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Modeling of Energy Processes in Wheel-Rail Contacts Operating under Influence of Periodic Discontinuous Forces

机译:周期性不连续力影响下的轮轨接触器能量过程建模

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In this paper we present new numerical simulation approaches for determining the energy processes under periodic conditions caused by time-discontinuous forces in the wheel-rail contacts. The main advantage of the presented method is the total elimination of frequency analysis, which in effect introduces important simplifications in the identification of the effects in the contact. The second important feature is the fact that the method is based on the analysis of appropriate loops on the energy phase plane leading to an easy estimation of the rail strength through the evaluation of the loop’s area. That model based simulation in the applied dynamics relies on advanced methods for model setup, robust and efficient numerical solution techniques and powerful simulation tools for practical applications. Fundamental properties of contact displacements of the rail surface have been considered on the basis of the newly established method. The contact zone between railway wheels and the rail surfaces made of bulk materials is perceived as strong enough to resist the normal (vertical) forces introduced by heavy loads and the dynamic response induced by track and wheel irregularities. The analysis is carried out for a wheel running on an elastic rail rested on sleepers arranged on completely rigid foundation. The equations of displacement motion are established through the application of the Lagrange equations approach. The established model of the wheel-rail contact dynamics has been applied to that same roll plane but with taking into account a nonlinear characteristic of the sleeper with respect to the ground. Attention then is focused completely on the modeling of the energy absorbed by the rail. The applied method employs the energy state variables as time functions leading to determine the susceptibility of a given contact on the strength induced by the rail roll.
机译:在本文中,我们提出了一种新的数值模拟方法,用于确定由轮轨接触件中的时间不连续力引起的周期性条件下的能量过程。所提出的方法的主要优点是完全消除了频率分析,这实际上在识别接触效应中引入了重要的简化方法。第二个重要特征是,该方法基于对能量相平面上适当环路的分析,从而可以通过评估环路的面积来轻松估算钢轨强度。应用动力学中基于模型的仿真依赖于模型设置的先进方法,强大而有效的数值求解技术以及针对实际应用的强大仿真工具。在新建立的方法的基础上,已经考虑了轨道表面接触位移的基本特性。铁路车轮与散装材料制成的铁路表面之间的接触区被认为足够坚固,可以抵抗重负载所引起的法向(垂直)力以及履带和车轮不规则性引起的动态响应。对在弹性轨道上运行的车轮进行了分析,该弹性轨道搁置在完全刚性基础上的轨枕上。位移运动方程是通过应用拉格朗日方程法建立的。已建立的轮轨接触动力学模型已应用于相同的侧倾平面,但考虑到轨枕相对于地面的非线性特性。然后将注意力完全集中在轨道吸收的能量的建模上。所应用的方法将能量状态变量用作时间函数,从而确定给定接触对钢轨轧制强度的敏感性。

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