三周期最小表面晶格结构:工程应用的功能分级和混合设计

Tian Lan, Chenxi Peng, Kate Fox, Truong Do, Phuong Tran
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引用次数: 1

摘要

在这项工作中,我们提出了基于径向梯度片的旋转网格的设计策略,以及基于固体网络的旋转网格与原始网格杂交的方法。研究了三周期极小曲面(TPMS)片基陀螺晶格结构的弹性特性。我们还进行了数值分析,探讨了基于薄片的功能梯度陀螺仪晶格对植入体应用的影响,并基于代表性体积元模型,对不同相对密度下均匀陀螺仪晶格的弹性特性进行了参数化研究。建立了基于Gibson-Ashby模型的解析方程来预测其弹性性能。通过对Stratasys J750制备的样品进行压缩试验,验证了应用不同类型晶格杂交的可行性。通过对径向混合基元-陀螺格和陀螺-基元格的对比分析,发现基元格的压缩性能得到了增强。我们还发现,陀螺仪-原始晶格可以实现形变压缩行为。综上所述,数值分析表明,应用功能梯度陀螺格可以缓解应力屏蔽效应,保护骨骼免受损伤。不同晶格的杂化不仅可以增强TPMS结构的力学性能,而且会产生反直觉的变形响应。
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Triply periodic minimal surfaces lattice structures: Functional graded and hybrid designs for engineering applications
In this work, we propose the strategies for designing radial graded sheet-based gyroid lattice and the approach to hybridizing solid-network-based gyroid lattice and primitive lattice. The elastic property of triply periodic minimal surfaces (TPMS) sheet-based gyroid lattice structures was explored. We also conducted numerical analysis to investigate the effect of functionally graded sheet-based gyroid lattices on the implant application, and explored the elastic properties of the uniform gyroid lattice parametrically with different relative densities based on the representative volume element model. Analytical equations based on the Gibson-Ashby model were generated to predict the elastic properties. Compressive tests on the samples fabricated by the Stratasys J750 were conducted to validate the feasibility of applying hybridization of different types of lattices. A comparison between radial hybrid primitive-gyroid and gyroid-primitive lattices revealed that the compressive behavior of gyroid-primitive was strengthened. We also found that the gyroid-primitive lattice could achieve auxetic compressive behavior. In conclusion, the numerical analysis illustrates that the application of the functional graded gyroid lattices can relieve the stress shielding effect as well as protects the bone from damage. The hybridization of different lattices can not only strengthen the mechanical properties of TPMS structures but also create a counter-intuitive deformation response.
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