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Thermo-mechanical Modeling of Additive Manufacturing provides the background, methodology and description of modeling techniques to enable the reader to perform their own accurate and reliable simulations of any additive process. Part I provides an in depth introduction to the fundamentals of additive manufacturing modeling, a description of adaptive mesh strategies, a thorough description of thermal losses and a discussion of residual stress and distortion. Part II applies the engineering fundamentals to direct energy deposition processes including laser cladding, LENS builds, large electron beam parts and an exploration of residual stress and deformation mitigation strategies. Part III concerns the thermo-mechanical modeling of powder bed processes with a description of the heat input model, classical thermo-mechanical modeling, and part scale modeling.
The book serves as an essential reference for engineers and technicians in both industry and academia, performing both research and full-scale production. Additive manufacturing processes are revolutionizing production throughout industry. These technologies enable the cost-effective manufacture of small lot parts, rapid repair of damaged components and construction of previously impossible-to-produce geometries. However, the large thermal gradients inherent in these processes incur large residual stresses and mechanical distortion, which can push the finished component out of engineering tolerance. Costly trial-and-error methods are commonly used for failure mitigation. Finite element modeling provides a compelling alternative, allowing for the prediction of residual stresses and distortion, and thus a tool to investigate methods of failure mitigation prior to building.
- Provides understanding of important components in the finite element modeling of additive manufacturing processes necessary to obtain accurate results
- Offers a deeper understanding of how the thermal gradients inherent in additive manufacturing induce distortion and residual stresses, and how to mitigate these undesirable phenomena
- Includes a set of strategies for the modeler to improve computational efficiency when simulating various additive manufacturing processes
- Serves as an essential reference for engineers and technicians in both industry and academia
Language
Place of publication
Publishing group
Elsevier Science & Techn.
ISBN-13
978-0-12-811821-4 (9780128118214)
Schweitzer Classification
Part I The fundamentals of additive manufacturing modeling1. An introduction to additive manufacturing processes and their modeling challengesMichael Fielding Gouge, Pan Michaleris2. The Finite Element Method for the Thermo-Mechanical Modeling of Additive Manufacturing ProcessesErik Denlinger, Jeff Irwin, Michael Fielding Gouge
Part II Thermomechanical modeling of Direct Energy Deposition processes3. Convection Boundary Losses During Laser CladdingMichael Fielding Gouge4. Conduction Losses due to Part Fixturing During Laser CladdingMichael Fielding Gouge5. Microstructure and Material Properties of AM BuildsAllison Michelle Beese 6. Understanding microstructure evolution during additive manufacturing of metallic alloys using phase-field modelingYanzhou Ji, Lei Chen, Long-Qing Chen7. Modeling Microstructure and Material Properties of AM Processes Using the FE MethodJeff Irwin8. Thermo-mechanical Modeling of Thin Wall Builds Using the Direct ProcessJarred Heigel9. Residual Stress and Distortion Modeling of Electron Beam Direct Manufacturing Ti-6Al-4VErik Denlinger10. Thermo-mechanical Modeling of Large Electron Beam BuildsErik Denlinger11. Mitigation of Distortion in Large Additive Manufacturing PartsErik Denlinger
Part III Thermomechanical modeling of powder bed processes12. Development and Numerical Verification of an Adaptive Mesh Coarsening Strategy for Simulating Laser Powder Bed Fusion ProcessesErik Denlinge13. Experimental Validation for In Situ Distortion Modeling of the Laser Powder Bed Fusion ProcessErik Denlinger14. Scan Pattern Effects in Laser Powder Bed Fusion Processes: In Situ Measurements and Experimental ValidationAlexander Dunbar 15. Experimental Validation of Multi-scale Thermo-mechanical Modeling of Laser Powder Bed Fusion ProcesseJeff Irwin, Michael Fielding Gouge