Thermomechanical Process Simulation and Experimental Verification for Laser Additive Manufacturing of Inconel®718

Author:

Zafar Muhammad Qasim12ORCID,Wang Jinnan1ORCID,Zhang Zhenlin1ORCID,Wu Chaochao1,Zhao Haiyan1ORCID,Hussain Ghulam3ORCID,Ma Ninshu4ORCID

Affiliation:

1. State Key Laboratory of Tribology, Department of Mechanical Engineering, Tsinghua University, Beijing 100084, China

2. Faculty of Mechanical Engineering, Ghulam Ishaq Khan Institute of Engineering Sciences and Technology, Topi 23640, Pakistan

3. Mechanical Engineering Department, College of Engineering, University of Bahrain, Isa Town 32038, Bahrain

4. Joining and Welding Research Institute, Osaka University, Osaka 567-0047, Japan

Abstract

Laser cladding has emerged as a promising technique for custom-built fabrications, remanufacturing, and repair of metallic components. However, frequent melting and solidification in the process cause inevitable residual stresses that often lead to geometric discrepancies and deterioration of the end product. The accurate physical interpretation of the powder consolidation process remains challenging. Thermomechanical process simulation has the potential to comprehend the layer-by-layer additive process and subsequent part-scale implications. Nevertheless, computational accuracy and efficacy have been serious concerns so far; therefore, a hybrid FEM scheme is adopted for efficient prediction of the temperature field, residual stress, and distortion in multilayer powder-fed laser cladding of Inconel®718. A transient material deposition with powder material modeling is schematized to replicate the fabrication process. Moreover, simulation results for residual stress and distortion are verified with in-house experiments, where residual stress is measured with XRD (X-Ray Diffraction) and geometric distortion is evaluated with CMM (Coordinate Measuring Machine). A maximum tensile residual stress of 373 ± 5 MPa is found in the vicinity of the layer right in the middle of the substrate and predicted results are precisely validated with experiments. Similarly, a 0.68 ± 0.01 mm distortion is observed with numerical simulation and showed a precise agreement with experimental data for the same geometry and processing conditions. Conclusively, the implemented hybrid FEM approach demonstrated a robust and accurate prediction of transient temperature field, residual stresses, and geometric distortion in the multilayer laser cladding of Inconel®718.

Funder

National Natural Science Foundation of China

National Key R&D Program of China

Beijing Natural Science Foundation

Publisher

MDPI AG

Subject

General Materials Science

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