利用微藻生产生物柴油的超声波辅助步骤

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
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引用次数: 0

摘要

利用微藻生产生物柴油被认为是替代传统燃料的主要方法之一。此外,在利用这类微生物工业化生产生物燃料的不同步骤中,超声波的使用至关重要。本综述重点介绍超声波技术在增加微藻脂质含量、改进生物质收割和脂质提取方面的潜力,以及在油类酯交换中的潜在用途。具体来说,在微藻生长的静止期使用超声脉冲可刺激微藻提高脂质含量,并可氧化细胞壁,改善脂质提取和随后的收获。此外,在超声波的辅助下,由于界面面积减小,酯交换反应的反应时间、醇/油摩尔比、分离过程和能耗都会比传统方法减少。最后,如果将之前的一些工艺(即原位酯交换)结合起来使用,可以减少工业工艺中的步骤数量,那么就可以使用超声波技术。关于扩大规模,虽然已经提出了一些连续运行模式的超声波反应器,但仍然存在一些缺点,主要涉及对不同介质中气泡行为的了解、气泡对反应(酶解或原位酯化)的影响以及同时在多个工艺中使用超声波技术时的能耗。要在大规模工艺中采用这种技术,还需要对这些事实进行更详细的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ultrasound-assisted steps for producing biodiesel from microalgae

Ultrasound-assisted steps for producing biodiesel from microalgae

Biodiesel production from microalgae is considered one of the main candidates to replace conventional fuels. In addition, the use of ultrasound can be crucial to enhance different steps in the industrial production of this biofuel from this type of microorganisms. This review focuses on the potential of ultrasound technology to increase lipid content in microalgae and improve biomass harvesting and lipid extraction, as well as its potential use in oil transesterification. Specifically, the use of ultrasound pulses in the stationary phase of microalgae growth can act as a stimulus to improve lipid content and can oxidise cell walls, improving lipid extraction and subsequent harvesting. Furthermore, if assisted with ultrasound, the reaction time, alcohol/oil molar ratio, separation process, and energy consumption of transesterification can be reduced compared to conventional methods due to the reduction of the interfacial area. Finally, ultrasound technology can be used if some of the previous processes (i.e., in situ transesterification) are coupled to decrease the number of steps in an industrial process. Regarding scale-up, although some ultrasonic reactors working in continuous operation mode have already been proposed, there are still some drawbacks, mainly related to the knowledge of bubble behaviour in different media and their effect on reactions (enzymatic or in situ transesterifications) as well as the energy consumption if ultrasound technology is used in more than one process simultaneously. These facts need to be studied in more detail to introduce this technology in a large-scale process.

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来源期刊
Current Research in Biotechnology
Current Research in Biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.70
自引率
3.60%
发文量
50
审稿时长
38 days
期刊介绍: Current Research in Biotechnology (CRBIOT) is a new primary research, gold open access journal from Elsevier. CRBIOT publishes original papers, reviews, and short communications (including viewpoints and perspectives) resulting from research in biotechnology and biotech-associated disciplines. Current Research in Biotechnology is a peer-reviewed gold open access (OA) journal and upon acceptance all articles are permanently and freely available. It is a companion to the highly regarded review journal Current Opinion in Biotechnology (2018 CiteScore 8.450) and is part of the Current Opinion and Research (CO+RE) suite of journals. All CO+RE journals leverage the Current Opinion legacy-of editorial excellence, high-impact, and global reach-to ensure they are a widely read resource that is integral to scientists' workflow.
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