结构工程
抗弯强度
刚度
压力(语言学)
工程类
有限元法
机械工程
哲学
语言学
作者
Brandon Peterson,Thomas J. Hardin,Armin W. Pomeroy,Jonathan B. Hopkins,Tyler R. Clites
出处
期刊:IEEE-ASME Transactions on Mechatronics
[Institute of Electrical and Electronics Engineers]
日期:2023-12-05
卷期号:29 (2): 913-923
标识
DOI:10.1109/tmech.2023.3334994
摘要
Cross-axis flexural pivots (x-pivots) hold immense promise as precise, frictionless bearing elements in mechatronic systems.In real-world settings, where bearings are called upon to bear nontrivial loads orthogonal to the axis of rotation, kinematic and stiffness-based design approaches are insufficient to ensure longevity.Stressbased design, which is the norm in conventional rollingor sliding-contact bearing selection, allows for direct calculation of expected fatigue lifetime, as well as performance in acute overload scenarios.However, the principles that guide stress-based design for flexural bearings are distinct from those that govern contact bearings, and have not yet been clearly described.In this article, we present three physical principles that came to light as we applied stressoriented finite element analysis to design x-pivots for large angular deformation and heavy tensile loads.Specifically, we describe cross-blade anticlastic effects, loading scenarios that can lead to buckling when the mechanism is in tension, and nonlinear stress effects that emerge in combined tension and bending.These principles have an outsized impact on the mechanism's stress profile, and are not well represented in existing x-pivot models.We also discuss ways to leverage gross mechanism geometry and blade profile to mitigate or avoid these effects.We expect that this work will help facilitate the design of x-pivots for applications in real-world mechatronic systems.
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