Predictions of the Elastic-Plastic Compressive Response of Functionally Graded Polymeric Composite Lattices Manufactured by 3D Printing

IF 1.5 4区 材料科学 Q3 ENGINEERING, MECHANICAL
J. Plocher, V. Tagarielli, A. Panesar
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引用次数: 2

Abstract

We use 3D printing to manufacture lattices with uniform and graded relative density, made from a composite parent material comprising a nylon matrix reinforced by short carbon fibres. The elastic-plastic compressive response of these solids is measured up to their densification regime. Data from experiments on the lattices with uniform relative density is used to deduce the dependence of their elastic-plastic homogenised constitutive response on their relative density, in the range 0.2-0.8. This data is used to calibrate Finite Element (FE) simulations of the compressive response of Functionally Graded Lattices (FGLs), which are found in good agreement with the corresponding measurements, capturing the salient features of the measured stress versus strain responses. This exercise is repeated for two lattice topologies (body-centred cubic and Schwarz-P). The phenomenological constitutive models produced in this study can be used in topology optimisation to maximise the performance of 3D printed FGLs components in terms of stiffness, strength or energy absorption.
3D打印功能梯度聚合物复合材料晶格的弹塑性压缩响应预测
我们使用3D打印来制造具有均匀和梯度相对密度的晶格,由由短碳纤维增强的尼龙基体组成的复合母材制成。这些固体的弹塑性压缩响应被测量到它们的致密化状态。采用相对密度均匀的晶格实验数据,推导了相对密度在0.2-0.8范围内的弹塑性均质本构响应的依赖关系。该数据用于校准功能梯度晶格(FGLs)压缩响应的有限元(FE)模拟,该模拟与相应的测量结果非常吻合,捕获了测量的应力与应变响应的显著特征。对于两种晶格拓扑(体心立方和Schwarz-P)重复此练习。本研究中产生的现象学本构模型可用于拓扑优化,以最大限度地提高3D打印fgl组件在刚度、强度或能量吸收方面的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.00
自引率
0.00%
发文量
30
审稿时长
4.5 months
期刊介绍: Multiscale characterization, modeling, and experiments; High-temperature creep, fatigue, and fracture; Elastic-plastic behavior; Environmental effects on material response, constitutive relations, materials processing, and microstructure mechanical property relationships
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