Defect Occurrence and Modeling for the Thermomechanical Processing of Aerospace Alloys

Author:

Semiatin S. L.1,Nicolaou P. D.2,Thomas J. P.3,Turner T. J.1

Affiliation:

1. Air Force Research Laboratory, Materials and Manufacturing Directorate, AFRL/MLLM, Wright-Patterson AFB, OH 45433-7817

2. UES, Inc., 4401 Dayton-Xenia Road, Dayton, OH 45432

3. Universal Technology Corp., 1270 North Fairfield Road, Dayton, OH 45432

Abstract

Mechanism-based models for the evolution of defects during the thermomechanical processing of aerospace titanium- and nickel-based alloys are reviewed. These defects include those comprising microstructural/metal-flow irregularities and those that are damage related (i.e., cracks and cavities). The development of undesirable/nonuniform microstructures and cavities during the mill processing of alpha/beta titanium alloys is addressed first. Relatively simple, diffusion-based models of spheroidization and coarsening are applied to quantify the propensity for microstructure nonuniformities. Similarly, first-order micromechanical models have been formulated to estimate the effect of local crystallographic texture on nonuniform flow, the generation of triaxial stresses, and cavity growth/closure in alpha/beta titanium alloys with a colony-alpha microstructure. The occurrence of nonuniform grain structures (and so-called ALA, or “as large as,” grains) in cast, wrought, and powder-metallurgy superalloys is also discussed. A physics-based model to treat the topology of recrystallization and the evolution of ALA grains in such materials is proposed.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference42 articles.

1. Hot Working of Titanium Alloys: An Overview;Semiatin

2. Superalloys

3. Implementation and Utilization of a Mathematical Model to Simulate VAR of Titanium Alloys;Wilson

4. Melting, Casting, and Forging Problems in Titanium Alloys;Mitchell;JOM

5. Workability in Forging;Semiatin

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