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Optimization and microbial community analysis for production of biohydrogen from palm oil mill effluent by thermophilic fermentative process

机译:高温发酵法从棕榈油厂废水中生产生物氢的优化和微生物群落分析

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摘要

The optimum values of hydraulic retention time (HRT) and organic loading rate (OLR) of an anaerobic sequencing batch reactor (ASBR) for biohydrogen production from palm oil mill effluent (POME) under thermophilic conditions (60 ℃) were investigated in order to achieve the maximum process stability. Microbial community structure dynamics in the ASBR was studied by denaturing gradient gel electrophoresis (DGGE) aiming at improved insight into the hydrogen fermentation microorganisms. The optimum values of 2-d HRT with an OLR of 60 gCOD l~(-1) d~(-1) gave a maximum hydrogen yield of 0.27 1 H_2 g COD~(-1) with a volumetric hydrogen production rate of 9.11 H_2l~(-1) d~(-1) (16.9 mmoll~(-1) h~(-1)). The hydrogen content, total carbohydrate consumption, COD (chemical oxygen demand) removal and suspended solids removal were 55 ± 3.5%, 92 ± 3%, 57 ± 2.5% and 78 ± 2%, respectively. Acetic acid and butyric acid were the major soluble end-products. The microbial community structure was strongly dependent on the HRT and OLR. DGGE profiling illustrated that Thermoanaer-obacterium spp., such as Thermoanaerobacterium thermosaccharolyticum and Thermoanaer-obacterium bryantii, were dominant and probably played an important role in hydrogen production under the optimum conditions. The shift in the microbial community from a dominance of T. thermosaccharolyticum to a community where also Caloramator proteo-clasticus constituted a major component occurred at suboptimal HRT (1 d) and OLR (80 gCODl~(-1) d~(-1)) conditions. The results showed that the hydrogen production performance was closely correlated with the bacterial community structure. This is the first report of a successful ASBR operation achieving a high hydrogen production rate from real wastewater (POME).
机译:为了在高温条件下(60℃)从棕榈油厂废水(POME)中生产生物氢,研究了厌氧顺序分批反应器(ASBR)的水力停留时间(HRT)和有机负荷率(OLR)的最佳值。最大的工艺稳定性。通过变性梯度凝胶电泳(DGGE)研究了ASBR中微生物群落结构的动态,旨在改善对氢发酵微生物的了解。 OLR为60 gCOD l〜(-1)d〜(-1)的2-d HRT的最佳值可得出最大氢气产量为0.27 1 H_2 g COD〜(-1),氢气的体积产率为9.11 H_2l〜(-1)d〜(-1)(16.9 mmoll〜(-1)h〜(-1))。氢含量,总碳水化合物消耗量,COD(化学需氧量)去除量和悬浮固体去除量分别为55±3.5%,92±3%,57±2.5%和78±2%。乙酸和丁酸是主要的可溶性终产物。微生物群落结构强烈依赖于HRT和OLR。 DGGE分析表明,在最佳条件下,嗜热厌氧杆菌和嗜热厌氧杆菌等嗜热厌氧杆菌属细菌占主导地位,并且可能在制氢中起了重要作用。微生物群落从嗜热糖衣菌的优势转移到其中Caloramator蛋白破伤菌也是主要成分的群落发生在次优HRT(1 d)和OLR(80 gCODl〜(-1)d〜(-1) ) 条件。结果表明,制氢性能与细菌群落结构密切相关。这是成功进行ASBR作业的第一份报告,该作业成功实现了由真实废水(POME)产生高氢气的生产率。

著录项

  • 来源
    《International journal of hydrogen energy》 |2009年第17期|7448-7459|共12页
  • 作者单位

    Department of Industrial Biotechnology, Faculty of Agro-Industry, Prince of Songkla University, Songkhla 90112, Thailand Palm Oil Product and Technology Research Center, Faculty of Agro-Industry, Prince of Songkla Uniuersity, Songkhla 90112, Thailand;

    Department of Biology, Faculty of Science, Thaksin Uniuersity, Phatthalung 93110, Thailand;

    Department of Biology and Centre for Geobiology, Uniuersity of Bergen, P.O. Box 7800, N-5020 Bergen, Norway;

  • 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

    biohydrogen; POME; microbial community structure; anaerobic sequencing batch reactor;

    机译:生物氢波美;微生物群落结构;厌氧测序间歇反应器;
  • 入库时间 2022-08-18 00:29:55

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