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A Novel attempt to reduce engineering effort in modeling non-linear chemical systems for Operator Training Simulators

机译:一种新颖的尝试,以减少用于模拟运营商训练模拟器的非线性化学系统的工程努力

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Operator Training Simulator (OTS) applications have become the norm of the industry in training operators to achieve efficient process operations. First principles based modeling approach in OTS packages achieves realistic simulations of chemical processes. However modeling the kinetics and thermodynamics accurately require considerable engineering efforts and may involve experimental studies to match the plant behavior. Hybrid models also known as grey-box models replace the unknown/complex equations in first principles models with empirical relationship using functional approximators such as neural networks, polynomials, etc. In this work we explore the use of Kernel Principal Component Analysis (K-PCA) as an approximation technique for certain nonlinear thermodynamics or kinetic functions parameterized using available plant archived data. Simulation results on a complex binary distillation column demonstrate the applicability of the proposed novel approach.
机译:操作员培训模拟器(OTS)应用已成为培训运营商行业的规范,以实现高效的过程操作。基于原理的otS包装中的建模方法实现了化学过程的现实模拟。然而,建模动力学和热力学准确地需要相当大的工程努力,并且可能涉及实验研究以匹配植物行为。混合模型又称灰度盒式模型,替换了第一个原理模型中的未知/复杂方程,使用功能近似器(如神经网络,多项式等)的经验关系。在本工作中,我们探讨了内核主成分分析的使用(K-PCA )使用可用工厂存档数据参数化的某些非线性热力学或动力学功能的近似技术。复杂二元蒸馏塔上的仿真结果表明了所提出的新方法的适用性。

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