A Modelica Toolbox for the Simulation of Borehole Thermal Energy Storage Systems

被引:17
|
作者
Formhals, Julian [1 ,2 ]
Hemmatabady, Hoofar [1 ,2 ]
Welsch, Bastian [1 ,2 ]
Schulte, Daniel Otto [1 ]
Sass, Ingo [1 ,2 ]
机构
[1] Tech Univ Darmstadt, Geothermal Sci & Technol, Schnittspahnstr 9, D-64287 Darmstadt, Germany
[2] Tech Univ Darmstadt, Grad Sch Excellence Energy Sci & Engn, Otto Berndt Str 3, D-64287 Darmstadt, Germany
关键词
borehole thermal energy storage; Modelica; district heating; borehole heat exchanger; thermal resistance capacity model; model reduction; HEAT EXTRACTION;
D O I
10.3390/en13092327
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
Borehole thermal energy storage (BTES) systems facilitate the subsurface seasonal storage of thermal energy on district heating scales. These systems' performances are strongly dependent on operational conditions like temperature levels or hydraulic circuitry. Preliminary numerical system simulations improve comprehension of the storage performance and its interdependencies with other system components, but require both accurate and computationally efficient models. This study presents a toolbox for the simulation of borehole thermal energy storage systems in Modelica. The storage model is divided into a borehole heat exchanger (BHE), a local, and a global sub-model. For each sub-model, different modeling approaches can be deployed. To assess the overall performance of the model, two studies are carried out: One compares the model results to those of 3D finite element method (FEM) models to investigate the model's validity over a large range of parameters. In a second study, the accuracies of the implemented model variants are assessed by comparing their results to monitoring data from an existing BTES system. Both studies prove the validity of the modeling approaches under investigation. Although the differences in accuracy for the compared variants are small, the proper model choice can significantly reduce the computational effort.
引用
收藏
页数:23
相关论文
共 50 条
  • [41] Operational Response of a Soil-Borehole Thermal Energy Storage System
    Baser, Tugce
    Lu, Ning
    McCartney, John S.
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2016, 142 (04)
  • [42] A network-based methodology for the simulation of borehole heat storage systems
    Lazzarotto, Alberto
    RENEWABLE ENERGY, 2014, 62 : 265 - 275
  • [44] Simulation and experimental study on honeycomb-ceramic thermal energy storage for solar thermal systems
    Luo, Zhongyang
    Wang, Cheng
    Xiao, Gang
    Ni, Mingjiang
    Cen, Kefa
    APPLIED THERMAL ENGINEERING, 2014, 73 (01) : 622 - 628
  • [45] Theoretical formulation and numerical simulation of thermal performance enhancements for cascade thermal energy storage systems
    Hasan, Hiba A.
    Hussain, Ihsan Y.
    2ND INTERNATIONAL CONFERENCE ON ENGINEERING SCIENCES, 2018, 433
  • [46] Research on Thermal Simulation and Control Strategy of Lithium Battery Energy Storage Systems
    Zhao, Jin
    Yu, Dongxu
    Deng, Chaoping
    Chao, Wujie
    Dai, Liyu
    Zhang, Zhenxing
    Wu, Yixian
    PROCEEDINGS OF THE 4TH INTERNATIONAL SYMPOSIUM ON NEW ENERGY AND ELECTRICAL TECHNOLOGY, ISNEET 2023, 2024, 1255 : 133 - 144
  • [47] Borehole thermal energy storage systems under the influence of groundwater flow and time-varying surface temperature
    Nguyen, A.
    Pasquier, P.
    Marcotte, D.
    GEOTHERMICS, 2017, 66 : 110 - 118
  • [48] Thermal energy storage systems - review
    Akhmetov, B.
    Georgiev, A. G.
    Kaltayev, A.
    Dzhomartov, A. A.
    Popov, R.
    Tungatarova, M. S.
    BULGARIAN CHEMICAL COMMUNICATIONS, 2016, 48 : 31 - 40
  • [49] An overview of thermal energy storage systems
    Alva, Guruprasad
    Lin, Yaxue
    Fang, Guiyin
    ENERGY, 2018, 144 : 341 - 378
  • [50] The use of borehole heat exchangers as energy storage systems - design and efficiency
    Katzenbach, R.
    Wagner, I. M.
    BAUINGENIEUR, 2012, 87 : 410 - 416