A SIMULATION OF DISLOCATION DYNAMICS AND OF THE FLOW-STRESS ANOMALY IN L1(2) ALLOYS

Citation
B. Devincre et al., A SIMULATION OF DISLOCATION DYNAMICS AND OF THE FLOW-STRESS ANOMALY IN L1(2) ALLOYS, Philosophical magazine. A. Physics of condensed matter. Structure, defects and mechanical properties, 75(5), 1997, pp. 1263-1286
Citations number
38
Categorie Soggetti
Physics, Applied","Material Science","Physics, Condensed Matter","Metallurgy & Metallurigical Engineering
ISSN journal
13642804
Volume
75
Issue
5
Year of publication
1997
Pages
1263 - 1286
Database
ISI
SICI code
1364-2804(1997)75:5<1263:ASODDA>2.0.ZU;2-9
Abstract
This work examines the flow stress anomaly of L1(2) alloys by means of a mesoscopic two-dimensional simulation of dislocation dynamics. The basic properties modelled are slip in the octahedral plane, the condit ions at which screw dislocation segments are locked by formation of Ke ar-Wilsdorf locks and subsequently unlocked, and the mobility of jogs in the cube plane. The range of temperatures investigated varies betwe en 200 and 600 K, scaling with the domain of anomaly of Ni3Al-based al loys. The simulations indicate that strain is mostly provided by the s liding of kinks. Two conditions are simultaneously required in order t o reproduce the flow stress anomaly: firstly kink mobility should be h indered via the dragging of jogs and secondly, irrespective of the pro bability of locking, locks should not be destroyed easily. The simulat ions suggest, in addition, that two different flow stress regimes take place in the temperature domain of the stress anomaly. At the onset o f the anomaly, the flow stress is determined by kink motion, itself a function of kink height, whereas in the high-temperature regime the fl ow stress is governed by the unlocking of the weakest incomplete Kear- Wilsdorf lock of the microstructure. The results of the present comput er model are discussed in relation to experimental observations and ex isting theoretical models.