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The effect of the leucite transformation on dental porcelain expansion

  • J. R. Mackert(corresponding author)
    ,
  • M. B. Butts
    ,
  • C. W. Fairhurst
*Corresponding author for this work
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Abstract

Nearly all commercial dental porcelains designed for fusing to metal rely upon the crystalline phase leucite to supply the needed high thermal expansion. Repeated firings and certain heat treatments are known to alter dental porcelain thermal expansion behavior, and such changes in expansion could induce cracking, checking, or spalling of the porcelain. Because of the likelihood of involvement of leucite in these expansion changes, this study sought to determine the role of leucite thermal expansion, and particularly the displacive (martensitic) transformation of leucite, in the expansion behavior of the leucite-containing Component No. 1 of the Weinstein patent. The thermal expansion of this frit was modelled as a weighted average of the leucite expansion (including the discontinuous volume change that accompanies the transformation) as measured by hot-state x-ray diffraction and the expansion of the glass matrix calculated from its composition. Close agreement was found between the predicted and measured expansion for Component No. 1. The non-linearity of the α curve for Component No. 1 is explained by the discontinuous volume change during the leucite transformation.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 32-36 (5 pages)

Journal (Volume, Issue Number)

Dental Materials (Volume 2, Issue 1)

Publication milestones

  • Published - 02/1986

Publication status

Published - 02/1986

ISSN

0109-5641

Publication IDs

  • Scopus: 0022671798
  • PubMed: 3458629

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1
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0.33
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2
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0.67
Fractional count
1
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1
Scopus
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Funding Details

Acknowledgement - The support of this work by NIH/NIDR Grant No. DE 06266 and the Medical College of Georgia School of Dentistry is gratefully acknowledged. The authors would also like to thank the J. E Je-lenko Co. for preparing the Component No. 1 frit of the Weinstein patent and Mr. Ed Llewellyn of Carnegie-Mellon University for running the hot stage x-ray diffraction patterns.