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A comparison of three sets of DSP algorithms for monitoring the production of ethanol in a fed-batch baker's yeast fermenter

机译:比较三套用于监控分批面包酵母发酵罐中乙醇生产的DSP算法

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摘要

This paper aims at presenting the design approach of three sets of DSP algorithms for a fed-batch biochemical reactor. The proposed algorithms are based on the estimation/observation methods enhanced with artificial neural networks. Here, three popular estimation schemes, namely extended Luenberger observer, extended Kalman filter and adaptive state estimator, have been designed to estimate the specific growth rate, substrate consumption rate and product formation rate on the basis of measured process state variables. The neural network model infers the biomass concentration. It is supposed that the substrate and product concentrations along with the broth volume are measured quantities. The comparative performance of the proposed DSP schemes has been inspected through simulation results dealing with a fed-batch baker's yeast fermenter.
机译:本文旨在介绍一种用于分批补料生化反应器的三套DSP算法的设计方法。所提出的算法基于人工神经网络增强的估计/观测方法。在这里,已经设计了三种流行的估计方案,即扩展的Luenberger观测器,扩展的Kalman滤波器和自适应状态估计器,用于根据测得的过程状态变量来估计比增长率,基板消耗率和产品形成率。神经网络模型推断生物质浓度。假定底物和产物浓度以及肉汤体积是测量量。通过处理补料分装面包机的酵母发酵罐的模拟结果,检验了所提出的DSP方案的比较性能。

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