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Development of Si3N4 and SiC of improved toughnessThe application of energy absorbing surface layers to Si3N4 and SiC was investigated. Among the layers studied were microcracked materials such as iron titanate and a silica-zircon mixture and porous materials such as reaction sintered Si3N4. Energy absorption due to microcrack extension upon impact was found not to be an important mechanism. Instead, the fivefold improvement in Charpy and ballistic impact at elevated temperature (1250 C and 1370 C) found for Fe2TiO5 was due to plastic deformation while similar improvement found for silica-zircon mixtures at RT was due to crushing of the porous material. Due to thermal expansion mismatch, these two materials could not withstand thermal cycling when used as energy absorbing surface layers on Si3N4. Reaction sintered Si3N4 layers on dense Si3N4 were found to give up to a sevenfold increase in ballistic impact resistance due to crushing of the layer upon impact. High porosity (45%), large particle size R.S. Si3N4 layers fabricated from -100, +200 mesh Si powder gave better impact improvement than less porous (30%), small particle size layers fabricated from -325 mesh Si powder.
Document ID
19780009273
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Brennan, J. J.
(United Technologies Research Center East Hartford, CT, United States)
Hulse, C. O.
(United Technologies Research Center East Hartford, CT, United States)
Date Acquired
September 3, 2013
Publication Date
October 25, 1977
Subject Category
Nonmetallic Materials
Report/Patent Number
R77-912252-23
NASA-CR-135306
Report Number: R77-912252-23
Report Number: NASA-CR-135306
Accession Number
78N17216
Funding Number(s)
CONTRACT_GRANT: NAS3-19731
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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