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Hydrogen production from food wastes and gas post-treatment by CO_2 adsorption

机译:从食物垃圾中制氢和通过CO_2吸附进行气体后处理

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摘要

The production of H_2 by biological means, although still far from being a commercially viable proposition, offers great promise for the future. Purification of the biogas obtained may lead to the production of highly concentrated H_2 streams appropriate for industrial application. This research work evaluates the dark fermentation of food wastes and assesses the possibility of adsorbing CO_2 from the gas stream by means of a low cost biomass-based adsorbent. The reactor used was a completely stirred tank reactor run at different hydraulic retention times (HRTs) while the concentration of solids of the feeding stream was kept constant. The results obtained demonstrate that the H_2 yields from the fermentation of food wastes were affected by modifications in the hydraulic retention time (HRT) due to incomplete hydrolysis. The decrease in the duration of fermentation had a negative effect on the conversion of the substrate into soluble products. This resulted in a lower amount of soluble substrate being available for metabol-isation by H_2 producing microflora leading to a reduction in specific H_2 production. Adsorption of CO_2 from a gas stream generated from the dark fermentation process was successfully carried out. The data obtained demonstrate that the column filled with biomass-derived activated carbon resulted in a high degree of hydrogen purification. Co-adsorption of H_2S onto the activated carbon also took place, there being no evidence of H_2S present in the bio-H_2 exiting the column. Nevertheless, the concentration of H_2S was very low, and this co-adsorption did not affect the CO_2 capture capacity of the activated carbon.
机译:通过生物手段生产H_2,尽管仍远未达到商业上可行的主张,但为未来提供了广阔前景。纯化获得的沼气可能会导致产生适合工业应用的高浓度H_2物流。这项研究工作评估了食物垃圾的黑暗发酵,并评估了通过低成本基于生物质的吸附剂从气流中吸附CO_2的可能性。所用的反应器是在不同的水力停留时间(HRT)下运行的完全搅拌的釜式反应器,同时进料流的固体浓度保持恒定。所获得的结果表明,由于水解不完全,食物残渣发酵产生的H_2产量受到水力停留时间(HRT)的变化的影响。发酵持续时间的减少对底物转化为可溶性产物具有负面影响。这导致较少量的可溶底物可用于通过产生H_2的微生物群落进行代谢,从而导致特定H_2产量的降低。从暗发酵过程产生的气流中成功吸附了CO_2。获得的数据表明,用生物质衍生的活性炭填充的色谱柱可实现高度的氢气纯化。还发生了H_2S在活性炭上的共吸附,没有证据表明存在于离开色谱柱的生物H_2中存在H_2S。但是,H_2S的浓度非常低,这种共吸附不会影响活性炭的CO_2捕集能力。

著录项

  • 来源
    《Waste Management》 |2012年第1期|p.60-66|共7页
  • 作者单位

    Chemical Engineering Department, University of Leon, IRENA-ESTIA, Avda. de Portugal 41, Leon 24071, Spain;

    Chemical Engineering Department, University of Leon, IRENA-ESTIA, Avda. de Portugal 41, Leon 24071, Spain;

    Institute National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Institute National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Institute National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

    Chemical Engineering Department, University of Leon, IRENA-ESTIA, Avda. de Portugal 41, Leon 24071, Spain;

    Institute National del Carbon, CSIC, Apartado 73, 33080 Oviedo, Spain;

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

    biological hydrogen; dark fermentation; CO_2 capture; adsorption;

    机译:生物氢黑暗发酵二氧化碳捕获;吸附;

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