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Review on integrated biofuel production from microalgal biomass through the outset of transesterification route: a cascade approach for sustainable bioenergy

机译:通过酯交换路线一开始研究微藻生物量的综合生物燃料生产:可持续生物能源的级联方法

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In recent years, microalgal feedstocks have gained immense potential for sustainable biofuel production. Ther-mochemical, biochemical conversions and transesterification processes are employed for biofuel production. Especially, the transesterification process of lipid molecules to fatty acid alkyl esters (FAAE) is being widely employed for biodiesel production. In the case of the extractive transesterification process, biodiesel is produced from the extracted microalgal oil. Whereas In-situ (reactive) transesterification allows the direct conversion of microalgae to biodiesel avoiding the sequential steps, which subsequently reduces the production cost. Though microalgae have the highest potential to be an alternate renewable feedstock, the minimization of biofuel production cost is still a challenge. The biorefinery approaches that rely on simple cascade processes involving cost-effective technologies are the need of an hour for sustainable bioenergy production using microalgae. At the same time, combining the biorefineries for both (ⅰ) high value-low volume (food and health supplements) and (ⅱ) low value- high volume (waste remediation, bioenergy) from microalgae involves regulatory and technical problems. Waste-remediation and algal biorefinery were extensively reviewed in many previous reports. On the other hand, this review focuses on the cascade processes for efficient utilization of microalgae for integrated bioenergy production through the transesterification. Microalgal biomass remnants after the transesterification process, comprising carbohydrates as a major component (process flow A) or the carbohydrate fraction after bio-separation of pretreated microalgae (process flow B) can be utilized for bioethanol production. Therefore, this review concentrates on the cascade flow of integrated bioprocessing methods for biodiesel and bioethanol production through the transesterification and biochemical routes. The review also sheds light on the recent combinatorial approaches of transesterification of microalgae. The applicability of spent microalgal biomass residue for biogas and other applications to bring about zero-waste residue are discussed. Furthermore, techno-economic analysis (TEA), life cycle assessment (LCA) and challenges of microalgal biorefineries are discussed.
机译:近年来,微藻原料已经获得了可持续生物燃料生产的巨大潜力。用于生物燃料生产的Ther-Mochemical,生化转化和酯交换过程。特别是,脂质分子对脂肪酸烷基酯(FAAE)的酯交换过程被广泛用于生物柴油生产。在萃取酯交换过程的情况下,生物柴油由提取的微藻油制成。然而,原位(反应性)酯交换允许微血脂直接转化为生物柴油避免顺序步骤,随后降低了生产成本。虽然微藻具有最高的潜力是成为可再生原料的潜力,但最大限度地减少生物燃料生产成本仍然是一项挑战。依赖涉及具有成本效益技术的简单级联过程的生物遗弃方法是使用微藻进行可持续生物能量生产的一小时。与此同时,将生物寄生体组合(Ⅰ)高价值低体积(食品和健康补充)和(Ⅱ)低值高(废物修复,生物能量),微藻涉及监管和技术问题。废物补救和藻类生物遗料在许多之前的报告中进行了广泛的审查。另一方面,本综述重点介绍了通过酯交换化进行综合生物能量生产的微观利用的级联工艺。酯交换过程后微藻生物量残余物,包括碳水化合物作为主要成分(过程流动A)或生物分离后预处理的微藻(工艺流程B)后的碳水化合物级分,可用于生物乙醇生产。因此,本综述集中在通过酯交换和生物化学途径产生生物柴油和生物乙醇生产的级联生物处理方法的级联流动。审查还在近期微藻酯化的组合方法上阐明了光线。讨论了废微藻生物质残留物的适用性和其他应用来带来零废物残留物。此外,讨论了技术经济分析(茶),生命周期评估(LCA)和微藻生物寄生虫的挑战。

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