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首页> 外文期刊>Biotechnology Progress >Exploration of the Hydrogen Producing Potential of Rhodobacter Capsulatus Chemostat Cultures: The Application of Deceleration-Stat and Gradient-Stat Methodology
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Exploration of the Hydrogen Producing Potential of Rhodobacter Capsulatus Chemostat Cultures: The Application of Deceleration-Stat and Gradient-Stat Methodology

机译:荚膜红球菌恒化细菌培养物产氢潜力的探索:减速-静态和梯度-静态方法学的应用

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摘要

In this work, the dependency of the volumetric hydrogen production rate of ammonium-limited Rhodobacter capsulatus chemostat cultures on their imposed biomass concentration and dilution rate was investigated. A deceleration-stat experiment was performed by lowering the dilution rate from 1.0 d~(-1) to zero aimed at a constant biomass concentration of 4.0 g L~(-1) at constant incident light intensity. The results displayed a maximal volumetric hydrogen production rate of 0.6 mmol m~(-3) s~(-1) well below model predictions. Possibly the high cell density limited the average light availability, resulting in a sub-optimal specific hydrogen production rate. To investigate this hypothesis, a gradient-stat experiment was conducted at constant dilution rate of 0.4 d~(-1) at constant incident light intensity. The biomass concentration was increased from 0.7 to 4.0 g L~(-1) by increasing the influent ammonium concentration. Up to a biomass concentration of 1.5 g L~(-1), the volumetric hydrogen production rate of the system increased according to model predictions, after which it started to decline. The results obtained provide strong evidence that the observed decline in volumetric hydrogen production rate at higher biomass concentrations was at least partly caused by a decrease in light availability.
机译:在这项工作中,研究了铵限制的荚膜红球菌化学稳定剂培养物的体积产氢率对其施加的生物量浓度和稀释率的依赖性。通过在恒定的入射光强度下,将稀释率从1.0 d〜(-1)降低至零,从而实现恒定的生物质浓度4.0 g L〜(-1)来进行减速状态实验。结果显示最大的氢气产量为0.6 mmol m〜(-3)s〜(-1),远低于模型预测值。可能高的电池密度限制了平均光的利用率,导致次优的氢气比生产率降低。为了研究该假设,在恒定入射光强度下以0.4 d〜(-1)的恒定稀释率进行了梯度统计实验。通过增加进水铵浓度,将生物量浓度从0.7 g L〜(-1)增加到4.0 g L〜(-1)。当生物量浓度达到1.5 g L〜(-1)时,系统的氢气产量将根据模型预测值增加,此后开始下降。获得的结果提供了有力的证据,表明在较高的生物质浓度下观察到的体积氢生产率的下降至少部分是由于光利用率的下降引起的。

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