The mechanical properties of human dentin: a critical review and re-evaluation of the dental literature.

J H Kinney, S J Marshall, G W Marshall
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引用次数: 635

Abstract

The past 50 years of research on the mechanical properties of human dentin are reviewed. Since the body of work in this field is highly inconsistent, it was often necessary to re-analyze prior studies, when possible, and to re-assess them within the framework of composite mechanics and dentin structure. A critical re-evaluation of the literature indicates that the magnitudes of the elastic constants of dentin must be revised considerably upward. The Young's and shear moduli lie between 20-25 GPa and 7-10 GPa, respectively. Viscoelastic behavior (time-dependent stress relaxation) measurably reduces these values at strain rates of physiological relevance; the reduced modulus (infinite relaxation time) is about 12 GPa. Furthermore, it appears as if the elastic properties are anisotropic (not the same in all directions); sonic methods detect hexagonal anisotropy, although its magnitude appears to be small. Strength data are re-interpreted within the framework of the Weibull distribution function. The large coefficients of variation cited in all strength studies can then be understood in terms of a distribution of flaws within the dentin specimens. The apparent size-effect in the tensile and shear strength data has its origins in this flaw distribution, and can be quantified by the Weibull analysis. Finally, the relatively few fracture mechanics and fatigue studies are discussed. Dentin has a fatigue limit. For stresses smaller than the normal stresses of mastication, approximately 30 MPa, a flaw-free dentin specimen apparently will not fail. However, a more conservative approach based on fatigue crack growth rates indicates that if there is a pre-existing flaw of sufficient size (approximately 0.3-1.0 mm), it can grow to catastrophic proportion with cyclic loading at stresses below 30 MPa.

人类牙本质的力学特性:对牙科文献的批判性回顾和重新评价。
综述了近50年来有关牙本质力学性能的研究进展。由于该领域的工作高度不一致,因此经常需要在可能的情况下重新分析先前的研究,并在复合力学和牙本质结构的框架内重新评估它们。对文献的重新评估表明,牙本质弹性常数的大小必须大幅向上修正。杨氏模量和剪切模量分别在20 ~ 25 GPa和7 ~ 10 GPa之间。粘弹性行为(时变应力松弛)可测量地降低这些值在应变率的生理相关;减小模量(无限松弛时间)约为12gpa。此外,弹性性能似乎是各向异性的(并非在所有方向上都相同);声波方法探测到六边形各向异性,尽管它的大小看起来很小。强度数据在威布尔分布函数的框架内重新解释。所有强度研究中引用的大变异系数可以根据牙本质样本内缺陷的分布来理解。拉伸和剪切强度数据中的明显尺寸效应源于这种缺陷分布,并且可以通过威布尔分析来量化。最后,讨论了相对较少的断裂力学和疲劳研究。牙本质有疲劳极限。对于小于正常咀嚼应力(约30 MPa)的应力,无缺陷牙本质试样显然不会失效。然而,基于疲劳裂纹扩展速率的更保守的方法表明,如果存在足够大小的预先存在缺陷(约0.3-1.0 mm),则在应力低于30 MPa的循环加载下,它可以增长到灾难性的比例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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