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首页> 外文期刊>Biomaterials >Fracture toughness, strength and slow crack growth in a ceria stabilized zirconia-alumina nanocomposite for medical applications.
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Fracture toughness, strength and slow crack growth in a ceria stabilized zirconia-alumina nanocomposite for medical applications.

机译:用于医疗应用的氧化铈稳定的氧化锆-氧化铝纳米复合材料的断裂韧性,强度和缓慢的裂纹扩展。

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Mechanical properties and slow crack growth (SCG) behavior of a 10Ce-TZP/Al2O3 nanocomposite currently developed as a biomaterial are considered. Fracture toughness is determined for sharp, long (double torsion) and short (indentation) cracks and a good agreement is found between the two types of cracks. The main toughening mechanism in the nanocomposite is the tetragonal to monoclinic phase transformation of the ceria-stabilized zirconia (Ce-TZP) phase. Transformation at the surface of ground specimens leads to surface compressive induced stresses and an increase in strength. Crack velocity curves (V-K(I) curves) are obtained under static and cyclic fatigue using the double torsion method. The static V-K(I) curve in air reveals the three stages characteristic of stress corrosion with a threshold K(I0) approximately 4.5 MPa m(1/2) and a fracture toughness of 8.8 MPa m(1/2) significantly higher than those of currently used inert bioceramics (i.e., alumina and Y-TZP). A crack growth accelerating effect is shown under cyclic loading, correlated with a decrease in the threshold. However, the cyclic fatigue threshold (4 MPa m(1/2)) still stands above that of current biomedical grade alumina and zirconia.
机译:考虑了目前作为生物材料开发的10Ce-TZP / Al2O3纳米复合材料的机械性能和缓慢的裂纹扩展(SCG)行为。确定了尖锐,长(双扭转)和短(压痕)裂纹的断裂韧性,并且在两种类型的裂纹之间发现了良好的一致性。纳米复合材料中的主要增韧机理是二氧化铈稳定的氧化锆(Ce-TZP)相从四方转变为单斜相。地面试样表面的转变会导致表面压缩引起的应力和强度的增加。使用双扭转方法在静态和循环疲劳下获得裂纹速度曲线(V-K(I)曲线)。空气中的静态VK(I)曲线揭示了应力腐蚀的三个阶段特征,其阈值K(I0)约为4.5 MPa m(1/2),断裂韧性为8.8 MPa m(1/2)明显高于那些目前使用的惰性生物陶瓷(即氧化铝和Y-TZP)。在循环载荷下显示了裂纹扩展加速效果,与阈值降低相关。但是,循环疲劳阈值(4 MPa m(1/2))仍高于当前生物医学级氧化铝和氧化锆的阈值。

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