Rapid solidification of Ti-Al alloys under electromagnetic levitation condition

K. Zhou, H. P. Wang, J. Chang, B. Wei

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Ti-Al alloys are usually difficult to undercool because of their high reactivity in the liquid state. In this paper, the maximum undercoolings of 328 (0. 17TL) and 383K (0. 22TL) were achieved respectively for liquid Ti-20at%Al and Ti-51at<A alloys under electromagnetic levitation condition. On the basis of high undercooling, we investigated the containerless rapid solidification of Ti-Al alloys. For Ti-20at%Al alloy, the XRD analysis indicated that the solidification microstructure consists of the two phases α-Ti and α2-Ti3Al. The solidification microstructure for Ti 51at<Al alloy involves two phases γ-TiAl and α2-Ti3Al. Meanwhile, the microstructure formation mechanisms of Ti-20at%Al and Ti-51at<Al alloys studied. With the increase of undercooling, the soMAed microstructure of Ti-20at<Al alloy significantly changes from dispersive distribution to lamellar structure, and that of Ti-51atAl alloy changes from coarse grain and lamellar structure to lamellar structure. Furthermore, the micro hardness of Ti-20at%Al and Ti-51at%Al alloys reaches the maximum value up to 557 and 712HV respectively at the undercooling of 260 and 246K.

Original languageEnglish
Title of host publicationTi 2011 - Proceedings of the 12th World Conference on Titanium
Pages1460-1462
Number of pages3
StatePublished - 2012
Event12th World Conference on Titanium, Ti 2011 - Beijing, China
Duration: 19 Jun 201124 Jun 2011

Publication series

NameTi 2011 - Proceedings of the 12th World Conference on Titanium
Volume2

Conference

Conference12th World Conference on Titanium, Ti 2011
Country/TerritoryChina
CityBeijing
Period19/06/1124/06/11

Keywords

  • Electromagnetic levitation
  • Rapid solidification
  • Ti-al alloys

Fingerprint

Dive into the research topics of 'Rapid solidification of Ti-Al alloys under electromagnetic levitation condition'. Together they form a unique fingerprint.

Cite this