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Ratchetting of railhead in the vicinity of the gap of the insulated rail joints

机译:绝缘轨缝间隙附近的轨枕脱落

摘要

Insulated Rail Joints (IRJs) are designed to electrically isolate two rails in rail tracks to control the signalling system for safer train operations. Unfortunately the gapped section of the IRJs is structurally weak and often fails prematurely especially in heavy haul tracks, which adversely affects service reliability and efficiency. The IRJs suffer from a number of failure modes; the railhead ratchetting at the gap is, however, regarded as the root cause and attended to in this thesis. Ratchetting increases with the increase in wheel loads; in the absence of a life prediction model, effective management of the IRJs for increased wagon wheel loads has become very challenging. Therefore, the main aim of this thesis is to determine method to predict IRJs' service life.ududThe distinct discontinuity of the railhead at the gap makes the Hertzian theory and the rolling contact shakedown map, commonly used in the continuously welded rails, not applicable to examine the metal ratchetting of the IRJs. Finite Element (FE) technique is, therefore, used to explore the railhead metal ratchetting characteristics in this thesis, the boundary conditions of which has been determined from a full scale study of the IRJ specimens under rolling contact of the loaded wheels.ududA special purpose test set up containing full-scale wagon wheel was used to apply rolling wheel loads on the railhead edges of the test specimens. The state of the rail end face strains was determined using a non-contact digital imaging technique and used for calibrating the FE model. The basic material parameters for this FE model were obtained through independent uniaxial, monotonic tensile tests on specimens cut from the head hardened virgin rails. The monotonic tensile test data have been used to establish a cyclic load simulation model of the railhead steel specimen; the simulated cyclic load test has provided the necessary data for the three decomposed kinematic hardening plastic strain accumulation model of Chaboche.ududA performance based service life prediction algorithm for the IRJs was established using the plastic strain accumulation obtained from the Chaboche model. The predicted service lives of IRJs using this algorithm have agreed well with the published data.ududThe finite element model has been used to carry out a sensitivity study on the effects of wheel diameter to the railhead metal plasticity. This study revealed that the depth of the plastic zone at the railhead edges is independent of the wheel diameter; however, large wheel diameter is shown to increase the IRJs' service life.
机译:绝缘轨道接头(IRJ)旨在将轨道中的两个轨道电气隔离,以控制信号系统,以确保列车安全运行。不幸的是,IRJ的缺口部分在结构上较弱,经常过早失效,特别是在重载航迹中,这会对服务的可靠性和效率产生不利影响。 IRJ遭受许多故障模式的困扰。然而,在间隙中铁轨头的跳动被认为是根本原因并受到关注。随着车轮载荷的增加,棘轮运动增加;在没有寿命预测模型的情况下,如何有效地管理IRJ以增加货车车轮的负荷就变得非常困难。因此,本论文的主要目的是确定预测IRJs使用寿命的方法。 ud ud在间隙处,轨头的明显不连续性使Hertzian理论和滚动接触击落图通常用于连续焊接的轨道中,不适用于检查IRJ的金属咬合。因此,本文采用有限元(FE)技术来探索轨头金属的咬合特性,其边界条件是通过在加载车轮的滚动接触下对IRJ标本进行的全面研究确定的。 ud装有全尺寸货车车轮的专用测试装置用于在测试样品的轨头边缘施加滚轮载荷。使用非接触式数字成像技术确定轨道端面应变的状态,并将其用于校准FE模型。该有限元模型的基本材料参数是通过对从头部淬硬的原始轨道上切割的试样进行独立的单轴单调拉伸试验获得的。单调拉伸试验数据已被用来建立轨道头钢试样的循环载荷模拟模型。模拟循环载荷试验为Chaboche的三个分解的运动硬化塑性应变累积模型提供了必要的数据。使用从Chaboche模型获得的塑性应变累积,建立了基于性能的IRJ使用寿命预测算法。使用此算法对IRJ的预测使用寿命与已发表的数据非常吻合。 ud ud使用有限元模型对轮径对轨头金属塑性的影响进行敏感性研究。这项研究表明,在轨头边缘的塑料区的深度与车轮直径无关。但是,较大的车轮直径可延长IRJ的使用寿命。

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