Iterative Leaming Control of Depollution Bioprocesses

D. Sendrescu, D. Selișteanu, M. Roman, E. Petre
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Abstract

The paper addresses the design and analysis of Iterative Learning Control (ILC) method for a wastewater biodegradation process. The bioprocess is considered to take place inside a continuous stirred tank bioreactor. The use of this kind of control methods is motivated by its advantages in the case of complex nonlinear systems like biotechnological processes. There were used two ILC algorithms one considered a classical approach in the field (PD-type learning algorithm), and the second one which try to exploit some characteristics of the input signal (exponential learning algorithm). These control methods are implemented for the de pollution control problem in the case of an anaerobic digestion process. This bioprocess is characterized by strongly nonlinear and not exactly known reaction rates. Furthermore, not all the state variables are measurable. The performance and effectiveness of the presented control algorithms are proven by simulation results.
净化生物过程的迭代学习控制
本文讨论了废水生物降解过程的迭代学习控制(ILC)方法的设计和分析。该生物过程被认为是在连续搅拌槽式生物反应器中进行的。这种控制方法的使用是由于它在复杂的非线性系统如生物技术过程的情况下的优势。使用了两种ILC算法,一种被认为是该领域的经典方法(pd型学习算法),另一种试图利用输入信号的某些特征(指数学习算法)。这些控制方法是针对厌氧消化过程的去污染控制问题而实施的。这个生物过程的特点是强烈的非线性和不完全已知的反应速率。此外,并非所有的状态变量都是可测量的。仿真结果验证了所提控制算法的性能和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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