Prediction of temperature dependent wave dispersion and interaction properties in composite structures

Composite structures are widely used for aerospace and automotive applications. These operate within a broad temperature range varying between -100_C to 200_C for launch vehicles and -60_C to +50_C for aircraft and automotive vehicles. Hereby, the sensitivity of the wave propagation and interaction...

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Main Authors: Apalowo, R.K., Ampatzidis, T., Chronopoulos, D., Ichchou, M., Essa, Y., De La Escalera, F.M.
Format: Conference or Workshop Item
Published: 2017
Subjects:
Online Access:https://eprints.nottingham.ac.uk/52456/
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author Apalowo, R.K.
Ampatzidis, T.
Chronopoulos, D.
Ichchou, M.
Essa, Y.
De La Escalera, F.M.
author_facet Apalowo, R.K.
Ampatzidis, T.
Chronopoulos, D.
Ichchou, M.
Essa, Y.
De La Escalera, F.M.
author_sort Apalowo, R.K.
building Nottingham Research Data Repository
collection Online Access
description Composite structures are widely used for aerospace and automotive applications. These operate within a broad temperature range varying between -100_C to 200_C for launch vehicles and -60_C to +50_C for aircraft and automotive vehicles. Hereby, the sensitivity of the wave propagation and interaction properties of a composite structure to the ambient flight temperature is investigated. A wave finite element (WFE) and finite element (FE) based computational method is presented by which the temperature dependent wave dispersion characteristics and interaction phenomenon in a composite structures can be predicted. Initially, the temperature dependent mechanical properties of the panel in the range of -100_C to 150_C are measured experimentally using the Thermal Mechanical Analysis (TMA). Temperature dependent wave dispersion characteristics of each waveguide of the structural system, which is discretised as a system of a number of waveguides joined by a coupling element, is calculated using the WFE approach. The wave scattering properties, as a function of temperature, is determined by coupling the WFE wave characteristics models of the waveguides with the full FE modelling of the coupling element on which defect is included. Numerical case studies are exhibited for two waveguides coupled through a coupling element.
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format Conference or Workshop Item
id nottingham-52456
institution University of Nottingham Malaysia Campus
institution_category Local University
last_indexed 2025-11-14T20:24:24Z
publishDate 2017
recordtype eprints
repository_type Digital Repository
spelling nottingham-524562020-05-04T18:56:32Z https://eprints.nottingham.ac.uk/52456/ Prediction of temperature dependent wave dispersion and interaction properties in composite structures Apalowo, R.K. Ampatzidis, T. Chronopoulos, D. Ichchou, M. Essa, Y. De La Escalera, F.M. Composite structures are widely used for aerospace and automotive applications. These operate within a broad temperature range varying between -100_C to 200_C for launch vehicles and -60_C to +50_C for aircraft and automotive vehicles. Hereby, the sensitivity of the wave propagation and interaction properties of a composite structure to the ambient flight temperature is investigated. A wave finite element (WFE) and finite element (FE) based computational method is presented by which the temperature dependent wave dispersion characteristics and interaction phenomenon in a composite structures can be predicted. Initially, the temperature dependent mechanical properties of the panel in the range of -100_C to 150_C are measured experimentally using the Thermal Mechanical Analysis (TMA). Temperature dependent wave dispersion characteristics of each waveguide of the structural system, which is discretised as a system of a number of waveguides joined by a coupling element, is calculated using the WFE approach. The wave scattering properties, as a function of temperature, is determined by coupling the WFE wave characteristics models of the waveguides with the full FE modelling of the coupling element on which defect is included. Numerical case studies are exhibited for two waveguides coupled through a coupling element. 2017-07-23 Conference or Workshop Item PeerReviewed Apalowo, R.K., Ampatzidis, T., Chronopoulos, D., Ichchou, M., Essa, Y. and De La Escalera, F.M. (2017) Prediction of temperature dependent wave dispersion and interaction properties in composite structures. In: 24th International Congress on Sound and Vibration, 23-27 July 2017, London, UK. composite structure temperature dependency wave dispersion characteristics wave finite element wave scattering coefficients https://www.iiav.org/archives_icsv_last/2017_icsv24/content/papers/papers/full_paper_286_20170403124227418.pdf
spellingShingle composite structure
temperature dependency
wave dispersion characteristics
wave finite element
wave scattering coefficients
Apalowo, R.K.
Ampatzidis, T.
Chronopoulos, D.
Ichchou, M.
Essa, Y.
De La Escalera, F.M.
Prediction of temperature dependent wave dispersion and interaction properties in composite structures
title Prediction of temperature dependent wave dispersion and interaction properties in composite structures
title_full Prediction of temperature dependent wave dispersion and interaction properties in composite structures
title_fullStr Prediction of temperature dependent wave dispersion and interaction properties in composite structures
title_full_unstemmed Prediction of temperature dependent wave dispersion and interaction properties in composite structures
title_short Prediction of temperature dependent wave dispersion and interaction properties in composite structures
title_sort prediction of temperature dependent wave dispersion and interaction properties in composite structures
topic composite structure
temperature dependency
wave dispersion characteristics
wave finite element
wave scattering coefficients
url https://eprints.nottingham.ac.uk/52456/
https://eprints.nottingham.ac.uk/52456/