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Analysis on Ventilation Efficiency of Standard Duck House using Computational Fluid Dynamics

전산유체역학을 이용한 표준 오리사 설계안에 대한 환기효율성 분석

  • Yeo, Uk-Hyeon (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Jo, Ye-Seul (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Kwon, Kyeong-Seok (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Ha, Tae-Hwan (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Park, Se-Jun (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Kim, Rack-Woo (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Lee, Sang-Yeon (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Lee, Seung-No (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Lee, In-Bok (Department of Rural Systems Engineering, Research Institute for Agriculture and Life Sciences, College of Agriculture and Life Sciences, Seoul National University) ;
  • Seo, Il-Hwan (Center for Green Eco Engineering, Institute of green Bio Science & Technology, Seoul National University)
  • Received : 2015.07.03
  • Accepted : 2015.08.26
  • Published : 2015.09.30

Abstract

In Korea, 69.4 % of duck farms had utilized conventional plastic greenhouses. In this facilities, there are difficulties in controlling indoor environments for raising duck. High rearing density in duct farms also made the environmental control difficult resulting in getting more stressed making their immune system weaker. Therefore, a facility is needed to having structurally enough solidity and high efficiency on the environmental control. So, new design plans of duck house have recently been conducted by National Institute of Animal Science in Korea. As a study in advance to establish standard, computational fluid dynamics (CFD) was used to estimate the aerodynamic problems according to the designs by means of overall and regional ventilation efficiencies quantitatively and qualitatively. Tracer gas decay (TGD) method was used to calculate ventilation rate according to the structural characteristics of duck houses including installation of indoor circulation fan. The results showed that natural ventilation rate was averagely 164 % higher than typically designed ventilation rate, 1 AER ($min^{-1}$). Meanwhile, mechanically ventilated duck houses made 81.2 % of summer ventilation rate requirement. Therefore, it is urgent to develop a new duck house considering more structural safety as well as higher efficiency of environmental control.

Keywords

References

  1. ANSYS Fluent. 2013. ANSYS Fluent tutorial guide, version 15.0. Pennsylvania, U.S.
  2. Bjerg, B., K. Svidt, G. Zhang, S. Morsing, and J.O. Johnsen, 2002. Modelling of air inlets in CFD prediction of airflow in ventilated animal houses. Computers and Electronics in Agriculture 34: 223-234. https://doi.org/10.1016/S0168-1699(01)00189-2
  3. Bjerg, B., P. Liberati, A. Marucci, G. Zhang, T. Banhazi, T. Bartzanas, G. Cascone, I.B. Lee, and T. Norton, 2013a, Modelling of ammonia emissions from naturally ventilated livestock buildings: Part 2, air change modelling Biosystems Engineering 116: 246-258. https://doi.org/10.1016/j.biosystemseng.2013.01.010
  4. Bjerg, B., G. Cascone, I.B. Lee, T. Bartzanas, T. Norton, S.W. Hong, I.H. Seo, T. Banhazi, P. Liberati, A. Marucci, and G. Zhang, 2013b, Modelling of ammonia emissions from naturally ventilated livestock buildings. Part 3: CFD modelling Biosystems Engineering 116: 259-275. https://doi.org/10.1016/j.biosystemseng.2013.06.012
  5. Choi, H. L., 2008. Study on incidence of respiratory disease according to the configurations of structural and ventilation system using aerodynamic approaches, 38-39. National Institute of Animal Science (NIAS) (in Korean).
  6. CIGR, 1984. Climatization of animal houses. Craibstone, Aberdeen, Scotland.
  7. Fanzic, Ventilation plan and design. Http://fanzic.com. Accessed 20 Jul. 2012.
  8. Ha, J.S., 2015. Evaluation of natural ventilation efficiency of protected cultivation system in reclaimed land using aerodynamic simulation. MS. diss., Seoul National University, Seoul, South Korea.
  9. Hong, S.W., I.B. Lee, H.S. Hwang, I.H. Seo, J.P. Bitog, J.I. Yoo, K.S. Kim, S.H. Lee. K.W. Kim, and N.K. Yoon, 2008. Numerical simulation of ventilation efficiencies of naturally ventilated multi-span greenhouse in Korea, Transactions of the ASABE 51: 1417-1432. https://doi.org/10.13031/2013.25235
  10. Hwangbo, J., E.C Hong, B.S. Lee, H.D. Bae, S.J. Lee, S.B. Cho, H.K. Kim, J.H. Kim, B.S. Park and J.I. Song, 2006. Effect of ventilating system on the performance of broiler chicks in an environmental controlled cage house. The Korean Society of Poultry Sciences 33(1): 57-63 (in Korean).
  11. Lee, I.B., S. Sase and S.H. Sung, 2007. Evaluation of CFD accuracy for the ventilation study of a naturally ventilated broiler house. JARQ 41(1): 53-64. https://doi.org/10.6090/jarq.41.53
  12. Ministry for Food, Agriculture, Forestry and Fisheries (MIFAFF). 2012; 2014. The amount of production of agriculture, forestry and livestock industry and production index. Http://mafra.go.kr. Accessed 24 Jun. 2015.
  13. Norton, T., J. Grant, R. Fallon, and D. Sun, 2010. Optimising the ventilation configuration of naturally ventilated livestock buildings for improved indoor environmental homogeneity, Building and Environment 45: 983-995. https://doi.org/10.1016/j.buildenv.2009.10.005
  14. Rural Development Administration (RDA). 2011. Operation manual to enhance agricultural income. Http://rda.go.kr. Accessed 24 Jun. 2015.
  15. Sapounas, A., J.B. Campen, M.C.J. Smits, and H.J.C. van Dooren. 2009. Simulating the effect of forces pit ventilation on ammonia emission from naturally ventilated cow houses with CFD. The 4th European conference on Precision Livestock Farming.
  16. Seo, I.H., I.B. Lee, O.K. Moon, H.T. Kim, H.S. Hwang, S.W. Hong, J.P. Bitog, J.I. Yoo, K.S. Kwon, Y.H. Kim, and J.W. Han, 2009. Improvement of the ventilation system of a naturally ventilated broiler house in the cold season using computational simulation, Biosystems Engineering 104: 106-117. https://doi.org/10.1016/j.biosystemseng.2009.05.007
  17. Song, S.H., I.B. Lee, K.S. Kwon, T.H. Ha, J.P. Bitog, S.W. Hong, I.H. Seo, O.K. Moon, Y.J. Kim, and E.J. Choi, 2012. Analysis of the disease spread in a livestock building using tracer gas experiment, Journal of the Korean Society of Agricultural Engineers 54: 37-45 (in Korean).
  18. Wu, W., G. Zhang, E. Bjerg, and P.V. Nielsen, 2012. An assessment of a partial pit ventilation system to reduce emission under slatted floor-Part 2: Feasibility of CFD prediction using RANS turbulence models. Computer and Electronics in Agriculture 83: 134-142. https://doi.org/10.1016/j.compag.2012.01.011