Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theory

This research problem is an investigation of wave propagation in a rotating initially stressed monoclinic piezoelectric thermo-elastic medium under with the effect of a magnetic field. A two-temperature generalized theory of thermo-elasticity in the context of Lord-Shulman’s theory is applied to stu...

Full description

Bibliographic Details
Main Author: Anand Kumar YADAV
Format: Article
Language:English
Published: University of Zielona Góra 2023-09-01
Series:International Journal of Applied Mechanics and Engineering
Subjects:
Online Access:https://www.ijame-poland.com/Magneto-thermo-piezo-elastic-wave-in-an-initially-stressed-rotating-monoclinic-crystal,172902,0,2.html
_version_ 1827804271961178112
author Anand Kumar YADAV
author_facet Anand Kumar YADAV
author_sort Anand Kumar YADAV
collection DOAJ
description This research problem is an investigation of wave propagation in a rotating initially stressed monoclinic piezoelectric thermo-elastic medium under with the effect of a magnetic field. A two-temperature generalized theory of thermo-elasticity in the context of Lord-Shulman’s theory is applied to study the waves under the magnetic field. The governing equations of a rotating initially stressed monoclinic piezoelectric thermo-elastic medium with a magnetic field are formulated. This research problem is solved analytically, for a two-dimensional model of the piezo-electric monoclinic solid, and concluded that there must be four piezo-thermoelastic waves, three coupled quasi waves (qP (quasi-P), qT (quasi-thermal), and qSV (quasi-SV)) and one piezoelectric potential (PE) wave propagating at different speeds. It is found that at least one of these waves is evanescent (an evanescent wave is a non-propagating wave that exists) and that there are therefore no more than three bulk waves. The speeds of different waves are calculated and the influence of the piezoelectric effect, two-temperature parameter, frequency, rotation, and magnetic field on phase velocity, attenuation coefficient, and specific loss is shown graphically. This model may be used in various fields, e.g. wireless communications, signal processing, and military defense equipment are all pertinent to this study.
first_indexed 2024-03-11T21:08:30Z
format Article
id doaj.art-19159b896fec44498ef69587f5989d9e
institution Directory Open Access Journal
issn 1734-4492
2353-9003
language English
last_indexed 2024-03-11T21:08:30Z
publishDate 2023-09-01
publisher University of Zielona Góra
record_format Article
series International Journal of Applied Mechanics and Engineering
spelling doaj.art-19159b896fec44498ef69587f5989d9e2023-09-29T07:53:31ZengUniversity of Zielona GóraInternational Journal of Applied Mechanics and Engineering1734-44922353-90032023-09-0128312715810.59441/ijame/172902172902Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theoryAnand Kumar YADAV0https://orcid.org/0000-0001-6702-4419Shishu Niketan Model Senior Secondary School, Sector 22-D, ChandigarhThis research problem is an investigation of wave propagation in a rotating initially stressed monoclinic piezoelectric thermo-elastic medium under with the effect of a magnetic field. A two-temperature generalized theory of thermo-elasticity in the context of Lord-Shulman’s theory is applied to study the waves under the magnetic field. The governing equations of a rotating initially stressed monoclinic piezoelectric thermo-elastic medium with a magnetic field are formulated. This research problem is solved analytically, for a two-dimensional model of the piezo-electric monoclinic solid, and concluded that there must be four piezo-thermoelastic waves, three coupled quasi waves (qP (quasi-P), qT (quasi-thermal), and qSV (quasi-SV)) and one piezoelectric potential (PE) wave propagating at different speeds. It is found that at least one of these waves is evanescent (an evanescent wave is a non-propagating wave that exists) and that there are therefore no more than three bulk waves. The speeds of different waves are calculated and the influence of the piezoelectric effect, two-temperature parameter, frequency, rotation, and magnetic field on phase velocity, attenuation coefficient, and specific loss is shown graphically. This model may be used in various fields, e.g. wireless communications, signal processing, and military defense equipment are all pertinent to this study.https://www.ijame-poland.com/Magneto-thermo-piezo-elastic-wave-in-an-initially-stressed-rotating-monoclinic-crystal,172902,0,2.htmlpiezo-electricitymonoclinicrotationmagnetic fieldphase velocityattenuation coefficientspecific losstwo-temperature
spellingShingle Anand Kumar YADAV
Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theory
International Journal of Applied Mechanics and Engineering
piezo-electricity
monoclinic
rotation
magnetic field
phase velocity
attenuation coefficient
specific loss
two-temperature
title Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theory
title_full Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theory
title_fullStr Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theory
title_full_unstemmed Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theory
title_short Magneto-thermo-piezo-elastic wave in an initially stressed rotating monoclinic crystal in a two-temperature theory
title_sort magneto thermo piezo elastic wave in an initially stressed rotating monoclinic crystal in a two temperature theory
topic piezo-electricity
monoclinic
rotation
magnetic field
phase velocity
attenuation coefficient
specific loss
two-temperature
url https://www.ijame-poland.com/Magneto-thermo-piezo-elastic-wave-in-an-initially-stressed-rotating-monoclinic-crystal,172902,0,2.html
work_keys_str_mv AT anandkumaryadav magnetothermopiezoelasticwaveinaninitiallystressedrotatingmonocliniccrystalinatwotemperaturetheory