Browse > Article

Variation of Indoor Air Temperature by using Hot Water Piping in Greenhouse  

Yoon, Yong-Cheol (Dept. of Agricultural Eng., Gyeongsang National Univ.(Insti. of Agric. & Life Sci.))
Shin, Yik-Soo (Graduate School, Gyeongsang National Univ.)
Bae, Seoung-Beom (T.O.P TECH)
Kim, Hyeon-Tae (Dept. of Bio-Industrial Machinery Eng., Gyeongsang National Univ.(Insti. of Agric. & Life Sci.))
Choi, Jin-Sik (S.H.E.C. Co., Ltd)
Suh, Won-Myung (Dept. of Agricultural Eng., Gyeongsang National Univ.(Insti. of Agric. & Life Sci.))
Publication Information
Journal of agriculture & life science / v.46, no.2, 2012 , pp. 179-190 More about this Journal
Abstract
This study was performed to obtain a heat saving effect and enhance the efficiency of a greenhouse by using a hot water piping in order to minimize the operating costs of a greenhouse as oil prices continue to rise. This method also reduces the likelihood of accidents caused by snowdrifts in regions with heavy snowfall. In general, the experimental plot was $2.0{\sim}6.0^{\circ}C$ higher than the control plot. When the skylight felt was opened, the minimum temperature was in the range of $3.0{\sim}12.0^{\circ}C$. Therefore, we judged that damage caused by snowdrifts may be prevented partly by active heating. The temperature difference inside of the greenhouse by height was insignificant. The maximum heating load of the greenhouse according to crop was respectively about $37,000kcal{\cdot}h^{-1}$ and $41,700kcal{\cdot}h^{-1}$. During the experiment, the heat value of each designed temperature in the range of the minimum ambient temperature $-11.9{\sim}4.0^{\circ}C$ was about 95,000~322,000 kcal and it was in the range of $6,050{\sim}20,900kcal{\cdot}h^{-1}$. If it is compared with the maximum heating load, it can be shown that about 15~56% of the heating energy can be supplied. The total heat value and the amount of power consumption were 2,629,025 kcal and 677.3 kWh respectively during the experiment. If it is heated with diesel, a fossil fuel, the consumption during the experiment was 291 L and the cost was 331,700won. Total cost of using electric power was about 24,400 won and it is shown that it is about 7.5% of the cost of diesel consumption. Also, if the total amount of power consumption is converted into energy, it is approximately 582,200 kcal and the energy was just about 22% of the total heat value.
Keywords
Experimental plot; Control plot; Heating Load; Hot Water Piping; Snowdrifts;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
연도 인용수 순위
1 http://www.rad.go.kr.
2 http://www.nogmin.com.
3 http://www.likms.go.kr.
4 Kim, J. H., T. W. Kim, J. K. Song, K. D. Nah, Y. S. Ha, T. S. Kim, and E. T. Kim. 2011. Study on temperature variation by greenhouse soil warming system using solar thermal energy(3) -verification experiment on commercialization of cultivation-. J. Biosystems Eng. 36: 211-216.   DOI
5 Kim, J. H., T. W. Kim, K. D. Nah, T. S. Kim, E. T. Kim, S. H. Chung. 2010. Study on temperature variation by greenhouse soil warming system using solar thermal energy(2) -required energy per unit area for soil warming-. J. Biosystems Eng. 35: 46-52.   DOI
6 Kim, J. H., T. W. Kim, K. D. Nah, T. S. Kim, I. J. Kim, S. H. Chung. 2009. Study on temperature variation by greenhouse soil warming system using solar thermal energy(2) -temperature variation of soil depth by soil warming-. J. Biosystems Eng. 34: 190-196.   DOI
7 Kim, M. G., S. W. Nam, W. M. Suh, Y. C. Yoon, S. G. Lee, and H. W. Lee. 2000. Agricultural structural engineering. p. 170. eds, Hyangmunsa. Seoul, Korea.
8 Kim, H. Y. and J. J. Yee. 2007. Preparation the standard weather data and TAC map for heating and cooling load calculation in the 17-provinces of Korea. Architectural Institute Korea. 23: 197-204.
9 Kwon, J. K., J. P. Moon, S. H. Lee, J. H. Seong, S. J. Lee, B. M. Choi, and K. J. Kim. 2012. Development of diagnostic System for heat loss of horticultural facility. Proceefing of the KSAM 2012 Winter Conference. 17: 346.
10 Lee, H. S., Y. S. Ryou, J. P. Moon, N. K. Yun, J. K. Kwon, S. L. Lee, and K. M. Kim. 2011. Solar energy storage effectiveness on double layered single span plastic greenhouse. J. Biosystems Eng. 36: 217- 222.   DOI
11 Lee, Y. B., H. J. Jun, and J. E. Son. 2010. Protected horticulture new edition. pp. 32-133. eds, Hyangmoonsa. Seoul, Korea.
12 Ministry for Food, Agriculture, Forestry and Fisheries (MIFAFF). 2011a. Greenhouse status for the vegetable grown in facilities and the vegetable productions in 2010. Gwacheon, Korea.
13 Ministry for Food, Agriculture, Forestry and Fisheries (MIFAFF). 2011b. Cultivation status of floricultural crop in 2010. Gwacheon, Korea.
14 Ministry for Food, Agriculture, Forestry and Fisheries (MIFAFF), Rural Development Administration (RDA). 2007, 2010. Designated notice of standards to endure disaster for horticultural and special facilities. Gwacheon and Suwon, Korea.
15 Nam, S. W., and I. K. Yang. 2006. Development of a gable-roofed prefabricated pipe-house for reduction of heavy snow damage. Proceeding of Bio-Environment Con. 15: 201-205.
16 Rural Development Administration(RDA). 2008a. Technology of operating cost down for agriculture. Suwon, Korea.
17 Rural Development Administration(RDA). 2008b. Guidebook of energy saving for overcoming high oil price in protected horticulture. Suwon, Korea.
18 Yoon, Y. C., J. U. Im, H. T. Kim, Y. J. Kim, and W. M. Suh. 2011. Estimation of surplus solar energy in greenhouse based on Region. J. Agric. Life Sci. 45: 135-141.
19 Rural Development Administration(RDA). 2008c. Saving technology of operating cost for agriculture. Suwon, Korea.