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首页> 外文期刊>Mechatronics, IEEE/ASME Transactions on >Microbrushless DC Motor Control Design Based on Real-Coded Structural Genetic Algorithm
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Microbrushless DC Motor Control Design Based on Real-Coded Structural Genetic Algorithm

机译:基于实编码结构遗传算法的无刷直流电动机控制设计

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This paper presents the realization of a microbrushless dc motor (MBDCM) feedback system based on a real-coded structural genetic algorithm (RSGA), which combines the advantages of conventional real genetic algorithms and structured genetic algorithms for optimal control design. In the RSGA, a dynamic crossover and mutation probability adjusting method mimicking the characteristics of Butterworth filters is proposed to enhance the search performance. A SinCos encoder with a line drive of 128 sin/cos signals per revolution is implemented to achieve precise positioning. The SinCos encoder possesses the advantage of high resolution via signal interpolation. The method inherited is simple yet effective, based on logic devices. To verify effectiveness of the proposed methodology, simulations are conducted and an experimental platform with a digital signal processing unit, a motor driver, a MBDCM, and a SinCos encoder is built to verify applicability of the proposed method. The experimental results demonstrating the aforementioned method work properties correlate well with the expectation.
机译:本文提出了一种基于实编码结构遗传算法(RSGA)的无刷直流电动机(MBDCM)反馈系统的实现,该系统结合了常规实遗传算法和结构遗传算法的优势进行最优控制设计。在RSGA中,提出一种模仿巴特沃思滤波器特性的动态交叉和变异概率调整方法,以提高搜索性能。 SinCos编码器具有每转128条sin / cos信号的线驱动,可实现精确定位。 SinCos编码器通过信号插值具有高分辨率的优势。基于逻辑设备,继承的方法简单但有效。为了验证所提出方法的有效性,进行了仿真,并构建了带有数字信号处理单元,电机驱动器,MBDCM和SinCos编码器的实验平台,以验证所提出方法的适用性。证明上述方法工作性质的实验结果与期望值很好地相关。

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