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Biomethane generation in an AnSBBR treating effluent from the biohydrogen production from vinasse: Optimization, metabolic pathways modeling and scale-up estimation

机译:AnSBBR处理酒水厂产生的生物氢所产生的废水中的生物甲烷生成:优化,代谢途径建模和放大估算

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摘要

A study was performed regarding the production of methane by an AnSBBR treating wastewater coming from a biohydrogen production process using vinasse (sugar cane stillage). The reactor operated with recirculation of liquid phase in sequencing batch and fed-batch mode. The influence of the applied volumetric organic load (AVOL) was examined by varying influent concentration between 1000 and 4500 mgCOD L-1 (1.5-6.6 kgCOD m(-3) d(-1)). Increasing AVOL resulted in a decrease in organic matter removal efficiency and in an increase in methane productivity. The highest productivity (133.1 molCH(4) m(-3) d(-1)) was obtained in fed-batch operation at the highest AVOL. Methane productivity and yield were always higher for fed-batch operation. From the kinetic metabolic model, it was possible to infer that methane is mainly produced via the acetoclastic route in batch mode and via both acetoclastic and hydrogenotrophic routes in fed-batch mode. Energy production of the two-stage system (acidogenic/biohydrogen-methanogenic/methane) was 13.6 kJ per gram of applied COD, which corresponds to a 38.8% increase compared to the traditional one-stage system (methanogenic/methane). The scale-up assessment (based on industrial production and performed with best condition data) proposed an operation of six parallel hydrogen-producing reactors of 6076 m(3) each followed by four parallel methane-producing reactors of 1720 m(3) each. (C) 2017 Elsevier Ltd. All rights reserved.
机译:进行了有关AnSBBR处理甲烷的生产的研究,该废水是使用vinasse(甘蔗釜馏物)处理来自生物氢生产过程的废水。该反应器在定序分批和进料分批模式下以液相再循环进行操作。通过在1000和4500 mgCOD L-1(1.5-6.6 kgCOD m(-3)d(-1))之间改变进水浓度来检查施加的体积有机负荷(AVOL)的影响。 AVOL的增加导致有机物去除效率的降低和甲烷生产率的提高。在最高AVOL的分批进料操作中获得了最高的生产率(133.1 molCH(4)m(-3)d(-1)。补料分批操作的甲烷生产率和产率始终较高。从动力学代谢模型可以推断出甲烷主要通过间歇碎裂的碎屑途径和补料分批方式的碎裂和氢营养途径产生。两阶段系统(产酸/生物氢-甲烷生成/甲烷)的能源产量为每克所施加的COD 13.6 kJ,与传统的一阶段系统(甲烷生成/甲烷)相比增加了38.8%。扩大规模的评估(基于工业生产并使用最佳条件数据执行)提出了以下操作:六个并联的制氢反应器,每个6076 m(3),然后四个并联的制甲烷反应器,每个1720 m(3)。 (C)2017 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Renewable energy》 |2018年第ptaa期|288-298|共11页
  • 作者单位

    Maud Inst Technol EEM IMT, Maua Sch Engn, Prac Maua 1, BR-09580900 Sao Caetano do Sul, SP, Brazil;

    Maud Inst Technol EEM IMT, Maua Sch Engn, Prac Maua 1, BR-09580900 Sao Caetano do Sul, SP, Brazil;

    Maud Inst Technol EEM IMT, Maua Sch Engn, Prac Maua 1, BR-09580900 Sao Caetano do Sul, SP, Brazil;

    Maud Inst Technol EEM IMT, Maua Sch Engn, Prac Maua 1, BR-09580900 Sao Caetano do Sul, SP, Brazil;

    Maud Inst Technol EEM IMT, Maua Sch Engn, Prac Maua 1, BR-09580900 Sao Caetano do Sul, SP, Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    AnSBBR; Biomethane; Biohydrogen; Kinetic model; Organic loading rate; Biorefinery;

    机译:AnSBBR;生物甲烷;生物氢;动力学模型;有机负荷率;生物精炼;
  • 入库时间 2022-08-18 00:24:45

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