Superplastic Foaming of Titanium and Ti-6Al-4V
- 1 January 1998
- journal article
- Published by Springer Nature in MRS Proceedings
Abstract
Solid-state foaming of metals can be achieved by hot-isostatic pressing of powders in presence of argon followed by expansion of the resulting high-pressure argon bubbles at ambient pressure and elevated temperature. This foaming technique was first demonstrated by Kearns et al. [1] for Ti-6Al-4V, but is limited by its low creep rate and ductility, which lead to early cell wall fracture. We address these issues by performing the foaming step under superplastic conditions. Rather than using microstructural superplasticity (requiring fine grains which are difficult to achieve in porous powder-metallurgy materials), we used transformation superplasticity, which occurs at all grain sizes by biasing with a deviatoric stress (from the pore pressure) of internal stresses (from the allotropic mismatch during thermal cycling about the allotropic temperature range). As compared to control experiments performed under isothermal creep conditions, superplastic foaming under temperature cycling of unalloyed titanium and alloyed Ti-6Al-4V led to a significantly higher pore volume fraction and higher foaming rate.Keywords
This publication has 5 references indexed in Scilit:
- Transformation-mismatch superplasticity in reinforced and unreinforced titaniumPublished by Elsevier ,1999
- Biaxial deformation of Ti-6Al-4V and Ti-6Al-4V/TiC composites by transformation-mismatch superplasticityMaterials Science and Engineering: A, 1997
- Superplasticity in Metals and CeramicsPublished by Cambridge University Press (CUP) ,1997
- Fundamental characteristics of the transformation superplasticity in a commercially-pure titanium.Transactions of the Iron and Steel Institute of Japan, 1987
- The deformation of metals under small stresses during phase transformationsProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1965