Microstructural evolution in Ti-6.8Al-3.2Mo-1.8Zr-0.3Si alloy during a newly designed thermomechanical schedule has been systematically studied with the aim of obtaining a suitable microstructure for superplastic forming. The schedule involves prior processing in the beta phase field and subsequent rolling in the (alpha + beta) phase field. In all experiments the starting material was thermally or thermomechanically treated in the beta phase field and subsequently quenched in order to produce a martensitic structure. The morphology of the primary alpha in material for hot rolling could be substantially altered from that obtained with the conventional (alpha + beta) processing schedule of two phase titanium alloys. Prior beta processed micro...
To compete with other structural materials despite their high cost, titanium alloys have to provide ...
AbstractTitanium alloys are characterized by great versatility arising from the ability to obtain a ...
A metastable β titanium alloy, BTi-6554 (Ti-6Cr-5Mo-5V-4Al) has been developed for structural applic...
In the current study, the evolution of microstructure and texture has been studied for Ti-6Al-4V-0.1...
Manufacturing titanium alloys with simultaneous improvement in strength and ductility poses a challe...
A combined set of thermo-mechanical steps recommended for high strength beta Ti alloy are homogeniza...
Titanium alloys represent an ever increasing proportion of the materials employed in aerostructural ...
Titanium alloys subjected to suitable thermomechanical processing (TMP) schedules can exhibit superp...
The evolution of texture in the β-phase of a two-phase (O+B2) titanium–aluminide Ti–22Al–25Nb (at.%)...
The evolution of texture in the β-phase of a two-phase (O+B2) titanium–aluminide Ti–22Al–25Nb (at.%)...
Deformation of Ti-6Al-4V alloy in the \beta phase field is generally considered to be trivial since ...
The microstructure evolution during solution treatment at (alpha+beta) two phase region and subseque...
Deformation of Ti-6Al-4V alloy in the \beta phase field is generally considered to be trivial since ...
The microstructure evolution during solution treatment at (alpha+beta) two phase region and subseque...
Beta titanium alloys are increasingly the best choice for automotive and aerospace applications due ...
To compete with other structural materials despite their high cost, titanium alloys have to provide ...
AbstractTitanium alloys are characterized by great versatility arising from the ability to obtain a ...
A metastable β titanium alloy, BTi-6554 (Ti-6Cr-5Mo-5V-4Al) has been developed for structural applic...
In the current study, the evolution of microstructure and texture has been studied for Ti-6Al-4V-0.1...
Manufacturing titanium alloys with simultaneous improvement in strength and ductility poses a challe...
A combined set of thermo-mechanical steps recommended for high strength beta Ti alloy are homogeniza...
Titanium alloys represent an ever increasing proportion of the materials employed in aerostructural ...
Titanium alloys subjected to suitable thermomechanical processing (TMP) schedules can exhibit superp...
The evolution of texture in the β-phase of a two-phase (O+B2) titanium–aluminide Ti–22Al–25Nb (at.%)...
The evolution of texture in the β-phase of a two-phase (O+B2) titanium–aluminide Ti–22Al–25Nb (at.%)...
Deformation of Ti-6Al-4V alloy in the \beta phase field is generally considered to be trivial since ...
The microstructure evolution during solution treatment at (alpha+beta) two phase region and subseque...
Deformation of Ti-6Al-4V alloy in the \beta phase field is generally considered to be trivial since ...
The microstructure evolution during solution treatment at (alpha+beta) two phase region and subseque...
Beta titanium alloys are increasingly the best choice for automotive and aerospace applications due ...
To compete with other structural materials despite their high cost, titanium alloys have to provide ...
AbstractTitanium alloys are characterized by great versatility arising from the ability to obtain a ...
A metastable β titanium alloy, BTi-6554 (Ti-6Cr-5Mo-5V-4Al) has been developed for structural applic...