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Submicron friction mechanics at ambient and cryogenic temperatures

机译:常温和低温下的亚微米摩擦力学

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摘要

Mechanism interface mechanics play an important role in the static and dynamic dimensional stability of deployable optical instruments. Friction mechanics in deployment mechanisms has been found to be a source of kinematic indeterminacy allowing elastic energy to be stored throughout the structure. At submicron scales, microslip mechanics allow this behavior to persist well below the classical Coulomb friction limit. This paper presents the design of a cryogenic tribometer for measuring this behavior in candidate mechanism interfaces in both room temperature and cryogenic environments. Room temperature results are presented and compared to a proposed generalized microslip model form. This model form is intended to allow the parametric characterization of microslip behavior caused by smooth nonconforming contact as well as roughness-induced microslip. Spherical ball-on-flat interface geometries were used with two unlubricated material combinations: 440C stainless steel ball on a 440C stainless steel flat and a silicon nitride ball on a 440C stainless steel flat. Consistent parameters were identified for the generalized microslip model from steady cyclic shear responses for both of these interface cases. While these parameters exhibited a measurable sensitivity to normal preload levels, the model form appears to provide the necessary level of robustness. Non-ideal transient shear phenomena including rate dependence were also observed but should play only a secondary role in future modeling efforts.
机译:机构接口力学在可展开光学仪器的静态和动态尺寸稳定性中起着重要作用。已经发现,展开机构中的摩擦力学是运动学不确定性的根源,它允许弹性能量存储在整个结构中。在亚微米尺度上,微滑动力学使这种行为能够持续到远低于经典的库仑摩擦极限的水平。本文介绍了一种低温摩擦计的设计,用于在室温和低温环境下测量候选机构界面中的这种行为。提出室温结果并将其与建议的广义微滑模模型形式进行比较。该模型形式旨在允许对由平滑不合格接触以及由粗糙度引起的微滑动引起的微滑动行为进行参数化表征。球形,平面的球形接口几何形状与两种未润滑的材料组合一起使用:440C不锈钢板上的440C不锈钢球和440C不锈钢板上的氮化硅球。从这两种界面情况的稳定循环剪切响应中,为广义微滑动模型确定了一致的参数。尽管这些参数对正常的预紧力水平具有可测量的灵敏度,但模型形式似乎提供了必要的鲁棒性水平。还观察到了非理想的瞬时剪切现象,包括速率相关性,但在以后的建模工作中仅应起辅助作用。

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