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논문 기본 정보

자료유형
학술저널
저자정보
Dongjoon Myung (Seoul National University) Wooram Noh (Korea Institute of Industrial Technology) Ji‑Hoon Kim (Pusan National University) Jinhak Kong (LG Chem. R&D Center Campus Gwacheon) Sung‑Tae Hong (University of Ulsan) Myoung‑Gyu Lee (Seoul National University)
저널정보
대한금속·재료학회 Metals and Materials International Metals and Materials International Vol.27 No.4
발행연도
2021.1
수록면
650 - 666 (17page)

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초록· 키워드

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In this study, a simulation-based examination on the deformation mechanism in the friction stir welding (FSW) process isconducted, which may not be efficiently feasible by experiment due to severe deformation and rotation of material flow neara tool pin. To overcome the severity of distortion of plastically deforming finite element meshes in the Lagrange formulation,and an over-simplified elastic-plasticity constitutive law and contact assumption in the Eulerian formulation, the arbitraryLagrangian–Eulerian (ALE) formulation is employed for the finite element simulations. Superior accuracy in predictingthe temperature profiles and distributions of the friction stir welded aluminum alloy workpiece could be obtained comparedto the results of Eulerian based simulations. In particular, the ALE based simulations could predict the sharper gradient oftemperature decrease as the distance from the welding zone increases, while the Eulerian based model gives more uniformprofiles. The second objective of the study is to investigate the coupling of simulation-based temperature histories into thestrength prediction model, which is formulated on the basis of precipitation kinetics and precipitate-dislocation interaction. The calculated yield strength distribution is also in better agreement with experiment than that by the Eulerian based model. Finally, the mechanism of the FSW process is studied by thoroughly examining the frictional and material flow behaviorof the aluminum alloy in the welded zone. It is suggested that the initially high rate of temperature increase is attributedto frictional heat due to slipping of material on the tool surface, and the subsequent saturated temperature is the result ofsequential repetitive activations of the sticking and slipping modes of the softened material. The sticking mode is the mainsource of plastically dissipated heat by the large plastic deformation around the rotating tool pin. The present integratedfinite element simulation and microstructure-based strength prediction model may provide an efficient tool for the designof the FSW process.

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