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Exploring the impact of bulk and substrate physics on hydrolysis rates and biogas yields of anaerobic digesters pretreated with thermal hydrolysis

机译:探索本体和底物物理性质对热水解预处理厌氧消化池的水解速率和沼气产量的影响

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摘要

This study evaluated the role of bulk and substrate physics on hydrolysis rates and biogas yields in anaerobic digestion (AD) pretreated by thermal hydrolysis (THP). Although THP decreases sludge viscosity, no evidence was found that bulk viscosity impacted the biogas yield or hydrolysis kinetics. In addition, no significant difference between the biogas yields for different total solids concentrations nor floc sizes was detected. However, increased mixing speeds did increase biogas yields. As a result of thermal treatment, the model protein, bovine serum albumin, was harder to degrade in terms of both overall biodegradability and hydrolysis rates when their macrostructures were changed from liquid to gel and to solid structures; the opposite was true for the model polysaccharide, amylopectin. These results demonstrated that hydrolysis in THP-AD systems was impacted mostly by the physical properties of the substrate (gelation) rather than the bulk physical properties within the digester. (C) 2019 Water Environment FederationPractitioner pointsBulk viscosity does not significantly impact hydrolysis efficiency (biogas yield).However, mixing speed impacts hydrolysis beyond biogas holdup effect.Increasing the amount of substrate-microbe collisions through increasing biomass concentration does not have an impact on hydrolysis efficiency or biogas yield.Proteins are harder to degrade when macrostructure changes from liquid to gel/solid as a result of heat treatment.Polysaccharides are easier to degrade when macrostructure changes from liquid to gel/solid as a result of heat treatment.The time required for digesters to reach peak biogas production rates increased with decreasing specific surface available on gel and solid structures.
机译:这项研究评估了主体和底物物理在通过热水解(THP)预处理的厌氧消化(AD)中水解速率和沼气产量中的作用。尽管THP降低了污泥粘度,但没有证据表明堆积粘度会影响沼气的产率或水解动力学。另外,对于不同的总固体浓度,也没有检测到沼气产量之间的显着差异,也没有检测到絮状物尺寸。但是,提高混合速度确实提高了沼气产量。热处理的结果是,当模型蛋白质牛血清白蛋白的宏观结构从液体变为凝胶和固体结构时,就整体生物降解性和水解速度而言,都更难降解。对于模型多糖支链淀粉,情况则相反。这些结果表明,THP-AD系统中的水解主要受底物的物理性质(胶凝作用)的影响,而不是蒸煮器中总体物理性质的影响。 (C)2019年水环境联合会执业者要点堆积粘度不会显着影响水解效率(沼气产量),但是混合速度影响的水解作用超出了沼气滞留效果,通过增加生物质浓度增加底物与微生物的碰撞量对水解没有影响。效率或沼气产量。热处理导致宏观结构从液体变为凝胶/固体时,蛋白质难以降解;热处理导致宏观结构从液体变为凝胶/固体时,多糖更易于降解。沼气池达到最高沼气生产率的方法是,凝胶和固体结构的比表面积降低。

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  • 来源
    《Water Environment Research》 |2020年第3期|378-388|共11页
  • 作者

  • 作者单位

    George Washington Univ Washington DC USA|DC Water & Sewer Author Washington DC USA;

    Jacobs Engn Charlotte NC USA;

    DC Water & Sewer Author Washington DC USA;

    Bucknell Univ Dept Civil & Environm Engn Lewisburg PA 17837 USA;

    George Washington Univ Washington DC USA;

    NEWhub Corp Herndon VA USA;

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

    collision efficiency; gelation; hydrolysis; kinetics; mesophilic digestion; thermal pretreatment;

    机译:碰撞效率胶凝水解;动力学;中温消化热预处理;

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