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Processing and characterization of boron carbide-hafnium diboride ceramics

Posted on:2012-09-17Degree:Ph.DType:Dissertation
University:Missouri University of Science and TechnologyCandidate:Brown-Shaklee, Harlan JamesFull Text:PDF
GTID:1451390008997005Subject:Engineering
Abstract/Summary:PDF Full Text Request
Hafnium diboride based ceramics are promising candidate materials for advanced aerospace and nuclear reactor components. The effectiveness of boron carbide and carbon as HfB2 sintering additives was systematically evaluated. In the first stage of the research, boron carbide and carbon additives were found to improve the densification behavior of milled HfB2 powder in part by removing oxides at the HfB2 surface during processing. Boron carbide additives reduced the hot pressing temperature of HfB2 by 150°C compared to carbon, which reduced the hot pressing temperature by ∼50°C. Reduction of oxide impurities alone could not explain the difference in sintering enhancement, however, and other mechanisms of enhancement were evaluated.;Boron carbides throughout the homogeneity range were characterized to understand other mechanisms of sintering enhancement in HfB2. Heavily faulted carbon rich and boron rich boron carbides were synthesized for addition to HfB2. The greatest enhancement to densification was observed in samples containing boron- and carbon-rich compositions whereas B6.5 C provided the least enhancement to densification. It is proposed that carbon rich and boron rich boron carbides create boron and hafnium point defects in HfB2, respectively, which facilitate densification. Evaluation of the thermal conductivity (kth) between room temperature and 2000°C suggested that the stoichiometry of the boron carbide additives did not significantly affect kth of HfB2-BxC composites. The improved sinterability and the high kth (∼110 W/m-K at 300K and ∼90 W/m-K at 1000°C) of HfB2-BxC ceramics make them excellent candidates for isotopically enriched reactor control materials.
Keywords/Search Tags:Boron, Hfb2, Rich
PDF Full Text Request
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