Abstract

This paper proposes a novel density-based concurrent topology optimization method to support the two-scale design of composite plates for vibration mitigation. To have exceptional damping performance, dynamic compliance of the composite plate is taken as the objective function. The complex stiffness model is used to describe the material damping and accurately consider the variation of structural response due to the change of damping composite material configurations. The mode superposition method is used to calculate the complex frequency response of the composite plates to reduce the heavy computational burden caused by a large number of sample points in the frequency range during each iteration. Both microstructural configurations and macroscopic distribution are optimized in an integrated manner. At the microscale, the damping layer consists of periodic composites with distinct damping and stiffness. The effective properties of the periodic composites are homogenized and then are fed into the complex frequency response analysis at the macroscale. To implement the concurrent topology optimization at two different scales, the design variables are assigned for both macro- and micro-scales. The adjoint sensitivity analysis is presented to compute the derivatives of dynamic compliance of composite plates with respect to the micro and macro design variables. Several numerical examples with different excitation inputs and boundary conditions are presented to confirm the validity of the proposed methodologies. This paper represents a first step towards designing two-scale composite plates with optional dynamic performance under harmonic loading using an inverse design method.

Highlights

  • Introduction iationsThin-walled composite plates have been widely used as structural components in various engineering applications to bear static and dynamic loads

  • If the microstructure of the damping composite material is discretized into m elements, the design variable χMI is defined as χMI

  • A concurrent topology optimization method has been proposed to support the design of the composite plates with optimal dynamic performance under harmonic loading

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Summary

The Complex Stiffness Model for the Damping Material

A complex stiffness model [26] is used to describe the dynamic characteristic of the damping material, which can be stated as:.

Complex Frequency Response of the Composite Plate
Dynamic Compliance of the Composite Plate
Multi-Scale Modeling Procedure
Mathematical Model for the Concurrent to Problem
Material Interpolation Scheme
Sensitivity Analysis at the Macro-Scale
Sensitivity Analysis at the Micro-Scale
Design Process
Model Verification of Frequency Response of Composite Plates
Numerical Examples
Cantilever Composite Plate
Composite Plate Clamped with Two Opposite Edges
Composite Plate with Four Corners Fixed
Composite Plate with Non-Design Domain
Composite Plate with Instrument Installed on It
Findings
Conclusions
Full Text
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