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Optimal PIP Control of a pH Neutralization Process Based on State-Dependent Parameter Model

机译:基于状态依赖参数模型的pH中和过程的最佳点控制

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In this paper, an optimal Proportional-Integral-Plus (PIP) controller based on State-Dependent Parameter (SDP) model is developed to control a highly nonlinear and time-varying pH neutralization process. Since the reaction invariants of the pH process are unavailable for direct measurement, a state observer is required for their estimation. Unfortunately, a closed-loop state observer cannot be designed for the pH process due to the decoupled nature of the reaction invariant dynamics. However, this problem is circumvented by engaging the power of State Variable Feedback (SVF) in the context of a Non-Minimum State Space (NMSS) framework. Furthermore, to compensate for process nonlinearities and unmeasured disturbances, an SDP model is identified using data collected from open-loop experiment, and a straightforwardly tuned optimal PIP controller is subsequently designed based on the SDP model to obtain the SDP-PIP controller. For benchmark purposes, a digital PI controller is designed and results are compared with those from the SDP-PIP controller. Simulation results show that SDP-PIP outperforms PI both in set point and disturbance changes.
机译:在本文中,一个最佳的比例 - 积分 - 加基于状态依赖性参数(SDP)模型(PIP)控制器被开发以控制高度非线性和随时间变化的pH中和过程。由于pH值方法的反应不变量是用于直接测量不可用,需要他们的估计的状态观测器。不幸的是,闭环状态观测器不能被设计成用于将pH过程中由于反应不变动力学的解耦性质。然而,这个问题是由从事非最小状态空间(NMSS)框架下,状态变量反馈(SVF)的功率规避。此外,为了补偿过程非线性和不可测的扰动,一个SDP模型利用从开环实验收集的数据确定的,并且直接地调谐最佳PIP控制器是基于SDP模型以获得所述SDP-PIP控制器随后设计的。为基准的目的,数字PI控制器的设计和结果与从SDP-PIP控制器相比较。仿真结果表明,SDP-PIP性能优于在设定点和干扰的变化PI。

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