Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element Scheme
Guided waves have immense potential for structural health monitoring applications in numerous industries including aerospace. It is necessary to evaluate guided wave dispersion characteristics, i.e., group velocity and phase velocity profiles, for using them effectively. For complex structures, the...
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doaj-3d584007222e4effb5ab0ca0b758da7f2021-05-31T23:38:00ZengMDPI AGApplied Sciences2076-34172021-05-01114319431910.3390/app11104319Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element SchemeMuhammad Khalid Malik0Dimitrios Chronopoulos1Francesco Ciampa2The Composites Group, University of Nottingham, Nottingham NG7 2RD, UKThe Composites Group, University of Nottingham, Nottingham NG7 2RD, UKDepartment of Mechanical Engineering Sciences, University of Surrey, Guildford GU2 7XH, UKGuided waves have immense potential for structural health monitoring applications in numerous industries including aerospace. It is necessary to evaluate guided wave dispersion characteristics, i.e., group velocity and phase velocity profiles, for using them effectively. For complex structures, the profiles can have highly irregular shapes. In this work, a direct method for calculating the group velocity profiles for complex, composite, and periodic structures using a wave and finite element scheme is presented. The group velocity calculation technique is easy to implement, highly computationally efficient, and works with the standard finite element formulation. The major contribution is summarised in the form of a comprehensive algorithm for calculating the group velocity profiles. The method is compared with the existing analytical and numerical methods for calculation of dispersion curves. Finally, an experimental study in a multilayered composite plate is conducted and the results are found to be in good agreement. The technique is suitable to be used in all guided wave application areas such as material characterisation, non-destructive testing, and structural health monitoring.https://www.mdpi.com/2076-3417/11/10/4319guided wavesstructural health monitoringgroup velocitylayered structuresdispersion curves |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Muhammad Khalid Malik Dimitrios Chronopoulos Francesco Ciampa |
spellingShingle |
Muhammad Khalid Malik Dimitrios Chronopoulos Francesco Ciampa Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element Scheme Applied Sciences guided waves structural health monitoring group velocity layered structures dispersion curves |
author_facet |
Muhammad Khalid Malik Dimitrios Chronopoulos Francesco Ciampa |
author_sort |
Muhammad Khalid Malik |
title |
Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element Scheme |
title_short |
Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element Scheme |
title_full |
Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element Scheme |
title_fullStr |
Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element Scheme |
title_full_unstemmed |
Direct Calculation of the Group Velocity for Two-Dimensional Complex, Composite and Periodic Structures Using a Wave and Finite Element Scheme |
title_sort |
direct calculation of the group velocity for two-dimensional complex, composite and periodic structures using a wave and finite element scheme |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2021-05-01 |
description |
Guided waves have immense potential for structural health monitoring applications in numerous industries including aerospace. It is necessary to evaluate guided wave dispersion characteristics, i.e., group velocity and phase velocity profiles, for using them effectively. For complex structures, the profiles can have highly irregular shapes. In this work, a direct method for calculating the group velocity profiles for complex, composite, and periodic structures using a wave and finite element scheme is presented. The group velocity calculation technique is easy to implement, highly computationally efficient, and works with the standard finite element formulation. The major contribution is summarised in the form of a comprehensive algorithm for calculating the group velocity profiles. The method is compared with the existing analytical and numerical methods for calculation of dispersion curves. Finally, an experimental study in a multilayered composite plate is conducted and the results are found to be in good agreement. The technique is suitable to be used in all guided wave application areas such as material characterisation, non-destructive testing, and structural health monitoring. |
topic |
guided waves structural health monitoring group velocity layered structures dispersion curves |
url |
https://www.mdpi.com/2076-3417/11/10/4319 |
work_keys_str_mv |
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