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Abrasive Wear Resistance of Plasma-Nitrided Ti Enhanced by Ultrasonic Surface Rolling Processing Pre-Treatment

机译:超声表面滚轧处理前处理增强了等离子氮化钛的耐磨性

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摘要

The objective of the given work was to investigate abrasive wear behaviours of titanium (Ti) treated by ultrasonic surface rolling processing (USRP) pre-treatment and plasma nitriding (PN). Simulated lunar regolith particles (SLRPs) were employed as abrasive materials during characterization of tribological performances. The experimental results showed that SLRPs cause severe abrasive wear on Ti plasma-nitrided at 750 °C via the mechanism of micro-cutting. Due to the formation of a harder and thicker nitriding layer, the abrasive wear resistance of the Ti plasma-nitrided at 850 °C was enhanced, and its wear mechanism was mainly fatigue. USRP pre-treatment was effective at enhancing the abrasive wear resistance of plasma-nitrided Ti, due to the enhancement of the hardness and thickness of the nitride layer. Nevertheless, SLRPs significantly decreased the friction coefficient of Ti treated by USRP pre-treatment and PN, because the rolling of small granular abrasives impeded the adhesion of the worn surface. Furthermore, USRP pre-treatment also caused the formation of a dimpled surface with a large number of micropores which can hold wear debris during tribo-tests, and finally, polishing and rolling the wear debris resulted in a low friction coefficient (about 0.5).
机译:这项工作的目的是研究通过超声表面滚压处理(USRP)预处理和等离子氮化(PN)处理的钛(Ti)的磨料磨损行为。在表征摩擦学性能时,将模拟的月球长石颗粒(SLRP)用作磨料。实验结果表明,SLRPs通过微切削机理对在750°C下氮化的Ti造成严重的磨料磨损。由于形成了较硬和较厚的氮化层,因此在850°C下等离子氮化的Ti的耐磨性得到增强,并且其磨损机理主要是疲劳。由于增强了氮化物层的硬度和厚度,USRP预处理可有效提高等离子氮化Ti的耐磨性。尽管如此,SLRPs显着降低了USRP预处理和PN处理的Ti的摩擦系数,因为小颗粒磨料的滚动会阻碍磨损表面的粘附。此外,USRP预处理还导致形成带有大量微孔的凹坑表面,这些凹坑在摩擦试验期间可容纳磨损碎屑,最后,抛光和滚动磨损碎屑会导致摩擦系数低(约0.5)。

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