Process optimization of a non-circular drawing sequence based on multi-surrogate assisted meta-heuristic algorithms
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  • 作者:Nantiwat Pholdee ; Hyun Moo Baek…
  • 关键词:Differential evolution ; Hybrid multi ; surrogate assisted optimization ; Non ; circular drawing sequence ; Optimum latin hypercube sampling technique ; Process optimization ; Strain inhomogeneity
  • 刊名:Journal of Mechanical Science and Technology
  • 出版年:2015
  • 出版时间:August 2015
  • 年:2015
  • 卷:29
  • 期:8
  • 页码:3427-3436
  • 全文大小:976 KB
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  • 作者单位:Nantiwat Pholdee (1)
    Hyun Moo Baek (2)
    Sujin Bureerat (1)
    Yong-Taek Im (3) (4)

    1. Sustainable Infrastructure Research and Development Center, Department of Mechanical Engineering, Faculty of Engineering, Khon Kaen University, Khon Kaen, 40002, Thailand
    2. Land Systems Engineering Team, Changwon Regional Center, DTaQ, 1137 Changwon-daero, Seongsan-gu, Changwon, 642-160, Korea
    3. Department of Mechanical Engineering, National Research Laboratory for Computer Aided Materials Processing, KAIST, 291 Daehak-ro, Yuseong-gu, Daejeon, 305-701, Korea
    4. Office of the President, KIMM, 156 Gajeongbuk-ro, Yuseong-gu, Daejeon, 305-343, Korea
  • 刊物类别:Engineering
  • 刊物主题:Mechanical Engineering
    Structural Mechanics
    Control Engineering
    Industrial and Production Engineering
  • 出版者:The Korean Society of Mechanical Engineers
  • ISSN:1976-3824
文摘
Process optimization of a Non-circular drawing (NCD) sequence of a pearlitic steel wire was performed to improve the mechanical properties of a drawn wire based on surrogate assisted meta-heuristic algorithms. The objective function was introduced to minimize inhomogeneity of effective strain distribution at the cross-section of the drawn wire, which could deteriorate delamination characteristics of the drawn wires. The design variables introduced were die geometry and reduction of area of the NCD sequence. Several surrogate models and their combinations with the weighted sum technique were utilized. In the process optimization of the NCD sequence, the surrogate models were used to predict effective strain distributions at the cross-section of the drawn wire. Optimization using Differential evolution (DE) algorithm was performed, while the objective function was calculated from the predicted effective strains. The accuracy of all surrogate models was investigated, while optimum results were compared with the previous study available in the literature. It was found that hybrid surrogate models can improve prediction accuracy compared to a single surrogate model. The best result was obtained from the combination of Kriging (KG) and Support vector regression (SVR) models, while the second best was obtained from the combination of four surrogate models: Polynomial response surface (PRS), Radial basic function (RBF), KG, and SVR. The optimum results found in this study showed better effective strain homogeneity at the cross-section of the drawn wire with the same total reduction of area of the previous work available in the literature for fewer number of passes. The multi-surrogate models with the weighted sum technique were found to be powerful in improving the delamination characteristics of the drawn wire and reducing the production cost.

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