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木质纤维素生物质的物理和热预处理对热化学途径生物制氢的影响:综述

Effect of physical and thermal pretreatment of lignocellulosic biomass on biohydrogen production by thermochemical route: A critical review.

作者信息

Singh Rickwinder, Kumar Rajesh, Sarangi Prakash Kumar, Kovalev Andrey A, Vivekanand Vivekanand

机构信息

Centre for Energy and Environment, Malaviya National Institute of Technology Jaipur, Jaipur 302017, Rajasthan, India.

Chitkara University Institute of Engineering and Technology, Chitkara University, 140401 Punjab, India.

出版信息

Bioresour Technol. 2023 Feb;369:128458. doi: 10.1016/j.biortech.2022.128458. Epub 2022 Dec 9.

Abstract

Energy demands and immense environmental degradation have extorted for production of low-carbon and carbon-neutral fuels. Abundantly available lignocellulosic biomass is second-generation feedstock which has potential to produce biofuels. Among all biofuels, biohydrogen is carbon neutral and sustainable biofuel which can be produced by thermochemical conversion routes mainly gasification. However, there are still numerous unsolved challenges related to physicochemical properties of lignocellulosic biomass. To tackle these issues, physical, chemical and thermal pretreatment methods can be employed to improve these properties and further strengthen usability of biomass for biohydrogen production. Pelletization, torrefaction and hydrothermal carbonization pretreatment have shown significant results for treating biomass and biohydrogen enhancement. This study reviews physical and thermal pretreatment and its effect on biohydrogen yield. Framework of techno-economic analysis of processes is provided for examining feasibility of required pretreatments. This sustainable approach will help to reduce emissions and promote concept of bioenergy with carbon capture and storage.

摘要

能源需求和巨大的环境退化促使人们生产低碳和碳中和燃料。大量可用的木质纤维素生物质是第二代原料,具有生产生物燃料的潜力。在所有生物燃料中,生物氢是碳中和且可持续的生物燃料,可通过热化学转化途径(主要是气化)生产。然而,与木质纤维素生物质的物理化学性质相关的仍有许多未解决的挑战。为了解决这些问题,可以采用物理、化学和热预处理方法来改善这些性质,并进一步增强生物质用于生物氢生产的可用性。造粒、烘焙和水热碳化预处理在处理生物质和提高生物氢产量方面已显示出显著效果。本研究综述了物理和热预处理及其对生物氢产量的影响。提供了工艺技术经济分析框架,以检验所需预处理的可行性。这种可持续方法将有助于减少排放,并促进具有碳捕获和储存功能的生物能源概念。

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