首页> 外文期刊>Chemical Engineering Science >External-loop fluidized bed airlift bioreactor (EFBAB) for the cometabolic biotransformation of 4-chlorophenol (4-cp) in the presence of phenol
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External-loop fluidized bed airlift bioreactor (EFBAB) for the cometabolic biotransformation of 4-chlorophenol (4-cp) in the presence of phenol

机译:外环流化床气提生物反应器(EFBAB)用于在苯酚存在下4-氯苯酚(4-cp)的代谢代谢

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The advantages from a 4-1 external-loop inversed fluidized bed airlift bioreactor (EIFBAB) reported by Loh and Liu [2001. Chemical Engineering Science 56, 6171-6176] was synergized with preferential adsorption by granular activated carbon (GAC) for the enhanced cometabolic biotransformation of 4-chlorophenol (4-cp) in the presence of phenol as a growth substrate. This was achieved by incorporating a GAC fluidized bed in the lower part of the riser with the gas sparger relocated above this fluidized bed to avoid the presence of a 3-phase flow in the fluidized bed consequently providing larger gas holdup. Expanded polystyrene beads (EPS) were used as the supporting matrix for immobilizing Pseudomonas putida ATCC 49451, in the downcomer of the bioreactor. The hydrodynamics of the bioreactor system was characterized by studying the effect of the extent of valve opening, under cell-free condition, on gas holdup and liquid circulation velocity at different gas velocities and solids loading (EPS and GAC). The experimental data for gas holdup were modeled using power law correlations, while a Langmuir-Hinshelwood kinetics model was used for culation velocity. The bioreactor was tested for batch cometabolic biotransformation of 4-cp in the presence of phenol at various concentration ratios of phenol and 4-cp (ranging from 600mg l(-1) phenol: 200mg l(-1) 4-cp to 1600mg l(-1) phenol: 200mg l(-1) 4-cp) at 9% EPS loading and 2.8% (10g) GAC loading. The 4-cp and phenol biotransformations were achieved successfully in the bioreactor system, which ascertained the feasibility of the bioreactor. Biotransformation of high 4-cp and phenol concentrations, which was oxygen limited, was also effectively achieved by increasing the gas holdup in the riser. This was possible in the current EFBAB system because of the synergistic effect of the GAC fluidized bed, the globe valve and cell immobilization by EPS. (c) 2005 Elsevier Ltd. All rights reserved.
机译:Loh和Liu [2001年]报道了4-1外循环逆流化床气提生物反应器(EIFBAB)的优势。 [Chemical Engineering Science 56,6171-6176]与颗粒状活性炭(GAC)的优先吸附协同作用,在存在苯酚作为生长底物的情况下增强了4-氯苯酚(4-cp)的代谢生物转化。这是通过将GAC流化床并入提升管的下部而实现的,将气体喷射器重新放置在该流化床上方,以避免流化床中存在三相流,从而提供更大的气体滞留量。在生物反应器的降液管中,将膨胀的聚苯乙烯珠(EPS)用作固定化恶臭假单胞菌ATCC 49451的支持基质。生物反应器系统的流体动力学特性是通过研究在无气体条件下阀门开度对不同气体速度和固体载荷(EPS和GAC)下气体滞留率和液体循环速度的影响。使用幂律相关性对气体含气量的实验数据进行建模,而将Langmuir-Hinshelwood动力学模型用于计算流速。测试了该生物反应器在苯酚存在下以各种浓度的苯酚和4-cp(范围从600mg l(-1)苯酚:200mg l(-1)4-cp到1600mg l (-1)苯酚:200 mg l(-1)4-cp),EPS含量为9%,GAC含量为2.8%(10g)。在生物反应器系统中成功实现了4-cp和苯酚的生物转化,这确定了该生物反应器的可行性。通过增加提升管中的气体滞留量,还可以有效地实现高4-cp和苯酚浓度的生物转化(这是受氧气限制的)。由于GAC流化床,截止阀和EPS固定细胞的协同作用,在当前的EFBAB系统中这是可能的。 (c)2005 Elsevier Ltd.保留所有权利。

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