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首页> 外文期刊>Journal of the Royal Society Interface >Placing microalgae on the biofuels priority list: a review of the technological challenges
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Placing microalgae on the biofuels priority list: a review of the technological challenges

机译:将微藻列入生物燃料优先清单:对技术挑战的回顾

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Microalgae provide various potential advantages for biofuel production when compared with 'traditional' crops. Specifically, large-scale microalgal culture need not compete for arable land, while in theory their productivity is greater. In consequence, there has been resurgence in interest and a proliferation of algae fuel projects. However, while on a theoretical basis, microalgae may produce between 10- and 100-fold more oil per acre, such capacities have not been validated on a commercial scale. We critically review current designs of algal culture facilities, including photobioreactors and open ponds, with regards to photosynthetic productivity and associated biomass and oil production and include an analysis of alternative approaches using models, balancing space needs, productivity and biomass concentrations, together with nutrient requirements. In the light of the current interest in synthetic genomics and genetic modifications, we also evaluate the options for potential metabolic engineering of the lipid biosynthesis pathways of microalgae. We conclude that although significant literature exists on microalgal growth and biochemistry, significantly more work needs to be undertaken to understand and potentially manipulate algal lipid metabolism. Furthermore, with regards to chemical upgrading of algal lipids and biomass, we describe alternative fuel synthesis routes, and discuss and evaluate the application of catalysts traditionally used for plant oils. Simulations that incorporate financial elements, along with fluid dynamics and algae growth models, are likely to be increasingly useful for predicting reactor design efficiency and life cycle analysis to determine the viability of the various options for large-scale culture. The greatest potential for cost reduction and increased yields most probably lies within closed or hybrid closed-open production systems.
机译:与“传统”作物相比,微藻为生物燃料生产提供了各种潜在的优势。具体而言,大规模微藻类培养无需争夺耕地,而从理论上讲其生产力更高。结果,人们的兴趣再次兴起,藻类燃料项目激增。但是,虽然从理论上讲,微藻每英亩的产油量可能增加10至100倍,但这种能力尚未在商业规模上得到验证。我们严格审查藻类养殖设施(包括光生物反应器和开放式池塘)的当前设计,涉及光合作用生产力以及相关的生物质和石油生产,并使用模型分析替代方法,平衡空间需求,生产力和生物质浓度以及养分需求。根据当前对合成基因组学和遗传修饰的兴趣,我们还评估了微藻类脂质生物合成途径的潜在代谢工程学选项。我们得出的结论是,尽管存在大量有关微藻生长和生物化学的文献,但仍需要开展大量工作来理解和潜在地操纵藻类脂质代谢。此外,关于藻类脂质和生物质的化学提纯,我们描述了替代燃料合成路线,并讨论和评估了传统上用于植物油的催化剂的应用。结合财务要素以及流体动力学和藻类生长模型的模拟,对于预测反应堆设计效率和生命周期分析,以确定用于大规模养殖的各种选择的可行性,可能越来越有用。降低成本和提高产量的最大潜力很可能在于封闭式或混合式封闭式开放式生产系统中。

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