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characterize 耗散弹性超材料通过增材制造

Characterizing Dissipative Elastic Metamaterials Produced by Additive Manufacturing.

机构信息

Engineering and Technology Institute Groningen (ENTEG), Faculty of Science and Engineering, University of Groningen;

Engineering and Technology Institute Groningen (ENTEG), Faculty of Science and Engineering, University of Groningen.

出版信息

J Vis Exp. 2024 Jun 28(208). doi: 10.3791/66898.

Abstract

Viscoelastic behavior can be beneficial in enhancing the unprecedented dynamics of polymer metamaterials or, in contrast, negatively impacting their wave control mechanisms. It is, therefore, crucial to properly characterize the viscoelastic properties of a polymer metamaterial at its working frequencies to understand viscoelastic effects. However, the viscoelasticity of polymers is a complex phenomenon, and the data on storage and loss moduli at ultrasonic frequencies are extremely limited, especially for additively manufactured polymers. This work presents a protocol to experimentally characterize the viscoelastic properties of additively manufactured polymers and to use them in the numerical analysis of polymer metamaterials. Specifically, the protocol includes the description of the manufacturing process, experimental procedures to measure the thermal, viscoelastic, and mechanical properties of additively manufactured polymers, and an approach to use these properties in finite-element simulations of the metamaterial dynamics. The numerical results are validated in ultrasonic transmission tests. To exemplify the protocol, the analysis is focused on acrylonitrile butadiene styrene (ABS) and aims at characterizing the dynamic behavior of a simple metamaterial made from it by using fused deposition modeling (FDM) three-dimensional (3D) printing. The proposed protocol will be helpful for many researchers to estimate viscous losses in 3D-printed polymer elastic metamaterials that will improve the understanding of material-property relations for viscoelastic metamaterials and eventually stimulate the use of 3D-printed polymer metamaterial parts in various applications.

摘要

黏弹性行为可以有益于增强聚合物超材料前所未有的动力学特性,或者相反,对其波控制机制产生负面影响。因此,在工作频率下正确地描述聚合物超材料的黏弹性特性以理解黏弹性效应是至关重要的。然而,聚合物的黏弹性是一个复杂的现象,并且关于超声频率下存储和损耗模量的数据极其有限,尤其是对于增材制造的聚合物。本工作提出了一种实验表征增材制造聚合物黏弹性特性的方案,并将其用于聚合物超材料的数值分析。具体而言,该方案包括制造工艺的描述、测量增材制造聚合物的热、黏弹性和机械性能的实验程序,以及一种在超材料动力学的有限元模拟中使用这些特性的方法。数值结果通过超声传输测试进行验证。为了举例说明该方案,分析集中在丙烯腈丁二烯苯乙烯(ABS)上,并旨在通过使用熔融沉积建模(FDM)三维(3D)打印来表征由其制成的简单超材料的动态行为。所提出的方案将有助于许多研究人员估计 3D 打印聚合物弹性超材料中的粘性损耗,这将提高对黏弹性超材料的材料特性关系的理解,并最终刺激 3D 打印聚合物超材料零件在各种应用中的使用。

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