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Cavitation erosion in silicon nitride: Experimental investigations on the mechanism of material degradation

机译:氮化硅中的气蚀:材料降解机理的实验研究

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Test samples from three silicon nitride materials used for potential rolling element bearing applications were experimentally studied at different conditions to understand their mechanisms of cavitation erosion. High and low powered ultrasonic vibratory systems were adapted for this study. Variation in the properties and microstructure of test materials helped to identify the mechanisms of wear and the factors that provide resistance to cavitation. Multiple intergranular and transgranular fractures were noted as the initial stages of erosion. Dislodging of grains from the surface led to the formation of small scale pits, resulting in a rough surface, forming a favourable condition for bubble nucleation, which accelerated the damage, eventually dislodging more grains with noticeable pit proliferation and coalescence. Erosion formed a centre wear scar surrounded by pits due to the variation in fluid film thickness. Detailed surface analysis on eroded samples revealed the influence of microstructure on damage initiation and progression. Erosion rate decelerated and remained at a low level of material removal as wear pits grew deeper, creating a bubble cushioning effect.
机译:在不同条件下,对来自用于潜在滚动轴承应用的三种氮化硅材料的测试样品进行了实验研究,以了解其气蚀的机理。高功率和低功率超声振动系统适用于本研究。测试材料的性能和微观结构的变化有助于确定磨损机理和提供抗气蚀性的因素。多个晶间和跨晶间骨折被认为是侵蚀的初始阶段。颗粒从表面脱落导致形成小尺寸的凹坑,导致表面粗糙,形成了气泡成核的有利条件,加速了损伤,最终使更多的晶粒脱落,并出现了明显的凹坑扩散和聚结。由于流体膜厚度的变化,侵蚀形成了一个由凹坑围绕的中心磨损痕迹。对腐蚀样品的详细表面分析揭示了微观结构对损伤发生和发展的影响。随着磨损点的加深,腐蚀速率降低并保持在较低的材料去除水平上,从而产生泡沫缓冲作用。

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