Issues of Developing Equal-Strength Two-Layer Spherical Rubber-Metal Hinges

A. S. Kosmodamiansky, V. Vorobiev, O. Izmerov, D. Rasin, D. Shevchenko
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引用次数: 1

Abstract

Development of equal-strength two-layer spherical rubber­metal hinges (RMH), described in the paper, is associated with the problem that with an equal thickness of the layers of rubber bushings and an equal opening angle, there is a significant difference in their radial stiffness and relative deformation of the rubber. With hinge dimensions corresponding to those of the hinges used in the undercarriage of locomotives, there is a difference in relative deformation of inner and outer bushings by about 1,5 times. As a result, it is proposed to determine the load capacity of spherical two-layer RMH by the value of relative deformation of the rubber of the most loaded bushing. Also, studies have been carried out on the possibilities of creating a uniformly deformable design of a spherical two-layer RMH.To determine the characteristics of a spherical rubber-metal hinge, applied digital computer modelling based on the finite element method. A proposed parametrised geometric model of a spherical two-layer RMH and a finite element model of an elastic bushing offer the ratio of radial stiffnesses of outer and inner bushings, which is close to the preliminarily determined one, based on the equations of the theory of elasticity in displacements in a spherical coordinate system.It has been established that to achieve uniform elasticity by changing the opening angle, the opening angle of the outer reinforcement of RMH should be approximately 1,5 times less than the opening angle of the inner one. This makes it possible to reduce the width of outer reinforcement of RMH by 25 % but raises the problem of strength and rigidity of outer edges of intermediate reinforcement. Also, equal elasticity of hinge bushings can be achieved due to their different thicknesses, while to achieve non-uniform stiffness of bushings within ± 5 %, it is required to ensure that deviation of the intermediate cage diameter during hinge manufacture is less than ± 0,1 %.The obtained research results prove the practical possibility of creating an equally strong (with equal bushing rigidity) spherical two-layer RMH. The issue of searching for a compromise design of RMS, acceptable from the point of view of loading of the intermediate cage and of the requirements for manufacturing accuracy, requires further study.
研制等强度双层球形橡胶-金属铰链的若干问题
本文研究的等强度两层球形橡胶金属铰链(RMH)是针对橡胶衬套层厚相等、开口角相等时,橡胶的径向刚度和相对变形有显著差异的问题而研制的。由于铰链尺寸与机车底盘上使用的铰链尺寸相对应,因此内、外衬套的相对变形相差约1.5倍。提出了用最大载荷衬套橡胶相对变形值来确定球面两层RMH承载能力的方法。此外,还对球面两层RMH均匀变形设计的可能性进行了研究。为了确定球形橡胶-金属铰链的特性,采用基于有限元法的数字计算机建模方法。根据球坐标系下的位移弹性理论方程,建立了球面两层RMH的参数化几何模型和弹性衬套的有限元模型,得到的内外衬套径向刚度比接近于初步确定的值。已经确定,为了通过改变开口角度来达到均匀弹性,RMH外筋的开口角度应该比内筋的开口角度小1.5倍左右。这使得RMH的外配筋宽度减少25%成为可能,但中间配筋外缘的强度和刚度问题也随之出现。铰链衬套的厚度不同,可使其弹性相等,而要使衬套的刚度在±5%以内不均匀,则要求在铰链制造过程中保证中间保持架直径的偏差小于±0.1%。所得的研究结果证明了制造等强度(轴套刚度相等)球面两层RMH的实际可能性。从中间保持架的载荷和制造精度要求的角度来看,寻找一种可接受的RMS折衷设计的问题需要进一步研究。
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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