首页> 外文会议>Asian Symposium on biomedical materials >PREDICTION OF INTRAOSSEOUS PRESSURE BEHAVIOR TO UNDERSTAND STRAIN GENERATED POTENTIAL NEAR OSSEOINTEGRATED BONE AND IMPLANT COMPOSITE
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PREDICTION OF INTRAOSSEOUS PRESSURE BEHAVIOR TO UNDERSTAND STRAIN GENERATED POTENTIAL NEAR OSSEOINTEGRATED BONE AND IMPLANT COMPOSITE

机译:预测骨髓压力行为以了解骨整向性骨和植入物复合附近的应变产生势

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Osseointegration (OI) could be described as the modality for stable fixation of titanium implant to bone structure. The OI has become a realized phenomenon of importance in the dental and rehabilitation sciences since recently developed dentures and artificial limbs are directly attached to human skeleton by using osseointegrated implants. Previously, a study showed that bone strain generated potential (SGP) that is an electrical potential and considered to be generated by fluid flow in bone could be used as a parameter to examine the amount of OI on implant-bone interface. SGP generation is known to require intraosseous fluid flow related with generations of pore pressure gradient in bone. Therefore, SGP would interact with properties determining interstitial fluid flow characteristics such as viscosity, velocity, flow path directions, and interstitial fluid flow boundary conditions. Since interstitial fluid flow characteristics in bone are governed by pore pressure gradient, it could be possible to predict SGP indirectly through the prediction of pore pressure generation in bone. The aim of this study is to predict the distribution of pore pressure in OI bone-implant composite representing a completely osseointegrated rabbit tibia-titanium implant composite. The theoretical background of this prediction is based on the poroelasticity of 2-phase material that grounds on fluid flow and behavior of cortical bone material. In this study, we constructed a finite element (FE) model of the composite from images of micro-CT scanning. In the next step, we examined analysis of the FE model about pore pressure by using ABAQUS. In this analysis, the constitutive behavior was externally computed by utilizing a user subroutine. The results showed the different spatial distributions of pore pressure in the composite. The magnitudes of pore pressure were found to be significantly increased when the position was approached for the interface of implant-bone. Further analytical study is required to fully understand relationships between SGP and pore pressure distributions in OI bone-implant composite materials.
机译:骨整合(OI)可以被描述为钛植入骨结构稳定固定的模态。由于最近开发的假牙和人造肢体通过使用骨整合植入物直接与人体骨架直接连接到人体骨架,因此oi已成为牙科和康复科学的重要现象。此前,一项研究表明,骨应变产生的电位(SGP)是电势并且被骨中的流体流动产生的电位可以用作参数,以检查种植体骨界面上的OI的量。已知SGP生成需要与骨中几代孔隙压梯度相关的骨内流体。因此,SGP将与确定间质流体流动特性的性质相互作用,例如粘度,速度,流动路径方向和间隙流体流边界条件。由于骨中的间质流体流动特性由孔隙压梯度控制,因此可以通过预测骨中的孔隙压力来间接地预测SGP。本研究的目的是预测OI骨植入复合材料中的孔隙压力的分布,其代表完全骨整合兔钛植入复合材料。该预测的理论背景基于2相材料的孔弹性,该孔弹性地在流体流动和皮质骨材料的行为上进行地面。在这项研究中,我们构建了来自微型CT扫描图像的复合材料的有限元素(FE)模型。在下一步中,我们通过使用ABAQUS检查了对孔隙压力的FE模型的分析。在该分析中,通过利用用户子例程来外部计算本构剖视图。结果表明复合材料中孔隙压力的不同空间分布。当接近植入骨界面时,发现孔隙压力的幅度显着增加。需要进一步的分析研究来充分了解OI骨植入复合材料中SGP和孔隙压力分布之间的关系。

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