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Optimization of Hydraulic Retention Time and Biomass Concentration in Microalgae Biomass Production from Treated Sewage with a Membrane Photobioreactor

机译:膜光生物反应器处理污水生产微藻生物量的水力滞留时间和生物量浓度的优化

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摘要

Treated sewage is a promising source of nitrogen and phosphorus in microalgae biomass production for carbon-neutral biofuel and chemical products. In this study, Chlorella vulgaris was continuously cultivated in membrane photobioreactors (MPBRs) under short hydraulic retention times (HRTs) and with different numbers of submerged membrane modules to investigate potential microalgae productivity when treated sewage was used as a nutrient source. Microalgae biomass concentrations were independent of HRT in MPBRs with one membrane module owing to microalgae biomass deposition on the membrane. Installation of an additional submerged membrane module effectively reduced deposition on the submerged membrane, resulting in increased microalgae biomass concentration and volumetric productivity. Growth kinetics suggested that HRT is the essential parameter influencing the volumetric productivity of microalgae under nutrient-limited conditions, and that optimization of the biomass concentration, which depends on the surface/volume ratio of the photobioreactor and initial light intensity, is critical to maximization of the volumetric productivity under light-limited conditions.
机译:经过处理的污水是用于碳中和生物燃料和化学产品的微藻生物质生产中氮和磷的有前途的来源。在这项研究中,小球藻在较短的水力停留时间(HRT)和不同数量的浸没膜组件下,在膜光生物反应器(MPBR)中连续培养,以研究将处理后的污水用作营养源时潜在的微藻生产力。由于微藻生物质沉积在膜上,微藻生物质浓度与具有一个膜组件的MPBR中的HRT无关。安装附加的水下膜组件可有效减少在水下膜上的沉积,从而增加微藻生物质的浓度和容积生产率。生长动力学表明,HRT是在养分受限条件下影响微藻体积生产力的重要参数,而取决于光生物反应器的表面/体积比和初始光强度的生物量浓度的优化对最大化藻类的关键性。光线受限条件下的容积生产率。

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