Low cycle fatigue behavior of in‐situ aluminum based composite reinforced with submicron TiB~2~ and TiC particulates was investigated. This novel composite was prepared from the TiO~2~‐Al‐B‐C system via reactive hot pressing. The incorporation of carbon into such a system induces the formation of Ti
Processing and Characterization of Al-Cu and Al-Mg Base Composites Reinforced with TiC
✍ Scribed by A. Contreras; A. Albiter; E. Bedolla; R. Pérez
- Publisher
- John Wiley and Sons
- Year
- 2004
- Tongue
- English
- Weight
- 493 KB
- Volume
- 6
- Category
- Article
- ISSN
- 1438-1656
No coin nor oath required. For personal study only.
📜 SIMILAR VOLUMES
When it is attached onto the surface of an inorganic filler (kaolin, barite), the (BuO) 4 Ti/BuMgOct/EtAlCl 2 /Et 3 Al system is a highly efficient and very promising catalyst for the production of high-performance polyethylene-based composites. The surface concentration of the hydroxyl groups, the
Polyethylene-based composites have been prepared by ethylene polymerization with a Al/Ti/Mg catalyst previously deposited on the surface of kaolin (Satintone W/W and Satintone 5) or barite. 1 Molecular weight (M w ) of the polyethylene matrix has been estimated from melt viscosity under steady shear
## Abstract Hybrid composites, based on poly(ether sulfone) (PES) and glass fiber–reinforced copolyester liquid crystalline polymer (gLCP) up to 40% gLCP, were obtained by injection molding: these polymers were immiscible. Despite its higher viscosity, the gLCP acted as a processing aid for PES. Th