Wheel/rail adhesion wear investigation using a quarter scale laboratory testing facility

S. Kumar, M. F. Alzoubi, N.A. Allsayyed
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引用次数: 15

Abstract

A systematic large experimental test program of wheel/rail adhesion and wear was undertaken using the IIT wheel rail simulation facility of approximately 1/4 scale. This study was inspired due to the need of higher adhesion locomotives which are being designed and built at present. It was resolved, therefore, to determine the effects of axle load, adhesion coefficient, angle of attack (degree of curve), class of wheels (B and C), and mode of operation (braking and traction). All experiments were conducted using Hertzian simulation and DC traction. The experiments were conducted for clean/dry wheel and rail condition, ideal stiff track, constant rail speed, simulation of new 132 RE rail, and wheel creep corresponding to stable adhesion values. A total of twenty six tests were conducted. The range of loads corresponded from empty car to a locomotive. Adhesion coefficients from 0% to 50% were tested and angles of attack corresponding from tangent track to a 10 degree curve were used. Wear was measured by overlaying profiles of the wheel/rail surface at different stages of wear and measuring the change in the area of cross section. It was found that the hierarchy of influencing parameters for wheel/rail wear in order of priority are: (1) rail curves or angle of attack; (2) adhesion coefficient; and (3) axle loads. The curves increase the wear dramatically. The wear under traction and braking modes were comparable to each other. The wear of class B and class C wheels is also reasonably comparable, however, the rail wear produced by class C wheel was higher than that produced by class B wheels.
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使用四分之一的实验室测试设备进行轮轨黏附磨损调查
利用IIT轮轨模拟设备进行了轮轨黏附磨损的系统大型实验测试程序。本研究的灵感来自于目前正在设计和制造的高附着力机车的需要。因此,解决方案是确定轴载荷、附着系数、迎角(曲线度)、车轮类别(B和C)以及操作模式(制动和牵引)的影响。所有实验均采用赫兹模拟和直流牵引。在清洁/干轮轨条件下、理想刚性轨道条件下、恒轨速条件下、新型132 RE轨的仿真条件下、稳定附着值对应的车轮蠕变条件下进行了试验。总共进行了26次试验。负载的范围从空车到火车头。测试了0% ~ 50%的粘附系数,采用了从切线轨迹到10度曲线对应的攻角。通过叠加轮轨表面在不同磨损阶段的轮廓,测量横截面面积的变化来测量磨损。研究发现,影响轮轨磨损的参数按优先顺序依次为:(1)钢轨曲线或攻角;(2)附着系数;(3)轴重。这些曲线极大地增加了磨损。牵引和制动模式下的磨损具有可比性。B类车轮和C类车轮的磨损也具有一定的可比性,但C类车轮产生的钢轨磨损高于B类车轮。
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