Optimizing Formic Acid-Assisted Co-HTL of Digested Sewage Sludge and Lignocellulosic Waste for Enhanced Bio-Crude Yield and Energy Recovery

IF 3 4区 工程技术 Q3 ENERGY & FUELS Energies Pub Date : 2024-01-04 DOI:10.3390/en17010258
Kristoffer Mega Herdlevær, Tanja Barth
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Abstract

In recent years, hydrothermal liquefaction (HTL) has gained attention as a means of enhancing and increasing the production of biofuels from biomass. Co-HTL involves the simultaneous processing of two or more feedstocks, with the potential for interactions that can affect the overall yield and quality of the resulting biofuels. This study investigates the bio-crude yield, chemical composition, and energy content of bio-crudes obtained through formic acid-assisted hydrothermal liquefaction of combined digested sewage sludge (DSS) and lignocellulose (LC). The bio-crude yields are in the range of 26.8–58.9 wt%, with a higher heating value (HHV) of approximately 32 MJ/kg. The best experiment shows that mixtures with more DSS and high levels of process condition variables (350 °C, formic acid present, and 50 wt% EtOH) give high bio-crude yields with a maximum value of 58.9 wt%. For comparison, pure DSS and LC run at these process conditions resulted in a bio-crude yield of 52.5 wt% and 48.3 wt%, respectively. Partial least squares (PLS) regression reveals a synergistic effect from mixing the feedstocks, as the quadratic term of the regression equation for mixture ratio shows a negative coefficient. GC–MS data show that combining feedstocks results in the formation of new compounds, mostly phenols, that are not present in the bio-crudes from the separate feedstocks. Thus, combining feedstocks will not only increase the resource availability for hydrothermal liquefaction and streamline the process but will also increase the overall production of bio-crude with its synergistic effect.
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优化甲酸辅助消化污水污泥和木质纤维素废料的共 HTL,提高生物原油产量和能源回收率
近年来,水热液化(HTL)作为一种从生物质中提高和增加生物燃料产量的手段,受到了越来越多的关注。共热液化涉及两种或两种以上原料的同时处理,可能会产生相互作用,从而影响所生产生物燃料的总产量和质量。本研究调查了通过甲酸辅助水热液化联合消化污水污泥(DSS)和木质纤维素(LC)获得的生物原油产量、化学成分和能量含量。生物原油产量在 26.8-58.9 wt% 之间,较高的热值 (HHV) 约为 32 MJ/kg。最佳实验结果表明,含有更多 DSS 和高水平工艺条件变量(350 °C、存在甲酸和 50 wt% EtOH)的混合物具有较高的生物原油产量,最大值为 58.9 wt%。相比之下,在这些工艺条件下运行的纯 DSS 和 LC 产生的生物原油产量分别为 52.5 wt% 和 48.3 wt%。偏最小二乘法(PLS)回归显示,混合原料具有协同效应,因为混合比例回归方程的二次项显示为负系数。气相色谱-质谱(GC-MS)数据显示,混合原料会形成新的化合物,主要是酚类,而这些化合物在来自不同原料的生物原油中是不存在的。因此,混合原料不仅可以增加热液液化的可用资源,简化工艺流程,还可以通过协同效应提高生物原油的总体产量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Energies
Energies ENERGY & FUELS-
CiteScore
6.20
自引率
21.90%
发文量
8045
审稿时长
1.9 months
期刊介绍: Energies (ISSN 1996-1073) is an open access journal of related scientific research, technology development and policy and management studies. It publishes reviews, regular research papers, and communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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