TABLE 1 Metal Ag (99.98 %) cu (99.98 %) Au (99.9 %) Ni (99.85 %) Al (99.91%) Recrystallization stored energy E&al/g-4 15.6'-" 12.1'4' 7.3'8' 11.8'6' 3.2'"' Normalized Ea ER/abz 7.65 4.48 3.7 2.54 1.57 Stacking Fault Energy y (ergs/cm") Remarks 25"' From observation of dislocation nodes 70"' From obs
β¦ LIBER β¦
Lattice displacements in the vicinity of stacking faults
β Scribed by Harrison, E. A.
- Publisher
- John Wiley and Sons
- Year
- 1973
- Tongue
- English
- Weight
- 296 KB
- Volume
- 19
- Category
- Article
- ISSN
- 0031-8965
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The geometry of intersecting intrinsic stacking faults has been examined. Depending on the stacking fault displacement vectors, a region of positive or negative dilatation is created along the mtersection. The energies required to produce these intersections have been estimated from the magnitudes o