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To reduce the maximum stress and the stress shielding effect around a dental implant-bone interface using radial functionally graded biomaterials

机译:使用径向功能梯度生物材料来减少牙齿植入物-骨界面周围的最大应力和应力屏蔽效果

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摘要

In a dental implant system, the value of stress and its distribution plays a pivotal role on the strength, durability and life of the implant-bone system. A typical implant consists of a Titanium core and a thin layer of biocompatible material such as the hydroxyapatite. This coating has a wide range of clinical applications in orthopedics and dentistry due to its biocompatibility and bioactivity characteristics. Low bonding strength and sudden variation of mechanical properties between the coating and the metallic layers are the main disadvantages of such common implants. To overcome these problems, a radial distributed functionally graded biomaterial (FGBM) was proposed in this paper and the effect of material property on the stress distribution around the dental implant-bone interface was studied. A three-dimensional finite element simulation was used to illustrate how the use of radial FGBM dental implant can reduce the maximum von Mises stress and, also the stress shielding effect in both the cortical and cancellous bones. The results, of course, give anybody an idea about optimized behaviors that can be achieved using such materials. The finite element solver was validated by familiar methods and the results were compared to previous works in the literature.
机译:在牙种植体系统中,应力值及其分布对种植体-骨系统的强度,耐用性和寿命起着至关重要的作用。典型的植入物由钛芯和一层薄薄的生物相容性材料(例如羟基磷灰石)组成。由于其生物相容性和生物活性特征,这种涂料在整形外科和牙科领域具有广泛的临床应用。这种普通植入物的主要缺点是粘合强度低以及涂层和金属层之间机械性能的突然变化。为了克服这些问题,本文提出了一种径向分布的功能梯度生物材料(FGBM),并研究了材料性能对种植牙-骨界面周围应力分布的影响。使用三维有限元模拟来说明径向FGBM牙科植入物的使用如何减少最大的冯·米塞斯应力,以及在皮质和松质骨中的应力屏蔽效果。当然,结果使任何人都可以了解使用此类材料可以实现的最佳行为。有限元求解器通过熟悉的方法进行了验证,并将结果与​​文献中的先前工作进行了比较。

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