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Erosion mechanisms during abrasive waterjet machining: Model microstructures and single particle experiments

机译:磨料水射流加工过程中的侵蚀机制:模型微观结构和单粒子实验

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摘要

The erosion mechanisms during abrasive waterjet (AWJ) machining have been examined for a variety of materials. However, no systematic study has considered the effect of the microstructure–property relationship on the erosion mechanisms in metals. In this work, the influence of microstructure and mechanical properties on the erosion mechanisms is investigated using AWJ controlled-depth milling and single particle impact experiments performed on nanocrystalline, microcrystalline and single crystal nickel samples. The resulting footprints and subsurface microstructure evolution were analysed using advanced characterization techniques. The erosion rate of the target metal is found to correlate positively with grain size and negatively with hardness but this correlation is nonlinear. The subsurface microstructure of the single crystal and microcrystalline are altered, while only the texture of the nanocrystalline nickel is modified. The grain refinement mechanism observed in microcrystalline and single crystal microstructure is elucidated by electron backscatter diffraction. It proceeds by the generation of dislocations under severe plastic deformation, which transforms into subgrains before forming new grains under further strain. Therefore, severe plastic deformation induced by AWJ machining leads to surface nanocrystallization and induces substantial subsurface work-hardening, as revealed by nanoindentation tests and confirmed by single particle impacts, with the consequence that the erosion rate decreases with decreasing grain size. This work clarifies the erosion mechanisms in pure metals and highlights the dynamic nature of AWJ machining as a result of the complex interplay between microstructure, mechanical properties and material removal mechanisms, providing new insights into AWJ controlled-depth milling technique.
机译:已经检查了磨料水射流(AWJ)加工过程中的侵蚀机制,用于各种材料。然而,无系统研究已经考虑了微观结构性关系对金属腐蚀机制的影响。在这项工作中,使用AWJ控制深度研磨和在纳米晶,微晶和单晶镍样品上进行的单颗粒冲击实验来研究微观结构和机械性能对侵蚀机理的影响。使用先进的表征技术分析所得到的占地面积和地下微观结构演化。发现靶金属的侵蚀速率与硬度呈晶粒尺寸和负性负相关,但这种相关性是非线性的。改变单晶和微晶的地下微观结构,同时仅改变纳米晶镍的质地。通过电子反向散射衍射阐明在微晶和单晶微观结构中观察到的晶粒细化机制。它通过在严重的塑性变形下产生脱位,其在进一步应变下形成新颗粒之前转化为亚甲。因此,由AWJ加工诱导的严重塑性变形导致表面纳米晶体化并诱导大量地下工作硬化,如纳米狭窄试验所揭示的,并通过单一颗粒撞击证实,结果随着晶粒尺寸的降低而降低。这项工作阐明了纯金属中的侵蚀机制,并突出了AWJ加工的动态性质,因为微观结构,机械性能和材料去除机制之间的复杂相互作用,为AWJ控制深度铣削技术提供了新的见解。

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