Zhang Yu, Mai Zhisong, Barani Amir, Bush Mark, Lawn Brian
Department of Biomaterials and Biomimetics, New York University College of Dentistry, New York, NY 10010, USA.
Department of Biomaterials and Biomimetics, New York University College of Dentistry, New York, NY 10010, USA.
Dent Mater. 2016 Mar;32(3):442-9. doi: 10.1016/j.dental.2015.12.010. Epub 2016 Jan 11.
To quantify the splitting resistance of monolithic zirconia, lithium disilicate and nanoparticle-composite dental crowns.
Fracture experiments were conducted on anatomically-correct monolithic crown structures cemented to standard dental composite dies, by axial loading of a hard sphere placed between the cusps. The structures were observed in situ during fracture testing, and critical loads to split the structures were measured. Extended finite element modeling (XFEM), with provision for step-by-step extension of embedded cracks, was employed to simulate full failure evolution.
Experimental measurements and XFEM predictions were self-consistent within data scatter. In conjunction with a fracture mechanics equation for critical splitting load, the data were used to predict load-sustaining capacity for crowns on actual dentin substrates and for loading with a sphere of different size. Stages of crack propagation within the crown and support substrate were quantified. Zirconia crowns showed the highest fracture loads, lithium disilicate intermediate, and dental nanocomposite lowest. Dental nanocomposite crowns have comparable fracture resistance to natural enamel.
The results confirm that monolithic crowns are able to sustain high bite forces. The analysis indicates what material and geometrical properties are important in optimizing crown performance and longevity.
量化整体式氧化锆、二硅酸锂和纳米颗粒复合牙科冠的抗劈裂性。
通过对置于牙尖之间的硬球进行轴向加载,对粘结在标准牙科复合模具上的解剖学形状正确的整体冠结构进行断裂实验。在断裂测试过程中对结构进行原位观察,并测量使结构劈裂的临界载荷。采用扩展有限元建模(XFEM),并考虑嵌入式裂纹的逐步扩展,来模拟整个失效过程。
在数据离散范围内,实验测量结果与XFEM预测结果一致。结合临界劈裂载荷的断裂力学方程,这些数据被用于预测实际牙本质基质上牙冠的承载能力以及不同尺寸球体加载时的承载能力。对牙冠和支撑基质内裂纹扩展阶段进行了量化。氧化锆牙冠显示出最高的断裂载荷,二硅酸锂牙冠居中,牙科纳米复合材料牙冠最低。牙科纳米复合材料牙冠具有与天然牙釉质相当的抗断裂性。
结果证实整体冠能够承受高咬合力。分析表明在优化牙冠性能和使用寿命方面,哪些材料和几何特性是重要的。