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Evaluation of grinding strategy for bioceramic material through a single grit scratch test using force and acoustic emission signals

机译:通过使用力和声发射信号的单粒划痕试验评估生物陶瓷材料的研磨策略

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A specified geometry of diamond indenter with different rake angles such as 0 degrees, - 2 degrees and - 4 degrees were used in single scratch experiments to study the mode of material removal on both the sintered and pre-sintered yttria-stabilized tetragonal zirconia (Y-TZP). To evaluate these features during the scratch experiment, the generated forces and the acoustic emission signals were correlated with the surface morphology of scratches. The results indicated that the forces generated by the higher negative rake angle ( - 4 degrees) increase with reduced chipping in comparison with other rake angles.The material removal above 5 mu m scratch depth for sintered zirconia resulted in a brittle fracture, whereas a quasi-plastic behavior was observed with microcracks leading to a clumsy chip in pre-sintered zirconia. This was analyzed from the morphology of the chips and the scratches produced. The formation of chipping was reduced with the increase in negative rake angle, indicated by the changes in the features of the acoustic emission signal. The major frequency peaks were formed at a lower level below 250 kHz denoted the predominant brittle fracture. The acoustic emission burst occurred in the sintered component, which indicated the cracking and chipping formation was more compared to the pre-sintered block.
机译:在一次刮擦实验中,使用具有特定前角(例如0度,-2度和-4度)的金刚石压头的指定几何形状,研究了氧化钇稳定的四方晶氧化锆(Y -TZP)。为了评估划痕实验中的这些特征,将产生的力和声发射信号与划痕的表面形态相关联。结果表明,与其他前角相比,较高的前角前倾角(-4度)产生的力随切屑减少而增加。烧结氧化锆的刮痕深度超过5μm的材料去除导致脆性断裂,而准断裂在预烧结的氧化锆中观察到微裂纹导致了笨拙的碎屑的塑性行为。从切屑的形态和产生的划痕分析了这一点。切屑的形成随着负前角的增加而减少,这由声发射信号的特征变化表明。主频率峰值在低于250 kHz的较低水平处形成,表示主要为脆性断裂。在烧结部件中发生声发射爆裂,这表明与预烧结块相比,裂纹和碎屑的形成更多。

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