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Beta Titanium Alloys Produced from Titanium Hydride: Effect of Alloying Elements on Titanium Hydride Decomposition
by
Tsipas, Sophia Alexandra
, Wilczynski, Pablo
, Gordo, Elena
, Chirico, Caterina
in
beta titanium alloys
/ dehydrogenation
/ low-cost titanium alloys
/ phase transformation
/ titanium hydride
2020
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Beta Titanium Alloys Produced from Titanium Hydride: Effect of Alloying Elements on Titanium Hydride Decomposition
by
Tsipas, Sophia Alexandra
, Wilczynski, Pablo
, Gordo, Elena
, Chirico, Caterina
in
beta titanium alloys
/ dehydrogenation
/ low-cost titanium alloys
/ phase transformation
/ titanium hydride
2020
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Do you wish to request the book?
Beta Titanium Alloys Produced from Titanium Hydride: Effect of Alloying Elements on Titanium Hydride Decomposition
by
Tsipas, Sophia Alexandra
, Wilczynski, Pablo
, Gordo, Elena
, Chirico, Caterina
in
beta titanium alloys
/ dehydrogenation
/ low-cost titanium alloys
/ phase transformation
/ titanium hydride
2020
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Beta Titanium Alloys Produced from Titanium Hydride: Effect of Alloying Elements on Titanium Hydride Decomposition
Journal Article
Beta Titanium Alloys Produced from Titanium Hydride: Effect of Alloying Elements on Titanium Hydride Decomposition
2020
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Overview
The use of titanium hydride as a raw material has been an attractive alternative for the production of titanium components produced by powder metallurgy, due to increased densification of Ti compacts, greater control of contamination and cost reduction of the raw materials. However, a significant amount of hydrogen that often remains on the samples could generate degradation of the mechanical properties. Therefore, understanding decomposition mechanisms is essential to promote the components’ long life. Several studies on titanium hydride (TiH2) decomposition have been developed; nevertheless, few studies focus on the effect of the alloying elements on the dehydrogenation process. In this work, the effects of the addition of different amounts of Fe (5 and 7 wt. %) and Nb (12, 25, and 40 wt. %) as alloying elements were evaluated in detail. Results suggest that α→β transformation of Ti occurs below 800 °C; β phase can be observed at lower temperature than the expected according to the phase diagram. It was found that β phase transformation could take place during the intermediate stage of dehydrogenation. A mechanism was proposed for the effect of allying elements on the dehydrogenation process.
Publisher
MDPI AG
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