旋转翻车机卸车时作用在吊篮上的动力的意义

Ruslan Viznyak
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引用次数: 0

摘要

本文考虑了旋转翻车机卸料过程中影响吊篮强度的因素,并对吊篮卸料时的特征损伤和故障进行了初步分析。构造了系统设计的计算方案,并对动态倾覆过程的惯性分量进行了解析确定。车身结构设计的初步建议,在货车强制卸载期间暴露在高动态载荷下。基于工作和非工作车队的平衡,车队保护问题对铁路车辆所有者和经营者来说是重要的。造成吊篮承重结构损坏的主要原因是在进行装卸作业时不符合规范性文件的内容。上个世纪工业企业在吸取德国的经验和设备供应的集约化工业化过程中引入了翻车卸贡多拉车的方法,目前已成功地采用了特殊的技术装置——固定式旋翼自卸机。结果表明:PV体在旋转约60°角处发生加速度;在125°的旋转角度处观察到加速度的最大值。这是在负载流动的最后阶段完成的,因为最终组件的全转角旋转不再影响动力学,因为负载在机体中不是很大的一部分。在PV设计阶段的理论研究结果允许考虑由于PV车身倾覆可能引起的动力因素,防止可能的损坏,评估车身结构的安全可靠性裕度,从而最终降低维护成本,增加生命周期载荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
THE SIGNIFICANCE OF DYNAMIC FORCES ACTING ON A GONDOLA CAR WHEN UNLOADING BY A ROTARY CAR DUMPER
The article considers the factors influencing the strength of gondola cars during unloading on rotary car dumpers, before which a preliminary careful analysis of their characteristic damage and malfunctions was carried out. The calculated schemes of the system design are constructed and the analytical determination of the inertial components of the dynamic overturning process is performed. Initial recommendations for the design of the body structure, which is exposed to high dynamic loads during the mandatory unloading of the freight vehicle. The issue of fleet conservation is important for owners and operators of rolling stock, based on the balance of working and non-working fleet. The main cause of damage to the load-bearing structure of the gondola is non-compliance with the content of regulatory documents when performing loading and unloading operations. Unloading of gondola cars in the method of overturning was introduced at industrial enterprises in the last century during the intensive industrialization of the German experience and supply of equipment and is now successfully carried out using special technical devices - stationary rotor tippers. According to the results: acceleration of the PV body occurs at an angle of rotation of about 60°; the maximum values of accelerations are observed at an angle of rotation of 125°. This is done at the final stage of the flow of the load, because the final component of the full angle of rotation no longer affects the dynamics, because the load in the body is not a large part. The results of theoretical research at the design stage of the PV allow to take into account possible dynamic factors due to the overturning of the PV body, and prevent probable damage, assess the margin of safety and reliability of the body structure, which will ultimately reduce maintenance costs and increase life cycle load.
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