Computational Comparison Between MPC and SR-MPC For Fast Dynamic System in Presence of Hard Constraints

Sajid Sarwar, S. Aslam, Faisal Haider, F. U. Rehman, Atir Khayam, Sundas Hannan
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Abstract

MPC is an optimal control technique and has become a wide-spread solution in numerous industrial applications due to its constraints handling ability. However, MPC requires high computational time to compute the control signal because it uses the state space model of the system in optimization process and thus it suits to regulate the slow dynamic processes i-e petrochemical, fluid catalic cracking, temperature control etc. Therefore, in recent years researchers have proposed number of methods i-e Laguerre Functions based, Scale Reduction technique etc to reduce computational burden of conventional MPC and improve its feasibility for fast dynamic systems. In this research work computational comparison between MPC and Scale Reduction based MPC for a fast dynamic system i-e speed control of a DC motor in presence of hard constraints is presented. The simulations are done by first developing the state space model of DC motor and then simulating it in MATLAB. The results have been investigated in two modes. In first mode speed of DC motor is controlled by both techniques in absence of hard constraints and in second mode hard constraints are applied. The results have shown that Scale Reduction technique improves computational efficiency of MPC and make it feasible for the regulation of fast dynamic systems.
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存在硬约束的快速动态系统MPC与SR-MPC的计算比较
MPC是一种最优控制技术,由于其处理能力的限制,在许多工业应用中得到了广泛的应用。然而,MPC在优化过程中使用系统的状态空间模型,需要较高的计算时间来计算控制信号,因此适合于石油化工、流体催化裂化、温度控制等慢动态过程的调节。因此,近年来研究者们提出了许多方法,如基于Laguerre函数、尺度缩减技术等,以减少传统MPC的计算负担,提高其在快速动态系统中的可行性。本文研究了存在硬约束的直流电机快速动态系统i-e速度控制中MPC与基于尺度缩减的MPC的计算比较。首先建立直流电机的状态空间模型,然后在MATLAB中进行仿真。结果在两种模式下进行了研究。在第一种模式下,直流电机的速度在没有硬约束的情况下由两种技术控制,而在第二种模式下则采用硬约束。结果表明,尺度缩减技术提高了MPC的计算效率,使其适用于快速动态系统的调节。
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