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Tertiary and Secondary Control Levels for Efficiency Optimization and System Damping in Droop Controlled DC–DC Converters

机译:第三级和第二级控制水平,用于下垂控制DC-DC转换器的效率优化和系统阻尼

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Droop control by means of virtual resistance (VR) control loops can be applied to paralleled dc–dc converters for achieving autonomous equal power sharing. However, equal power sharing does not guarantee an efficient operation of the whole system. In order to achieve higher efficiency and lower energy losses, this paper proposes a tertiary control level including an optimization method for achieving efficient operation. As the efficiency of each converter changes with the output power, VR values are set as decision variables for modifying the power sharing ratio among converters. A genetic algorithm is used in searching for a global efficiency optimum. In addition, a secondary control level is added to regulate the output voltage drooped by the VRs. However, system dynamics is affected when shifting up/down the VR references. Therefore, a secondary control for system damping is proposed and applied for maintaining system stability. Hardware-in-the-loop simulations are conducted to validate the effectiveness of this method. The results show that the system efficiency is improved by using tertiary optimization control and the desired transient response is ensured with system damping secondary control.
机译:通过虚拟电阻(VR)控制回路进行的下垂控制可应用于并联的dc-dc转换器,以实现自主平均功率共享。但是,相等的功率共享不能保证整个系统的有效运行。为了实现更高的效率和更低的能量损失,本文提出了一种第三级控制级别,其中包括一种用于实现高效运行的优化方法。由于每个转换器的效率随输出功率而变化,因此将VR值设置为决策变量,以修改转换器之间的功率分配比。遗传算法用于寻找全局效率最佳值。此外,还添加了一个次级控制电平,以调节VR下降的输出电压。但是,上/下移动VR参考时,系统动态会受到影响。因此,提出了一种用于系统阻尼的辅助控制,并将其用于保持系统的稳定性。进行了硬件在环仿真,以验证该方法的有效性。结果表明,通过采用三级优化控制可以提高系统效率,并通过系统阻尼二级控制确保所需的瞬态响应。

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