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Energy Near-Optimal Control Strategies for Industrial and Traction Drives with a.c. Motors

机译:具有交流电的工业和牵引驱动器的能量近乎最优的控制策略马达

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The main contribution of this paper is a new rest-to-rest position control system for use with electric drives employing a.c. motors that is near-optimal with respect to combined electrical and frictional energy waste minimization. The friction has constant, linear, and quadratic components with respect to the rotor speed. The closeness to optimality is assessed by simulation, comparing the energy loss of the new control system with that predicted by computed optimal controls. The application of the near-optimal control system is rendered straightforward by using a symmetrical trapezoidal speed-time profile. This is provided by an energy saving reference position generator whose output is faithfully followed by means of a feedback control law based on forced dynamics control yielding prescribed closed loop dynamics, together with a matched zero dynamic lag precompensator. For load torque consisting of constant, linear, and quadratic components also maneuver time is optimized if it can be chosen arbitrary. Two case studies, one applied to position control of rotational drive and second one applied to train movement, confirm the possibilities of achieving energy savings.
机译:本文的主要贡献是一种新的静止位置控制系统,该系统可与采用交流电的电动驱动器一起使用。相对于电气和摩擦能量浪费最小化而言,接近最佳的电动机。相对于转子速度,摩擦具有恒定,线性和二次分量。通过仿真评估最佳接近性,将新控制系统的能量损失与计算出的最佳控制所预测的能量损失进行比较。通过使用对称的梯形速度-时间曲线,可以使接近最佳控制系统的应用变得简单。这是由一个节能参考位置发生器提供的,该参考位置发生器的输出将根据基于强制动态控制的反馈控制定律忠实地遵循,该控制产生预定的闭环动态,以及匹配的零动态滞后预补偿器。对于由恒定,线性和二次分量组成的负载转矩,如果可以选择任意时间,那么也会优化操纵时间。有两个案例研究,一个应用于旋转驱动器的位置控制,第二个应用于火车运动,证实了实现节能的可能性。

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