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Recent research progresses of modification including whole alloying modification and surface modification on improving high temperature oxidation resistance of titanium alloys and titanium aluminides are reviewed.
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Overall, those factors have been highlighted in the paper that improve high temperature performance of RPC.
Under certain environments, these are not only designed to improve high temperature corrosion, but also erosion.
Some suggestions are given concerning future design of alloy compositions in order to improve high temperature creep properties even further.
LCO-NMC/Si-C full cells with a LiFOB additive have been found to exhibit improved high temperature electrochemical performance.
Cross-linking agent can prominently improve high temperature properties of SBS modified asphalt, especially at lower polymer content.
The new SCP polymer family, from DuPont Vespel has been designed to provide improved high temperature performance and overall cost savings in demanding applications.
By analogy with the results for sintered compacts, it is predicted that the rare-earth oxide joined parts may also exhibit improved high temperature performance.
Special boundaries have the potential to improve high temperature properties of metal alloys, and a type of microstructure engineerings called grain boundary engineering (GBE) can increase fractions of special boundaries and optimize their distribution in the microstructure.
The design of SiCN reinforced by SiC nanoparticles is attractive because it can improve high temperature properties and decrease the number of the processing cycles by minimizing the free space where precursor-derived ceramics should be filled.
In order to improve high temperature (over 2 273 K) ablation resistance, TaC and TaC/SiC composite coatings were deposited on carbon-carbon composites by CVD method utilizing reactive TaCl5-C3H6-H2-Ar TaCl5-C3H6-H2-Ar TaCl5-C3H6-H2-Ar TaCl5-C3H6-H2-Ar.
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