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RAIL CLEANING PROCESS AND ITS INFLUENCE ON LOCOMOTIVE PERFORMANCE

机译:铁路清洗过程及其对机车性能的影响

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The traction performance of a locomotive under real operational conditions is strongly dependent on friction conditions present at the wheel-rail interface. The tribology of the contact process changes during the locomotive running process and the conditions are not ideal due to the presence of a third body layer between wheels and rails. This leads to the complexities of the non-linear wheel-rail contact. To describe this system correctly, the real working conditions need to be known. The exact conditions are both complex and vary with location because of the potential presence of additional contamination material. The realization of high adhesion under traction or braking assumes that a locomotive produces a high slip that removes some of the third body material in the contact and this effect leads to an increase in values of friction coefficient from the leading to each subsequent following wheel on each side of the bogie. The resulting friction change can improve the tractive effort of a locomotive that is a key issue for railway operations. In this paper, the change of friction coefficients under traction are investigated by means of engineering analysis and some assumptions have been stated to generate input parameters for wheel-rail contact modelling in order to understand the influence of this rail cleaning process on locomotive dynamics. The assumptions made allow adopting a progressive increase of friction coefficient under an analytical assumption for each wheel. The multibody model of a high adhesion locomotive that includes a traction system has been developed in a specialized multibody software. The results obtained show the changes in dynamic behavior of a locomotive and indicate the influence on traction performance.
机译:机车在实际运行条件下的牵引性能在很大程度上取决于轮轨界面处的摩擦条件。接触过程的摩擦学在机车运行过程中发生变化,并且由于在车轮和轨道之间存在第三车身层,因此条件并不理想。这导致非线性的轮轨接触的复杂性。为了正确描述该系统,需要知道实际的工作条件。确切的条件既复杂又因位置而异,因为可能会存在其他污染物质。在牵引或制动下实现高附着力的假设是,机车产生了高打滑度,从而消除了接触中的某些第三车身材料,并且这种作用导致从前轮到每个后继轮的摩擦系数值增加。转向架的一侧。由此产生的摩擦变化可以改善机车的牵引力,这是铁路运营的关键问题。在本文中,通过工程分析方法研究了牵引力下摩擦系数的变化,并提出了一些假设来生成轮轨接触模型的输入参数,以了解该清洗过程对机车动力学的影响。做出的假设允许在每个车轮的分析假设下逐渐增加摩擦系数。在专用的多体软件中已经开发了包括牵引系统的高附着力机车的多体模型。获得的结果表明了机车动态行为的变化,并表明了对牵引性能的影响。

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