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A review on numerical solutions to self-heating of coal stockpile: Mechanism, theoretical basis, and variable study

机译:煤堆自热数值解的综述:机理,理论基础和变量研究

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摘要

Self-heating or even spontaneous combustion of stockpiled coal, which is likely to outbreak under favourable circumstances during its transport, process, and storage, is a long-standing thermal dynamic hazard. This hazard is harmful in diverse aspects: causing loss of coal resource and caking property, raising safety concerns upon occurrence of open fire, and giving off noxious/greenhouse effect gases. Due to the complexity of involved physical process (e.g. heat and mass transport) and chemical process (e.g. coal oxidation), formulating an analytical solution to the problem with or even without a transient approach would be a daunting task and the problem is thus more often addressed numerically. So far many numerical models to self-heating of coal have been developed and to summarise these erratic findings, this work critically reviewed theses numerical solutions since the last four decades. Mechanism of self-heating on coal mass and low temperature coal oxidation especially kinetic modelling of coal oxidation is firstly investigated to clarify the involved physical and chemical processes. On basis of the mechanistic understanding, theoretical derivations and progressive advances on governing equations like energy, mass, and momentum conservation are reviewed and compiled in details. Through parametric studies or sensitivity check these models produced fruitful but slightly inconsistent findings. Therefore to provide industry more unbiased and comprehensive guides, the present work examined the influences of various contributors including wind flow, stockpile dimensions, coal particle size, moisture content, and packing porosity on the self-heating behaviour of stockpiled coal. Last not the least, major challenges and perspectives this subject may have are briefly discussed. (C) 2016 Elsevier Ltd. All rights reserved.
机译:煤的自热甚至自燃,在运输,加工和储存的有利环境下很可能会爆发,这是长期存在的热动力危险。这种危害在各个方面都是有害的:造成煤炭资源和结块性的损失,明火发生时引起安全隐患,并释放有毒/温室效应气体。由于所涉及的物理过程(例如,热量和物质的运输)和化学过程(例如,煤的氧化)的复杂性,制定具有或什至没有瞬态方法的问题的分析解决方案将是一项艰巨的任务,因此,该问题更常见数字解决。到目前为止,已经开发了许多煤自热的数值模型,并总结了这些不稳定的发现,这项工作从过去的40年开始对这些数值解进行了严格的审查。首先研究了煤粉自热和低温煤氧化的机理,特别是煤氧化的动力学模型,以阐明所涉及的物理和化学过程。在对机械原理的理解的基础上,对诸如能量,质量和动量守恒等控制方程的理论推导和进步进行了回顾和详细汇编。通过参数研究或敏感性检查,这些模型产生了卓有成效的发现,但结果略有不一致。因此,为了给业界提供更公正,更全面的指导,本工作研究了各种因素(包括风量,堆尺寸,煤粒度,水分含量和填充孔隙率)对堆煤自热性能的影响。最后,同样简短地讨论了该主题可能面临的主要挑战和观点。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Fuel》 |2016年第15期|80-109|共30页
  • 作者单位

    Univ Wollongong, Sch Civil Min & Environm Engn, Wollongong, NSW 2522, Australia;

    Univ Wollongong, Sch Civil Min & Environm Engn, Wollongong, NSW 2522, Australia;

    China Coal Res Inst, Shenyang Branch, Shenyang 110016, Peoples R China;

    Univ Wollongong, Sch Civil Min & Environm Engn, Wollongong, NSW 2522, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Self-heating; Coal stockpile; Numerical solution; Low-temperature oxidation;

    机译:自热;煤堆;数控溶液;低温氧化;

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