Hierarchical Design of Negative Stiffness Metamaterials Using a Bayesian Network Classifier1

Author:

Matthews Jordan1,Klatt Timothy2,Morris Clinton1,Seepersad Carolyn C.3,Haberman Michael2,Shahan David4

Affiliation:

1. Mechanical Engineering Department, The University of Texas at Austin, Austin, TX 78712

2. Mechanical Engineering Department and Applied Research Laboratories, The University of Texas at Austin, Austin, TX 78712

3. Mechanical Engineering Department, The University of Texas at Austin, Austin, TX 78712 e-mail:

4. HRL Laboratories, Malibu, CA 90265

Abstract

A set-based approach is presented for exploring multilevel design problems. The approach is applied to design negative stiffness metamaterials with mechanical stiffness and loss properties that surpass those of conventional composites. Negative stiffness metamaterials derive their properties from their internal structure, specifically by embedding small volume fractions of negative stiffness inclusions in a continuous host material. Achieving high stiffness and loss from these materials by design involves managing complex interdependencies among design variables across a range of length scales. Hierarchical material models are created for length scales ranging from the structure of the microscale negative stiffness inclusions to the effective properties of mesoscale metamaterials to the performance of an illustrative macroscale component. Bayesian network classifiers (BNCs) are used to map promising regions of the design space at each hierarchical modeling level, and the maps are intersected to identify sets of multilevel solutions that are likely to provide desirable system performance. The approach is particularly appropriate for highly efficient, top-down, performance-driven, multilevel design, as opposed to bottom-up, trial-and-error multilevel modeling.

Publisher

ASME International

Subject

Computer Graphics and Computer-Aided Design,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

Reference42 articles.

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2. Extreme Damping in Composite Materials With Negative-Stiffness Inclusions;Nature,2001

3. A Negative-Stiffness Phase in Elastic Composites Can Produce Stable Extreme Effective Dynamic but Not Static Stiffness,2014

4. Material Instability-Induced Extreme Damping in Composites: A Computational Study;Int. J. Solids Struct.,2014

5. Micromechanical Modeling of Particulate Composites for Damping of Acoustic Waves;ASME J. Eng. Mater. Technol.,2006

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