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Tip-Induced Calcite Single Crystal Nanowear

机译:尖端诱导的方解石单晶纳米型

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Wear behavior of freshly cleaved single crystal calcite (CaCO3) was investigated by continuous scanning using the Hysitron Triboindenter in ambient environment as a function of scanning frequency (1 Hz - 3 Hz) and contact load (2 μN - 8 μN). At lower loads below 4 μN, initiation of the ripples takes place at the bottom of the surface slope, which continue to propagate up the slope as scanning progresses. The orientation of these ripple structures is perpendicular to the long scan direction. As the number of scans increases, ripples become fully developed, and their height and periodicity increase with the number of scans. At 6 μN normal load, tip-induced wear occurs as the tip begins removing the ripple structures with increased number of scan cycles. As the contact load increased further, ripples did not initiate and only tip-induced wear occurred on the surface, and saturated after 20 scans. At 1 Hz frequency wear takes place as material slides towards the scan edges when the tip moves back and forth. Material removal rate increased with contact load and it is observed that the number of scans required to create a new surface is inversely proportional to the contact load. Possible mechanisms responsible for the formation of ripples at higher frequencies are attributed to the slope of the surface, piezo hysteresis, system dynamics, or a combination of effects. The wear regime is due to abrasive wear. Single crystal calcite hardness of 2.8±0.3 GPa and elastic modulus of 75±4.9 GPa were measured using nanoindentation and used to determine the wear mode.
机译:通过在环境环境中连续扫描来研究新鲜切割的单晶方解石(CaCO3)的磨损行为作为扫描频率(1 Hz-3 Hz)和接触载荷(2μN - 8μN)的函数。在低于4μN的较低负载下,波纹的启动在表面斜面的底部发生,这继续将斜率传播为扫描进展。这些纹波结构的方向垂直于长扫描方向。随着扫描的数量增加,涟漪变得充分发展,并且它们的高度和周期性随着扫描的数量而增加。在6μN正常负载下,尖端引起的磨损发生,因为尖端开始以增加扫描周期数量的纹波结构。随着接触负荷进一步增加,涟漪未启动并且在表面上仅发生尖端磨损,并且在20次扫描后饱和。在尖端来回移动时,在1 Hz频率磨损时发生,因为材料朝向扫描边缘。材料去除率随接触负荷而增加,并且观察到创建新表面所需的扫描的数量与接触载荷成反比。负责在较高频率下形成波纹的可能机制归因于表面,压电磁滞,系统动力学或效果组合的斜率。磨损方案是由于磨损磨损。使用纳米茚地凸缘测量单晶方解石硬度和2.8±0.3gPa的弹性模量为75±4.9GPa,并用于确定磨损模式。

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