Component-based modeling of ground-coupled seasonal thermal energy storages

被引:5
作者
Bott, Christoph [1 ]
Ehrenwirth, Mathias [2 ]
Trinkl, Christoph [2 ]
Bayer, Peter [1 ]
机构
[1] Martin Luther Univ Halle Wittenberg, Inst Geosci & Geog, Dept Appl Geol, Von Seckendorff Pl 3, D-06120 Halle, Germany
[2] Ingolstadt Univ Appl Sci, Inst New Energy Syst, Esplanade 10, D-85049 Ingolstadt, Germany
关键词
Seasonal Storage; Thermal Energy Storage; Component-based Modeling; Matlab/Simulink; Large-scale TES; Planning and Design; UNDERGROUND WATER PIT; SOLAR HEATING-SYSTEM; SIMULATION; OPTIMIZATION; DESIGN; TECHNOLOGIES; BUILDINGS; OPERATION; PLANT; TANK;
D O I
10.1016/j.applthermaleng.2022.118810
中图分类号
O414.1 [热力学];
学科分类号
摘要
Seasonal thermal energy storages are considered a central element of modern, innovative energy systems and help to harmonize fluctuating energy sources. Furthermore, they allow for an improved coupling between the electricity and heating sectors. Despite recent improvements of planning processes and enhanced models, significant discrepancies between projected and measured heat losses were revealed. Additional shortcomings of available tools relate to limitations in specifying geometry, internal design, or physical processes. Addressing these drawbacks, this study employs a revised, alternative approach by using a flexible, component-based, model ( "STORE "). It allows variable flexible parameterizations to study diverse design scenarios. After introducing relevant seasonal thermal energy storage components, processes and mechanisms, datasets, and evaluation techniques, a plausibility test is presented that applies a common thermal energy storage model for bench marking. In a test study, the re-use of a circa 1,000 m(3) large swimming pool is simulated. STORE is used to investigate performance trends caused by different designs (e.g., insulation thicknesses, materials at individual interfaces). For the plausibility test, the results show a high degree of coverage and good applicability. Further, the results of the test study show a storage efficiency of 12.4% for an uninsulated base case, which can be improved to 69.5% in case of the most complex, highly insulated configuration. Critical trends are revealed, covering reduced peak capacity levels (26.5 to 23.5 MWh) and raised average filling temperatures (39.1 to 45.2 ?). Improved long-term behavior involves reduced environmental impacts due to reduced heating of the ambient soil (+7.9 K compared to +14.1 K after 2 years). General conclusions reveal that an optimal design should initially focus on an external cover of soil and top insulation. However, evaluations should base on multiple parameters depending on the target criteria. This is where the present model is highly useful. The capability of STORE to rapidly analyze a plethora of scenarios proves its high applicability for optimizing the planning processes of seasonal thermal energy storage projects.
引用
收藏
页数:14
相关论文
共 100 条
  • [81] Analytical approach to ground heat losses for high temperature thermal storage systems
    Suarez, Christian
    Pino, Javier
    Rosa, Felipe
    Guerra, Jose
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2019, 43 (01) : 439 - 454
  • [82] Performance Analysis and Application of Three Different Computational Methods for Solar Heating System with Seasonal Water Tank Heat Storage
    Sun, Dongliang
    Xu, Jinliang
    Ding, Peng
    [J]. ADVANCES IN MECHANICAL ENGINEERING, 2013, : 1 - 13
  • [83] Numerical simulation of underground Seasonal Solar Thermal Energy Storage (SSTES) for a single family dwelling using TRNSYS
    Sweet, Marshall L.
    McLeskey, James T., Jr.
    [J]. SOLAR ENERGY, 2012, 86 (01) : 289 - 300
  • [84] Modeling seasonal solar thermal energy storage in a large urban residential building using TRNSYS 16
    Terziotti, L. T.
    Sweet, M. L.
    McLeskey, J. T., Jr.
    [J]. ENERGY AND BUILDINGS, 2012, 45 : 28 - 31
  • [85] Tosatto A., 2019, COMSOL C 2019, P1
  • [86] Enhanced thermal energy supply via central solar heating plants with seasonal storage: A multi-objective optimization approach
    Tulus, Victor
    Boer, Dieter
    Cabeza, Luisa F.
    Jimenez, Laureano
    Guillen-Gosalbez, Gonzalo
    [J]. APPLIED ENERGY, 2016, 181 : 549 - 561
  • [87] A thereto-economical optimization of a domestic solar heating plant with seasonal storage
    Ucar, A.
    Inalli, M.
    [J]. APPLIED THERMAL ENGINEERING, 2007, 27 (2-3) : 450 - 456
  • [88] University of Wisconsin-Madison, 1975, TRNSYS TRANS SIM PRO
  • [89] Urbaneck T, 2004, DISSERTATION
  • [90] Urbaneck T., 2000, TERRASTOCK 2000 TERR, V1st