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      Bistable Auxetic Mechanical Metamaterials Inspired by Ancient Geometric Motifs

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          Abstract

          Auxetic materials become thicker rather than thinner when stretched, exhibiting an unusual negative Poisson's ratio well suited for designing shape transforming metamaterials. Current auxetic designs, however, are often monostable and cannot maintain the transformed shape upon load removal. Here, inspired by ancient geometric motifs arranged in square and triangular grids, we introduce a class of switchable architected materials exhibiting simultaneous auxeticity and structural bistability. The material concept is experimentally realized by perforating various cut motifs into a sheet of rubber, thus creating a network of rotating units connected with compliant hinges. The metamaterial performance is assessed through mechanical testing and accurately predicted by a coherent set of finite element simulations. A discussion on a rich set of mechanical phenomena follows to shed light on the main design principles governing bistable auxetics.

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          Negative Poisson's ratio behavior induced by an elastic instability.

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            3D soft metamaterials with negative Poisson's ratio.

            Buckling is exploited to design a new class of three-dimensional metamaterials with negative Poisson's ratio. A library of auxetic building blocks is identified and procedures are defined to guide their selection and assembly. The auxetic properties of these materials are demonstrated both through experiments and finite element simulations and exhibit excellent qualitative and quantitative agreement. © 2013 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
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              Multistable Architected Materials for Trapping Elastic Strain Energy.

              3D printing and numerical analysis are combined to design a new class of architected materials that contain bistable beam elements and exhibit controlled trapping of elastic energy. The proposed energy-absorbing structures are reusable. Moreover, the mechanism of energy absorption stems solely from the structural geometry of the printed beam elements, and is therefore both material- and loading-rate independent.
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                Author and article information

                Journal
                2016-12-18
                Article
                10.1016/j.eml.2016.09.001
                1612.05988
                5249eb0c-38b4-4c14-9e60-59e3ca8e109a

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

                History
                Custom metadata
                Extreme Mechanics Letters 9 (2016) 291-296
                cond-mat.soft

                Condensed matter
                Condensed matter

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