欧洲褐海藻生产生物燃料的现有潜力综述

IF 4.6 3区 工程技术 Q2 ENERGY & FUELS
Gail Twigg, Jeffrey Fedenko, George Hurst, Michele S. Stanley, Adam D. Hughes
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引用次数: 0

摘要

背景除了大型藻类的其他用途外,自 20 世纪 70 年代以来,人们开始关注将大型藻类作为生物燃料的来源,这是因为大型藻类的生产率高,而且与其他生物燃料作物相比具有不需要使用土地或大量淡水输入等内在优势。目前有多种转化工艺,但厌氧消化是最先展示的工艺之一,而且仍然是广泛建议的转化途径。为了在欧洲实现经济可行性和规模化,该行业需要以少数生长快、产量高的欧洲大型藻类为基础。正文这些研究表明,这种转化途径的效率在不同物种、加工技术、成分和消化器条件之间存在很大差异。在本文中,我们回顾了这些研究成果,并将其与欧洲大型藻类生物能源栽培的候选物种联系起来,目的是促进欧洲大型藻类栽培行业的未来发展,使其更好地符合利用大型藻类生产生物燃料的要求。结论总的来说,海藻厌氧消化为大规模能源生产提供了机会,避免了前几代生物燃料所面临的一些问题,但要确保更广泛的应用和经济可行性,还需要克服一些关键挑战。(1) 优化生物质生产,确保原料的经济性和均匀性,优化原料成分,提高糖含量和碳氮比等理想特性,减少卤代次生代谢物、硫和重金属等抑制因素。(2) 利用可扩展且经济可行的技术,通过联合消化、预处理和定制微生物群落来提高转化率。(3) 开发能够利用海藻原料中的多种多糖并耐盐碱的定制微生物群落。解决这些问题将为发展以养殖海藻厌氧消化为基础的生物能源产业带来重大裨益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A review of the current potential of European brown seaweed for the production of biofuels

Background

In addition to the other uses for macroalgae, since the 1970s, there has been interest in using macroalgae as a source of biofuels, due to the high rates of productivity and intrinsic advantages over other biofuel crops such as not requiring land use or significant freshwater input. A wide range of conversion processes exist but anaerobic digestion was one of the first demonstrated and is still a widely proposed conversion pathway. To be economically viable and scalable within Europe, the industry will need to be based on a small number of fast growing, high-yielding European macroalgae species. There is a wide body of scientific work on the conversion of seaweeds to biofuel via anaerobic digestion.

Main text

These studies demonstrate that the efficiency of this conversion pathway is highly variable between species, processing techniques, composition and digestor conditions. In this paper, we review this body of work specifically linking it to candidate species for European macroalgae bio-energy cultivation with the aim to promote the future development of the European macroalgal cultivation sector and allow for a better alignment with the requirements for biofuel production from macroalgae.

Conclusions

Overall, anaerobic digestion of seaweed offers opportunities for large-scale energy production which avoids some of the issues that have faced previous generations of biofuels, but there are a number of key challenges to overcome to ensure wider adoption and economic viability. (1) Optimising the biomass production to ensure an economic and uniform feedstock with the composition optimised to increase desirable characteristics such as sugar content and the carbon and nitrogen ratio and to reduce inhibitory factors such as halogenated secondary metabolites, sulphur and heavy metals. (2) Improving conversion rates through co-digestion, pre-treatments and tailored microbial communities, using scalable and economically feasible technology. (3) Developing tailored microbial communities capable of utilising the diverse polysaccharides in seaweed feedstock and being tolerant of the saline conditions associated with them. Addressing these issues will deliver significant benefits towards the development of a bio-energy industry based on the anaerobic digestion of cultured seaweeds.

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来源期刊
Energy, Sustainability and Society
Energy, Sustainability and Society Energy-Energy Engineering and Power Technology
CiteScore
9.60
自引率
4.10%
发文量
45
审稿时长
13 weeks
期刊介绍: Energy, Sustainability and Society is a peer-reviewed open access journal published under the brand SpringerOpen. It covers topics ranging from scientific research to innovative approaches for technology implementation to analysis of economic, social and environmental impacts of sustainable energy systems.
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