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COMPUTER SIMULATION OF EXPLOSION RATED VENTILATION SEALS FOR COAL MINES

机译:煤矿爆炸额定通风密封件的计算机仿真

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Questions have been raised about the effectiveness of ventilation control devices (VCDs) to safely resist explosions during their intended life.This functionality depends on the ability of the VCDs and in particular seals to withstand changes in the behaviour of the strata, particularly where longwall abutments influence the stress regime in and around the chain pillars.As a consequence of an explosion impact on a seal, the surrounding strata could experience increased loads possibly resulting in permanent deformation and requiring grout consolidation.These aspects of seal design have been investigated using advanced numerical analysis.Globally since the early 20th century, to protect underground personnel, ventilation seal designs have been required to be tested at an internationally recognized explosion test gallery to achieve pressure ratings required by legislation.The last two decades has seen advances in materials technology and engineering of structures.It has become accepted practice to use numerical methods to provide engineering ratings for mine seals in line with other industries where the elimination of prototype testing provides more rapid product introduction to the market.Before presenting the results of numerical analysis,structural aspects of seal design are simply explained including arching behaviour and the contribution of dynamic magnification due to impact loads.High-fidelity physics-based computer simulations using software LS-DYNA were able to predict the results from physical testing of mine based seals in a most realistic way.Test data from live gas/coal dust deflagration explosions at Lake Lynn, PA, USDA along with pressure-time curves recently developed by the U.S.National Institute of Occupational Safety and Health as a result of the study of explosive atmospheres, were used to simulate a realistic loading environment caused by 138 kPa (20-psi) and345 kPa (50-psi) explosions in physics-based models of seals.
机译:关于通风控制装置(VCD)在预期寿命期间安全地抵抗爆炸的有效性提出了问题。该功能取决于VCD和特别是密封件能够承受地层行为的变化,特别是在长壁基台的情况下影响链柱的压力制度。在密封件的爆炸撞击后,周围地层可能会经历增加的负荷,可能导致永久性变形并需要灌浆整合。已经使用先进的数值研究了密封设计的方面自20世纪初以自20世纪初,保护地下人员以来,在国际公认的爆炸测试画廊中需要进行通风密封设计,以实现立法所需的压力评级。过去二十年来看待材料技术和工程的进步结构。它已被接受公关使用数值方法提供数控密封的工程额定值与其他行业提供更多的行业,其中消除原型测试提供了更多的快速产品介绍了市场。在呈现数值分析的结果,密封设计的结构方面简单地解释包括拱形由于冲击载荷引起的动态放大率的行为和动态放大的贡献。使用软件LS-DYNA的基于物理的计算机模拟能够以最逼真的方式预测矿山基于密封的物理测试的结果。来自实时气体的数据/林恩湖,帕尔湖,美国农业部的煤炭粉尘爆炸爆炸以及最近由美国职业安全和健康研究所最近开发的压力时间曲线作为爆炸性环境的研究,用于模拟138引起的逼真的装载环境KPA(20-PSI)和345 KPA(50-PSI)密封型型号的爆炸。

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