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Hydrogen production and membrane fouling in fermentative hydrogen-producing membrane bioreactors.

机译:发酵产氢的膜生物反应器中的产氢和膜污染。

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摘要

This research examined the influence of organic loading rate (OLR) and biosolids type on the performance of fermentative H2-producing membrane bioreactors (HPMBRs) with respect to H2 production and membrane fouling. Five OLRs ranging from 4.0 to 30 g COD L-1 d-1 were examined in a lab-scale HPMBR. The system performance with both suspended and granulated biosolids was also investigated.;Under the same operating conditions, the H2 yield from a suspended HPMBR was significantly higher than that from a granulated HPMBR. A higher H2 consumption rate and a higher concentration of bound extracellular polymeric substances from the granulated HPMBR may contribute 5--48% and 25--67% of the H2 production difference between the two systems, respectively.;The experimental results accompanied with microscopic examination of fouled membrane surfaces indicated that biosolids deposition and colloidal adhesion were the two dominant membrane fouling mechanisms in the HPMBRs. Membrane fouling was characterized by two distinct stages: an initial stage with a relatively higher fouling rate and a second stage with a lower fouling rate. Membrane fouling rates and resistances were influenced by the properties of biosolids and colloids in the mixed liquor. The fouling rates increased with increased biomass concentration, but decreased as colloids became more negatively charged. The irreversible and irremovable fouling resistance increased with increased concentration of colloids, while the removable fouling resistance had no relationship with biomass concentration. Biosolids granulation may benefit membrane performance due to a lower colloidal concentration produced.;The single cake filtration model was proper to simulate membrane performance in the initial fouling stage. Both cake filtration and combined cake-standard models provided good fits for the second fouling stage, whereas future study is required to improve model predictability for membrane fouling in this stage.;The H2 yield from the suspended biosolids HPMBR was not significantly influenced by OLR at OLRs ≤ 13 g COD L-1 d-1, appeared to be maximized at an OLR of 22 g COD L-1 d -1, and then decreased as the OLR was increased further. An optimum OLR that maximizes H2 yield may be near the OLR that causes reactor overload with respect to substrate utilization.
机译:这项研究检查了有机负荷率(OLR)和生物固体类型对发酵产生H2的膜生物反应器(HPMBR)在H2产生和膜污染方面的性能的影响。在实验室规模的HPMBR中检查了5种OLR,范围从4.0到30 g COD L-1 d-1。还研究了悬浮固体和颗粒状生物固体的系统性能。在相同的操作条件下,悬浮HPMBR的H2收率明显高于颗粒状HPMBR。颗粒状HPMBR的较高H2消耗速率和较高浓度的结合的细胞外聚合物可能分别导致两个系统之间H2产生差异的5--48%和25--67%。膜表面被污染的检查表明,生物固体沉积和胶体粘附是HPMBR中两个主要的膜污染机制。膜结垢的特征在于两个不同的阶段:结垢率相对较高的初始阶段和结垢率较低的第二阶段。膜污染速率和阻力受混合液中生物固体和胶体的特性影响。结垢率随生物质浓度的增加而增加,但随着胶体带负电的程度降低。不可逆和不可去除的防污性随胶体浓度的增加而增加,而可去除的防污性与生物质浓度无关。由于产生的胶体浓度较低,生物固体制粒可能会有利于膜性能。单滤饼过滤模型适合模拟初始结垢阶段的膜性能。滤饼过滤和组合滤饼标准模型都为第二次结垢阶段提供了良好的拟合,而仍需要进一步的研究来提高该阶段膜结垢的模型可预测性。悬浮生物固体HPMBR的H2收率不受OLR影响≤13 g COD L-1 d-1的OLR似乎在22 g COD L-1 d -1的OLR时达到最大值,然后随着OLR的进一步增加而降低。使H2收率最大化的最佳OLR可能接近导致反应器相对于基板利用率过载的OLR。

著录项

  • 作者

    Shen, Li Hong.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 248 p.
  • 总页数 248
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:26

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