首页> 外文期刊>International journal of hydrogen energy >Biohydrogen and biomethane from water hyacinth (Eichhornia crassipes) fermentation: Effects of substrate concentration and incubation temperature
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Biohydrogen and biomethane from water hyacinth (Eichhornia crassipes) fermentation: Effects of substrate concentration and incubation temperature

机译:风信子(Eichhornia crassipes)发酵中的生物氢和生物甲烷:底物浓度和孵育温度的影响

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摘要

The effects of substrate concentration and temperature on fermentative hydrogen production from Eichhornia crassipes using pig slurry microflora were studied, and the optimal values for maximum biohydrogen production were determined in batch experiments. Hydrogen and methane yield (HY and MY) and production rate (HPR and MPR) were evaluated at various E. crassipes concentrations (10—80 g/L) and incubation temperatures (25, 35, 45, 55, and 65℃). Hydrogen and methane production were observed during the E. crassipes fermentation without any nutrients addition, and were dependent on E. crassipes concentrations. Maximum HPR (38.2 mmol H_2/L/d) and MPR (29.0 mmol CHVL/d) were obtained at E. crassipes concentration of 40 g/L and 80 g/L, respectively. Monod model and modified Andrew model were used to fit the hydrogen production rate data. Modified Andrew model could describe better the effects of substrate concentration on hydrogen production rate (greater R2 value). Maximum HPR (221.3 mmol H_2/L/d) and MPR (24.4 mmol CHvVd) were obtained at 45 and 55℃, respectively. These values were ca. 1105 and 18 folds higher than the HPR (0.2 mmol H_2/L/d) and MPR (7.3 mmol CHVL/d) at 25℃, probably due to increased hydrolysis of E. crassipes at higher temperatures. Ratkowsky model could best describe the progress of hydrogen and methane production potential and rate (R2 > 0.9). The optimum E. crassipes concentration and incubation temperature were determined as 47.8 g/L and 62.5℃, respectively for maximum hydrogen and methane production. Biohydrogen and biomethane yields from E. crassipes were 31.3 GJ/ha/y and 853.9 GJ/ha/y, respectively, with a total CO_2 emission reduction from 15.2 to 23.7 tons.
机译:研究了猪粪菌群中底物浓度和温度对凤眼凤梨发酵产氢的影响,并通过分批实验确定了最大生物产氢量的最佳值。在不同浓度的大肠杆菌(E. crassipes)浓度(10-80 g / L)和温育温度(25、35、45、55和65℃)下,评估了氢气和甲烷的产率(HY和MY)以及生产率(HPR和MPR)。在不进行任何营养添加的条件下,大肠杆菌的发酵过程中观察到氢气和甲烷的产生,并且取决于甲烷的浓度。在40克/升和80克/升的景天肠球菌浓度下分别获得最大HPR(38.2 mmol H_2 / L / d)和MPR(29.0 mmol CHVL / d)。使用Monod模型和改进的Andrew模型拟合氢生产率数据。改进的Andrew模型可以更好地描述底物浓度对产氢率的影响(更大的R2值)。在45℃和55℃分别获得最大HPR(221.3 mmol H_2 / L / d)和MPR(24.4 mmol CHvVd)。这些值是约。在25℃时,比HPR(0.2 mmol H_2 / L / d)和MPR(7.3 mmol CHVL / d)高1105倍和18倍,可能是由于高温下大肠杆菌的水解增加了。 Ratkowsky模型可以最好地描述氢气和甲烷的生产潜力和速率(R2> 0.9)。为了获得最大的产氢量和产甲烷量,确定的最佳十字花科大肠杆菌浓度和孵育温度分别为47.8 g / L和62.5℃。十字花科植物的生物氢和生物甲烷产量分别为31.3 GJ / ha / y和853.9 GJ / ha / y,CO_2总排放量从15.2吨减少到23.7吨。

著录项

  • 来源
    《International journal of hydrogen energy》 |2011年第21期|p.14195-14203|共9页
  • 作者单位

    Department of Environmental Engineering and Science, Feng Chia University, 100 Wenhua Road, Sewte, Taichung 40724, Taiwan;

    Department of Environmental Engineering and Science, Feng Chia University, 100 Wenhua Road, Sewte, Taichung 40724, Taiwan;

    Microbial Sciences Division, Agharfear Research Institute, Pune 411004, India;

    Environmental Resources Laboratory, Dept. of Landscape Architecture, Chungchou Institute of Technology, Changhwa 51003, Taiwan;

    Department of Environmental Engineering and Science, Feng Chia University, 100 Wenhua Road, Sewte, Taichung 40724, Taiwan;

    Stone & Resource Industry R&D Center, Hualien 97356, Taiwan;

    Stone & Resource Industry R&D Center, Hualien 97356, Taiwan;

    Department of Environmental Engineering and Science, Feng Chia University, 100 Wenhua Road, Sewte, Taichung 40724, Taiwan;

  • 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; biomethane; dark fermentation; kinetic model; water hyacinth;

    机译:生物氢生物甲烷黑暗发酵动力学模型水葫芦;

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