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Low Sampling Rate Online Parameters Monitoring of DC–DC Converters for Predictive-Maintenance Using Biogeography-Based Optimization

机译:使用基于生物地理学的优化技术对预测维护的DC-DC转换器的低采样率在线参数监控

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摘要

Pulse width-modulated dc–dc converters are widely used in the renewable power systems. In practice, their reliability is of major concern. To identify the converter system, the Walsh–Hadamard transformation and recursive least square (RLS) methods are used in some previous works. However, the accuracy of the identified parameters is degraded under measurement noise. In this paper, a new approach for the full parameter estimation of a dc–dc buck converter is proposed. The new approach is realized using the biogeography-based optimization. Unlike the traditional RLS method, the proposed method is based on a state-space model with full-state observation. Therefore, the performance of parameter estimation under different measurement noise levels is improved. Both simulation and experimental results are presented to validate the effectiveness of the new estimation scheme.
机译:脉宽调制DC-DC转换器广泛用于可再生能源系统。实际上,它们的可靠性是主要关注的问题。为了确定转换器系统,在先前的一些工作中使用了Walsh-Hadamard变换和递归最小二乘(RLS)方法。然而,在测量噪声下,所识别的参数的准确性降低。在本文中,提出了一种用于直流-直流降压转换器的全参数估计的新方法。新方法是使用基于生物地理的优化实现的。与传统的RLS方法不同,该方法基于具有全状态观测的状态空间模型。因此,提高了在不同测量噪声水平下参数估计的性能。仿真和实验结果均被证实以验证新估计方案的有效性。

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