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On the shift of cargo on a railway platform under the influence of transverse forces

机译:横向力作用下铁路平台上的货物移动

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摘要

This paper dwells upon securing solid cargo on a railcar. Transverse cargo shift and forces of elastic securing devices. The authors sought to calculate the shearing force acting on the elastic securing elements and retention bars; the retentive forces that prevent cargo from shifting across the car (the transverse shift); the transverse cargo shift; the force of elastic securing elements as exposed to transverse forces. This study relies on the second law as applicable to relative motion for a frictional constraint, as known in theoretical mechanics. The paper presents the calculated shearing and retentive forces. The authors calculated the equivalent stiffness of elastic securing elements. They thus computed the transverse shift (displacement) of cargo and the elongation of each elastic element that secures the cargo. They also found the forces of elastic securing elements as exposed to transverse forces. It was thus discovered that the forces of the second securing pair were more than double the acceptable limit, which would cause that pair to break during transport. To make the second elastic pair stronger, one might double the number of retention-bar fasteners so that the forces of the second fastening pair wouldn’t exceed the limits. An example of calculation is useful in developing a new methodology for calculating the elements of cargo securing on a car. The calculation results proved that to ensure guaranteed safety and reliability of the transportation process, it is necessary to either increase the number of securing elements of the retention bar, or increase the number of elastic securing elements with subsequent recalculation of forces in all elastic securing elements.
机译:本文将固体货物固定在轨道车上。横向货物移动和弹性固定装置的力。作者试图计算作用在弹性固定元件和固定杆上的剪切力。阻止货物在轿厢之间移动的保持力(横向移动);横向货物转移;承受横向力的弹性固定元件的力。这项研究依赖于适用于摩擦约束的相对运动的第二定律,这在理论力学中是众所周知的。本文介绍了计算的剪切力和保持力。作者计算了弹性固定元件的等效刚度。因此,他们计算了货物的横向位移(位移)和固定货物的每个弹性元件的伸长率。他们还发现了弹性固定元件承受的横向力。因此发现,第二固定对的力大于可接受极限的两倍,这将导致该对在运输过程中断裂。为了使第二根弹性对更牢固,可以将固定杆紧固件的数量增加一倍,以使第二根弹性对的力不会超过限制。计算示例有助于开发一种新的方法来计算汽车上固定货物的要素。计算结果证明,为确保运输过程的安全性和可靠性,有必要要么增加固定杆的固定元件的数量,要么增加弹性固定元件的数量,随后重新计算所有弹性固定元件中的力。

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