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Energy efficiency evaluation of grid connection scenarios for stationary battery energy storage systems

机译:固定电池储能系统电网连接方案的能效评估

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The connection to the electrical grid is a key component of stationary battery energy storage systems. Utility-scale systems comprise of several power electronics units. Various grid connection topologies may be used, depending on the conversion stages within each unit, the load distribution between the power electronics and additionally the grid level to which the system is connected. The energy efficiency, which is a key performance indicator for storage systems, is compared between various scenarios. Detailed models are developed for the key components: The inverter/rectifier, the DC-DC converter, and the transformer. The respective model parameterization is based on state-of-art industry components and compared against experimental data. Two grid application scenarios, namely Primary Control Reserve and Secondary Control Reserve, are simulated for a comparison in reference application scenarios often discussed for utility-scale battery energy storage systems. Results show that grid connection setups without an intermediate DC link conversion stage are more efficient than those with. The optimum number of inverters in dependence on the actual load is determined. The connection to the low-voltage grid is more efficient due to the absence of the transformer which introduces significant additional losses. The topology models developed herein can be integrated into system models that include the overall systems or used for the design of novel battery systems grid connection topologies with detailed evaluation down to the component level.
机译:与电网的连接是固定电池能量存储系统的关键组件。公用事业级系统包括多个电力电子单元。可以使用各种网格连接拓扑,这取决于每个单元内的转换级,功率电子器件之间的负载分布以及系统连接的电网级。在各种场景之间比较了作为存储系统关键性能指标的能效。为关键部件开发了详细的型号:逆变器/整流器,DC-DC转换器和变压器。相应的模型参数化基于艺术状态的行业组件,并与实验数据进行比较。模拟了两个网格应用场景,即主要控制储备和二级控制储备,以便在公用事业尺度电池储能系统中讨论的参考应用场景中的比较。结果表明,没有中间直流链路转换级的网格连接设置比其中更有效。确定了依赖实际负载的最佳逆变器的最佳数量。由于不存在变压器,与低压网格的连接更有效,这引入了显着的额外损失。这里开发的拓扑模型可以集成到包括整个系统的系统模型中,或用于设计新型电池系统网格连接拓扑结构,并详细评估到组件级别。

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