DOI QR코드

DOI QR Code

Heating and Cooling Energy Demand Analysis of Standard Rural House Models

농어촌 주택 표준모델의 냉난방에너지요구량 분석

  • Lee, Chan-Kyu (Department of Mechanical Engineering, Kongju National University) ;
  • Kim, Woo-Tae (Department of Mechanical and Automotive Engineering, Kongju National University)
  • 이찬규 (공주대학교 대학원 기계공학과) ;
  • 김우태 (공주대학교 기계자동차공학부)
  • Received : 2012.07.19
  • Accepted : 2012.08.09
  • Published : 2012.08.31

Abstract

The annual energy demand of the standard rural house models was analyzed using the DesignBuilder. Indoor temperature set-point, U-value of outer wall, type of window, and degree of ventilation were selected as simulation parameters. In all the simulation cases, heating energy demand was higher than cooling energy demand regardless of the building size. When the lower U-value of the outer wall was applied to account for the thicker insulation layer, heating energy demand was decreased while cooling energy demand was increased. However, it is better to reduce the area of outer wall which is directly exposed to outdoor air because reducing the U-value of the outer wall is not effective in decreasing heating energy demand. Among the four different window types, the double skin window is most favorable because heating energy demand is the lowest. For a fixed infiltration rate, higher ventilation rate resulted in an increased heating energy demand and had minor impact on cooling energy demand. As long as the indoor air quality is acceptable, lower ventilation rate is favorable to reduce the annual energy demand.

농어촌 주택 표준모델에 대한 연간 건물에너지요구량을 DesignBuilder를 사용하여 계산하였다. 실내설정온도, 외벽의 열관류율, 창호타입, 환기량을 변화시키며 건물의 설계/운영 변수들이 에너지요구량에 미치는 영향을 분석하였다. 건물의 크기와 상관없이 난방에너지요구량이 냉방에너지요구량보다 더 큰 것으로 나타났다. 단열재 두께를 증가시켜 외벽의 열관류율을 감소시키면 단열효과의 증가로 난방에너지요구량은 감소하지만 냉방에너지요구량이 증가한다. 하지만 외벽의 열관류율 조절을 통한 난방에너지요구량의 절감에는 한계가 있으므로 외부에 직접 노출된 외벽의 면적을 최소화하는 것이 더 효과적인 것으로 판단된다. 계산에 사용된 4가지 창호 중 일반 이중창호가 난방에너지요구량 측면에서 가장 유리한 것으로 나타났다. 침기량은 일정하게 유지하고 단위시간당 환기량을 증가시킨 경우 냉방에너지요구량은 큰 변화가 없었으나 난방에너지요구량이 증가하였다. 실내의 공기질이 만족되는 범위 내에서 환기량을 최소화하는 것이 연간 건물에너지요구량을 줄이는데 유리한 것으로 판단된다.

Keywords

References

  1. Y. S. Song and D. Y. Hwang, "Current Status and Future Directions of Return to Farming Education", The Society of Korea Agricultural Education 2010 Annual Conference, pp. 95-121, 2010.
  2. Korea Rural Community Corporation, "Standard Rural House Model", www.welchon.or.kr
  3. J. H. Yoo, J. Y. Kim, and H. J. Hwang, "A Study on Establishment of the Basic Plan to Construct an Integrated Management System of National Building Energy", Land and Housing Institute Journal of Land, Housing, and Urban Affairs, Vol. 2, No. 4, pp. 379-385, 2011. https://doi.org/10.5804/LHIJ.2011.2.4.379
  4. K. U. Im, B. N. Kim, J. H. Yoon., and K. I. Jin, "The Study on the Zero-Energy House Prototype of Country House", The Korean Solar Energy Society 2009 Autumn Annual Conference, Vol. 29, No. 2, pp. 185-190, 2009.
  5. J. H. Son and S. Kim, "A Study on Energy Reduction of Passive Factor Apply for the Improvement of Energy Performance in Public Building", The Korean Solar Energy Society 2011 Spring Annual Conference, Vol. 31, No. 2, pp. 196-201, 2011.
  6. J. Y. Ma and S. Y. Choo, "A Study on BIM based Energy-Efficient Design of Rural Community Standard Drawing and Specification in South Korea -Focused on Thermal Buffer-zone-", Journal of Architectural Institute of Korea, Vol. 28, No. 1, pp. 47-57, 2012.
  7. C. K. Lee and W. T. Kim, "A Study on the Heating and Cooling Energy Load Analysis of the KNU Plant Factory", Journal of the Korea Academia-Industrial cooperation Society, Vol. 13, No. 4, pp. 1419-1426, 2012. https://doi.org/10.5762/KAIS.2012.13.4.1419
  8. DesignBuilder, "DesignBuilder EnergyPlus Simulation Documentation for Design Builder v2.3", 2010.
  9. ASHRAE., "ASHRAE Handbook -Fundamentals, Chapter 28, Climate Design Information", pp. 28.1-28.10, 2005.
  10. U.S. Department of Energy, "Auxiliary EnergyPlus Programs - Extra Programs for EnergyPlus", 2010.
  11. Korea Energy Management Corporation, "Guidelines for the Indoor Temperature to Save Electricity in Summertime", www.kemco.or.kr
  12. Korea Energy Management Corporation, "Regulations for Building Energy Efficiency Rating and Certification", pp. 32700.1-32700.20, 2007.
  13. C. Y. Jang, J. S. Lee, and H. S. Han, "Evaluation of Building Energy Rating System According to the Change of Building Element's Thermal Insulation Performance in Apartment", Journal of Architectural Institute of Korea, Vol. 55, No. 5, pp. 80-85, 2011.
  14. C. H. Cheong, J. Y. Kim, T. Y. Kim, and S. B. Leigh, "Analysis on the Improvement Factor of Residential Building Energy Rating System in the Respect of Passive House", Journal of Architectural Institute of Korea, Vol. 26, No. 3, pp. 235-243, 2010.
  15. W. K. Choi, "Energy Saving in Office Building, Resolved by the Glazing's SHGC", Journal of Architectural Institute of Korea, Vol. 55, No. 5, pp. 80-85, 2011.
  16. C. H. Cheong, J. Y. Kim, S. H. Hwang, B. Y. Park, T. Y. Kim, and S. B. Leigh, "Verification of Natural Comfort Ventilation Performance by Operation Mode in Korean Apartment", Journal of Architectural Institute of Korea, Vol. 26, No. 1, pp. 331-339, 2010.
  17. H. Jung, S. J. Lee, T. Y. Kim, and S. B. Leigh, "Analyze the Building Thermal Environment by BES-CFD Simulation Coupling Method", 2011 Architectural Institute of Korea Autumn Annual Conference, Vol. 31, No. 2, pp. 425-426, 2011.
  18. S. Chen and G. D. Doolen, "Lattice Boltzmann Method for Fluid Flows", Annual Review of Fluid Mechanics, Vol. 30, pp. 329-364, 1998. https://doi.org/10.1146/annurev.fluid.30.1.329