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首页> 外文期刊>Acta biomaterialia >Combining micro computed tomography and three-dimensional registration to evaluate local strains in shape memory scaffolds.
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Combining micro computed tomography and three-dimensional registration to evaluate local strains in shape memory scaffolds.

机译:结合微计算机断层扫描和三维定位来评估形状记忆支架中的局部应变。

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摘要

Appropriate mechanical stimulation of bony tissue enhances osseointegration of load-bearing implants. Uniaxial compression of porous implants locally results in tensile and compressive strains. Their experimental determination is the objective of this study. Selective laser melting is applied to produce open-porous NiTi scaffolds of cubic units. To measure displacement and strain fields within the compressed scaffold, the authors took advantage of synchrotron radiation-based micro computed tomography during temperature increase and non-rigid three-dimensional data registration. Uniaxial scaffold compression of 6% led to local compressive and tensile strains of up to 15%. The experiments validate modeling by means of the finite element method. Increasing the temperature during the tomography experiment from 15 to 37°C at a rate of 4 K h(-1), one can locally identify the phase transition from martensite to austenite. It starts at ≈ 24°C on the scaffolds bottom, proceeds up towards the top and terminates at ≈ 34°C on the periphery of the scaffold. The results allow not only design optimization of the scaffold architecture, but also estimation of maximal displacements before cracks are initiated and of optimized mechanical stimuli around porous metallic load-bearing implants within the physiological temperature range.
机译:对骨组织进行适当的机械刺激可增强承重植入物的骨整合。多孔植入物的单轴压缩会局部产生拉伸应变和压缩应变。他们的实验确定是本研究的目的。应用选择性激光熔化来生产立方单位的开孔NiTi支架。为了测量压缩支架内的位移和应变场,作者利用了基于同步加速器辐射的微型计算机断层摄影技术来进行温度升高和非刚性三维数据配准。 6%的单轴支架压缩导致高达15%的局部压缩应变和拉伸应变。实验通过有限元方法验证了建模。层析成像实验期间,温度以4 K h(-1)的速度从15℃升高到37℃,可以局部识别从马氏体到奥氏体的相变。它从脚手架底部的≈24°C开始,向顶部向上延伸,并在脚手架的外围终止于≈34°C。结果不仅可以优化支架结构的设计,还可以估计在产生裂纹之前的最大位移,以及在生理温度范围内对多孔金属承重植入物周围的最佳机械刺激的估计。

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