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Optimal design of discrete-time fractional-order PID controller for idle speed control of an IC engine

机译:IC发动机空闲速度控制离散时间分数级PID控制器的最佳设计

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This paper aims at proposing a discrete-time fractional-order PID (FOPID) controller, which can stabilise the variation of the idle speed of an internal combustion engine due to the occurrence of the external load disturbance. The nonlinear idle speed dynamics is linearised to be approximated by a first order plus dead time (FOPDT) model so that the FOPID controller can be initialised by a Ziegler-Nichols type tuning rule. The initialised FOPID controller can stabilise the linearised model, but it may lose its control capability in nonlinear idle speed dynamics. Therefore, an optimisation problem is solved through genetic algorithm (GA) to minimise a cost function within a small region around the FOPID's initial parameters. The optimal discrete-time FOPID controller are compared to a conventional discrete-time PID controller. The simulation study reveals that the optimal discrete-time FOPID controller secures an excellent control performance to the nonlinear idle speed model.
机译:本文旨在提出离散时间分数级PID(FOPID)控制器,其由于外部负载扰动的发生,这可以稳定内燃机的空闲速度的变化。 非线性空闲速度动态被线性化以通过第一阶加上死区时间(FOPDT)模型来近似,以便可以通过Ziegler-Nichols类型调整规则初始化FoPID控制器。 初始化的FoPID控制器可以稳定线性化模型,但可能会失去非线性怠速动态的控制能力。 因此,通过遗传算法(GA)解决了优化问题,以最小化FoPID初始参数周围的小区域内的成本函数。 与传统的离散时间PID控制器进行比较,最佳离散时间FOPID控制器。 仿真研究表明,最佳离散时间FoPID控制器对非线性怠速模型确保了优异的控制性能。

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