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Evaluation of feeding strategies in upflow anaerobic sludge bed reactor for hydrogenogenesis at psychrophilic temperature

机译:嗜冷温度下上流厌氧污泥床反应器供氢策略的评价

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摘要

The present work evaluated the biohydrogen production from a 0.4 L upflow anaerobic sludge blanket reactor type (UASB) operating at psychrophilic temperature (21 +/- 2 degrees C) at different feeding strategies varying hydraulic retention times (HRT) and sucrose concentration in the feeding. First strategy (24 h/31c) fed semi-continuously 31 g(sucrose) L-1 at 24 h HRT; second strategy (12 h/19c) fed semi-continuously 19 g(sucrose) L-1 at 12 h HRT; third strategy (4 h/8c) fed continuously 8.3 g(sucrose) L-1 at 4 h HRT. After 70 days of operation, the UASB accumulated 65.44 L H-2. The average HY for the whole operation during the three strategies was 62.6 NmL H-2 g(sucrose)(-1), and average hydrogen content was 69.04%. In general terms, the best operation strategy was 12 h/19c since it presented good set of results, the best HY (70.6 NmL H-2 g(sucrose)(-1)) and a comparable hydrogen production rate (2.6 L (L d)(-1)) to that obtained in 4 h/8c strategy (3.17 L (L d)(-1)). The average gross energy potential rate from the 12 h/19c strategy was 46.21 kJ (L d)(-1), whereas energy heating losses were circumvented due to operation at psychrophilic regime. Indeed, psychrophilic or room temperatures should be broadly regarded as an effective alternative towards net energy gains in biohydrogen production. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本工作评估了在不同的进料策略下,在不同的进水策略下,在不同的水力停留时间(HRT)和蔗糖浓度下操作的,在嗜冷温度(21 +/- 2摄氏度)下运行的0.4 L上流厌氧污泥毯式反应器(UASB)产生的生物氢产量。第一种策略(24 h / 31c)在HRT 24 h半连续喂入31 g(蔗糖)L-1;第二种策略(12 h / 19c)在HRT 12 h半连续喂食19 g(蔗糖)L-1;第三策略(4 h / 8c)在4 h HRT连续喂入8.3 g(蔗糖)L-1。运行70天后,UASB积累了65.44 L H-2。三种策略在整个操作过程中的平均HY为62.6 NmL H-2 g(蔗糖)(-1),平均氢含量为69.04%。一般而言,最佳的操作策略是12 h / 19c,因为它可提供良好的结果,最佳的HY(70.6 NmL H-2 g(蔗糖)(-1))和可比的制氢速率(2.6 L(L) d)(-1))至4 h / 8c策略(3.17 L(L d)(-1))获得的值。 12 h / 19c策略的平均总潜在能量率为46.21 kJ(L d)(-1),而由于在亲热状态下进行操作,避免了能量加热损失。的确,在整个生物氢生产中,应将耐高温或室温广泛视为增加净能量的有效替代方法。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

著录项

  • 来源
    《International journal of hydrogen energy》 |2019年第24期|12346-12355|共10页
  • 作者单位

    Univ Autonoma Nuevo Leon, Ctr Res Biotechnol & Nanotechnol CIByN, Fac Chem Sci, Engn & Sustainable Bioproc Grp, Parque Invest & Innovac Tecnol, Apodaca 66629, Nueuo Leon, Mexico;

    Univ Autonoma Nuevo Leon, Ctr Res Biotechnol & Nanotechnol CIByN, Fac Chem Sci, Engn & Sustainable Bioproc Grp, Parque Invest & Innovac Tecnol, Apodaca 66629, Nueuo Leon, Mexico;

    Univ Autonoma Nuevo Leon, Ctr Res Biotechnol & Nanotechnol CIByN, Fac Chem Sci, Engn & Sustainable Bioproc Grp, Parque Invest & Innovac Tecnol, Apodaca 66629, Nueuo Leon, Mexico;

    Univ Autonoma Nuevo Leon, Ctr Res Biotechnol & Nanotechnol CIByN, Fac Chem Sci, Engn & Sustainable Bioproc Grp, Parque Invest & Innovac Tecnol, Apodaca 66629, Nueuo Leon, Mexico;

    Univ Grenoble Alpes, CNRS, Inst Engn, LEPMI, F-38000 Grenoble, France;

    Univ Autonoma Nuevo Leon, Ctr Res Biotechnol & Nanotechnol CIByN, Fac Chem Sci, Engn & Sustainable Bioproc Grp, Parque Invest & Innovac Tecnol, Apodaca 66629, Nueuo Leon, Mexico;

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

    Bioenergy; Dark fermentation; Energy balance; Room temperature;

    机译:生物能源;黑暗发酵;能源平衡;室温;
  • 入库时间 2022-08-18 04:19:50

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