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污泥厌氧消化的人工神经网络模型
引用本文:严文峰, 李晓东, 高智花, 刘武, 梁婕, 李镇镇, 曾光明. 污泥厌氧消化的人工神经网络模型[J]. 环境工程学报, 2015, 9(5): 2425-2429. doi: 10.12030/j.cjee.20150564
作者姓名:严文峰  李晓东  高智花  刘武  梁婕  李镇镇  曾光明
作者单位:1. 湖南大学环境科学与工程学院, 长沙 410082; 2. 环境生物与控制教育部重点实验室(湖南大学), 长沙 410082
基金项目:国家自然科学基金资助项目(51039001) 湖南大学青年教师成长计划项目 中央高校基本科研业务费资助项目
摘    要:基于污泥固体停留时间(SRT)为20 d的污泥中温厌氧消化实验,建立一个3层BP神经网络,以前1~20 d的进泥挥发性悬浮固体(VSS)、当天消化罐pH值和碱度共22个参数为输入,预测污泥消化系统日产气量,结果表明,网络具有良好的学习能力、泛化能力和辨识能力,能够较为准确地预测出系统日产气量。此外,根据进泥VSS不同,利用网络预测能力,调节pH值和碱度到合适的值,系统日产气量有明显提高,进一步证明了网络具有良好的预测能力和实用性。

关 键 词:污泥厌氧消化   BP神经网络   日产气量
收稿时间:2014-04-22

Artificial neural network model of sludge anaerobic digestion
Yan Wenfeng, Li Xiaodong, Gao Zhihua, Liu Wu, Liang Jie, Li Zhenzhen, Zeng Guangming. Artificial neural network model of sludge anaerobic digestion[J]. Chinese Journal of Environmental Engineering, 2015, 9(5): 2425-2429. doi: 10.12030/j.cjee.20150564
Authors:Yan Wenfeng  Li Xiaodong  Gao Zhihua  Liu Wu  Liang Jie  Li Zhenzhen  Zeng Guangming
Affiliation:1. College of Environmental Science and Engineering, Hunan University, Changsha 410082, China; 2. Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha 410082, China
Abstract:Based on the experiment of sludge mesophilic anaerobic digestion with 20 days of solid retention time (SRT), a 3-layer BP neural network was built. In the network, 22 input parameters were volatile suspended solid (VSS) of inflow sludge during 20 days period before the day, pH and alkalinity of sludge that day and output was yield of biogas that day. The results of simulation showed good learning, generalization and recognition ability of the network. Exact prediction on daily yield of biogas was achieved. Besides, by utilizing the prediction ability to adjust pH and alkalinity to appropriate values under different VSS quantities, the daily yield of biogas significantly increased, which further demonstrates the network possesses preferable prediction ability and practicability.
Keywords:sludge anaerobic digestion  BP neural network  daily yield of biogas
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