2. S. A. David and M. L. Santella, "Joining of
Intermetallic Alloys," p. 655 in Physical Metallurgy and Joining of
Intermetallic Compounds, eds. N. Stoloff and V.K. Sikka, Chapman and
Hall, New York, (1996).
2. S. S. Babu, S. A. David, J. M. Vitek, and M. K. Miller, "Phase Stability and Atom Probe Field Ion Microscopy of Type 308 CRE Stainless Steel Weld Metal," Metall. & Mater. Trans. A, 27A, 763 (1996).
3. S. S. Babu, S. A. David, and M. K. Miller, "Microstructural Development in PWA 1480 Electron Beam Welds -- an Atom-Probe Field-Ion Microscopic Study," Appl. Surf. Sci., 94/95, p. 280-287 (1996).
4. K. C. Hsieh, S. S. Babu, J. M. Vitek, and S. A. David, "Calculation of Inclusion Formation in Low Alloy Steel Welds," Mater. Sci. Engr., A215, p. 84-91 (1996).
5. X. -L. Wang, C. R. Hubbard, S. Spooner, and
S. A. David, "Mapping of the Residual Stress Distribution in a Brazed Zirconia-Iron
Joint," Mat. Sci. Engr., A211, p. 45-53 (1996).
2. S. Spooner, S. A. David, and C. R. Hubbard, "Role of Phase Transformations in Residual Stress Development in Multipass Ferritic Steel Welds and Gleeble Test Bars," p. 99 in Trends in Welding Research, ed. H. B. Smartt, J. A. Johnson, and S. A. David, ASM-International, Materials Park, Ohio (1996).
3. S. S. Babu, S. A. David, J. M. Vitek, K. Mundra, and T. DebRoy, "Modeling the Formation of Non-Metallic Oxide Inclusions in Low Alloy Steel Welds," ibid, p. 135 (1996).
4. J. M. Vitek and S. A. David, "Phase Stability in Austenitic Stainless Steels -- New Approaches, Results, and Their Relation to Properties," ibid, p. 191 (1996).
5. J. M. Vitek, S. A. David, and S. A. Vitek, "Modeling the Ferrite-to-Austenite Transformation in the Heat-Affected Zone of Stainless Steel Multi-Pass Welds," ibid, p. 223, (1996).
6. S. S. Babu, S. A. David, and J. M. Vitek, "Effect of Oxide Inclusions on the Solid State Transformations in Low Alloy Steel Fusion Welds," ibid, p. 235 (1996).
7. R. Prader, H. Cerjak, and S. A. David, "Microstructure of Welded and Weld-Simulated Modified 9Cr-1Mo (P91) Ferritic Steel," ibid, p. 247 (1996).
8. K. Mundra, T. DebRoy, S. Babu, and S. A. David, "Microstructure Evaluation in Low Alloy Steel Weld Metal from Convective Heat Transfer Calculations in Three Dimensions," ibid, p. 259 (1996).
9. H. Cerjak, R. Prader, R. W. Swindeman, and S. A. David, "Mechanical Properties of a 9Cr-1Mo Multi-Pass Thick Section Weld," ibid, p. 563 (1996).
10. Z. Feng, T. Zacharia, and S. A. David, "Modeling of Thermomechanical Conditions in the Sigmajig Weldability Test," ibid, p. 621 (1996).
11. J. M. Vitek and S. A. David, "Effect of Initial
Composition Distribution on the Phase Transformation Behavior in the Fe-Cr-Ni
System," p. 507 in Thermodynamics and Kinetics of Phase Transformations,,
vol. 398, ed. J. S. Im, B. Park, A.L. Greer, and G. B. Stephenson, MRS,
Pittsburgh, PA (1996).
2. S. S. Babu, S. A. David, J. M. Vitek, and M. K. Miller, "Atom Probe Field Ion Microscopy Investigation of CMSX-4 Ni-base Superalloy Laser Beam Welds," J. de Physique IV, 6, C5-253 (1996).
3. S. A. David, S. S. Babu, and J. M. Vitek, "Trends in Microstructure Modeling in Weld Metals," Trans. JWRI, 25, 127 (1996).
4. Z. Feng, S. A. David, T. Zacharia, and C. L. Tsai, "Quantification of Thermomechanical Conditions for Weld Solidification Cracking," Sci. & Technol. of Welding and Joining, 2, 11 (1997).
5. S. A. David, J. M. Vitek, S. S. Babu, L. A. Boatner, and R. W. Reed, "Welding of Nickel-Base Superalloy Single Crystals," Sci. & Technol. of Welding and Joining, 2, 79 (1997).
6. J. M. Vitek, S. A. David, and L. A. Boatner, "Microstructural Development in Single-Crystal Nickel-Base Superalloy Welds," Sci. & Technol. of Welding and Joining, 2, 109 (1997).
7. K. Mundra, T. DebRoy, S. S. Babu, and S. A.
David, "Weld Metal Microstructure Calculations from Fundamentals of Transport
Phenomena in the Arc Welding of Low Alloy Steels," Weld. J., 76,
163s (1997).
2. S. A. David, "Microstructural Modeling in Weld Metal," ibid., p. 151.
3. J. M. Vitek, Y. S. Iskander, and S. A. David,
"Modeling Phase Transformation Behavior During Thermal Cycling in the Heat-Affected
Zone of Stainless-Steel Welds," ibid, p. 1997.