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A study on measuring rail/wheel contact points of running railway vehicles (improvement of the measuring method for wheel load and lateral force by strain gauges on disk surface)

机译:行驶中的铁路车辆的轨/轮接触点的测量研究(通过圆盘表面的应变仪对车轮载荷和侧向力的测量方法的改进)

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It is interesting and worth while to study on method of measuring rail/wheel contact point and contact force of running railway vehicles, since many things in real rail/wheel contact phenomenon are still unknown, In this paper, the Japanese conventional method of measuring vertical load and lateral force is introduced. The strain of the disk surface is used for measuring forces. A new method, which detects the contact point as well as vertical load and lateral force, is proposed also in this paper. Firstly, the surface strain on disk type wheel is analyzed by an FEM program, NASTRAN, under the condition that vertical, lateral or longitudinal force separately acts on various points along the wheel profile. By the calculated result, it shows the possibility of detecting the rail/wheel contact point by means of measuring lateral distribution of compress strain which changes according to the load position, i.e. rail/wheel contact point. Secondly, the idea above is verified by static load experiments using an actual disk type wheelset. The location of an area where lateral force affects little on surface strain is investigated, since the lateral distribution of strain should be measured in such an area to avoid the interference of bending by lateral force. And finally, theory for the measurement is modified for on-track testing and the best position and direction for strain gauges is proposed in accordance with the calculated and experimental results.
机译:由于实际轨道/车轮接触现象中的许多事情仍然未知,因此研究轨道/车轮接触点的测量方法和正在运行的铁路车辆的接触力的方法是有趣且有价值的。在本文中,日本传统的垂直方向测量方法引入了载荷和侧向力。盘表面的应变用于测量力。本文还提出了一种检测接触点以及垂直载荷和横向力的新方法。首先,在垂直,横向或纵向力分别作用于沿车轮轮廓的各个点的条件下,通过FEM程序NASTRAN分析圆盘式车轮上的表面应变。通过计算结果,它显示了通过测量压缩应变的横向分布来检测轨道/车轮接触点的可能性,该压缩应变根据载荷位置即轨道/车轮接触点而变化。其次,上述想法通过使用实际的盘式轮对的静载荷实验得到了验证。研究了横向力对表面应变影响很小的区域的位置,因为应在这样的区域中测量应变的横向分布,以避免横向力对弯曲的干扰。最后,修改了测量理论以进行现场测试,并根据计算结果和实验结果提出了应变计的最佳位置和方向。

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