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首页> 外文期刊>Systems Analysis Modelling Simulation >ONLINE BIOMASS AND SPECIFIC GROWTH RATE ESTIMATION AIMED TO CONTROL OF A CHEMOSTAT MICROBIAL CULTIVATION ACCOUNTING FOR THE MEMORY EFFECTS
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ONLINE BIOMASS AND SPECIFIC GROWTH RATE ESTIMATION AIMED TO CONTROL OF A CHEMOSTAT MICROBIAL CULTIVATION ACCOUNTING FOR THE MEMORY EFFECTS

机译:在线生物量和特定增长率的估计,旨在控制因化学作用而产生的化学稳态微生物

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摘要

A general chemostat microbial cultivation model accounting for the memory effects (in two modifications -μ-type and S-type) is used for biomass and growth rate estimation, based on measurements of the substrate concentration. The influence of the memory effects (history of the process) on the process dynamics is accounted for by employing a zero-order memory functions, characterized by different (in general case) adaptability parameters with respect to the specific growth rate and specific consumption rate. Thus, the memory effects are taken into account in both, growth dynamics and limiting substrate consumption dynamics. Two particular cases, which actually correspond to the most common practical situations on one side, and on the other side - the most suitable model structures of the growth rate from a point of view of control synthesis, are also considered. The first one assumes that the memory effects are taken into account in both, biomass and substrate, equations (specific growth and consumption rates expressions) with equal adaptability parameters, and the second one - in the biomass equation only (specific growth rate expression). The proposed procedure, based on the extended Kalman filtering method, is developed under assumption that the process kinetics models are known except for the adaptability parameter(s). Thus the necessity of performing step-response experiments for the sake of adaptability parameter(s) identification could be successfully avoided. As an example, two estimators, based on different kinetic models of continuous growth of a strain Saccharomyces cerevisiae on a glucose limited medium, are designed. The two models have the same structure and kinetic parameters (identified on the basis of steady-state experiments) and differ the way of memory function incorporation only. The estimation performance is studied under different initial conditions. The effect of the estimation error on the control performance, in case of adaptive control of biomass and substrate concentration, is also investigated. The simulation results are discussed with respect to the applicability of the proposed estimators in the framework of adaptive control systems.
机译:基于底物浓度的测量,考虑到记忆效应(在两种修改中,μ型和S型)的通用化学恒温器微生物培养模型用于生物量和生长速率估算。记忆效应(过程的历史记录)对过程动力学的影响是通过采用零阶记忆函数来解决的,该函数以相对于特定增长率和特定消耗率的不同(通常情况下)适应性参数为特征。因此,在生长动态和限制基板消耗动态中都考虑到了记忆效应。还考虑了两个特定情况,它们实际上一方面与最常见的实际情况相对应,另一方面也考虑了从控制综合的角度来看最合适的增长率模型结构。第一个假设在生物量和底物,具有相同适应性参数的方程式(特定生长率和消耗率表达式)中都考虑了记忆效应,第二个假设仅在生物量方程式(特定生长率表达式)中考虑了记忆效应。基于扩展卡尔曼滤波方法的拟议程序是在假定过程动力学模型(适应性参数除外)已知的前提下开发的。因此,可以成功地避免为了识别适应性参数而执行阶跃响应实验的必要性。例如,基于在有限的葡萄糖培养基上连续发酵酿酒酵母的不同动力学模型,设计了两个估计器。这两个模型具有相同的结构和动力学参数(在稳态实验的基础上确定),并且仅记忆功能的合并方式不同。在不同的初始条件下研究估计性能。在对生物量和底物浓度进行自适应控制的情况下,还研究了估计误差对控制性能的影响。在自适应控制系统的框架内,针对所提出的估计器的适用性讨论了仿真结果。

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