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Maximizing Biomass and Lipid Production in Heterotrophic Culture of Chlorella vulgaris: Techno-economic Assessment

机译:最大化生物量和纯养殖培养的生物量和纯养殖培养的戊尔(Chlarlara):技术经济评估

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Background: Nowadays, chlorophycean microalgae have attained a broad-spectrum attention as a potential candidate for biomass and bioenergy production. Despite their appreciated benefits, one of major problems is their low biomass and lipid productivity. Here we investigated the heterotrophic culture in shake flasks and stirred tank bioreactor to improve the lipid and biomass production in a naturally isolated strain of Chlorella vulgaris. Methods: A naturally isolated C vulgaris strain was cultivated in BG-11 medium in shake flask and bioreactor. Its biochemical composition and growth kinetic parameters were investigated. Results: The biomass productivity was improved (3.68 fold) under heterotrophic culture compared to basal autotrophic culture condition in shake flask experiment. The total lipid content increased to 44% of total Dry Cell Weight (DCW) during heterotrophic growth after 21 days. Moreover, a great Fatty Acid Methyl Esters (FAME) yield was observed under heterotrophic cultivation. Total biomass and lipid content of microalgae in bioreactor experiment increased to 4.95 and 2.18 g L~(-1) respectively, during 5 days of the experiment compared to its basic autotrophic culture. Conclusion: The techno-economic aspects of exploiting C vulgaris as a biodiesel feedstock were also evaluated. The results imply that heterotrophic cultivation could compensate the low biomass productivity in microalgae for green energy production. Ever growing rates of established patents on application of various genetic and bioengineering-based methods have made it possible to achieve higher lipid contents with reduced total costs for microalgal biodiesel production as well.
机译:背景:如今,叶绿素微藻已成为生物质和生物能源生产的潜在候选者的广泛关注。尽管他们受到了欣赏的好处,但主要问题是它们的低生物量和脂质生产率。在这里,我们研究了摇瓶中的异养培养物,并搅拌釜生物反应器,以改善天然的小黄菌株中的脂质和生物质产生。方法:在摇瓶和生物反应器中在BG-11培养基中培养天然分离的v语文菌株。研究了其生化组合物和生长动力学参数。结果:与摇瓶实验中的基底自养培养条件相比,在异养培养下改善了生物质生产率(3.68倍)。在21天后,在异养生长期间,总脂质含量增加至总干细胞重量(DCW)的44%。此外,在异养培养下观察到一种大脂肪酸甲酯(MAME)产率。生物反应器实验中微藻的总生物质和脂质含量分别增加至4.95和2.18g L〜(-1),而实验相比其基本的自养培养。结论:还评价了作为生物柴油原料开采C寻呼的技术经济方面。结果暗示,杂养培养可以补偿微藻的低生物质生产率进行绿色能源。在应用各种基于遗传和生物工程的方法的应用的既定专利仍然有可能实现更高的脂质含量,并降低了微藻生物柴油生产的总成本。

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