基于RAUKF-MPC集成的直流微电网变换器鲁棒自适应控制

Robust Adaptive Control of DC Microgrid Converters via RAUKF-MPC Integration

  • 摘要: 针对直流微电网Buck变换器在模型失配、复杂噪声与恒功率负载扰动耦合作用下的稳定性问题,本文提出一种RAUKF-MPC协同控制方法。该方法在估计层构建融合Huber鲁棒加权、马氏距离异常检测和自适应噪声协方差调节的鲁棒无迹卡尔曼滤波器,以抑制参数摄动与非高斯野值引起的估计偏差。在控制层采用递推最小二乘在线重构预测模型,并结合自适应罚因子ADMM提升模型预测控制的实时求解能力。仿真结果表明,在纯高斯噪声与混合噪声条件下,电压估计RMSE分别为0.0408 V和0.0602 V。模型重构后开环状态更新误差由0.58 V降至0.13 V。在恒功率负载重载阶段,平均输出电压为119.934 V,RMSE为0.213 V,电压纹波为1.55 V。结果表明,所提方法能够在多重不确定因素并存条件下实现较高精度估计与高性能控制,为直流微电网变换器在复杂工况下的鲁棒优化运行提供了有效依据、技术支撑与借鉴。

     

    Abstract: To address the stability issues of DC microgrid buck converters under the coupled effects of model mismatch, complex noise, and constant power load (CPL) disturbances, a synergistic RAUKF-MPC control method is proposed in this paper. At the estimation layer, a robust adaptive unscented kalman filter (RAUKF) is constructed by integrating Huber robust weighting, Mahalanobis distance-based outlier detection, and adaptive noise covariance adjustment to suppress estimation biases caused by parameter perturbations and non-gaussian outliers. At the control layer, the recursive least squares (RLS) algorithm is employed for the online reconstruction of the predictive model, which is combined with the alternating direction method of multipliers (ADMM) utilizing an adaptive penalty factor to enhance the real-time solving capability of model predictive control (MPC). Simulation results demonstrate that under pure gaussian noise and mixed noise conditions, the root mean square errors (RMSE) of voltage estimation are 0.0408 V and 0.0602 V, respectively. After model reconstruction, the open-loop state update error is significantly reduced from 0.58 V to 0.13 V. During the heavy load phase of the CPL, the average output voltage is maintained at 119.934 V, with an RMSE of 0.213 V and a voltage ripple of 1.55 V. The results indicate that the proposed method achieves high precision estimation and high-performance control even under the coexistence of multiple uncertain factors, providing an effective basis, technical support, and reference for the robust optimal operation of DC microgrid converters under complex operating conditions.

     

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