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Combined Thermo-Electrical Simulation Model for Large-scale Battery Electrical Storage Systems

机译:大型电池蓄电系统组合热电模拟模型

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The self-consumption of the peripheral equipment, especially the cooling system, of a large-scale battery electric storage systems (BESS) affects its overall efficiency. Simulation models can help estimating the efficiency in the design process, but existing models mostly focus on the electrical behavior of smaller storage systems not including peripheral equipment. Here, a model is developed that displays the electrical and thermal behavior of a large-scale BESS and includes its peripheral equipment. The model is validated with measurement data of an operating 1 MW system and it is shown that the model displays the electrical behavior with a relative deviation of 10 %; the thermal behavior with 27 %. Three parameters are varied investigating the impact of the cooling system on the efficiency: nominal thermal power, target temperature and temperature bandwidth of the cooling system. Decreasing the nominal power improves the overall efficiency, whereas varying the temperature bandwidth and target temperature has a minor effect.
机译:大型电池蓄电系统(BESS)的外围设备(尤其是冷却系统)的自耗会影响其整体效率。仿真模型可以帮助估计设计过程中的效率,但是现有模型主要集中在较小的存储系统(不包括外围设备)的电气性能上。在这里,开发了一个模型,该模型显示了大型BESS的电气和热行为,并包括其外围设备。使用运行中的1 MW系统的测量数据验证了该模型,结果表明该模型显示的电气行为具有10%的相对偏差;热性能为27%。研究冷却系统对效率的影响的三个参数各不相同:标称热功率,目标温度和冷却系统的温度带宽。降低标称功率可提高整体效率,而改变温度带宽和目标温度的影响较小。

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