Performance simulation and analysis of a multi-energy complementary energy supply system for a novel BIPVT nearly zero energy building

被引:15
|
作者
Ren, Haibo [1 ]
Quan, Zhenhua [1 ]
Wang, Zhaomeng [1 ]
Wang, Lincheng [1 ]
Jing, Heran [2 ]
Zhao, Yaohua [1 ,2 ]
机构
[1] Beijing Univ Technol, Beijing Key Lab Green Built Environm & Energy Effi, Beijing 100124, Peoples R China
[2] Boyi Energy Technol Dev Co, Zibo 255220, Shandong, Peoples R China
基金
中国国家自然科学基金;
关键词
Building integrated photovoltaic thermal; Dual heat source heat pump; Dynamic simulation; Energy consumption analysis; Nearly zero energy building; (BIPVT); HEAT; WATER; COLLECTORS;
D O I
10.1016/j.enconman.2023.116879
中图分类号
O414.1 [热力学];
学科分类号
摘要
Building integrated photovoltaic-thermal (BIPVT) technology is an efficient form of solar energy utilization, which realizes self-energy supply and holds good development prospects. In this paper, a novel BIPVT module based on micro heat pipe array and BIPVT near-zero energy building are proposed. A matching multi-energy complementary energy supply system is also proposed for this building. The building and energy supply sys-tem models were built using TRNSYS. The load characteristics of BIPVT buildings were studied by analyzing the heat transfer process of BIPVT components. The energy-saving rate of the building was also calculated using the method of near-zero energy building evaluation index. The accumulated cooling load and heating load of the buildings throughout the year show that those of the BIPVT buildings are 8.6% higher than those of the benchmark building. Comparison of the energy consumption results shows that the annual cumulative energy consumption of the BIPVT building is 32.3% lower compared to the benchmark building's. In addition, 61.2% of the energy required for year-round refrigeration, heating, and electricity can be supplied by this system. The energy consumption index of the BIPVT building is 70.26 kWh / (m2 center dot a). Compared with the benchmark building, the BIPVT building energy saving rate is 76.6% and the building energy efficiency improvement rate is 32.3%.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Performance simulation and energy efficiency analysis of multi-energy complementary HVAC system based on TRNSYS
    Wang, Xing
    Li, Tao
    Yu, Yingying
    Liu, Qingxia
    Shi, Lei
    Xia, Jingtao
    Mao, Qianjun
    APPLIED THERMAL ENGINEERING, 2024, 257
  • [2] The Impact of Multi-energy Complementary System on the Reliability of Energy Supply of Distribution
    Ye, Bin
    Shi, Xuemei
    Li, Dongsen
    Gao, Ciwei
    2018 INTERNATIONAL CONFERENCE ON POWER SYSTEM TECHNOLOGY (POWERCON), 2018, : 1459 - 1464
  • [3] Modelling of an integrated multi-energy system for a nearly Zero Energy Smart District
    Del Pero, C.
    Leonforte, F.
    Lombardi, F.
    Stevanato, N.
    Barbieri, J.
    Aste, N.
    Huerto, H.
    Colombo, E.
    7TH INTERNATIONAL CONFERENCE ON CLEAN ELECTRICAL POWER (ICCEP 2019): RENEWABLE ENERGY RESOURCES IMPACT, 2019, : 246 - 252
  • [4] Economic performance of multi-energy supply system in a zero-carbon house
    Zhao, Xueyuan
    Gao, Weijun
    Qian, Fanyue
    Li, Yanxue
    Ushifusa, Yoshiaki
    Yang, Zhen
    Yin, Wanli
    Ge, Jian
    ENERGY AND BUILDINGS, 2020, 226
  • [5] Design of isolated multi-energy complementary building energy system based on flexible load
    Liu, Yanfeng
    Liu, Zhengxue
    Luo, Xi
    Hu, Liang
    Wang, Yaxing
    Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2022, 43 (06): : 24 - 32
  • [6] Intelligent Building with Multi-Energy System Planning Method Considering Energy Supply Reliability
    Qiao, Guanghua
    JOURNAL OF INTERCONNECTION NETWORKS, 2022, 22 (SUPP04)
  • [7] Implementation and performance analysis of a multi-energy building emulator
    Yang, Tao
    Filonenko, Konstantin
    Arendt, Krzysztof
    Veje, Christain
    2020 6TH IEEE INTERNATIONAL ENERGY CONFERENCE (ENERGYCON), 2020, : 451 - 456
  • [8] Optimization and simulation of a novel multi-energy complementary heat pump system in cold regions
    Li, Xiaolong
    Yu, Hailong
    Dai, Lanhua
    Wang, Chaoqian
    Sun, Yunlan
    Meng, Xingcheng
    APPLIED THERMAL ENGINEERING, 2024, 257
  • [9] Multi-energy sharing optimization for a building cluster towards net-zero energy system
    Gao, Hongjun
    Cai, Wenhui
    He, Shuaijia
    Jiang, Jun
    Liu, Junyong
    APPLIED ENERGY, 2023, 350
  • [10] A Novel Control Strategy for Improving the Performance of a Nearly Zero Energy Building
    Tsioumas, Evangelos
    Jabbour, Nikolaos
    Koseoglou, Markos
    Mademlis, Christos
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2020, 35 (02) : 1513 - 1524