3D printing of high-purity silicon carbide. Terrani, K., Jolly, B., & Trammell, M. Journal of the American Ceramic Society, 103(3):1575–1581, 2020. _eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/jace.16888doi abstract bibtex A method for advanced manufacturing of silicon carbide offering complete freedom in geometric complexity in the three-dimensional space is described. The method combines binder jet printing and chemical vapor infiltration in a process capable of yielding a high-purity, fully crystalline ceramic—attributes essential for ideal performance in very high-temperature applications or in the presence of displacement damage. Thermal conductivity and characteristic equibiaxial flexural strength of the resulting monolithic SiC at room temperature are 37 W·(m·K)−1 and 297 MPa, respectively.
@article{terrani_3d_2020,
title = {{3D} printing of high-purity silicon carbide},
volume = {103},
copyright = {Published 2019. This article is a U.S. Government work and is in the public domain in the USA.},
issn = {1551-2916},
doi = {10.1111/jace.16888},
abstract = {A method for advanced manufacturing of silicon carbide offering complete freedom in geometric complexity in the three-dimensional space is described. The method combines binder jet printing and chemical vapor infiltration in a process capable of yielding a high-purity, fully crystalline ceramic—attributes essential for ideal performance in very high-temperature applications or in the presence of displacement damage. Thermal conductivity and characteristic equibiaxial flexural strength of the resulting monolithic SiC at room temperature are 37 W·(m·K)−1 and 297 MPa, respectively.},
language = {en},
number = {3},
urldate = {2023-10-30},
journal = {Journal of the American Ceramic Society},
author = {Terrani, Kurt and Jolly, Brian and Trammell, Michael},
year = {2020},
note = {\_eprint: https://onlinelibrary.wiley.com/doi/pdf/10.1111/jace.16888},
keywords = {3D printing, processing, silicon carbide},
pages = {1575--1581},
}
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