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Dynamic analysis using finite elements to calculate the critical wear section of the contact wire in suburban railway overhead conductor rails

机译:使用有限元进行动力分析以计算郊区铁路架空导线中接触线的临界磨损截面

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摘要

The purpose of this study is to determine the critical wear levels of the contact wire of the catenary on metropolitan lines. The study has focussed on the zones of contact wire where localised wear is produced, normally associated with the appearance of electric arcs. To this end, a finite element model has been developed to study the dynamics of pantograph-catenary interaction. The model includes a zone of localised wear and a singularity in the contact wire in order to simulate the worst case scenario from the point of view of stresses.In order to consider the different stages in the wire wear process, different depths and widths of the localised wear zone were defined. The results of the dynamic simulations performed for each stage of wear let the area of the minimum resistant section of the contact wire be determined for which stresses are greater than the allowable stress.The maximum tensile stress reached in the contact wire shows a clear sensitivity to the size of the local wear zone, defined by its width and depth. In this way, if the wear measurements taken with an overhead line recording vehicle are analysed, it will be possible to calculate the potential breakage risk of the wire. A strong dependence of the tensile forces of the contact wire has also been observed. These results will allow priorities to be set for replacing the most critical sections of wire, thereby making maintenance much more efficient. The results obtained show that the wire replacement criteria currently borne in mind have turned out to be appropriate, although in some wear scenarios these criteria could be adjusted even more, and so prolong the life cycle of the contact wire.
机译:这项研究的目的是确定大城市线路接触网接触线的临界磨损水平。该研究集中在接触线区域,在这些区域会产生局部磨损,通常与电弧的出现有关。为此,已经开发了一个有限元模型来研究受电弓-类别间相互作用的动力学。该模型在接触线中包括一个局部磨损区域和一个奇异点,以便从应力的角度模拟最坏的情况。为了考虑导线磨损过程中的不同阶段,定义了局部磨损区的不同深度和宽度。对磨损的每个阶段执行的动态仿真结果可以确定接触线的最小电阻部分的面积,其应力大于允许的应力。接触线中达到的最大拉应力显示出对局部磨损区大小的明显敏感性,该局部磨损区的宽度和深度决定了它的大小。以此方式,如果分析了用架空线记录车辆进行的磨损测量,则可以计算导线的潜在断裂风险。还已经观察到接触线的张力的强烈依赖性。这些结果将为更换电线的最关键部分设定优先级,从而使维护效率更高。获得的结果表明,目前考虑的电线更换标准已被证明是适当的,尽管在某些磨损情况下,甚至可以对这些标准进行更多调整,从而延长了接触线的使用寿命。

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