EXTREMUM SEEKING CONTROL OF TWO-STAGE ANAEROBIC DIGESTION SYSTEM: A MINI REVIEW

N. Christov, Haoping Wang, I. Simeonov
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引用次数: 1

Abstract

Anaerobic digestion (AD) is a biotechnological process, in which microorganisms degrade organic matter under anaerobic conditions to produce biogas. It has long been known that the two main species (acidogenic and methanogenic) in the community of microorganisms in AD differ in many aspects and the optimal conditions for their growth and development are different. Therefore, in AD in a single bioreactor (BR) (single-phase process), the optimal conditions are selected taking into account the slow-growing methanogens at the expense of fast-growing acidogens, which affects the efficiency of the whole process. This has led in recent years to the development of two-stage AD (TSAD), in which processes are divided into a cascade of two separate BRs. It is known that this division of the processes into two consecutive BRs leads to significantly higher energy yields for the two-phase system (H2 + CH4), compared to the traditional single-stage CH4 production process. In our previous studies different mathematical models of the TSAD have been developed. It was shown that in both BRs the input-output characteristics have a clear maximum, which allows the yields to increase significantly if operations are provided around the maximum points. However, in order to maintain the sustainability of the biogas plants work, it is necessary to introduce automatic control with sophisticated extremum seeking control (ESC) algorithms. This paper presents the pioneering research on ESC of AD process with production of hydrogen and methane. This research has been realized by the Department of Biotechnology at The Stephan Angeloff Institute of Microbiology (SAIM) and the French-Chinese Laboratory on Automatic Control and Signal Processing (LaFCAS), in collaboration with the Laboratory of Signals and Systems (L2S) at the French National Center of Scientific Research CNRS.
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极值寻求控制的两级厌氧消化系统:一个小回顾
厌氧消化(AD)是微生物在厌氧条件下降解有机物产生沼气的生物技术过程。人们早就知道,AD中微生物群落的两个主要种类(产酸菌和产甲烷菌)在许多方面存在差异,它们生长发育的最佳条件也不同。因此,在单生物反应器(BR)的AD(单相工艺)中,以牺牲快速生长的产酸菌为代价,考虑生长缓慢的产甲烷菌,选择最优条件,会影响整个工艺的效率。这导致了近年来两阶段AD (TSAD)的发展,其中过程被划分为两个单独的br级联。众所周知,与传统的单阶段CH4生产工艺相比,将过程划分为两个连续的BRs可以显著提高两相系统(H2 + CH4)的能量产量。在我们以往的研究中,已经建立了不同的TSAD数学模型。结果表明,在两个BRs中,输入输出特性都有一个明显的最大值,如果在最大值附近提供操作,则可以显着增加产量。然而,为了保持沼气厂工作的可持续性,有必要引入复杂的极值寻求控制(ESC)算法的自动控制。本文介绍了AD制氢制甲烷工艺的ESC的开创性研究。这项研究是由Stephan Angeloff微生物研究所(SAIM)生物技术系、法中自动控制与信号处理实验室(LaFCAS)与法国国家科学研究中心(CNRS)信号与系统实验室(L2S)合作完成的。
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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