利用有限元分析评估牙科植入物周围的应力屏蔽,以适应植入物刚度和准功能负荷的变化。

IF 0.8 4区 医学 Q4 BIOPHYSICS Acta of bioengineering and biomechanics Pub Date : 2022-01-01
Muhammad Ikman Ishak, Ruslizam Daud, Siti Noor Fazliah Mohd Noor, C Y Khor, Husniyati Roslan
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引用次数: 0

摘要

目的:本研究旨在通过应力和应变能量密度传递参数评估骨-种植体界面的机械刺激传递。本研究还旨在探讨不同的种植体刚度和辅助功能加载值对所定义的机械刺激从种植体向周围骨传递的影响:方法:构建了带有内六角连接的两件式螺纹种植体和下颌骨块的三维有限元模型。应用响应面法,通过面心中心复合设计,考察两个独立因素变量对三个水平的影响。分析模型采用二阶多项式方程拟合,以确定响应值:结果表明,在增加应力和应变能量密度传递方面,种植体刚度比水平载荷值更有效。这两个因素之间的相互作用在降低骨吸收的可能性方面效果显著。降低种植体刚度和水平荷载值会导致应力传递增加和应变能密度意外降低,但水平荷载最小值除外。种植体刚度和水平载荷值的增加(达到中等水平)增加了向骨传递的应变能:结论:应力和应变能密度在骨-种植体界面上的传递是不同的。种植体刚度和准功能负荷的作用非常重要,应在牙科种植体的术前治疗规划和设计中予以强调。
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Assessment of stress shielding around a dental implant for variation of implant stiffness and parafunctional loading using finite element analysis.

Purpose: The aim of this study was to evaluate the mechanical stimuli transfer at the bone-implant interface via stress and strain energy density transfer parameters. This study also aimed to investigate the effect of different implant stiffness and parafunctional loading values on the defined mechanical stimuli transfer from the implant to the surrounding bone.

Methods: A three-dimensional finite element model of two-piece threaded dental implant with internal hexagonal connection and mandibular bone block was constructed. Response surface method through face-centred central composite design was applied to examine the influence of two independent factors variables using three levels. The analysis model was fitted to a second-order polynomial equation to determine the response values.

Results: The results showed that the implant stiffness was more effective than the horizontal load value in increasing the stress and strain energy density transfers. The interaction between both factors was significant in decreasing the likelihood of bone resorption. Decreasing the implant stiffness and horizontal load value led to the increased stress transfer and unexpected decrease in the strain energy density, except at the minimum level of the horizontal load. The increase in the implant stiffness and horizontal load value (up to medium level) have increased the strain energy transfer to the bone.

Conclusions: The stress and strain energy density were transferred distinctively at the bone-implant interface. The role of both implant stiffness and parafunctional loading is important and should be highlighted in the preoperative treatment planning and design of dental implant.

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来源期刊
Acta of bioengineering and biomechanics
Acta of bioengineering and biomechanics BIOPHYSICS-ENGINEERING, BIOMEDICAL
CiteScore
2.10
自引率
10.00%
发文量
0
期刊介绍: Acta of Bioengineering and Biomechanics is a platform allowing presentation of investigations results, exchange of ideas and experiences among researchers with technical and medical background. Papers published in Acta of Bioengineering and Biomechanics may cover a wide range of topics in biomechanics, including, but not limited to: Tissue Biomechanics, Orthopedic Biomechanics, Biomaterials, Sport Biomechanics.
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