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Adaptive Gradient-Based Luenberger Observer Implemented for Electric Drive with Elastic Joint

机译:基于自适应梯度的Luenberger观察者,用于弹性接头的电动驱动器

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In this paper work of the Luenberger observer applied for electric drive with complex mechanical part is analyzed. Comparing to classical solution, additional adaptation of gain matrix was introduced. Starting point for gradient-based on-line parameter recalculation is determined using metaheuristic algorithm - Grey Wolf Optimizer. Two state variables, the most often used in control structures applied for two-mass system, are estimated: load speed and shaft torque. Mentioned methods lead to precise calculations of signals and improvement of results after time constants changes. Moreover, initial phase related to adjustment of observer parameters is shortened. Model of the adaptive observer was firstly prepared, then simulations were realized. Final stage of described project, presents experimental verification, whole algorithm was implemented in processor od dSPACE 1103 board and experimental tests were done (using two DC motors).
机译:在本文的本文中,分析了Luenberger观察者,用于具有复杂的机械部件的电动驱动器。比较与经典解相比,引入了增益矩阵的额外适应。基于梯度的基于线参数重新计算的起点是使用成型算法 - 灰羽智能优化器确定的。估计了两个状态变量,最常用于适用于两个质量系统的控制结构,估计:负载速度和轴扭矩。提到的方法导致精确计算信号和在时间常量变化后的结果的改进。此外,缩短了与观察者参数的调整相关的初始相位。首先准备了自适应观察者的模型,实现了模拟。描述项目的最后阶段,提出了实验验证,整个算法在处理器OD中实现了DSPACE 1103板,并完成了实验测试(使用两个直流电动机)。

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