Determining the influence of sandwich-type components on the load of a hatch cover in a universal open wagon

A. Lovska, V. Nerubatskyi, O. Plakhtii, S. Myamlin
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Abstract

The object of the study reported here is the processes of occurrence, perception, and redistribution of loads in the improved structure of the hatch cover in a universal open wagon. In order to reduce the load on the cover of an open wagon hatch, and, accordingly, to improve its strength, it is proposed to improve its design by introducing sandwich components. The thickness of the sheets that form the hatch cover has been determined. The dynamic loading of the hatch cover in the vertical plane was studied. It was found that the accelerations acting on the hatch cover with the proposed improvement are almost 20 % lower than those acting on the typical structure. The basic strength indicators of the hatch cover under the operational modes of its load have been determined. The results of the calculation showed that the maximum stresses in the hatch cover are 22 % lower than permissible ones. In addition, within the framework of the study, the main indicators of the dynamics of the open wagon equipped with the proposed structure of hatch covers were determined. The movement of the open wagon under the condition of movement in an empty state is rated as "good". At the same time, the maximum accelerations in the center of mass of the supporting structure of an open wagon were 4.6 m/s2, and the coefficient of vertical dynamics was about 0.6. Special features of the results within the framework of this study are that the proposed improvement of the hatch cover helps improve its strength by reducing the dynamic load, and not by strengthening the structure. The scope of practical application of the results is the engineering industry, in particular, railroad transport. The conditions for the practical use of the research results are the use of energy-absorbing material in the sandwich-type components that form the hatch cover. The study reported here could contribute to devising recommendations for the construction of components in the structures of modern freight cars, thereby reducing the costs of maintaining them in operation, as well as increasing the profitability of railroad transportation
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确定夹层式部件对通用敞篷车舱口盖载荷的影响
本报告的研究对象是通用敞篷货车舱口盖改进结构中载荷的发生、感知和再分配过程。为了减少敞篷货车舱口盖的载荷,并相应地提高其强度,建议通过引入夹层部件来改进其设计。构成舱口盖的板材厚度已经确定。研究了舱口盖在垂直面上的动态载荷。研究发现,经过改进的舱口盖所受到的加速度比典型结构所受到的加速度低近 20%。研究还确定了舱口盖在负载运行模式下的基本强度指标。计算结果表明,舱口盖的最大应力比允许应力低 22%。此外,在研究框架内,还确定了配备拟议舱口盖结构的敞篷货车的主要动态指标。在空车状态下,敞篷货车的运动被评为 "良好"。同时,敞车支撑结构质心的最大加速度为 4.6 m/s2,垂直动力学系数约为 0.6。本研究框架内结果的特点是,舱口盖的改进建议有助于通过减少动载荷来提高其强度,而不是通过加强结构来提高强度。研究成果的实际应用条件是在构成舱口盖的夹层式部件中使用吸能材料。本文所报告的研究有助于为现代货运车辆结构中的部件构造提出建议,从而降低运行中的维护成本,并提高铁路运输的盈利能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Eastern-European Journal of Enterprise Technologies
Eastern-European Journal of Enterprise Technologies Mathematics-Applied Mathematics
CiteScore
2.00
自引率
0.00%
发文量
369
审稿时长
6 weeks
期刊介绍: Terminology used in the title of the "East European Journal of Enterprise Technologies" - "enterprise technologies" should be read as "industrial technologies". "Eastern-European Journal of Enterprise Technologies" publishes all those best ideas from the science, which can be introduced in the industry. Since, obtaining the high-quality, competitive industrial products is based on introducing high technologies from various independent spheres of scientific researches, but united by a common end result - a finished high-technology product. Among these scientific spheres, there are engineering, power engineering and energy saving, technologies of inorganic and organic substances and materials science, information technologies and control systems. Publishing scientific papers in these directions are the main development "vectors" of the "Eastern-European Journal of Enterprise Technologies". Since, these are those directions of scientific researches, the results of which can be directly used in modern industrial production: space and aircraft industry, instrument-making industry, mechanical engineering, power engineering, chemical industry and metallurgy.
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