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Lattice Ti Structures with Low Rigidity But Compatible Mechanical Strength: Design of Implant Materials for Trabecular Bone

机译:刚性低但机械强度兼容的晶格Ti结构:小梁骨植入材料的设计

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The development of porous metals to alleviate the effects of stress shielding in bone will help improve the function of metallic biomaterials in orthopaedic applications. A critical step in advancing this technology is to design metallic structures with low rigidity that is comparable with bone tissue, but with good mechanical strength. In this study, porous titanium (Ti) structures with periodic cell topologies were designed to achieve tunable mechanical properties. The versatility of the design scheme was demonstrated by examining lattice designs with different stiffness properties achieved by using the Selective Laser Melting (SLM) technology. The fabricated porous Ti exhibited a low modulus of 1.05 GPa but a high compressive strength of 55 MPa. Large deformation analysis using digital image correlation (DIC) technique indicated uniform strain patterns at micro-trusses, suggesting the overall high quality of the structure with absence of local flaws. A functionally-graded stiffness design was further investigated by varying the diameters of micro-trusses within the structure. A stiffness graded material may be favourable for anatomical site that has strong depth-dependent variations, such as in trabecular bone microstructures.
机译:多孔金属的开发减轻了骨中应力屏蔽的作用,将有助于改善整形外科应用中金属生物材料的功能。推进该技术的关键步骤是设计具有与骨组织相当的低刚性但具有良好机械强度的金属结构。在这项研究中,具有周期性单元拓扑的多孔钛(Ti)结构被设计为实现可调的机械性能。通过检查使用选择性激光熔化(SLM)技术实现的具有不同刚度特性的晶格设计,证明了设计方案的多功能性。所制造的多孔Ti表现出1.05GPa的低模量但是55MPa的高抗压强度。使用数字图像相关(DIC)技术进行的大变形分析表明,微桁架处的应变模式均匀,表明结构的整体高质量,没有局部缺陷。通过改变结构中微桁架的直径,进一步研究了功能分级的刚度设计。刚度分级的材料可能适合于具有强的深度相关变化的解剖部位,例如在小梁的骨微结构中。

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