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首页> 外文期刊>Journal of Process Control >Advanced step nonlinear model predictive control for air separation units
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Advanced step nonlinear model predictive control for air separation units

机译:空分装置的高级阶跃非线性模型预测控制

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Cryogenic air separation units constitute an integral part of many industrial processes and next generation power plants. These units are characterized by fluctuating operating conditions to respond to changing product demands. The dynamics of these transitions are highly nonlinear and energy-intensive. Consequently, nonlinear model predictive control (NMPC) based on rigorous dynamic models is essential for high performance in these applications. Currently, the implementation of NMPC controllers is limited by the computational complexity of the associated on-line optimization problems. In this work, we make use of the so-called advanced step NMPC controller to overcome these limitations. We demonstrate that this sensitivity-based strategy reduces the on-line computational time to just a single CPU second, while incorporating a highly detailed dynamic air separation unit model. Finally, we demonstrate that the controller can handle nonlinear dynamics over a wide range of operating conditions.
机译:低温空气分离装置是许多工业过程和下一代发电厂的组成部分。这些单元的特点是运行条件波动,以响应不断变化的产品需求。这些过渡的动力学是高度非线性的,并且是能源密集型的。因此,基于严格动态模型的非线性模型预测控制(NMPC)对于这些应用中的高性能至关重要。当前,NMPC控制器的实现受到相关联的在线优化问题的计算复杂度的限制。在这项工作中,我们利用所谓的高级步进NMPC控制器来克服这些限制。我们证明了这种基于灵敏度的策略将在线计算时间减少到仅一个CPU秒,同时并入了高度详细的动态空气分离单元模型。最后,我们证明了该控制器可以在广泛的工作条件下处理非线性动力学。

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