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Dynamic Fracture Response of a Synthetic Cortical Bone Simulant

机译:合成皮质骨模拟物的动态断裂响应

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This work characterizes the fracture response of a composite material designed to mimic the response of human cortical bone. We have identified additive manufacturing, more generally known as 3-D printing, as a means of reproducing the curvature, variation in thickness, and gradient in porosity characteristic of the human bone between the cortical and trabecular regions. As the base material for developing bone surrogates via additive manufacturing, we evaluate a photocurable polymer with a high loading of ceramic particulate reinforcement that is compatible with stereolithographic additive (SLA) manufacturing. Specimens were printed in two orientations to measure fracture response perpendicular and parallel to the direction of deposition of the layer-by-layer manufacturing process. Mode I fracture behavior of the material was measured in four point bending configuration at high rate via modified split Hopkinson pressure bar for both orientations. In this paper, the fracture behavior of the bone simulant are presented and are compared to the mode I fracture behavior of human cortical bone perpendicular to the long axis of the human femur characterized under the same conditions.
机译:这项工作表征了旨在模拟人皮质骨响应的复合材料的断裂响应。我们已经鉴定了添加剂制造,更普遍称为3-D印刷,作为再现曲率的曲率,厚度变化和孔隙率特征在皮质和短边缘区域之间的孔隙率特征的手段。作为通过添加剂制造发育骨代理的基材,我们评估了具有高负荷陶瓷颗粒增强的可光固化聚合物,其与立体光刻添加剂(SLA)制造相容。标本用两种取向印刷,以测量垂直和平行于层逐层制造方法的沉积方向的断裂响应。以高速速率通过改进的普通霍普金森压力杆以四点弯曲配置测量材料的裂缝行为,用于两个方向。在本文中,给出了骨模拟剂的断裂行为,并与在相同条件下的人股骨的长轴的人皮质骨的模式I断裂行为进行比较。

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