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Evolution of Wear Characteristics and Frictional Behavior in MEMS Devices

机译:MEMS器件的磨损特性和摩擦行为的演变

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A surface-micromachined nanotractor device has been used to investigate the tribological behavior of MEMS devices made of polycrystalline silicon. An accelerated wear test, spanning several hundreds of thousands of cycles, was developed to monitor the evolution of wear characteristics and frictional behavior during its operational lifetime. Postmortem microscopic observations of the wear surfaces revealed features that can be categorized into two regimes of wear: (i) adhesion-dominated wear and (ii) third-body wear. The former was characterized by asperity blunting, plastic deformation of asperity peaks, and smearing of fine wear debris into a thin-surface film. With an increased number of wear cycles, the wear mechanism transitioned to the latter regime which consisted of debris agglomeration and material removal through scratches induced by these agglomerates. Finally, it was theorized that one of the agglomerates grows to a large size, adheres to one of the contact surfaces and causes severe wear in a localized region on the counter surface to lock the two surfaces and cause device failure.
机译:表面微机械加工的纳米牵引装置已被用于研究由多晶硅制成的MEMS装置的摩擦学行为。进行了跨越数十万次循环的加速磨损测试,以监测其使用寿命内磨损特性和摩擦行为的演变。事后对磨损表面的显微镜观察表明,这些特征可以分为两种磨损方式:(i)以附着力为主的磨损和(ii)第三者磨损。前者的特征是凹凸不平,凹凸峰的塑性变形以及将细磨损碎片涂抹到薄膜上。随着磨损循环次数的增加,磨损机理过渡到后者,后者由碎屑团聚和通过这些团聚物引起的刮擦去除材料组成。最后,从理论上讲,一种附聚物会长大,粘附在接触面之一上,并在对接面上的局部区域造成严重磨损,从而锁定两个表面并导致设备故障。

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