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Start-up and operation strategies on the liquefied food waste anaerobic digestion and a full-scale case application

机译:液化餐厨垃圾厌氧消化的启动和运行策略及案例分析

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摘要

Batch anaerobic digestion was employed to investigate the efficient start-up strategies for the liquefied food waste, and sequencing batch digestion was also performed to determine maximum influent organic loading rate (OLR) for efficient and stable operation. The results indicated that the start-up could be well improved using appropriate wastewater organic load and food-to-microorganism ratios (F/M). When digestion was initialized at low chemical oxygen demand (COD) concentration of 20.0 gCOD L~(-1), the start-up would go well using lower F/M ratio of 0.5-0.7. The OLR 7.0 gCOD L~(-1) day~(-1) was recommended for operating the ASBR digestion, in which the COD conversion of 96.7 ± 0.53 % and biomethane yield of 3.5 ± 0.2 L gCOD~(-1) were achieved, respectively. The instability would occur when OLR was higher than 7.0 gCOD L~(-1) day~(-1), and this instability was not recoverable. Lipid was suggested to be removed before anaerobic digestion. The anaerobic digestion process in engineering project ran well, and good performance was achieved when the start-up and operational strategies from laboratory study were applied. For case application, stable digestion performance was achieved in a digester (850 m~3 volume) with biogas production of 1.0-3.8 m~3 m~(-3) day~(-1).
机译:分批厌氧消化用于研究液化食物垃圾的有效启动策略,并且还对测序分批消化进行测序,以确定有效和稳定运行的最大进水有机负荷率(OLR)。结果表明,使用适当的废水有机负荷和食物与微生物的比率(F / M)可以很好地改善启动。当在20.0 gCOD L〜(-1)的低化学需氧量(COD)浓度下开始消化时,使用较低的F / M比0.5-0.7可以很好地进行启动。建议使用OLR 7.0 gCOD L〜(-1)天〜(-1)进行ASBR消化,可实现96.7±0.53%的COD转化率和3.5±0.2 L gCOD〜(-1)的生物甲烷产率。 , 分别。当OLR高于7.0 gCOD L〜(-1)天〜(-1)时,将发生不稳定性,并且这种不稳定性无法恢复。建议在厌氧消化之前去除脂质。工程项目的厌氧消化过程运行良好,采用实验室研究的启动和运行策略取得了良好的性能。对于案例应用,在沼气池(容积为850 m〜3)中,沼气产量为1.0-3.8 m〜3 m〜(-3)天〜(-1),可实现稳定的消化性能。

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  • 来源
    《Bioprocess and Biosystems Engineering》 |2014年第11期|2333-2341|共9页
  • 作者单位

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China ,Institute of Ecological and Environmental Sciences, Sichuan Agricultural University, Chengdu 611130, Sichuan, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

    Centre for Resource and Environmental Research, Beijing University of Chemical Technology, 15 Beisanhuan East Road, Chaoyang District, Beijing 100029, People's Republic of China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Liquefied food waste; Start-up strategy; Maximum influent OLR; Case application;

    机译:液化食物残渣;启动策略;最大进水OLR;案例应用;

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