Impact studies of five ceramic materials and pyrex
โ Scribed by J.E. Reaugh; A.C. Holt; M.L. Welkins; B.J. Cunningham; B.L. Hord; A.S. Kusubov
- Book ID
- 104344310
- Publisher
- Elsevier Science
- Year
- 1999
- Tongue
- English
- Weight
- 997 KB
- Volume
- 23
- Category
- Article
- ISSN
- 0734-743X
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โฆ Synopsis
We measured the ballistic performance of five ceramic materials (alumina, silicon carbide, boron carbide, aluminum nitride, and titanium diboride) and Pyrex, when they are backed by thick steel plates. The projectile for all tests was a right-circular cylinder of tungsten sinter-alloy W2 with length 25.4 mm and diameter 6.35 mm, tired at velocities from 1.35 to 2.65 km/s. For this threat we determined the minimum area1 density of each material that is needed to keep the projectile from penetrating the backup steel. For all of the facing materials studied here, this performance measure increases approximately linearly with projectile velocity. However, the rate of increase is significantly lower for aluminum nitride than for the other materials studied. Indeed, aluminum nitride is a poor performer at the lowest velocity tested, but is clearly the best at the highest velocity. Our computer simulations show the significant influence of the backing material on ceramic performance, manifested by a transition region extending two projectile diameters upstream from the material interface. Experiments with multiple material layers show that this influence also manifests itself through a significant dependence of ballistic performance on the ordering of the material layers.
๐ SIMILAR VOLUMES
Thermoelectric polycrystalline ceramic materials were prepared by a new ceramic technology. Samples of p-type 72% Sb2Te3 + 25% Bi2Te 3 + 3% Sb2Se a doped with tellurium and 90% Bi2Te a + 5% Sb2Te3 + 5% Sb2Se 3 doped with Sbl 3 or Agl were studied. The new ceramic cooling materials have an inhomogene