蔗渣与木屑在水热共炭化和共气化过程中的相互作用效应

IF 7.6 Q1 ENERGY & FUELS
Peter Akhator , Bilainu Oboirien , Tohid N.Borhani
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引用次数: 0

摘要

水热碳化(HTC)与气化相结合,为有效和清洁利用生物质提供了一种很有前途的方法。然而,生物质的复杂组成使人们对其气化机制的理解复杂化。本研究考察了蔗渣(SB)和锯末(SD)的单独和共同HTC过程,以探索它们之间的相互作用,并评估HTC严重程度和生物质比例如何影响气化反应性。结果表明,在较高的还原温度和较高的还原比例下,SB和SD的共还原具有显著的正协同效应,从而提高了共还原产物的质量产率和燃料比。反之,较高的HTC温度也会对较高的热值产生更大的反协同效应。HTC处理通常降低SB和SD的气化反应性,主要是由于去除活性矿物和增加芳香化。而提高SB的质量比可显著提高反应活性,这是由于它们的水合物之间具有较强的协同作用。由于其催化活性,钙和铁的存在以及SB中较高的挥发性含量可能是共气化过程中产生这种协同效应的关键因素。在所测试的动力学模型中,颗粒模型(GM)的拟合优度(R2)值最高,为0.9984,最适合描述样品的气化行为。总体而言,HTC有效地将生物质转化为高能量含量的固体,为扩大生物质碳氢化合物的应用范围奠定了坚实的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interaction effects between sugarcane bagasse and sawdust during their co-hydrothermal carbonisation and co-gasification
Hydrothermal carbonisation (HTC) coupled with gasification presents a promising approach for the effective and clean utilisation of biomass. However, the complex composition of biomass complicates the understanding of its gasification mechanisms. This study examined the individual and co-HTC processes combined with gasification of sugarcane bagasse (SB) and sawdust (SD) to explore their interactions and assess how HTC severity and biomass ratios influence gasification reactivity. The results demonstrated a notable positive synergistic effect during co-HTC of SB and SD at elevated HTC temperatures and increased SB proportions, leading to improvements in mass yield and fuel ratio of the resulting co-hydrochars. Conversely, higher HTC temperatures also led to greater anti-synergistic effects on higher heating value. HTC treatment generally diminished the gasification reactivity of SB and SD, primarily due to the removal of reactive minerals and increased aromatisation. However, raising the SB mass ratio significantly enhanced reactivity, owing to the strong synergistic interaction among their hydrochars. The presence of calcium and iron species, along with the higher volatile content in SB, are likely key factors contributing to this synergistic effect during the co-gasification due to their catalytic activity. Among the kinetic models tested, the grain model (GM), having the highest goodness of fit (R2) value of 0.9984, provided the best fit for describing the gasification behaviour of the samples. Overall, HTC effectively converts biomass into solid with high energy content, offering a robust foundation for expanding the application scope of hydrochars from biomass.
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来源期刊
CiteScore
8.80
自引率
3.20%
发文量
180
审稿时长
58 days
期刊介绍: Energy Conversion and Management: X is the open access extension of the reputable journal Energy Conversion and Management, serving as a platform for interdisciplinary research on a wide array of critical energy subjects. The journal is dedicated to publishing original contributions and in-depth technical review articles that present groundbreaking research on topics spanning energy generation, utilization, conversion, storage, transmission, conservation, management, and sustainability. The scope of Energy Conversion and Management: X encompasses various forms of energy, including mechanical, thermal, nuclear, chemical, electromagnetic, magnetic, and electric energy. It addresses all known energy resources, highlighting both conventional sources like fossil fuels and nuclear power, as well as renewable resources such as solar, biomass, hydro, wind, geothermal, and ocean energy.
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