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Determination of the Strength of Powered Roof Supports According for Fatigue Life

机译:根据疲劳寿命确定动力屋顶支架的强度

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This paper presents an approach for estimating the fatigue life for the base of powered roof supports (shield) manufactured by the FAZOS roof support company. FAZOS's powered roof supports are designed to operate on an inclined coal seam in full caving with a medium, strong roof strength. This shield support is utilized in conjunction with a shearer and face conveyor for a complete longwall mining system. To design shield support, it is essential for contractor to know the physical (hardness, toughness, etc.) and mechanical properties of material (tensile strength, Young's modulus, etc.) used for the shield support as well as the geotechnical properties of the mine site. The fatigue strength of the shield support material depends on the mean stress, alternating stress, cycle frequency, transport dimensions, mine environment and other factors. In order to estimate the fatigue life for a powered roof support system, it is assumed in this paper that the support must keep the roof stable in the mine under variable load cycles. The approach selected in this study contains Goodman's model (Goodman, 1899) for all blocks in the design housing which is subjected to sinusoidal load. On this basis, the degree of fatigue damage was calculated and compared to the results of experimental tests. It will be shown that there is a significant detrimental effect on the fatigue life of the base of the powered roof supports due to geometrical notches. The Ramberg-Osgood model and damage accumulation rule (Palmgren-Miner) (Miner M., 1945) were used and numerical analyses were conducted, utilizing ANSYS finite element software. These analyses play a very important role in longwall casing design. The proposed method allows assessment of the yield state and forecast of the structure cracking, taking plastic strains occurrence into account. The presented method is universal and can be applied for fatigue life estimation of other subassemblies of powered roof supports. The final portion of the paper presents results of variable amplitude loading simulations on the S355N and S690Q steel used to make powered roof supports. The results of the physical tests were compared with the results from finite element methods. The proposed approach to calculate fatigue life gives the best correlation between the experimental results and calculated values of fatigue life for the powered roof support base. Finally, the design process uses a simple approach to predict fatigue life in a short time, reducing design costs and providing longer service life for roof supports.
机译:本文提出了一种估算FAZOS屋顶支撑公司制造的动力屋顶支撑(护罩)底座疲劳寿命的方法。 FAZOS的动力顶棚支架设计用于在倾斜煤层上进行全面开采,并具有中等强度的顶棚强度。该防护罩支架与采煤机和工作面输送机配合使用,构成了完整的长壁开采系统。为了设计盾构支架,承包商必须了解用于盾构支架的材料的物理(硬度,韧性等)和机械性能(拉伸强度,杨氏模量等)以及建筑的岩土性能。矿场。屏蔽支撑材料的疲劳强度取决于平均应力,交变应力,循环频率,运输尺寸,矿山环境和其他因素。为了估算动力顶板支护系统的疲劳寿命,本文假设支护必须在可变负载循环下保持矿井顶板在矿井中的稳定。在本研究中选择的方法包含设计壳体中承受正弦载荷的所有块的Goodman模型(Goodman,1899)。在此基础上,计算出疲劳损伤的程度,并将其与实验测试的结果进行比较。将会显示,由于几何凹口,对动力顶棚支撑的基座的疲劳寿命具有明显的不利影响。使用Ramberg-Osgood模型和损伤​​累积规则(Palmgren-Miner)(Miner M.,1945),并使用ANSYS有限元软件进行了数值分析。这些分析在长壁套管设计中起着非常重要的作用。考虑到塑性应变的出现,该方法可以评估屈服状态并预测结构开裂。所提出的方法是通用的,并且可以用于动力屋顶支架的其他子组件的疲劳寿命估计。本文的最后一部分介绍了用于制造动力屋顶支架的S355N和S690Q钢的可变振幅载荷模拟结果。将物理测试的结果与有限元方法的结果进行了比较。所提出的疲劳寿命计算方法为电动车顶支撑基座的疲劳寿命与实验结果和计算值之间提供了最佳的相关性。最后,设计过程使用一种简单的方法来预测短时间内的疲劳寿命,从而降低了设计成本,并为车顶支架提供了更长的使用寿命。

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