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Thermoacoustical parameters of polymers at low temperatures
Author(s) -
Kumar M. Ravi,
Reddy R. R.,
Rao T. V. R.,
Sharma B. K.
Publication year - 1994
Publication title -
journal of applied polymer science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.575
H-Index - 166
eISSN - 1097-4628
pISSN - 0021-8995
DOI - 10.1002/app.1994.070511015
Subject(s) - isochoric process , isobaric process , thermodynamics , polymer , isothermal process , intermolecular force , materials science , grüneisen parameter , volume (thermodynamics) , exponent , polymer chemistry , chemistry , physics , thermal expansion , molecule , organic chemistry , composite material , linguistics , philosophy
Abstract The Moelwyn‐Hughes parameter has been utilized to evaluate a number of thermoacoustical parameters, viz., the Beyer nonlinear parameter; the isothermal, isobaric, and isochoric Grüneisen parameters; the repulsive exponent of intermolecular potential; the molecular constant; the fractional available volume; the Sharma thermoacoustical parameter S o ; and the Anderson–Grüneisen parameter for a wide variety of polymers at different low temperatures. A relationship among the isobaric, isothermal, and isochoric microscopic (lattice) Grüneisen parameters has been examined and analyzed in the case of several polymers. The results have been used to develop understanding of the significance of microscopic factors such as molecular order and intermolecular forces upon macroscopi thermoacoustic properties. The parameter S 0 remains invariant with temperature over a wide range and retains, on average, a constant value of 1.10 for several polymers at low temperatures, similar to a wide variety of substances. The present treatment has the distinct advantage that several thermoacoustic parameters can be evaluated form the knowledge of volume expansivity data alone. © 1994 John Wiley & Sons, Inc.