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Review of analytical strategies in the production and upgrading of bio-oils derived from lignocellulosic biomass

机译:审查木质纤维素生物质产生的生物油的生产和提纯中的分析策略

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摘要

Lignocellulosic biomass is a promising source of renewable energy and valuable chemicals. It is abundant in several forms which may be pyrolyzed to give gases, condensates and char. The condensed liquid obtained through pyrolysis is popularly called bio-oil from which valuable chemicals may be derived in a well defined manner. Chemically, this liquid is a complex mixture of simple organic, inorganic and macromolecular compounds formed through thermo-chemical breakdown of lignocellulosic biomass. High oxygen content is responsible for its low gross calorific value which renders it useless for fuel applications however; upgrading processes aimed at reducing oxygenates potentially increase its usage at par with fossil fuels. Fast and efficient analytical methods have revealed huge amount of informations from biomass and pyrolysis liquids hence a key component in organizing research in this area. Owing to the high compositional complexity and diversity in bio-oils originating from different sources, generalized analytical procedures are very difficult to formulate. However, tools of analytical chemistry have helped in understanding the underlying mechanisms involved in production and upgrading of bio-oils at molecular levels. With the possibility of commercial large scale production plants coming up in Europe, concerns with bio-oil quality, stability and upgrading rely strongly on analytical approaches. With this review we have tried to present outcomes of important research related to chemical analysis of bio-oils. The discussion is intended to summarize role of prominent analytical techniques in the chemical characterization of bio-oils. On this basis, optimum sample preparation strategies have also been proposed along with the rationale behind analysis with conclusions.
机译:木质纤维素生物质是可再生能源和有价值的化学物质的有希望的来源。它以多种形式丰富,可以热解产生气体,冷凝物和炭。通过热解获得的冷凝液通常被称为生物油,可以很好地从中衍生出有价值的化学物质。化学上,这种液体是通过木质纤维素生物质的热化学分解形成的简单有机,无机和高分子化合物的复杂混合物。高氧含量是其低总热值的原因,这使其在燃料应用中无用;旨在减少含氧化合物的升级工艺有可能与化石燃料相比增加其使用量。快速有效的分析方法揭示了来自生物质和热解液的大量信息,因此是组织该领域研究的关键组成部分。由于来自不同来源的生物油的成分复杂性高和多样性,因此很难制定通用的分析程序。但是,分析化学工具有助于理解分子水平上生物油的生产和提纯所涉及的潜在机制。随着欧洲大规模商业化生产工厂的兴起,对生物油质量,稳定性和升级的担忧在很大程度上取决于分析方法。通过这次审查,我们试图介绍与生物油化学分析有关的重要研究成果。讨论旨在总结杰出的分析技术在生物油的化学表征中的作用。在此基础上,还提出了最佳的样品制备策略以及分析的基本原理和结论。

著录项

  • 来源
    《Journal of Analytical & Applied Pyrolysis》 |2014年第1期|55-74|共20页
  • 作者单位

    Analytical Sciences Division, Indian Institute of Petroleum, Council of Scientific and Industrial Research, Haridwar Road, Dehradun 248005,Uttarakhand, India;

    Analytical Sciences Division, Indian Institute of Petroleum, Council of Scientific and Industrial Research, Haridwar Road, Dehradun 248005,Uttarakhand, India;

    Analytical Sciences Division, Indian Institute of Petroleum, Council of Scientific and Industrial Research, Haridwar Road, Dehradun 248005,Uttarakhand, India;

    Analytical Sciences Division, Indian Institute of Petroleum, Council of Scientific and Industrial Research, Haridwar Road, Dehradun 248005,Uttarakhand, India;

    Analytical Sciences Division, Indian Institute of Petroleum, Council of Scientific and Industrial Research, Haridwar Road, Dehradun 248005,Uttarakhand, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bio-oil; Biomass; Chroma tography; Mass spectrometry; Nuclear magnetic resonance; Fourier transform infrared spectroscopy;

    机译:生物油生物质色谱质谱;核磁共振;傅立叶变换红外光谱;

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