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模糊逻辑控制系统在低缓冲、酸性能源作物作为单一底物的连续厌氧消化中的应用。

Application of a fuzzy logic control system for continuous anaerobic digestion of low buffered, acidic energy crops as mono-substrate.

作者信息

Scherer P, Lehmann K, Schmidt O, Demirel B

机构信息

Hamburg University of Applied Sciences (HAW Hamburg), Research Centre Lifetec Process Engineering, Lohbruegger Kirchstrasse 65, 21033 Hamburg, Germany.

出版信息

Biotechnol Bioeng. 2009 Feb 15;102(3):736-48. doi: 10.1002/bit.22108.

Abstract

A fuzzy logic control (FLC) system was developed at the Hamburg University of Applied Sciences (HAW Hamburg) for operation of biogas reactors running on energy crops. Three commercially available measuring parameters, namely pH, the methane (CH4) content, and the specific gas production rate (spec. GPR = m(3)/kg VS/day) were included. The objective was to avoid stabilization of pH with use of buffering supplements, like lime or manure. The developed FLC system can cover most of all applications, such as a careful start-up process and a gentle recovery strategy after a severe reactor failure, also enabling a process with a high organic loading rate (OLR) and a low hydraulic retention time (HRT), that is, a high throughput anaerobic digestion process with a stable pH and CH4 content. A precondition for a high load process was the concept of interval feeding, for example, with 8 h of interval. The FLC system was proved to be reliable during the long term fermentation studies over 3 years in one-stage, completely stirred tank reactors (CSTR) with acidic beet silage as mono-input (pH 3.3-3.4). During fermentation of the fodder beet silage (FBS), a stable HRT of 6.0 days with an OLR of up to 15 kg VS/m(3)/day and a volumetric GPR of 9 m(3)/m(3)/day could be reached. The FLC enabled an automatic recovery of the digester after two induced severe reactor failures. In another attempt to prove the feasibility of the FLC, substrate FBS was changed to sugar beet silage (SBS), which had a substantially lower buffering capacity than that of the FBS. With SBS, the FLC accomplished a stable fermentation at a pH level between 6.5 and 6.6, and a volatile fatty acid level (VFA) below 500 mg/L, but the FLC had to interact and to change the substrate dosage permanently. In a further experiment, the reactor temperature was increased from 41 to 50 degrees C. Concomitantly, the specific GPR, pH and CH4 dropped down. Finally, the FLC automatically enabled a complete recovery in 16 days.

摘要

汉堡应用科学大学(HAW Hamburg)开发了一种模糊逻辑控制(FLC)系统,用于以能源作物为原料的沼气反应器的运行。该系统纳入了三个市售测量参数,即pH值、甲烷(CH4)含量和比产气率(spec. GPR = m³/kg VS/天)。其目标是避免使用石灰或粪便等缓冲补充剂来稳定pH值。所开发的FLC系统可涵盖大多数应用,如谨慎的启动过程以及在反应器严重故障后的温和恢复策略,还能实现高有机负荷率(OLR)和低水力停留时间(HRT)的工艺,即具有稳定pH值和CH4含量的高通量厌氧消化工艺。高负荷工艺的一个前提条件是间歇进料的概念,例如,间隔8小时进料。在以酸性甜菜青贮料为单一输入(pH 3.3 - 3.4)的单级全混式搅拌槽反应器(CSTR)中进行的为期3年的长期发酵研究中,FLC系统被证明是可靠的。在饲料甜菜青贮料(FBS)发酵过程中,可实现稳定的水力停留时间6.0天,有机负荷率高达15 kg VS/m³/天,体积产气率为9 m³/m³/天。在两次诱导的严重反应器故障后,FLC能够使消化器自动恢复。为了进一步证明FLC的可行性,另一次尝试将底物FBS换成了缓冲能力远低于FBS的甜菜青贮料(SBS)。使用SBS时,FLC在pH值介于6.5和6.6之间且挥发性脂肪酸水平(VFA)低于500 mg/L的情况下实现了稳定发酵,但FLC必须持续进行交互并改变底物剂量。在进一步的实验中,反应器温度从41℃提高到50℃。随之,比产气率、pH值和CH4含量下降。最终,FLC在16天内自动实现了完全恢复。

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