级联 H 桥电池储能变换器两步模型预测电流控制方法研究

Two-step Model Predictive Current Control for a Cascaded H-bridge Battery Energy Storage Converter

  • 摘要: 为提高级联 H 桥电池储能变换器在并网充放电过程中电流控制的动态性能、稳态精度及工程适用性,提出一种计及数字控制延迟的固定开关频率两步模型预测电流控制方法。首先基于同步旋转坐标系建立并网侧电流离散模型,并引入两步预测机制以补偿数字控制延迟,然后设计以电流跟踪误差与控制电压增量为优化目标的目标函数,推导得到最优控制电压的解析表达式,避免有限控制集模型预测控制中对开关状态的遍历寻优过程,实现低运算量的实时控制。搭建4级级联H桥电池储能变换器实验平台,在充放电电流阶跃、轻度电网电压不平衡扰动及参数偏差工况下,与传统比例积分控制进行对比验证。实验结果表明,所提方法能在保证稳态电流质量的同时,改善电流环动态响应性能,并在轻度电网电压不对称及参数偏差下保持较高的控制精度和鲁棒性。

     

    Abstract: To improve the dynamic performance, steady-state accuracy and engineering applicability of current control for a cascaded H-bridge battery energy storage converter during grid-connected charging and discharging operation, a fixed-switching-frequency two-step model predictive current control method considering digital control delay is proposed. A discrete grid-side current model is first established in the synchronous rotating reference frame, and a two-step prediction mechanism is introduced to compensate for the digital control delay. A cost function with current tracking errors and control voltage increments as optimisation objectives is then designed, and an analytical expression of the optimal control voltage is derived. The proposed method avoids the exhaustive search of switching states required in finite-control-set model predictive control and enables real-time control with low computational burden. A four-cell cascaded H-bridge battery energy storage converter experimental platform is built, and comparative tests with conventional proportional-integral control are carried out under charging/discharging current steps, mild grid-voltage unbalance disturbances and parameter deviation conditions. Experimental results show that the proposed method improves the dynamic response of the current loop while maintaining steady-state current quality, and retains good control accuracy and robustness under mild grid-voltage unbalance and parameter deviations.

     

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