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contributor authorFlorian Baertsch
contributor authorAmir Ameli
contributor authorThomas Mayer
date accessioned2022-02-01T00:17:30Z
date available2022-02-01T00:17:30Z
date issued7/1/2021
identifier other%28ASCE%29EM.1943-7889.0001923.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4271210
description abstractAdditive manufacturing technologies such as fused filament fabrication (FFF) allow the production of metastructures with global properties that can be tailored to their specific application. This study simulated and optimized an auxetic re-entrant structure with a stiffness gradient for enhanced energy absorption with low acceleration peaks under different low-velocity impact conditions. The finite-element method (FEM) was used, and appropriate constitutive models were fitted to static and dynamic tensile and compressive data of acrylonitrile butadiene styrene (ABS) tested under various strain rates. A Johnson–Cook plasticity model demonstrated the best compromise between accuracy and computational efficiency. A simulation strategy using explicit FEM was developed to simulate additively manufactured auxetic metastructures under impact conditions. There was good agreement between the model prediction and the experimentally observed structural response. A parametric optimization was implemented to enhance the energy absorption capability with low acceleration peaks of a graded auxetic re-entrant structure for different impact velocities.
publisherASCE
titleFinite-Element Modeling and Optimization of 3D-Printed Auxetic Reentrant Structures with Stiffness Gradient under Low-Velocity Impact
typeJournal Paper
journal volume147
journal issue7
journal titleJournal of Engineering Mechanics
identifier doi10.1061/(ASCE)EM.1943-7889.0001923
journal fristpage04021036-1
journal lastpage04021036-13
page13
treeJournal of Engineering Mechanics:;2021:;Volume ( 147 ):;issue: 007
contenttypeFulltext


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