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Nonlinear predictive control of a boiler-turbine unit: A state-space approach with successive on-line model linearisation and quadratic optimisation

机译:锅炉 - 汽轮机单元的非线性预测控制:一种连续在线模型线性化和二次优化的状态空间方法

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This paper details development of a Model Predictive Control (MPC) algorithm for a boiler-turbine unit, which is a nonlinear multiple-input multiple-output process. The control objective is to follow set-point changes imposed on two state (output) variables and to satisfy constraints imposed on three inputs and one output. In order to obtain a computationally efficient control scheme, the state-space model is successively linearised on-line for the current operating point and used for prediction. In consequence, the future control policy is easily calculated from a quadratic optimisation problem. For state estimation the extended Kalman filter is used. It is demonstrated that the MPC strategy based on constant linear models does not work satisfactorily for the boiler-turbine unit whereas the discussed algorithm with online successive model linearisation gives practically the same trajectories as the truly nonlinear MPC controller with nonlinear optimisation repeated at each sampling instant. (C) 2017 ISA. Published by Elsevier Ltd. All rights reserved.
机译:本文详细介绍了锅炉 - 汽轮机单元模型预测控制(MPC)算法,这是非线性多输入多输出过程。控制目标是遵循对两个状态(输出)变量强加的设定点变化,并满足在三个输入和一个输出上施加的约束。为了获得计算有效的控制方案,对于当前操作点,状态空间模型在线连续线性化并用于预测。结果,未来的控制策略很容易从二次优化问题计算。对于状态估计,使用扩展的卡尔曼滤波器。结果证明,基于恒定线性模型的MPC策略对锅炉 - 涡轮机单元不令人满意地工作,而具有在线连续模型线性的算法几乎与每个采样瞬间重复的真正非线性MPC控制器具有实际相同的轨迹。 (c)2017 ISA。 elsevier有限公司出版。保留所有权利。

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