Design optimization of a district heating and cooling system with a borehole seasonal thermal energy storage

被引:17
|
作者
Fiorentini, Massimo [1 ]
Heer, Philipp [1 ]
Baldini, Luca [2 ]
机构
[1] Empa Swiss Fed Labs Mat Sci & Technol, Urban Energy Syst Lab, CH-8600 Dubendorf, Switzerland
[2] ZHAW Zurich Univ Appl Sci, CH-8401 Winterthur, Switzerland
关键词
Seasonal thermal energy storage; Energy optimization; Multi-energy systems; Renewable energy; CO2 emissions reduction; MULTIOBJECTIVE OPTIMIZATION; MODEL; PERFORMANCE; OPERATION;
D O I
10.1016/j.energy.2022.125464
中图分类号
O414.1 [热力学];
学科分类号
摘要
The optimal design of borehole thermal energy storage systems can ensure their techno-economical goals are met. Current design optimization methods either employ detailed modelling unsuitable for numerical optimization or use simplified models that do not consider operational conditions. This paper proposes an optimization-oriented model and a non-convex optimization formulation that, differently from other studies in the literature, can consider the influence of the seasonal storage size and temperature on its capacity, losses, heat transfer rate, and efficiency of connected heat pumps or chillers. This methodology was applied to a case study, considering two scenarios: storing only the rejected heat from cooling and integrating solar thermal generation. Results show that, with varying boundary conditions such as the electricity CO2 intensity profile, cooling demand, and price of carbon emissions, not only the optimal seasonal storage size changes but also its optimal operating conditions. The potential reduction of CO2 emissions was found, under standard boundary conditions, to be limited (up to 6.7%), but an increase in cooling demand and an enhancement of the CO2 intensity seasonal variation led to a reduction of 27.1%. Integration of solar generation further improved it to 43.7%, with a comparably small increase in annual cost, up to 6.1%.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Strategic optimization of borehole heat exchanger field for seasonal geothermal heating and cooling
    Bayer, Peter
    de Paly, Michael
    Beck, Markus
    [J]. APPLIED ENERGY, 2014, 136 : 445 - 453
  • [42] Energy Efficient Integration of Heat Pumps into Solar District Heating Systems with Seasonal Thermal Energy Storage
    Marx, Roman
    Bauer, Dan
    Drueck, Harald
    [J]. 2013 ISES SOLAR WORLD CONGRESS, 2014, 57 : 2706 - 2715
  • [43] Influence of centralized and distributed thermal energy storage on district heating network design
    Jebamalai, Joseph Maria
    Marlein, Kurt
    Laverge, Jelle
    [J]. ENERGY, 2020, 202
  • [44] Borehole thermal energy storage for building heating application: A review
    Wang, Xiaozhe
    Zhang, Hao
    Cui, Lin
    Wang, Jingying
    Lee, Chunhian
    Zhu, Xiaoxuan
    Dong, Yong
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2024, 203
  • [45] Optimization of a Hybrid Energy System with District Heating and Cooling Considering Off-Design Characteristics of Components, an Effort on Optimal Compressed Air Energy Storage Integration
    Chen, Shang
    Arabkoohsar, Ahmad
    Chen, Guodong
    Nielsen, Mads Pagh
    [J]. ENERGIES, 2022, 15 (13)
  • [46] Exergy Analysis for Utilizing Latent Energy of Thermal Energy Storage System in District Heating
    Yi, Joong Yong
    Kim, Kyung Min
    Lee, Jongjun
    Oh, Mun Sei
    [J]. ENERGIES, 2019, 12 (07)
  • [47] Characteristic analysis and parameter optimization of seasonal solar thermal storage heating system
    Xu, Lei
    Deng, Yimin
    Gao, Long
    Zhang, Yuying
    Li, Ji
    Zhang, Long
    Ji, Xiang
    [J]. PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-ENERGY, 2023,
  • [49] Energy system benefits of combined electricity and thermal storage integrated with district heating
    Lund R.
    [J]. International Journal of Sustainable Energy Planning and Management, 2021, 31 : 23 - 38
  • [50] Flexibility of a combined heat and power system with thermal energy storage for district heating
    Nuytten, Thomas
    Claessens, Bert
    Paredis, Kristof
    Van Bael, Johan
    Six, Daan
    [J]. APPLIED ENERGY, 2013, 104 : 583 - 591