictive in directly converting the surplus heat into greenhouse heating. Under the disadvantageous circumstance of 3 months from December to February next year, it was possible to supplement 28 % (December) 85 % (February) of heating energy with surplus solar energy.


Journal of Biosystems Engineering | 2011

Solar Energy Storage Effectiveness on Double Layered Single Span Plastic Greenhouse

Sung-Hyoun Lee; Young-Sun Ryou; Jongpil Moon; Nam-Kyu Yun; Jin-Kyung Kwon; Su-Jang Lee; Kyeong-Won Kim

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 houses 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.


Journal of The Korean Society of Agricultural Engineers | 2011

Greenhouse Heating Technology Development by using Riverbank Filtration Water

Jongpil Moon; Sung-Hyoun Lee; Jin-Kyung Kwon; Younku Kang; Young-Sun Ryou; Su-Jang Lee

In order to heat greenhouse nearby river channel, riverbank filtration water source heat pump was developed for getting plenty of heat flux from geothermal energy. Recharging well, thermal storage tank with separating insulation plate and filtering tank for eliminating iron, manganese were mainly developed for making the coefficient of performance (COP) of heat pump higher. Heating system using riverbank filtration water source heat pump was installed at a paprika greenhouse in the Jinju region where a single fold of vinyl cover and 2 layers of horizontal thermal curtain were installed as a part of temperature keeping and heat insulation with a greenhouse area of 3,185 . 320,000 kcal/h was supplied for performing a site application tests. A greenhouse heating test was performed from Feb. 1, 2011 to Apr. 30, 2011. As the result of that, COPh of the heat pump was measured in the range of 4.0~4.5, while COPS of the system was represented as 2.9~3.3. COP measured of the heat pump was very good and well responded to indoor heating temperature of the environment control system of a greenhouse.


Journal of Microbiology and Biotechnology | 2012

Effect of ammonium and nitrate on current generation using dual-cathode microbial fuel cells.

Jae-Kyung Jang; Jung-Eun Choi; Young-Sun Ryou; Sung-Hyoun Lee; Eunyoung Lee


Microbiology and Biotechnology Letters | 2010

Studies on a Feasibility of Swine Farm Wastewater Treatment using Microbial Fuel Cell

Jae-Kyung Jang; Se-Hee Kim; Young-Sun Ryou; Sung-Hyoun Lee; Jong-Gu Kim; Young-Goo Kang; Younghwa Kim; Jung-Eun Choi


Microbiology and Biotechnology Letters | 2011

Electricity Production Performance of Single- and Dual-cathode Microbial Fuel Cells Coupled to Carbon Source and Nitrate

Jae-Kyung Jang; Eunyoung Lee; Young-Sun Ryou; Sung-Hyoun Lee; Ji-Hwan Hwang; Hyung-Mo Lee; Jong-Goo Kim; Younkoo Kang; Younghwa Kim


2018 Detroit, Michigan July 29 - August 1, 2018 | 2018

Analysis of the horizontal distribution of temperature and humidity in single-span plastic greenhouses

Hyung-Kweon Kim; Young-Sun Ryou; Younghwa Kim; Taeseok Lee; Sungsik Oh


2018 Detroit, Michigan July 29 - August 1, 2018 | 2018

Analysis of energy consumption according to using air circulation fans in greenhouse

Taeseok Lee; Young-Sun Ryou; Hyung-Kweon Kim; Younghwa Kim; Sungsik Oh


Journal of the Korea Organic Resource Recycling Association | 2014

An Analysis of Local Quantity of Carbon Absorption, Fixation and Emission by Using GIS

Hyeon-Tae Kim; Byeong-eun Moon; Eun-gyu Choi; Chi-Ho Kim; Young-Sun Ryou; Jong-Goo Kim


한국신재생에너지학회 학술대회논문집 | 2013

Heating effects of the Greenhouse for Mango heated by the Wood Pellet Boiler

Younku Kang; Young-Sun Ryou; Jong-Goo Kim; Younghwa Kim; Jaekyoun Jang

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Sung-Hyoun Lee

Rural Development Administration

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Jongpil Moon

Chungnam National University

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Chi-Ho Kim

Gyeongsang National University

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Won-Myung Suh

Gyeongsang National University

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