Finite element modelling of superplastic-like forming using a dislocation density-based model for AA5083

被引:14
|
作者
Liu, J. [1 ]
Edberg, J. [2 ]
Tan, M. J. [1 ]
Lindgren, L. E. [2 ]
Castagne, S. [1 ]
Jarfors, A. E. W. [3 ,4 ]
机构
[1] Nanyang Technol Univ, Sch Mech & Aerosp Engn, Singapore 639798, Singapore
[2] Lulea Univ Technol, Div Mech Solid Mat, S-97187 Lulea, Sweden
[3] Singapore Inst Mfg Technol, Singapore 638075, Singapore
[4] Jonkoping Univ, Sch Engn, S-55111 Jonkoping, Sweden
关键词
ELEVATED-TEMPERATURE; PLASTICITY MODEL; SINGLE-CRYSTALS; ALUMINUM-ALLOY; VACANCY-FORMATION; CELL-FORMATION; DEFORMATION; CREEP; BEHAVIOR; OPTIMIZATION;
D O I
10.1088/0965-0393/21/2/025006
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Superplastic-like forming is a newly improved sheet forming process that combines the mechanical pre-forming (also called hot drawing) with gas-driven blow forming (gas forming). Non-superplastic grade aluminium alloy 5083 (AA5083) was successfully formed using this process. In this paper, a physical-based material model with dislocation density and vacancy concentration as intrinsic foundations was employed. The model describes the overall flow stress evolution of AA5083 from ambient temperature up to 550 degrees C and strain rates from 10(-4) up to 10(-1) s(-1). Experimental data in the form of stress-strain curves were used for the calibration of the model. The calibrated material model was implemented into simulation to model the macroscopic forming process. Hereby, finite element modelling (FEM) was used to estimate the optimum strain-rate forming path, and experiments were used to validate the model. In addition, the strain-rate controlled forming was conducted for the purpose of maintaining the gas forming with an average strain rate of 2 x 10(-3) s(-1). The predicted necking areas closely approximate the localized thinning observed in the part. Strain rate gradients as a result of geometric effects were considered to be the main reason accounting for thinning and plastic straining, which were demonstrated during hot drawing and gas forming by simulations.
引用
收藏
页数:23
相关论文
共 47 条
  • [41] Prediction of friction stir welding effects on AA2024-T3 plates and stiffened panels using a shell-based finite element model
    Paulo, R. M. F.
    Carlone, P.
    Paradiso, V.
    Valente, R. A. F.
    Teixeira-Dias, F.
    THIN-WALLED STRUCTURES, 2017, 120 : 297 - 306
  • [42] NUMERICAL MODELLING OF MINERAL-SLURRY LIKE FLOWS IN A 3D LID-DRIVEN CAVITY USING A FINITE ELEMENT METHOD BASED TOOL
    Peralta, Sergio
    Cordova, Jhon
    Celis, Cesar
    Maza, Danmer
    PROCEEDINGS OF THE ASME 2020 INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, IMECE2020, VOL 10, 2020,
  • [43] A study of subgrain formation in Al 3003 H-18 foils undergoing ultrasonic additive manufacturing using a dislocation density based crystal plasticity finite element framework
    Pal, D.
    Stucker, B.
    JOURNAL OF APPLIED PHYSICS, 2013, 113 (20)
  • [44] Modelling heterogeneous coal-rock (HCR) failure patterns under dynamic impact loads using image-based finite element (FE) and discrete element (DE) model
    Zheng, Kehong
    Qiu, Bingjing
    Wang, Zhenyu
    Li, Jianping
    Gao, Kuidong
    POWDER TECHNOLOGY, 2020, 360 : 673 - 682
  • [45] Changes in strain energy density in the temporomandibular joint disk after sagittal split ramus osteotomy using a computed tomography-based finite element model
    Murakami, Kazuhiro
    Yamamoto, Kazuhiko
    Kawakami, Masayoshi
    Horita, Satoshi
    Kirita, Tadaaki
    JOURNAL OF OROFACIAL ORTHOPEDICS-FORTSCHRITTE DER KIEFERORTHOPADIE, 2024, 85 (04): : 289 - 305
  • [46] A study of subgrain formation in Al 3003 H-18 foils undergoing ultrasonic additive manufacturing using a dislocation density based crystal plasticity finite element framework (vol 113, 203517, 2013)
    Pal, D.
    Stucker, B.
    JOURNAL OF APPLIED PHYSICS, 2013, 114 (01)
  • [47] Changes in strain energy density in the temporomandibular joint disk after sagittal split ramus osteotomy using a computed tomography-based finite element model; [Veränderungen der Dehnungsenergiedichte im Discus articularis des Temporomandibulargelenks nach sagittaler Ramus-Osteotomie anhand eines computertomographiebasierten Finite-Elemente-Modells]
    Murakami K.
    Yamamoto K.
    Kawakami M.
    Horita S.
    Kirita T.
    Journal of Orofacial Orthopedics / Fortschritte der Kieferorthopädie, 2024, 85 (4): : 289 - 305