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Application of Salp Swarm Algorithm for DC Motor Parameter Estimation in an Industry 4.0 Control Systems IoT Framework

机译:Salp Swarm算法在工业4.0控制系统IoT框架中直流电机参数估计中的应用

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Common industrial automation applications include food, packaging, logistics systems, tool machines and robots, among others. To achieve higher demands in terms of dynamic behavior and precision, industrial automation heavily relies on industrial AC motor drives, servo motor drives and DC motor drives. A microcontroller used at the center of a topcaliber motor control system, can quickly compute cascaded control tasks, and measure current, position, and speed with ultimate precision. The heavy demand load occurs in real-time, which requires a highly capable system. On the contrary, in such an environment, many factors can affect the corresponding motor control system performance, as the controlled plant (e.g. DC motors) may exhibit operational parameter variations over time. This paper deals with the application of a recently introduced meta-heuristic optimization technique in order to estimate the main motor parameters with accuracy, so as the corresponding control system to present sustainability -in real time- in terms of strict industry 4.0 demands. The results obtained, reveal that the potential use of the algorithm utilized in a IoT framework can enhance the reliability of a modern industrial control system.
机译:常见的工业自动化应用包括食品,包装,物流系统,工具机和机器人等。为了实现对动态行为和精度的更高要求,工业自动化严重依赖于工业交流电动机驱动器,伺服电动机驱动器和直流电动机驱动器。高品质电机控制系统中心使用的微控制器可以快速计算级联的控制任务,并以极高的精度测量电流,位置和速度。繁重的需求负载是实时发生的,这需要功能强大的系统。相反,在这样的环境中,许多因素会影响相应的电机控制系统性能,因为受控设备(例如DC电机)可能会随时间显示运行参数变化。本文讨论了最近引入的元启发式优化技术的应用,以便准确估计主要的电动机参数,从而根据严格的工业4.0要求,提供相应的控制系统以实时呈现可持续性。获得的结果表明,物联网框架中使用的算法的潜在用途可以增强现代工业控制系统的可靠性。

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