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A discrete particle swarm optimization approach for classification of Indian coal seams with respect to their spontaneous combustion susceptibility

机译:关于印度煤层自发燃烧敏感性的离散粒子群优化方法

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Mine fires due to spontaneous combustion in coal mines is a global concern. This leads to serious environmental and safety hazards and considerable economic losses. Therefore it is essential to assess and classify the coal seams with respect to their proneness to spontaneous combustion to plan the production, storage and transportation capabilities in mines. This paper presents the formulation of clustering problem into a linear assignment model and the application of a discrete particle swarm optimization approach for the classification of coal seams based on their proneness to spontaneous combustion. In this research work, twenty nine coal samples of varying ranks belonging to both high and low susceptibilities to spontaneous combustion have been collected from all the major coalfields of India. Using moisture, volatile matter, and ash content and crossing point temperature of the coal samples as the parameters, the proposed algorithm has been applied to classify the coal seams into three different categories. This classification will be useful for the planners and field engineers for taking ameliorative measures in advance for preventing the occurrence of mine fires.
机译:煤矿自燃引起的矿井火灾是全球关注的问题。这导致严重的环境和安全隐患以及可观的经济损失。因此,有必要就煤层自燃的倾向性进行评估和分类,以规划煤矿的生产,储存和运输能力。本文提出了将聚类问题表达为线性分配模型的方法,并基于离散煤群的自燃倾向,将其应用于煤层的分类。在这项研究工作中,从印度所有主要煤田收集了29种不同等级的煤,这些煤属于自燃的高敏感性和低敏感性。以煤样的水分,挥发物,灰分和交点温度为参数,将所提出的算法应用于煤层的三大类。这种分类对于计划者和现场工程师提前采取改善措施以防止地雷的发生将是有用的。

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