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On-line optimization of fedbatch bioreactors by adaptive extremum seeking control

机译:自适应极值搜索控制在线优化补料分批生物反应器

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摘要

In this paper, we present an adaptive extremum seeking control scheme for fed-batch bioreactors with Haldane kinetics. The proposed adaptive extremum seeking approach utilizes the structure information of the process kinetics to derive a seeking algorithm that drives the system states to the desired setpoints that maximize the biomass production. It assumes that only the substrate concentration is available for on-line measurement. Lyapunov stability is used in the design of the extremum seeking controller structure and the development of the parameter learning laws. The performance of the approach is illustrated via numerical simulations.
机译:在本文中,我们提出了具有Haldane动力学的补料分批生物反应器的自适应极值寻求控制方案。提出的自适应极值搜索方法利用过程动力学的结构信息来导出搜索算法,该算法将系统状态驱动到使生物质产量最大化的期望设定值。假定只有底物浓度可用于在线测量。 Lyapunov稳定性用于极值搜索控制器结构的设计和参数学习定律的开发。通过数值仿真说明了该方法的性能。

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