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Energy Management Optimization in Stand-Alone Power Supplies Using Online Estimation of Battery SOC

机译:使用电池SOC的在线估计的独立电源中的能源管理优化

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With the aim to improve the energy management of battery packs in stand-alone power supply applications, a simple but effective model-based algorithm for battery state estimation has been developed. The method can be classified into the category of PI-based observers and exploits a Thevenin-based equivalent circuit to model the battery behavior associated with a simple start-up identification process. The algorithm provides a real-time accurate SOC estimation which can be used to evaluate the actual power capability and to predict the amount of energy flows in a long term time horizon. Moreover, useful information about battery aging such as SOH value can be obtained. Thanks to its straightforward implementation, the proposed algorithm can be conveniently integrated in the battery management systems of charge regulators and other power converters which are part of stand-alone power supplies. In such a way, it is possible to increase the harvested energy without increase the hardware requirements. A comprehensive validation has been carried out by performing several experimental comparisons between the battery state estimation performed by suggested approach and standard methods.
机译:旨在提高独立电源应用中电池组的能量管理,开发了一种简单但有效的基于模型的电池状态估计算法。该方法可以分为基于PI的观察者的类别,并利用基于中的等效电路来模拟与简单的启动识别过程相关联的电池行为。该算法提供了实时精确的SOC估计,可用于评估实际功率能力并预测长期时间范围内的能量流量。此外,可以获得关于诸如SOH值的电池老化的有用信息。由于其简单的实现,所提出的算法可以方便地集成在电池管理系统的电荷调节器和其他功率转换器中,这些电源转换器是独立电源的一部分。以这种方式,可以增加收获的能量而不会增加硬件要求。通过在通过建议的方法和标准方法执行的电池状态估计之间执行若干实验比较,已经进行了全面的验证。

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