Evaluation of energy saving performance of residential SOFC CGS with heat pump water heater

被引:0
|
作者
Inui Y. [1 ]
Tanaka T. [2 ]
Hirayama S. [1 ]
Ito D. [1 ]
机构
[1] University of Shiga Prefecture, 2500, Hassaka-cho, Hikone
[2] Ibaraki University, 4-12-1, Nakanarusawa, Hitachi
关键词
Cogeneration system; Evaluation of energy saving performance; Heat pump water heater; Solid oxide fuel cell;
D O I
10.1541/ieejpes.138.255
中图分类号
学科分类号
摘要
Recently, residential solid oxide fuel cell cogeneration system (SOFC CGS) has been put to the practical use. Considering this fact, in the present study, the authors evaluated the energy saving performance of the residential SOFC CGS. At first, the authors discussed what type of the back-up boiler is suitable for the residential SOFC CGS, and decided to focus on the heat pump water heater. Next, the authors carried out simulations of the operation pattern and performance of the residential SOFC CGS with heat pump water heater (SOFC/HP system) by using the measured results of the electric and hot water loads of an apartment in Fukuoka. As the nominal electric efficiency (LHV base) of the SOFC CGS, two cases of 50% and 60% were supposed. Performance simulations of the actually used residential systems of the conventional system with gas water heater, the all-electric system with heat pump water heater and the SOFC CGS with gas water heater (SOFC/GS system) were also carried out for comparison, It was made clear that the SOFC CGSs generally exhibit very high annual total energy efficiency. It is worthy of special mention that the total energy efficiency of the residential SOFC/HP system with the nominal electric efficiency of the SOFC CGS of 60% reaches one step higher level among them and exceeds the highest level of that of the SOFC/GS system. © 2018 The Institute of Electrical Engineers of Japan.
引用
收藏
页码:255 / 264
页数:9
相关论文
共 50 条
  • [11] Energy management opportunities exploration in a residential air source heat pump water heater.
    Sikhonza, Mandlenkosi
    Tangwe, Stephen
    Simon, Michael
    2020 INTERNATIONAL SAUPEC/ROBMECH/PRASA CONFERENCE, 2020, : 80 - 85
  • [12] Performance characterization of an indoor air source heat pump water heater for residential applications in Canada
    Amirirad, Afarin
    Kumar, Rakesh
    Fung, Alan S.
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2018, 42 (03) : 1316 - 1327
  • [13] Performance evaluation method of solar-assisted heat pump water heater
    Huang, B. J.
    Lee, C. P.
    APPLIED THERMAL ENGINEERING, 2007, 27 (2-3) : 568 - 575
  • [14] Performance evaluation of a wrapped around condenser for heat pump water heater applications
    Rendall, Joseph
    Nawaz, Kashif
    Elatar, Ahmed
    Asher, Will
    Worek, William
    APPLIED THERMAL ENGINEERING, 2022, 207
  • [15] SAVING ENERGY BY NIGHT SETBACK OF A RESIDENTIAL HEAT PUMP SYSTEM
    SCHADE, G
    ASHRAE JOURNAL-AMERICAN SOCIETY OF HEATING REFRIGERATING AND AIR-CONDITIONING ENGINEERS, 1977, 19 (12): : 37 - 37
  • [16] RESIDENTIAL HEAT PUMP USE: SAVING ELECTRICAL ENERGY.
    Nicolich, Mark J.
    ASHRAE Journal, 1977, 19 (12) : 22 - 23
  • [17] Effect of water tank inlet structure on energy discharge performance of heat pump water heater
    Du M.
    Li S.
    Hu M.
    Qin L.
    Xu C.
    Zhou R.
    Zhongnan Daxue Xuebao (Ziran Kexue Ban)/Journal of Central South University (Science and Technology), 2022, 53 (02): : 688 - 695
  • [18] Experimental performance evaluation of a novel heat pump water heater assisted with shower drain water
    Dong, Jiankai
    Zhang, Zhuo
    Yao, Yang
    Jiang, Yiqiang
    Lei, Bo
    APPLIED ENERGY, 2015, 154 : 842 - 850
  • [19] Residential Air Source Heat Pump Water Heater Performance Testing and Feasibility Analysis in Cold Climate
    Tung, King
    Kumar, Rakesh
    Fung, Alan S.
    Leong, Wey H.
    SUSTAINABILITY, 2025, 17 (05)
  • [20] Solar Assisted Heat Pump Water Heater Using Photovoltaic-Thermal Collector Evaporator and Its Building Energy Saving Performance
    Wang, Liguang
    Wang, Chao
    Zhao, Yang
    Zheng, Qiuling
    Chi, Yaodan
    JOURNAL OF NANOELECTRONICS AND OPTOELECTRONICS, 2021, 16 (03) : 395 - 402