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Nano-scale mechanical behavior of pre-crystallized CAD/CAM zirconia-reinforced lithium silicate glass ceramic

机译:纳米规模的预结晶CAD / CAM氧化锆增强锂硅酸盐玻璃陶瓷的力学性能

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This paper reports on the mechanical behavior of pre-crystallized CAD/CAM zirconia-reinforced lithium silicate glass ceramic (ZLS) using nanoindentation with a Berkovich diamond tip and in situ scanning probe microscopy (SPM). The indentation contact hardness, the elastic modulus, and the elasticity and plasticity of the material were determined using the Oliver-Pharr method, the Sakai model and the Meyer's law at peak loads of 2.5-10 mN and a loading rate of 0.5 mN/s. The load-displacement curves at all applied loads indicate that ZLS deformed plastically without fracture. The discrete discontinuities in the load-displacement curves might have arisen from the shear plane activation for plastic deformation. The measured hardness and elastic modulus were load-independent (ANOVA, p 0.05), in ranges of 8.17 +/- 1.23 GPa to 9.86 +/- 1.24 GPa and 98.55 +/- 7.38 GPa to 105.78 +/- 9.98 GPa, respectively. The resistance to plasticity of ZLS significantly showed a second-order polynomial load relationship or a power law load dependency. Meanwhile, both the elastic and plastic displacements also significantly revealed power law load dependencies. However, the elastic and plastic deformation components were load-independent. Increased indentation loads resulted in significant decreases in the normalized elastic strain energy (p 0.05) accompanied by significant increases in the normalized indentation absorbed energy (p 0.05). The equivalent elasticity and plasticity of ZLS during indentation occurred at 7.5 mN. The outcomes of this study provide insights into fabrication and mechanical functions of ZLS restorations, particularly facilitating abrasive machining in dental CAD/CAM processing in the ductile regime.
机译:本文使用纳米茚满与Berkovich金刚石尖端和原位扫描探针显微镜(SPM)报告了使用纳米indentation的预结晶的CAD / CAM氧化锆氧化锆陶瓷(ZLS)的机械性能。使用Oliver-Pharr方法,Sakai模型和Meyer定律在2.5-10mN的峰值载量和0.5mN / s的装载速率确定材料的压痕接触硬度,弹性模量和弹性和可塑性和可塑性和可塑性。 。所有施加负荷的负载 - 位移曲线表明ZLS塑性变形而没有裂缝。负载 - 位移曲线中的离散不连续性可能从塑性变形的剪切平面激活中出现。测量的硬度和弹性模量是互相无关的(Anova,P& 0.05),其范围为8.17 +/- 1.23 GPa至9.86 +/- 1.24 GPA和98.55 +/- 7.38 GPA至105.78 +/- 9.98 GPA,分别。 ZL的可塑性抗性显着地显示了二阶多项式载荷关系或动力法负载依赖性。同时,弹性和塑料位移都显着揭示了动力法负载依赖性。然而,弹性和塑性变形组分均为荷载无关。增加的压痕载荷导致归一化弹性应变能量(P <0.05)中的显着降低伴随着归一化压痕的显着增加,吸收能量(P <0.05)。压痕期间ZLS的等效弹性和可塑性发生在7.5mn。该研究的结果提供了ZLS修复物的制造和机械功能的见解,特别是在牙髓制度中牙科CAD / CAM加工中的磨料加工。

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