Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy

Substantial cost reduction for cast TiAl automotive parts could be achieved by eliminating hot isostatic pressing (HIPing) procedure during the material processing. In this respect, a cast Ti-48Al (at %) intermetallic alloy is evaluated in the non-HIPed condition with the objective to establish the...

Full description

Saved in:
Bibliographic Details
Main Authors: Hamad, S., Nozue, A., Tamin, M. N.
Format: Conference or Workshop Item
Published: 2000
Subjects:
Online Access:http://eprints.utm.my/id/eprint/7098/
http://www.scopus.com
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.7098
record_format eprints
spelling my.utm.70982017-08-27T00:52:34Z http://eprints.utm.my/id/eprint/7098/ Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy Hamad, S. Nozue, A. Tamin, M. N. TJ Mechanical engineering and machinery Substantial cost reduction for cast TiAl automotive parts could be achieved by eliminating hot isostatic pressing (HIPing) procedure during the material processing. In this respect, a cast Ti-48Al (at %) intermetallic alloy is evaluated in the non-HIPed condition with the objective to establish the fatigue crack growth response and identify the fracture mechanisms. For this purpose, a series of fatigue crack growth tests were performed on the alloy with three different microstructures, with a load ratio, R=0.1, in both air and vacuum environment. Environment effect is manifested in the threshold ΔK levels of 9.6 and 13 MPa√m for crack growth response in air and vacuum, respectively. In the intermediate range of crack growth rates between 10 -5 to 10-3 mm/cycle, crack bridging by shear ligament formation describes the crack growth process, with ΔK varying from 13 to 35 MPa√m. Extensive crack bridging effect in the duplex microstructure is reflected in the crack growth retardation which reaches the lowest minimum crack growth rate at 2×10-6 mm/cycle in each of the three crack bridging stages observed. Other fatigue damage mechanisms observed are crack deflection, crack branching, stepped crack growth and microcracks initiation in the crack tip plastic zone, particularly at near threshold crack growth. 2000 Conference or Workshop Item PeerReviewed Hamad, S. and Nozue, A. and Tamin, M. N. (2000) Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy. In: Structures and Materials. http://www.scopus.com
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Hamad, S.
Nozue, A.
Tamin, M. N.
Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy
description Substantial cost reduction for cast TiAl automotive parts could be achieved by eliminating hot isostatic pressing (HIPing) procedure during the material processing. In this respect, a cast Ti-48Al (at %) intermetallic alloy is evaluated in the non-HIPed condition with the objective to establish the fatigue crack growth response and identify the fracture mechanisms. For this purpose, a series of fatigue crack growth tests were performed on the alloy with three different microstructures, with a load ratio, R=0.1, in both air and vacuum environment. Environment effect is manifested in the threshold ΔK levels of 9.6 and 13 MPa√m for crack growth response in air and vacuum, respectively. In the intermediate range of crack growth rates between 10 -5 to 10-3 mm/cycle, crack bridging by shear ligament formation describes the crack growth process, with ΔK varying from 13 to 35 MPa√m. Extensive crack bridging effect in the duplex microstructure is reflected in the crack growth retardation which reaches the lowest minimum crack growth rate at 2×10-6 mm/cycle in each of the three crack bridging stages observed. Other fatigue damage mechanisms observed are crack deflection, crack branching, stepped crack growth and microcracks initiation in the crack tip plastic zone, particularly at near threshold crack growth.
format Conference or Workshop Item
author Hamad, S.
Nozue, A.
Tamin, M. N.
author_facet Hamad, S.
Nozue, A.
Tamin, M. N.
author_sort Hamad, S.
title Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy
title_short Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy
title_full Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy
title_fullStr Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy
title_full_unstemmed Fatigue crack growth mechanisms of cast Ti-48Al (at. %) alloy
title_sort fatigue crack growth mechanisms of cast ti-48al (at. %) alloy
publishDate 2000
url http://eprints.utm.my/id/eprint/7098/
http://www.scopus.com
_version_ 1643644702368464896
score 13.159267