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Isogeometric analysis of shear-deformable, in-plane functionally graded microshells by Mindlin’s strain gradient theory

  • 13-07-2023
  • Original Article
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Abstract

The article introduces a novel isogeometric analysis of shear-deformable, in-plane functionally graded microshells using Mindlin’s strain gradient theory. It delves into the significance of innovative micro- and nanotechnologies in various MEMS/NEMS applications, highlighting the need for advanced theoretical formulations to understand and simulate these structures. The study extends the homogeneous strain-gradient Reissner–Mindlin microshell model to incorporate an in-plane functionally graded material model, capturing the strain gradient and micro-inertia effects essential for microscale problems. The proposed formulation is discretized and solved using the NURBS-based isogeometric analysis method, which accurately captures complex size-dependent responses of thin to moderately thick microshells with various material gradation patterns. The article presents numerical examples to demonstrate the accuracy and effectiveness of the proposed formulation, showcasing its potential in optimizing the design of MEMS shell-type components.

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Title
Isogeometric analysis of shear-deformable, in-plane functionally graded microshells by Mindlin’s strain gradient theory
Authors
Toan Minh Le
Duy Vo
Zwe Yan Aung
Elena Atroshchenko
Tinh Quoc Bui
Jaroon Rungamornrat
Publication date
13-07-2023
Publisher
Springer London
Published in
Engineering with Computers / Issue 3/2024
Print ISSN: 0177-0667
Electronic ISSN: 1435-5663
DOI
https://doi.org/10.1007/s00366-023-01821-y
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