1991Journal of the American Ceramic SocietyRequires access

Thermal Expansion Anisotropy and Acoustic Emission of NaZr 2 P 3 O 12 Family Ceramics

V. Srikanth, E. C. Subbarao, Dinesh Agrawal, Chi‐Yuen Huang, Rustum Roy, Gutti V. Rao

Open publisher page 58 citations

Abstract

Most members of the NaZr 2 P 3 O 12 (NZP) family possess low, near zero, overall thermal expansion coefficients. However, they also exhibit anisotropy of axial thermal expansion. Some compounds have opposite anisotropy; for example, the a parameter of CaZr 4 P 6 O 24 contracts on heating and that of SrZr 4 P 6 O 24 expands, while the c parameter expands for the Ca compound and contracts for the Sr compound. The anisotropy of the axial thermal expansion of these materials is believed to induce microcracking. The acoustic emission method was employed here to detect microcracking in ceramics due to the axial thermal expansion anisotropy. Acoustic signals were observed during cooling of the Ca and Sr compounds from 500°C, and Na and K compounds from 600°C. On the other hand, no acoustic emission signal is detected in Ca 0.5 Sr 0.5 Zr 4 P 6 O 24 ceramics, in which the lattice parameters a and c remain nearly unchanged in the temperature range of room temperature to 500°C. Thus, a direct correlation between microcracking of ceramics and their anisotropic axial thermal expansion coefficients was established by employing acoustic emission monitoring techniques.

About this research paper

What this paper is about

Most members of the NaZr 2 P 3 O 12 (NZP) family possess low, near zero, overall thermal expansion coefficients. However, they also exhibit anisotropy of axial thermal expansion. Some compounds have opposite anisotropy; for example, the a parameter of CaZr 4 P 6 O 24 contracts on heating and that of SrZr 4 P 6 O 24 expands, while the c parameter expands for the Ca compound and contracts for the Sr compound. The anisotropy of the axial thermal expansion of these materials is believed to induce microcracking. The acoustic emission method was employed here to detect microcracking in ceramics due to the axial thermal expansion anisotropy. Acoustic signals were observed during cooling of the Ca and Sr compounds from 500°C, and Na and K compounds from 600°C. On the other hand, no acoustic emission signal is detected in Ca 0.5 Sr 0.5 Zr 4 P 6 O 24 ceramics, in which the lattice parameters a and c remain nearly unchanged in the temperature range of room temperature to 500°C. Thus, a direct correlation between microcracking of ceramics and their anisotropic axial thermal expansion coefficients was established by employing acoustic emission monitoring techniques.

Why it matters

OpenAlex reports 58 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Most members of the NaZr 2 P 3 O 12 (NZP) family possess low, near zero, overall thermal expansion coefficients. However, they also exhibit anisotropy of axial thermal expansion. Some compounds have opposite anisotropy; for example, the a parameter of CaZr 4 P 6 O 24 contracts on heating and that of SrZr 4 P 6 O 24 expands, while the c parameter expands for the Ca compound and contracts for the Sr compound. The anisotropy of the axial thermal expansion of these materials is believed to induce microcracking. The acoustic emission method was employed here to detect microcracking in ceramics due to the axial thermal expansion anisotropy. Acoustic signals were observed during cooling of the Ca and Sr compounds from 500°C, and Na and K compounds from 600°C. On the other hand, no acoustic emission signal is detected in Ca 0.5 Sr 0.5 Zr 4 P 6 O 24 ceramics, in which the lattice parameters a and c remain nearly unchanged in the temperature range of room temperature to 500°C. Thus, a direct correlation between microcracking of ceramics and their anisotropic axial thermal expansion coefficients was established by employing acoustic emission monitoring techniques.

Key concepts: Anisotropy, Thermal expansion, Acoustic emission, Ceramic, Materials science, Atmospheric temperature range, Thermal, Lattice (music)

Related papers

Back to paper searchBrowse research topicsOriginal source
Thermal Expansion Anisotropy and Acoustic Emission of NaZr 2 P 3 O 12 Family Ceramics — Research Paper | ScholarLens