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Optimizing Control of a Tubular Polymerization Reactor: Comparison of Single Shooting and Full Discretization

机译:管状聚合反应器的优化控制:单射击和全离散化的比较

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The goal of this contribution is to study numeric solution techniques for implementing optimizing control of polymerization processes in tubular reactors with multiple side injections of monomer along the reactor. The configuration of the reactor causes long delays between the inputs and the measurements at the reactor outlet and sharp moving fronts when the inflows are changed. Moreover, the polymerization kinetics are strongly nonlinear. The process is described by 1D partial differential equations along the reactor length. This makes the application of optimizing control based on a rigorous process model challenging. The so called weighted essentially non-oscillatory scheme (WENO) is used to discretize the spatial dimension of the plant model. This method avoids the need for a very large number of discretization points and still the model can be simulated sufficiently accurately. The resulting ode model contains 1600 states and comprises five manipulated variables. We implement the optimizing controller using two different approaches: At first single shooting with control vector parametrization is used which is simple to implement and has fewer decision variables. This is compared to full discretization scheme using orthogonal collocation on finite elements which results in a very large but very sparse and structured nonlinear programing problem. The simulation results show that both approaches have a similar performance and drive the system to a significantly more productive steady state.
机译:该贡献的目的是研究用于在沿反应器沿着反应器的多侧注射单体中的管式反应器中聚合过程的优化控制的数字解决方案技术。反应器的配置在输出改变时导致反应器出口的输入和锐利的前线之间的长时间延迟。此外,聚合动力学强烈非线性。该过程由沿着反应器长度的1D偏微分方程描述。这使得基于严格的过程模型挑战的优化控制。所谓的加权基本上非振荡方案(Weno)用于离散植物模型的空间尺寸。该方法避免了对非常大量的离散化点,并且仍然可以充分地模拟模型。得到的ode模型包含1600个态,包括五个操纵变量。我们使用两种不同的方法实现优化控制器:首先使用控制矢量参数化,用于实现易于实现的,并且具有较少的决策变量。将其与使用正交搭配的完全离散化方案进行比较,这导致非常大但非常稀疏和结构化的非线性编程问题。仿真结果表明,两种方法都具有类似的性能,并将系统驱动到明显更高的生产稳态。

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