Vibration analysis of an axially moving multiscale composite plate subjected to thermal loading

This study investigated the effects of temperature on free vibrations and critical transport speeds of an axially moving multiscale composite plate. On the basis of the frequency-temperature equivalence principle, a linear mathematical model of the moving multiscale composite plate is derived in the...

Full description

Bibliographic Details
Main Author: Marynowski Krzysztof
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201814806003
id doaj-d4fd6dbab94941b4b43e40831901df94
record_format Article
spelling doaj-d4fd6dbab94941b4b43e40831901df942021-02-02T07:41:48ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011480600310.1051/matecconf/201814806003matecconf_icoev2018_06003Vibration analysis of an axially moving multiscale composite plate subjected to thermal loadingMarynowski KrzysztofThis study investigated the effects of temperature on free vibrations and critical transport speeds of an axially moving multiscale composite plate. On the basis of the frequency-temperature equivalence principle, a linear mathematical model of the moving multiscale composite plate is derived in the complex frequency domain. Fractional standard rheological model of the plate material as the function of reduced frequency depended on the temperature is determined. In numerical investigations carbon nanotubes- and graphene-reinforced copper plate was taken into account.. To describe thermomechanical properties of the plate material, the investigation results obtained from the molecular dynamics studies and the experimental characteristic of beryllium copper in low temperatures presented in literature is taken into account.. The effects of temperature, transport speed, and internal damping on natural frequencies and critical transport speed are analyzed. The critical transport speeds of the graphene-reinforced multiscale composite are higher than both carbon nanotubes-reinforced composite as well as the comparable copper alloy.https://doi.org/10.1051/matecconf/201814806003
collection DOAJ
language English
format Article
sources DOAJ
author Marynowski Krzysztof
spellingShingle Marynowski Krzysztof
Vibration analysis of an axially moving multiscale composite plate subjected to thermal loading
MATEC Web of Conferences
author_facet Marynowski Krzysztof
author_sort Marynowski Krzysztof
title Vibration analysis of an axially moving multiscale composite plate subjected to thermal loading
title_short Vibration analysis of an axially moving multiscale composite plate subjected to thermal loading
title_full Vibration analysis of an axially moving multiscale composite plate subjected to thermal loading
title_fullStr Vibration analysis of an axially moving multiscale composite plate subjected to thermal loading
title_full_unstemmed Vibration analysis of an axially moving multiscale composite plate subjected to thermal loading
title_sort vibration analysis of an axially moving multiscale composite plate subjected to thermal loading
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description This study investigated the effects of temperature on free vibrations and critical transport speeds of an axially moving multiscale composite plate. On the basis of the frequency-temperature equivalence principle, a linear mathematical model of the moving multiscale composite plate is derived in the complex frequency domain. Fractional standard rheological model of the plate material as the function of reduced frequency depended on the temperature is determined. In numerical investigations carbon nanotubes- and graphene-reinforced copper plate was taken into account.. To describe thermomechanical properties of the plate material, the investigation results obtained from the molecular dynamics studies and the experimental characteristic of beryllium copper in low temperatures presented in literature is taken into account.. The effects of temperature, transport speed, and internal damping on natural frequencies and critical transport speed are analyzed. The critical transport speeds of the graphene-reinforced multiscale composite are higher than both carbon nanotubes-reinforced composite as well as the comparable copper alloy.
url https://doi.org/10.1051/matecconf/201814806003
work_keys_str_mv AT marynowskikrzysztof vibrationanalysisofanaxiallymovingmultiscalecompositeplatesubjectedtothermalloading
_version_ 1724299045193646080