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Microbial Pb(II)Precipitation:Kinetic Modelling of Pb(II)Removal and Microbial Growth

机译:微生物Pb(II)沉淀:Pb(II)的动力学建模(II)去除和微生物生长

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The study aimed to propose a preliminary kinetic model for Pb(II)bioremoval by an industrially obtained microbial consortium.The consortium has previously been shown to be extremely effective at precipitating Pb(II)from solution.For data generation,100 mL batch reactors were set up anaerobically and spiked with either 80 ppm Pb(II)or 500 ppm Pb(II).Each of the concentrations contained either Standard LB broth or Simulated LB broth;Simulated LB broth contained double the amount of nutrients(yeast extract and tryptone)as Standard LB broth.Four datasets where thus used with notation,80LB,80Sim,500LB and 500Sim.The study focused on the initial 33 h of experimentation with all four conditions.It was observed that most of the Pb(II)were removed within the first 3 h(± 50%)in all the reactors,in the absence of visual changes,followed by a slower rate of Pb(II)removal and dark precipitation forming.The Pb(II)removal was found to be independent of the amount of the microbial growth rate or nutrients present.A two-phase exponential decay model was proposed with rapid Pb(II)removal linked to an adsorption mechanism within the initial 3 h,followed by a slower Pb(II)precipitation mechanism.Microbial growth was found to be dependent on the concentration of Pb(II),nitrates,and available nutrients in the system.Growth in the samples in all the samples was modelled in one phase,namely a nitrate dependent exponential growth phase,modelled using Monod type kinetics.The nitrate dependent exponential growth phase was constructed using the Monod kinetic model in conjunction with a non-competitive Pb(II)-inhibition Michaelis-Menten term.The same maximum specific growth rate(28.2 d~(-1))and Pb(II)-inhibition constant were determined for all fermentation conditions.These results suggest a detoxification mechanism via adsorption of Pb(II)onto biomass present in order to initiate growth,followed by the biological precipitation of the adsorbed Pb(II).The study presents the first model for microbial Pb(II)precipitation and provides a basis for the design of a continuous reaction setup required for future industrial application.
机译:该研究旨在提出由工业上获得的微生物联盟的Pb(II)型生物的初步动力学模型。此前已被证明在促使Pb(II)的溶液中的极其有效。对于数据生成,100ml分批反应器是以80ppm pb(ii)或500ppm pb(ii)设置厌氧并掺入500ppm pb(ii)。浓度含有标准LB肉汤或模拟LB肉汤;模拟LB肉汤含有双重营养素(酵母提取物和昆腾)作为标准LB培养器。使用符号,80Lb,80sim,500lb和​​500sim所用的数据集。该研究的重点是所有四种条件的实验初始33小时。观察到大多数Pb(II)在内部除去所有反应器中的前3小时(±50%)在没有视觉变化的情况下,接着的Pb(II)去除和深度沉淀成形速度较慢。发现PB(II)除去微生物生长速率或NUTRI的量呈现出来。提出了两相指数衰减模型,并用快速的Pb(ii)除去与初始3h内的吸附机制连接,然后较慢的Pb(II)沉淀机制。发现依赖于在所有样品中的样品中的样品中浓度,硝酸盐,硝酸盐和可用营养物在一个相中进行建模,即使用Monod型动力学建模的硝酸盐依赖性指数生长阶段。硝酸盐依赖性指数增长阶段使用Monod动力学模型与非竞争性Pb(II)相同构建 - 抑制michaelis-menten术语。确定相同的最大生长速率(28.2d〜(-1))和pb(ii)抑制常数对于所有发酵条件。这些结果表明通过将Pb(II)吸附到存在的生物质上,以便引发生长,然后进行吸附的Pb(II)的生物沉淀。该研究提出了第一款Micro模型双PB(ii)降水并为未来工业应用所需的连续反应设置设计提供依据。

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