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Machine Learning-Based Model Predictive Control of Distributed Chemical Processes

机译:基于机器学习的分布式化学过程模型预测控制

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This work proposes a general framework for linking of a state-of-the-art computational fluid dynamics (CFD) solver, ANSYS Fluent, and other computing platforms using the lock synchronization mechanism in an effort to extend the utilities of CFD solvers from strictly modeling and design to also control and optimization applications. Specifically, phthalic anhydride (PA) synthesis is chosen for this investigation because of its industrial significance and its extreme high exothermicity. Initially, a high-fidelity two-dimensional axisymmetric heterogeneous CFD model for an industrial-scale FBR is developed in ANSYS Fluent. Next, the CFD model is used to explore a wide operating regime of the FBR to create a database, from which recurrent neural network and ensemble learning techniques are used to derive a homogeneous ensemble regression model using a state-of-the-art application program interface. Then, a model predictive control (MPC) formulation that is designed to drive the process performance to the desired set-point and to avoid catalyst deactivation is developed using the ensemble regression model. Subsequently, the CFD model, the ensemble regression model and the MPC are combined to create a closed-loop system by linking ANSYS Fluent toSciPyvia a message-passing interface (MPI) with lock synchronization mechanism. Finally, the simulation data generated by the closed-loop system are used to demonstrate the robustness and effectiveness of the proposed approach.
机译:这项工作提出了一个通用框架,用于使用锁定同步机制链接最先进的计算流体力学(CFD)求解器,ANSYS Fluent和其他计算平台,以从严格建模中扩展CFD求解器的实用性并设计以控制和优化应用程序。具体而言,由于其工业意义和极高的放热性,因此选择了邻苯二甲酸酐(PA)合成进行此项研究。最初,在ANSYS Fluent中开发了用于工业规模FBR的高保真二维轴对称异质CFD模型。接下来,使用CFD模型探索FBR的广泛操作机制以创建数据库,然后使用最新的应用程序从中使用递归神经网络和集成学习技术来推导均质集成回归模型。接口。然后,使用集成回归模型开发了一种模型预测控制(MPC)公式,该公式旨在将过程性能驱动到所需的设定点并避免催化剂失活。随后,通过带有锁定同步机制的消息传递接口(MPI)将ANSYS Fluent链接到SciPy,将CFD模型,集成回归模型和MPC组合在一起以创建一个闭环系统。最后,通过闭环系统生成的仿真数据证明了该方法的鲁棒性和有效性。

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