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树脂基牙科修复复合材料中疲劳裂纹扩展行为的机理方面

Mechanistic aspects of fatigue crack growth behavior in resin based dental restorative composites.

作者信息

Shah M B, Ferracane J L, Kruzic J J

机构信息

Materials Science, School of Mechanical, Industrial, and Manufacturing Engineering, Oregon State University, Corvallis, OR, USA.

出版信息

Dent Mater. 2009 Jul;25(7):909-16. doi: 10.1016/j.dental.2009.01.097. Epub 2009 Feb 23.

Abstract

OBJECTIVE

To test the hypothesis that a commercial microhybrid resin based composite (Filtek Z250) has superior fatigue resistance to a nanofill composite (Filtek Supreme Plus) and to determine the related micromechanisms involved in the fatigue process.

METHODS

After 60 days of water hydration, the fatigue crack growth resistance of two different resin composites, one microhybrid (Filtek Z250) and one nanofill (Filtek Supreme Plus), was measured in wet conditions using compact-tension, C(T), specimens at a load ratio of 0.1 and frequency of 2Hz. Cyclic fatigue behavior was quantified in terms of the fatigue crack growth rate, da/dN, as a function of the stress intensity range, DeltaK.

RESULTS

A sigmoidal da/dN-DeltaK curve with three different fatigue crack growth regimes was identified for both composites. In general, fatigue crack growth ranged from approximately 10(-9) to 10(-5)m/cycle over DeltaK of 0.54-0.63MPa radicalm for the Z250 composite and DeltaK of 0.41-0.67MPa radicalm for the Supreme Plus composite. The Supreme Plus composite showed a lower fatigue threshold, DeltaK(th), by approximately 0.13MPa radicalm compared to the Z250 composite, while also showing a plateau in the fatigue crack growth curve that is likely related to environmental attack. SEM observations of the fatigue crack paths and fracture surfaces revealed an interparticle crack path and extrinsic toughening mechanisms of crack deflection and crack bridging. No fatigue degradation of reinforcing particles or clusters was found, but cluster-matrix debonding was evident in the Supreme Plus composite, also indicative of environmental attack due to water.

SIGNIFICANCE

This study increases the understanding of both the fatigue behavior and the micromechanisms of fatigue in resin based dental composites.

摘要

目的

验证一种商用微混合树脂基复合材料(Filtek Z250)比纳米填料复合材料(Filtek Supreme Plus)具有更优异的抗疲劳性能这一假设,并确定疲劳过程中涉及的相关微观机制。

方法

在水合60天后,使用紧凑拉伸C(T)试样,在载荷比为0.1、频率为2Hz的湿态条件下,测量两种不同树脂复合材料(一种微混合材料(Filtek Z250)和一种纳米填料材料(Filtek Supreme Plus))的抗疲劳裂纹扩展性能。根据疲劳裂纹扩展速率da/dN对循环疲劳行为进行量化,da/dN是应力强度范围ΔK的函数。

结果

两种复合材料均识别出具有三种不同疲劳裂纹扩展机制的S形da/dN-ΔK曲线。总体而言,对于Z250复合材料,在ΔK为0.54-0.63MPa√m范围内,疲劳裂纹扩展范围约为10^(-9)至10^(-5)m/循环;对于Supreme Plus复合材料,在ΔK为0.41-0.67MPa√m范围内。与Z250复合材料相比,Supreme Plus复合材料的疲劳阈值ΔK(th)低约0.13MPa√m,同时在疲劳裂纹扩展曲线中也出现了一个平台,这可能与环境侵蚀有关。对疲劳裂纹路径和断裂表面的扫描电子显微镜观察揭示了颗粒间裂纹路径以及裂纹偏转和裂纹桥接的外在增韧机制。未发现增强颗粒或团簇的疲劳降解,但在Supreme Plus复合材料中团簇与基体的脱粘明显,这也表明了水导致的环境侵蚀。

意义

本研究增进了对树脂基牙科复合材料疲劳行为及疲劳微观机制的理解。

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