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Mechanical Vibration Damping and Compression Properties of a Lattice Structure

机译:晶格结构的机械振动阻尼和压缩性能

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摘要

The development of additive technology has made it possible to produce metamaterials with a regularly recurring structure, the properties of which can be controlled, predicted, and purposefully implemented into the core of components used in various industries. Therefore, knowing the properties and behavior of these structures is a very important aspect in their application in real practice from the aspects of safety and operational reliability. This article deals with the effect of cell size and volume ratio of a body-centered cubic (BCC) lattice structure made from Acrylonitrile Butadiene Styrene (ABS) plastic on mechanical vibration damping and compression properties. The samples were produced in three sizes of a basic cell and three volume ratios by the fused deposition modeling (FDM) technique. Vibration damping properties of the tested 3D-printed ABS samples were investigated under harmonic excitation at three employed inertial masses. The metamaterial behavior and response under compressive loading were studied under a uniaxial full range (up to failure) quasi-static compression test. Based on the experimental data, a correlation between the investigated ABS samples’ stiffness evaluated through both compressive stress and mechanical vibration damping can be found.
机译:添加剂技术的发展使得可以产生具有规则的重复结构的超材料,其特性可以控制,预测,并且有目的地实施到各个行业中使用的组件的核心中。因此,了解这些结构的性质和行为是从安全性和操作可靠性方面的实际实践中应用中的一个非常重要的方面。本文涉及由丙烯腈丁二烯苯乙烯(ABS)塑料制成的身体中心立方(BCC)晶格结构的细胞尺寸和体积比在机械减振和压缩性能下。通过融合沉积建模(FDM)技术以三种碱基细胞和三种体积比以三种碱性细胞和三种体积比制备。在三种采用的惯性质量的谐波激发下研究了测试的3D印刷ABS样品的振动阻尼性能。在一个单轴全系列(最高衰竭)准静态压缩测试下研究了压缩载荷下的超材料行为和反应。基于实验数据,可以找到通过压缩应力和机械振动阻尼评估的研究ABS样品刚度之间的相关性。

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