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The energy-saving study of water heater based on source-sink matching principle

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  • Wang, Jikang
  • Li, Yan
  • Yuan, Han
  • Zhang, Zhixiang
  • Ding, Zhuang
  • Mei, Ning

Abstract

Aiming at the energy-saving of water heater, a novel technology which can enhance thermal insulation and improve energy efficiency simultaneously has been proposed, and its source-sink matching strategy has been investigated in this study. A source-sink heat transfer device is designed, and the optimal installment position of this device has been determined through theoretical and experimental methods, besides that, the rationality of matching strategy is also evaluated. Experimental results and exergy analysis show that the optimal installment position and suitable source-sink matching strategy facilitate to boost the energy-saving effect, lower production cost and conform to the miniaturization trend of water heater. In addition, the experimental results reveal that although adiabatic measures and energy efficiency improvement measures adopted by this technology are different, the ultimate direction is the same, both of which are to directly or indirectly reduce the temperature of heat source, which can provide significant reference for practical engineering application.

Suggested Citation

  • Wang, Jikang & Li, Yan & Yuan, Han & Zhang, Zhixiang & Ding, Zhuang & Mei, Ning, 2020. "The energy-saving study of water heater based on source-sink matching principle," Energy, Elsevier, vol. 205(C).
  • Handle: RePEc:eee:energy:v:205:y:2020:i:c:s0360544220310902
    DOI: 10.1016/j.energy.2020.117983
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    References listed on IDEAS

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    1. Grassi, Stefano & Chokani, Ndaona & Abhari, Reza S., 2012. "Large scale technical and economical assessment of wind energy potential with a GIS tool: Case study Iowa," Energy Policy, Elsevier, vol. 45(C), pages 73-85.
    2. Wong, L.T. & Mui, K.W. & Guan, Y., 2010. "Shower water heat recovery in high-rise residential buildings of Hong Kong," Applied Energy, Elsevier, vol. 87(2), pages 703-709, February.
    3. Yao, Zhi-Min & Qian, Zuo-Qin & Li, Rong & Hu, Eric, 2019. "Energy efficiency analysis of marine high-powered medium-speed diesel engine base on energy balance and exergy," Energy, Elsevier, vol. 176(C), pages 991-1006.
    4. Kwak, Dong-Hun & Binns, Michael & Kim, Jin-Kuk, 2014. "Integrated design and optimization of technologies for utilizing low grade heat in process industries," Applied Energy, Elsevier, vol. 131(C), pages 307-322.
    5. Cuce, Erdem & Cuce, Pinar Mert & Young, Chin-Huai, 2016. "Energy saving potential of heat insulation solar glass: Key results from laboratory and in-situ testing," Energy, Elsevier, vol. 97(C), pages 369-380.
    6. Li, Pengliang & Liu, Zhenyi & Li, Mingzhi & Zhao, Yao & Li, Xuan & Sun, Ruiyan, 2018. "Experimental study on the ignition time of electric heaters with thermal insulation structure," Energy, Elsevier, vol. 160(C), pages 855-862.
    7. Varga, Zoltán & Palotai, Balázs, 2017. "Comparison of low temperature waste heat recovery methods," Energy, Elsevier, vol. 137(C), pages 1286-1292.
    8. Chen, Huijuan & Goswami, D. Yogi & Stefanakos, Elias K., 2010. "A review of thermodynamic cycles and working fluids for the conversion of low-grade heat," Renewable and Sustainable Energy Reviews, Elsevier, vol. 14(9), pages 3059-3067, December.
    Full references (including those not matched with items on IDEAS)

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