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An integrated alkanolamine-fenton pretreatment process for biomass deconstruction: enhancement of degradation process and liquid fuel production

发表日期 April 28, 2023 (DOI: https://doi.org/10.54985/peeref.2304p2266463)

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作者

Abhisek Sahoo1 , Thallada Bhaskar2 , Kamal K. Pant1
  1. Department of Chemical Engineering, Indian Institute of Technology – Delhi
  2. Thermo-catalytic Process Area, Indian Institute of Petroleum - Dehradun

会议/活动

International Conference on Biotechnology for Sustainable Bioresources and Bioeconomy (BSBB-2022), December 2022 (Guwahati, India)

海报摘要

A new method for producing biofuels and biobased compounds from lignocellulosic biomass has been proposed. The Alkanolamine-Fenton (AAF) process is a cost-effective and energy-efficient method that improves the yield of targeted compounds, such as levoglucosan, by eliminating alkali and alkaline earth metals during Fenton treatment. This process also creates short-chain cellulose and recovers lignin, which is mostly composed of guaiacyl groups. Pyrolysis experiments show that an increase in H2O2 concentration in the Fenton process leads to a rise in methyl and ethyl groups and a drop in phenolic compounds containing methyl groups. The AAF process presents an efficient and resilient pretreatment method for biomass processing.

关键词

Alkanolamine-fenton, Biomass pretreatment, Pyrolysis, Levoglucosan, Demineralization, Deoxygenation

研究领域

Chemical Engineering, Energy Engineering, Environmental Engineering

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利益冲突
No competing interests were disclosed.
数据可用性声明
The datasets generated during and / or analyzed during the current study are available from the corresponding author on reasonable request.
知识共享许可协议
Copyright © 2023 Sahoo et al. This is an open access work distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
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引用
Sahoo, A., Bhaskar, T., Pant, K. An integrated alkanolamine-fenton pretreatment process for biomass deconstruction: enhancement of degradation process and liquid fuel production [not peer reviewed]. Peeref 2023 (poster).
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