Relationships between Biomass Composition and Liquid Products Formed via Pyrolysis

IF 2.6 4区 工程技术 Q3 ENERGY & FUELS Frontiers in Energy Research Pub Date : 2015-10-21 DOI:10.3389/fenrg.2015.00045
Fan-Yun Lin, Christopher L. Waters, R. Mallinson, L. Lobban, L. Bartley
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引用次数: 53

Abstract

Thermal conversion of biomass is a rapid, low-cost way to produce a dense liquid product, known as bio-oil, that can be refined to transportation fuels. However, utilization of bio-oil is challenging due to its chemical complexity, acidity, and instability—all results of the intricate nature of biomass. A clear understanding of how biomass properties impact yield and composition of thermal products will provide guidance to optimize both biomass and conditions for thermal conversion. To aid elucidation of these associations, we first describe biomass polymers, including phenolics, polysaccharides, acetyl groups, and inorganic ions, and the chemical interactions among them. We then discuss evidence for three roles (i.e., models) for biomass components in formation of liquid pyrolysis products: (1) as direct sources, (2) as catalysts, and (3) as indirect factors whereby chemical interactions among components and/or cell wall structural features impact thermal conversion products. We highlight associations that might be utilized to optimize biomass content prior to pyrolysis, though a more detailed characterization is required to understand indirect effects. In combination with high-throughput biomass characterization techniques this knowledge will enable identification of biomass particularly suited for biofuel production and can also guide genetic engineering of bioenergy crops to improve biomass features.
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生物质组成与热解生成液态产物的关系
生物质的热转化是一种快速、低成本的生产致密液体产品的方法,这种产品被称为生物油,可以提炼成运输燃料。然而,生物油的利用是具有挑战性的,因为它的化学复杂性、酸度和不稳定性——所有这些都是生物质复杂性质的结果。清楚地了解生物质特性如何影响热产物的产量和组成,将为优化生物质和热转化条件提供指导。为了帮助阐明这些关联,我们首先描述了生物质聚合物,包括酚类物质、多糖、乙酰基和无机离子,以及它们之间的化学相互作用。然后,我们讨论了生物质组分在液体热解产物形成中的三种作用(即模型)的证据:(1)作为直接来源,(2)作为催化剂,(3)作为间接因素,组分之间的化学相互作用和/或细胞壁结构特征影响热转化产物。我们强调了可能用于优化热解前生物质含量的关联,尽管需要更详细的表征来了解间接影响。结合高通量生物质表征技术,这些知识将能够识别特别适合生物燃料生产的生物质,也可以指导生物能源作物的基因工程,以改善生物质特性。
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来源期刊
Frontiers in Energy Research
Frontiers in Energy Research Economics, Econometrics and Finance-Economics and Econometrics
CiteScore
3.90
自引率
11.80%
发文量
1727
审稿时长
12 weeks
期刊介绍: Frontiers in Energy Research makes use of the unique Frontiers platform for open-access publishing and research networking for scientists, which provides an equal opportunity to seek, share and create knowledge. The mission of Frontiers is to place publishing back in the hands of working scientists and to promote an interactive, fair, and efficient review process. Articles are peer-reviewed according to the Frontiers review guidelines, which evaluate manuscripts on objective editorial criteria
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