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首页> 外文期刊>Journal of Clinical and Diagnostic Research >Stress Distribution in Implant RetainedFinger Prosthesis: A Finite Element Study
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Stress Distribution in Implant RetainedFinger Prosthesis: A Finite Element Study

机译:保留植入物的手指中的应力分布:有限元研究

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Background: Finger amputation may result from congenital cause, trauma, infection and tumours. The finger amputation may be rehabilitated with dental implant-retained finger prosthesis. The success of implant-retained finger prosthesis is determined by the implant loading. The type of the force is a determining factor in implant loading.Objective: To evaluate stress distributions in finger bone when the loading force is applied along the long axis of the implant using finite element analysis.Method: The finite element models were created. The finger bone model containing cortical bone and cancellous bone was constructed by using radiograph. Astra Tech Osseo Speed bone level implant of 4.5 mm diameter and 14 mm length was selected. The force was applied to the top of the abutment along the long axis of the implant.Results: Finite element analysis indicated that the maximum stress was located at the head of abutment screw. The minimum stress was located in the apical third of the implant fixture. The weakest point was calculated by safety factor which is located in the spongy bone at apical third of the fixtures. Finally, 4.9 times yield stress of spongy bone was needed for the deformation of the spongy bone.Conclusion: Finite element study showed that when the force was applied along the long axis of the implant, the maximum stress was located around the neck of the implant and the cortex bone received more stress than cancellous bone. So, to achieve long term success, the designers of implant systems must confront biomaterial and biomechanical problems including in vivo forces on implants, load transmission to the interface and interfacial tissue response.
机译:背景:截肢可能是由于先天原因,外伤,感染和肿瘤引起的。手指截肢可通过保留牙种植体的手指假体进行修复。植入物固定的手指假体的成功与否取决于植入物的负载。目的:力的类型是植入物加载的决定因素。目的:通过有限元分析,评估沿加载物长轴施加加载力时手指骨骼中的应力分布。方法:创建有限元模型。利用射线照相法建立了包含皮质骨和松质骨的指骨模型。选择了直径为4.5毫米,长度为14毫米的Astra Tech Osseo Speed骨水平植入物。沿种植体的长轴将力施加到基台顶部。结果:有限元分析表明,最大应力位于基台螺钉的头部。最小应力位于植入物固定装置的顶端三分之一处。最弱点是通过安全系数计算得出的,安全系数位于固定装置顶端三分之一的海绵状骨中。最后,海绵状骨的变形需要4.9倍的海绵状骨屈服应力。结论:有限元研究表明,当沿植入物的长轴施加力时,最大应力位于植入物的颈部周围皮质骨比松质骨承受的压力更大。因此,要获得长期成功,植入系统的设计人员必须面对生物材料和生物力学问题,包括植入物上的体内力,向界面的载荷传递和界面组织反应。

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