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Applying robust design to study the effects of stratigraphic characteristics on brittle failure and bump potential in a coal mine

机译:应用稳健设计研究地层特征对煤矿脆性破坏和碰撞势的影响

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摘要

Bumps and other types of dynamic failure have been a persistent,worldwide problem in the underground coal mining industry,spanning decades.For example,in just five states in the U.S.from 1983 to 2014,there were 388 reportable bumps.Despite significant advances in mine design tools and mining practices,these events continue to occur.Many conditions have been associated with bump potential,such as the presence of stiff units in the local geology.The effect of a stiff sandstone unit on the potential for coal bumps depends on the location of the stiff unit in the stratigraphic column,the relative stiffness and strength of other structural members,and stress concentrations caused by mining.This study describes the results of a robust design to consider the impact of different lithologic risk factors impacting dynamic failure risk.Because the inherent variability of stratigraphic characteristics in sedimentary formations,such as thickness,engineering material properties,and location,is significant and the number of influential parameters in determining a parametric study is large,it is impractical to consider every simulation case by varying each parameter individually.Therefore,to save time and honor the statistical distributions of the parameters,it is necessary to develop a robust design to collect sufficient sample data and develop a statistical analysis method to draw accurate conclusions from the collected data.In this study,orthogonal arrays,which were developed using the robust design,are used to define the combination of the(a)thickness of a stiff sandstone inserted on the top and bottom of a coal seam in a massive shale mine roof and floor,(b)location of the stiff sandstone inserted on the top and bottom of the coal seam,and(c)material properties of the stiff sandstone and contacts as interfaces using the 3-dimensional numerical model,FLAC3D.After completion of the numerical experiments,statistical and multivariate analysis are performed using the calculated results from the orthogonal arrays to analyze the effect of these variables.As a consequence,the impact of each of the parameters on the potential for bumps is quantitatively classified in terms of a normalized intensity of plastic dissipated energy.By multiple regression,the intensity of plastic dissipated energy and migration of the risk from the roof to the floor via the pillars is predicted based on the value of the variables.The results demonstrate and suggest a possible capability to predict the bump potential in a given rock mass adjacent to the underground excavations and pillars.Assessing the risk of bumps is important to preventing fatalities and injuries resulting from bumps.
机译:颠簸和其他类型的动态失效一直是地下煤矿行业一个持续存在的全球性问题,例如几十年。例如,从1983年到2014年,在美国只有五个州,有388个可报告的颠簸。设计工具和采矿实践,这些事件仍在继续发生。许多条件都与隆起潜力有关,例如,当地地质中存在坚硬单元。坚硬砂岩单元对煤隆起潜力的影响取决于位置地层中刚性单元的强度,其他结构构件的相对刚度和强度以及采矿引起的应力集中。本研究描述了一种健壮的设计结果,其中考虑了不同岩性危险因素对动态破坏风险的影响。沉积岩层中地层特征的内在变异性,例如厚度,工程材料特性和位置,是重要的确定参数研究的影响因素多且影响因素多,因此无法通过单独更改每个参数来考虑每种模拟情况。因此,为了节省时间并尊重参数的统计分布,有必要开发鲁棒的算法设计以收集足够的样本数据并开发一种统计分析方法以从收集到的数据中得出准确的结论。在这项研究中,使用稳健设计开发的正交阵列用于定义(a)厚度的组合在块状页岩矿顶和底板中的煤层顶部和底部插入硬质砂岩,(b)在煤层的顶部和底部插入硬质砂岩的位置,以及(c)刚性砂岩的材料特性并使用3维数值模型FLAC3D作为界面。在完成数值实验后,使用计算出的res进行统计和多元分析因此,根据塑性耗散能量的归一化强度,对每个参数对颠簸势的影响进行了定量分类。根据变量的值预测塑料耗散的能量和通过顶杆从屋顶到地板的风险迁移,结果表明并暗示了预测与地下挖掘相邻的给定岩体中颠簸潜力的能力。评估颠簸的风险对于防止颠簸造成的死亡和伤害非常重要。

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