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亚 10 微米韧化和牙釉质裂尖韧性。

Sub-10-micrometer toughening and crack tip toughness of dental enamel.

机构信息

Institute of Advanced Ceramics, Hamburg University of Technology, Denickestr. 15, 21073, Hamburg, Germany.

出版信息

J Mech Behav Biomed Mater. 2011 Apr;4(3):423-32. doi: 10.1016/j.jmbbm.2010.12.003. Epub 2010 Dec 21.

Abstract

In previous studies, enamel showed indications to occlude small cracks in-vivo and exhibited R-curve behaviors for bigger cracks ex-vivo. This study quantifies the crack tip's toughness (K(I0),K(III0)), the crack's closure stress and the cohesive zone size at the crack tip of enamel and investigates the toughening mechanisms near the crack tip down to the length scale of a single enamel crystallite. The crack-opening-displacement (COD) profile of cracks induced by Vickers indents on mature bovine enamel was studied using atomic force microscopy (AFM). The mode I crack tip toughness K(I0) of cracks along enamel rod boundaries and across enamel rods exhibit a similar range of values: K(I0,Ir)=0.5-1.6MPa m(0.5) (based on Irwin's 'near-field' solution) and K(I0,cz)=0.8-1.5MPa m(0.5) (based on the cohesive zone solution of the Dugdale-Muskhelishvili (DM) crack model). The mode III crack tip toughness K(III0,Ir) was computed as 0.02-0.15MPa m(0.5). The crack-closure stress at the crack tip was computed as 163-770 MPa with a cohesive zone length and width 1.6-10.1μm and 24-44 nm utilizing the cohesive zone solution. Toughening elements were observed under AFM and SEM: crack bridging due to protein ligament and hydroxyapatite fibres (micro- and nanometer scale) as well as microcracks were identified.

摘要

在以前的研究中,牙釉质表现出在体内封闭小裂缝的迹象,并表现出体外大裂缝的 R 曲线行为。本研究量化了牙釉质的裂纹尖端韧性(K(I0)、K(III0))、裂纹的闭合应力和裂纹尖端的内聚区尺寸,并研究了直至单个牙釉质微晶长度尺度的裂纹尖端附近的增韧机制。使用原子力显微镜(AFM)研究了成熟牛牙釉质上维氏压痕引起的裂纹的张开位移(COD)分布。沿牙釉质杆边界和穿过牙釉质杆的裂纹的模式 I 裂纹尖端韧性 K(I0)表现出相似的范围值:K(I0,Ir)=0.5-1.6MPa m(0.5)(基于 Irwin 的“近场”解)和 K(I0,cz)=0.8-1.5MPa m(0.5)(基于 Dugdale-Muskhelishvili (DM) 裂纹模型的内聚区解)。模式 III 裂纹尖端韧性 K(III0,Ir)计算为 0.02-0.15MPa m(0.5)。利用内聚区解,计算得到裂纹尖端的闭合应力为 163-770 MPa,内聚区长度和宽度分别为 1.6-10.1μm 和 24-44nm。在 AFM 和 SEM 下观察到增韧元素:由于蛋白质韧带和羟基磷灰石纤维(微米和纳米尺度)的裂纹桥接以及微裂纹的存在。

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