Magnesium Alloys - Design, Processing and Properties by Frank Czerwinski (Editor)

By Frank Czerwinski (Editor)

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A, 328, 324–333, ISSN: 0921-5093. F. (1976). Laws for work hardening and low-temperature creep. J. Eng. , 98, 76-85, ISSN (printed): 0094-4289. ISSN (electronic): 1528-8889. S. F. (1975). Thermodynamics and kinetics of slip. Progr. Mater. , 19, 1−288, ISSN: 0079-6425. Koike, J. & Ohyama, R. , 53, 1963. Geometrical criterion for the activation of prismatic slip in AZ61 Mg alloy sheets deformed at room temperature. , 53 (2005) 1963−1972, ISSN: 1359-6454. M, (1967). Dislocation dynamics in deformation and recovery Canad.

Stat. , 3. 1340−1346, ISSN: 1862-6300. Hong, S. I. (1987). Influence of dynamic strain aging on the creep ductility of solid solution alloys. Mater. Sci. , 91, 137-142, ISSN: 0921-5093. Hong, S. I. (1989). Influence of dynamic strain aging on the transition of creep characteristics of a solid solution alloy at various temperatures. Mater. Sci. Eng. A, 110, 125-130, ISSN: 0921-5093. L. K. (2002). 1Fe using stress relaxation technique. Mater. Sci. Eng. A, 328, 324–333, ISSN: 0921-5093. F. (1976).

12(d); in the two cases, 63% ±3% of the RF vectors are within 30º of the basal plane, while the regions near the c-axis are clearly not favoured (8% ±1%). The similarity can be attributed to the formation of the new grains by the bulging of the preexisting grain boundaries. In this way, their boundary misorientation characteristics reproduce those of their parent grains. Of course the mother grains of bulged new grains cannot be identified with certainty. If bulging is initiated in a grain right above or below the plane of section, the mother grain is 37 Deformation Structures and Recrystallization in Magnesium Alloys (a) (b) Fig.

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