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Nonlinear Model Predictive Control of High Purity Distillation Columns for Cryogenic Air Separation

机译:低温空分高纯度蒸馏塔的非线性模型预测控制

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High purity distillation columns are critical unit operations in cryogenic air separation plants that supply purified gases to a number of industries. We have developed a nonlinear model predictive control (NMPC) strategy based on the assumption of full-state feedback for a prototypical cryogenic distillation column to allow effective operation over a wide range of plant production rates. The controller design was based on a reduced-order compartmental model derived from detailed mass and energy balances by exploiting time-scale separations. Temporal discretization of the compartmental model produced a very large set of nonlinear differential and algebraic equations with advantageous sparsity properties, enabling online solution of the NMPC problem. The synergistic combination of several real-time implementation techniques were found to be essential for further reducing computation time and allowing reliable solution within the 2-min controller sampling interval. Closed-loop simulation studies demonstrated the performance advantages of NMPC compared to linear model predictive control technology currently used in the air separation industry.
机译:高纯度蒸馏塔是低温空气分离厂中至关重要的单元操作,向许多行业提供纯净气体。我们已经基于原型低温蒸馏塔全状态反馈的假设,开发了一种非线性模型预测控制(NMPC)策略,以允许在广泛的工厂生产率范围内有效运行。控制器的设计基于通过利用时间尺度分离而从详细的质量和能量平衡中得出的降序区间模型。隔室模型的时间离散化产生了非常多的具有有利稀疏特性的非线性微分和代数方程组,从而可以在线求解NMPC问题。已发现几种实时实现技术的协同组合对于进一步减少计算时间并在2分钟的控制器采样间隔内提供可靠的解决方案至关重要。闭环仿真研究表明,与目前空分行业中使用的线性模型预测控制技术相比,NMPC的性能优势更为明显。

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