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Energy Performance Variation of Solar Water Heating System by LCC Optimization in an Office Building

사무소 건물 태양열급탕시스템의 LCC 최적화에 따른 에너지성능 변화 분석

  • Ko, Myeong-Jin (Dept. of Architectural Engineering, University of Incheon) ;
  • Choi, Doo-Sung (Dept. of Building Equip. & Fire Protection System, Chungwoon University) ;
  • Chang, Jae-Dong (School of Architecture, Design & Planning, University of Kansas) ;
  • Kim, Yong-Shik (Dept. of Architectural Engineering, University of Incheon)
  • 고명진 (인천대학교 건축공학과) ;
  • 최두성 (청운대학교 건축설비소방학과) ;
  • 장재동 (캔사스대학교 건축대학) ;
  • 김용식 (인천대학교 건축공학과)
  • Received : 2011.02.17
  • Accepted : 2011.04.21
  • Published : 2011.04.30

Abstract

This study examined the energy performance according to the main design parameters of a solar water heating system for an office building using the life cycle cost (LCC) optimization simulations. The LCC optimization simulations of the system were conducted with TRNSYS and GenOpt employing the Hooke-Jeeves algorithm for cases where water temperature was $60^{\circ}C$ and $50^{\circ}C$. The results showed that for water temperature at $60^{\circ}C$ and $50^{\circ}C$ the global radiation incident on the collector could be decreased by 16.98% and 28.52%, collector useful energy gain could be decreased by 15.04% and 22.59%, energy to load from storage tank could be decreased by 10.86% and 18.06% and AH energy to load could be increased by 16.86% and 38.50% respectively compared to a non-optimized system. The annual average collection efficiency of the collector was increased by 0.88% for $60^{\circ}C$ and 2.78% for $50^{\circ}C$ because of increase of collector slope and decrease of the mass flow rate per collector area. The annual average efficiency of the system was increased by 1.74% and 3.47% compared to the basis system. However, the annual solar fraction of the system was decreased by 6.68% for $60^{\circ}C$ and 11.26% for $50^{\circ}C$ due to decrease of collector area and storage tank volume.

Keywords

References

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Cited by

  1. Comparative Study on Size Optimization of a Solar Water Heating System in the Early Design Phase Using a RETScreen Model with TRNSYS Model Optimization vol.25, pp.12, 2013, https://doi.org/10.6110/KJACR.2013.25.12.693