The investigation of co-combustion process for synergistic effects using thermogravimetric and kinetic analysis with combustion index

IF 5.4 3区 工程技术 Q2 ENERGY & FUELS Thermal Science and Engineering Progress Pub Date : 2021-06-01 DOI:10.1016/j.tsep.2021.100889
Senem Sezer, Furkan Kartal, Uğur Özveren
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引用次数: 7

Abstract

In an attempt to discover the synergistic mechanisms of co-combustion processes, a combination of thermogravimetric and kinetic analysis was conducted in this study to investigate the co-combustion characteristics of Imbat coal, almond shell, and their different blend ratios. The TGA experiments under atmospheric conditions (21% O2, 79% Ar) with 45 mL/min were carried out at a given temperature between 25 °C and 1200 °C by setting the heating rates at 10, 20 and 30 K/min. TGA curves showed the co-combustion process took place in two main stages: the volatile combustion zone and the fixed-carbon combustion zone. Furthermore, model fitting method based Coats–Redfern kinetic model was applied on TGA data of Imbat coal (IC), almond shell (AS), and their blends to calculate the kinetic parameters including reaction order, pre-exponential factor, and activation energy. Kinetic calculations were performed separately for both different combustion stages. The kinetic model were examined by coefficient of determination (R2) and results showed that R2 value changes between 0.8833 and 0.9982. The co-combustion characteristics of blends are synergistically influenced by the blend ratio between Imbat coal and almond shells such as combustion indexes, ignition temperature and peak temperatures. Combustion index values were increased from 2.95E-08 to 1.32E-07 for heating rate of 10 K/min, from 3.63E-08 to 3.25E-07 for heating rate of 20 K/min and from 3.63E to 08 to 6.1E-07 for 30 K/min. Results show that biomass can be burned with low-rank coals effectively, which means co-combustion technology provides more environmentally friendly way for energy generation.

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用热重法和燃烧动力学分析研究共燃过程的增效效应
为了探索共燃过程的协同机理,本研究采用热重分析和动力学分析相结合的方法,研究了Imbat煤与杏仁壳及其不同掺比的共燃特性。在常压条件下(21% O2, 79% Ar),温度为45 mL/min,升温速率为10、20和30 K/min,温度范围为25℃~ 1200℃。TGA曲线显示共燃烧过程主要发生在挥发性燃烧区和固定碳燃烧区两个阶段。基于Coats-Redfern动力学模型的模型拟合方法,对Imbat煤(IC)、杏仁壳(AS)及其共混物的TGA数据进行了拟合,计算了反应阶数、指前因子和活化能等动力学参数。对两个不同的燃烧阶段分别进行了动力学计算。采用决定系数(R2)对动力学模型进行检验,结果表明,R2值在0.8833 ~ 0.9982之间变化。Imbat煤与杏仁壳的掺比对共燃特性有协同影响,如燃烧指标、着火温度和峰值温度。升温速率为10 K/min时,燃烧指数从2.95E-08增加到1.32E-07;升温速率为20 K/min时,燃烧指数从3.63E-08增加到3.25E-07;升温速率为30 K/min时,燃烧指数从3.63E-08增加到6.1E-07。结果表明,生物质可以与低阶煤有效燃烧,这意味着共燃技术为能源生产提供了更环保的方式。
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来源期刊
Thermal Science and Engineering Progress
Thermal Science and Engineering Progress Chemical Engineering-Fluid Flow and Transfer Processes
CiteScore
7.20
自引率
10.40%
发文量
327
审稿时长
41 days
期刊介绍: Thermal Science and Engineering Progress (TSEP) publishes original, high-quality research articles that span activities ranging from fundamental scientific research and discussion of the more controversial thermodynamic theories, to developments in thermal engineering that are in many instances examples of the way scientists and engineers are addressing the challenges facing a growing population – smart cities and global warming – maximising thermodynamic efficiencies and minimising all heat losses. It is intended that these will be of current relevance and interest to industry, academia and other practitioners. It is evident that many specialised journals in thermal and, to some extent, in fluid disciplines tend to focus on topics that can be classified as fundamental in nature, or are ‘applied’ and near-market. Thermal Science and Engineering Progress will bridge the gap between these two areas, allowing authors to make an easy choice, should they or a journal editor feel that their papers are ‘out of scope’ when considering other journals. The range of topics covered by Thermal Science and Engineering Progress addresses the rapid rate of development being made in thermal transfer processes as they affect traditional fields, and important growth in the topical research areas of aerospace, thermal biological and medical systems, electronics and nano-technologies, renewable energy systems, food production (including agriculture), and the need to minimise man-made thermal impacts on climate change. Review articles on appropriate topics for TSEP are encouraged, although until TSEP is fully established, these will be limited in number. Before submitting such articles, please contact one of the Editors, or a member of the Editorial Advisory Board with an outline of your proposal and your expertise in the area of your review.
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