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Iterative learning model predictive controller of plastic sheet temperature for a thermoforming process

机译:热成型过程中塑料板温度的迭代学习模型预测控制器

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Properties of the thermoforming process, such as its nonlinear, time-varying dynamics and actuator constraints, make its control challenging. An iterative control technique along with model predictive control (MPC) is presented in this paper on 2D control of the thermoforming process. This approach utilizes not only incoming information from the ongoing cycle, but also the information stored from the past cycles. To deal with constraints as well as non-repetitive disturbances in the process, the MPC technique is incorporated to update the control law within the cycle. To exploit the repetitive nature of the heating phase of the process, a cycle-to-cycle iterative learning control technique direction is proposed. The iterative learning strategy is useful for achieving desired temperature despite model mismatch and disturbances. Even though the proposed multi-zone temperature controller can handle a multivariable process, the large number of computations makes it difficult to apply to large systems such as a thermoforming machine. To reduce the computational burden, the control laws are computed offline using multi-parametric programming.
机译:热成型过程的特性,例如其非线性,随时间变化的动力学特性和执行器约束,使得其控制具有挑战性。本文针对热成型过程的二维控制,提出了一种与模型预测控制(MPC)一起使用的迭代控制技术。这种方法不仅利用了正在进行的周期中的传入信息,还利用了过去周期中存储的信息。为了处理过程中的约束以及非重复性干扰,MPC技术被纳入以更新周期内的控制规律。为了利用过程加热阶段的重复性,提出了一个循环到循环的迭代学习控制技术方向。尽管模型不匹配和存在干扰,但迭代学习策略仍可用于实现所需的温度。即使所提出的多区域温度控制器可以处理多变量过程,但大量的计算仍难以将其应用于大型系统,例如热成型机。为了减轻计算负担,可使用多参数编程离线计算控制律。

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