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Parametric Modeling of Biomimetic Cortical Bone Microstructure for Additive Manufacturing

机译:用于增材制造的仿生皮质骨微结构的参数化建模

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摘要

In this work we present a novel algorithm for generating in-silico biomimetic models of a cortical bone microstructure towards manufacturing biomimetic bone via additive manufacturing. The software provides a tool for physicians or biomedical engineers to develop models of cortical bone that include the inherent complexity of the microstructure. The correspondence of the produced virtual prototypes with natural bone tissue was assessed experimentally employing Digital Light Processing (DLP) of a thermoset polymer resin to recreate healthy and osteoporotic bone tissue microstructure. The proposed tool was successfully implemented to develop cortical bone structure based on osteon density, cement line thickness, and the Haversian and Volkmann channels to produce a user-designated bone porosity that matches within values reported from literature for these types of tissues. Characterization of the specimens using a Scanning Electron Microscopy with Focused Ion Beam (SEM/FIB) and Computer Tomography (CT) revealed that the manufacturability of intricated virtual prototype is possible for scaled-up versions of the tissue. Modeling based on the density, inclination and size range of the osteon and Haversian and Volkmann´s canals granted the development of a dynamic in-silico porosity (13.37–21.49%) that matches with models of healthy and osteoporotic bone. Correspondence of the designed porosity with the manufactured assessment (5.79–16.16%) shows that the introduced methodology is a step towards the development of more refined and lifelike porous structures such as cortical bone. Further research is required for validation of the proposed methodology model of the real bone tissue and as a patient-specific customization tool of synthetic bone.
机译:在这项工作中,我们提出了一种新颖的算法,用于生成皮质骨微结构的计算机模拟生物模型,以通过增材制造来制造仿生骨。该软件为医生或生物医学工程师提供了开发包括微观结构固有复杂性的皮质骨模型的工具。使用热固性聚合物树脂的数字光处理(DLP)通过实验评估产生的虚拟原型与天然骨组织的对应关系,以重建健康且骨质疏松的骨组织的微观结构。该工具已成功实施,可根据骨密度,水泥线厚度以及Haversian和Volkmann通道开发皮质骨结构,以产生用户指定的骨孔隙度,该孔隙度与文献报道的这类组织的值相匹配。使用聚焦离子束扫描电子显微镜(SEM / FIB)和计算机断层扫描(CT)对标本进行表征,发现复杂的虚拟样机的可制造性对于组织的放大版本是可能的。根据骨的密度,倾斜度和大小范围以及Haversian和Volkmann的根管进行建模,可以开发出与健康骨质疏松模型相匹配的动态硅孔隙度(13.37–21.49%)。设计的孔隙率与制造的评估值的对应关系(5.79–16.16%)表明,引入的方法是迈向开发更精致和栩栩如生的多孔结构(如皮质骨)的一步。为了验证所提出的真实骨组织的方法模型以及作为合成骨的患者特定定制工具,还需要进一步的研究。

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