Heat source shifting in buildings supplied by district heating and exhaust air heat pump

被引:11
|
作者
Kensby, J. [1 ]
Truschel, A. [1 ]
Dalenback, J. O. [1 ]
机构
[1] Chalmers, SE-41296 Gothenburg, Sweden
关键词
Heat source shifting; Exhaust air heat pump; District heating; Hourly pricing;
D O I
10.1016/j.egypro.2017.05.094
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The heat supply for Swedish multi-family residential buildings is becoming more complex, and today it is fairly common to combine district heating with a second heat source. The most common heat source to combine with district heating in Sweden is an exhaust air heat pump. On average, the exhaust air heat pump covers 31% of the yearly heat load and is given full load priority. There is a missed potential in cost and CO2 savings when one heat source is given full load priority, since marginal production costs and CO2 emissions constantly vary in both the electrical grid and the district heating system. The aim of this study is to evaluate how buildings with several heat sources should be operated using hourly energy prices. Hourly heat and electricity prices for Gothenburg have been established for two years based on the marginal costs of heat and electricity generation. These prices have been used to evaluate the most common combinations of heat sources. Results show that the most common combination with an exhaust air heat pump with full load priority does not lower costs compared to the reference case with only district heating. However, having a control system that allows heat source shifting and gives load priority to the heat source with the lowest cost each hour can greatly reduce the heating cost, and systems with larger heat pumps show even greater potential for heat source shifting. (C) 2017 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:470 / 480
页数:11
相关论文
共 50 条
  • [41] District Heating from a Heat Pump Heating Plant.
    Fischer, M.
    Eta. Elektrowarme im technischen Ausbau, 1985, 43 (05): : 163 - 171
  • [42] Performance comparison of a heating tower heat pump and an air-source heat pump: A comprehensive modeling and simulation study
    Huang, Shifang
    Zuo, Wangda
    Lu, Huixia
    Liang, Caihua
    Zhang, Xiaosong
    ENERGY CONVERSION AND MANAGEMENT, 2019, 180 : 1039 - 1054
  • [43] Using air source heat pump air heater(ASHP-AH) for rural space heating and power peak load shifting
    Le, Hui
    Li, Haoyue
    Jiang, Yi
    CISBAT 2017 INTERNATIONAL CONFERENCE FUTURE BUILDINGS & DISTRICTS - ENERGY EFFICIENCY FROM NANO TO URBAN SCALE, 2017, 122 : 631 - 636
  • [44] A novel heating strategy and its optimization of solar-air source heat pump heating system for rural buildings in northwest China
    Yan, Xiuying
    Xia, Yu
    He, Xuxin
    JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2024, 16 (03)
  • [45] Applications of Seawater Source Heat Pump in Buildings
    Li, Qingyan
    You, Shijun
    Zheng, Xuejing
    GREEN BUILDING MATERIALS AND ENERGY-SAVING CONSTRUCTION, 2011, 280 : 238 - 241
  • [46] HEAT-PUMP FOR AIR HEATING + AIR DRYING
    BSCHORR, O
    BRENNSTOFF-WARME-KRAFT, 1979, 31 (12): : 483 - 485
  • [47] Optimization of solar-air source heat pump heating system with phase change heat storage
    Kong, Xiangfei
    Liu, Yingshan
    Li, Han
    Fan, Man
    Cao, Weixue
    APPLIED THERMAL ENGINEERING, 2024, 245
  • [48] Experimental Study on Air Source Heat Pump Heating System Based on Phase Change Heat Storage
    Guo, Jianhong
    Yu, Jinxiang
    Wang, Yibo
    Zhang, Xiaoyu
    IEEE ACCESS, 2023, 11 : 110878 - 110887
  • [49] Performance Investigation of An Air Source Heat Pump for Residential Heat Supply Through PCM Underfloor Heating
    Huang, Ming Jun
    Hewitt, Neil J.
    PROCEEDINGS OF THE ISES SOLAR WORLD CONFERENCE 2019 AND THE IEA SHC SOLAR HEATING AND COOLING CONFERENCE FOR BUILDINGS AND INDUSTRY 2019, 2019, : 1763 - 1771
  • [50] Air source heat pump/heat pipe domestic room heating system: Design and experimental research
    Xu, Shuxue
    Chu, Zihao
    Niu, Jianhui
    Ma, Guoyuan
    APPLIED THERMAL ENGINEERING, 2021, 192