Elastic moduli of precompressed pyrophyllite used in ultrahigh-pressure research
Author(s) -
Wolfgang Sachse,
Arthur L. Ruoff
Publication year - 1975
Publication title -
journal of applied physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 319
eISSN - 1089-7550
pISSN - 0021-8979
DOI - 10.1063/1.322175
Subject(s) - pyrophyllite , bulk modulus , materials science , shear modulus , anisotropy , composite material , shear waves , longitudinal wave , elastic modulus , shear (geology) , mineralogy , optics , wave propagation , geology , physics
The propagation of ultrasonic pulses in pyrophyllite specimens was studied to investigate the effect of specimen precompression on the measured elastic moduli. Measurements were made at room pressure and, for the precompressed specimens, to pressures of 3 kbar. We find pyrophyllite to be elastically anisotropic, apparently the result of the fabric present in our material. The room‐pressure adiabatic bulk modulus as measured on specimens made of isostatically compacted powdered pyrophyllite was determined to be 96.1 kbar. We found the wave speeds of ultrasonic pulses in pyrophyllite to decrease with increasing specimen precompression. A limiting value of precompression was found, above which no further decrease in wave speed is observed. For the shear‐wave speeds this occurs at 10 kbar, while for the longitudinal wave at 25 kbar. In the limit, the shear waves propagate 20% slower than in the unprecompressed samples; for the longitudinal wave the difference is 30%. The change in bulk modulus resulting from ...
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