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Hybrid simulation-optimization based approach for the optimal design of single-product biotechnological processes

机译:基于混合仿真优化的单产品生物技术过程优化设计方法

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摘要

In this work, we present a systematic method for the optimal development of bioprocesses that relies on the combined use of simulation packages and optimization tools. One of the main advantages of our method is that it allows for the simultaneous optimization of all the individual components of a bioprocess, including the main upstream and downstream units. The design task is mathematically formulated as a mixed-integer dynamic optimization (MIDO) problem, which is solved by a decomposition method that iterates between primal and master sub-problems. The primal dynamic optimization problem optimizes the operating conditions, bioreactor kinetics and equipment sizes, whereas the master levels entails the solution of a tailored mixed-integer linear programming (MILP) model that decides on the values of the integer variables (i.e., number of equipments in parallel and topological decisions). The dynamic optimization primal sub-problems are solved via a sequential approach that integrates the process simulator SuperPro Designer® with an external NLP solver implemented in Matlab®. The capabilities of the proposed methodology are illustrated through its application to a typical fermentation process and to the production of the amino acid L-lysine.
机译:在这项工作中,我们提出了一种优化生物过程开发的系统方法,该方法依赖于模拟程序包和优化工具的组合使用。我们方法的主要优点之一是,它可以同时优化生物过程的所有单个组件,包括主要的上游和下游单元。设计任务在数学上被公式化为混合整数动态优化(MIDO)问题,可通过在原始问题和主子问题之间进行迭代的分解方法来解决。最初的动态优化问题优化了操作条件,生物反应器动力学和设备尺寸,而主水平则需要定制整数整数线性规划(MILP)模型的解决方案,该模型决定整数变量的值(即设备数量)并行和拓扑决策)。动态优化的主要子问题通过顺序方法解决,该方法将过程模拟器SuperProDesigner®与Matlab®中实现的外部NLP求解器集成在一起。通过将其应用于典型的发酵过程以及氨基酸L-赖氨酸的生产,可以说明所提出方法的功能。

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