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Computations of Ultrasonic Parameters in Alloys
Author(s) -
Pramod Kumar Yadawa
Publication year - 2011
Publication title -
physics research international
Language(s) - English
Resource type - Journals
eISSN - 2090-2239
pISSN - 2090-2220
DOI - 10.1155/2011/350540
Subject(s) - ultrasonic sensor , materials science , attenuation , maxima , debye , maxima and minima , debye model , crystal (programming language) , condensed matter physics , acoustics , optics , physics , mathematical analysis , art , programming language , mathematics , performance art , computer science , art history
The ultrasonic properties like ultrasonic attenuation, sound velocity in the hexagonal Zr100−Sn alloys have been studied along unique axis at room temperature. The second- and third-order elastic constants (SOEC & TOEC) have been calculated for these alloys using Lennard-Jones potential. The velocities and 1 have minima and maxima, respectively, at 45° with unique axis of the crystal, while 2 increases with the angle from unique axis. The inconsistent behaviour of angle-dependent velocities is associated to the action of second-order elastic constants. Debye average sound velocities of these alloys are increasing with the angle and has maximum at 55° with unique axis at room temperature. Hence, when a sound wave travels at 55° with unique axis of these alloys, then the average sound velocity is found to be maximum. The mechanical and ultrasonic properties of these alloys will be better than pure Zr and Sn due to their high SOEC and ultrasonic velocity and low ultrasonic attenuation. The comparison of calculated ultrasonic parameters with available theoretical/experimental physical parameters gives information about classification of these alloys

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