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      An inverse determination method for strain rate and temperature dependent constitutive model of elastoplastic materials

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      https://www.riss.kr/link?id=A107936467

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      다국어 초록 (Multilingual Abstract)

      With the continuous increase of computational capacity, more and more complex nonlinear elastoplastic constitutive models were developed to study the mechanical behavior of elastoplastic materials. These constitutive models generally contain a large a...

      With the continuous increase of computational capacity, more and more complex nonlinear elastoplastic constitutive models were developed to study the mechanical behavior of elastoplastic materials. These constitutive models generally contain a large amount of physical and phenomenological parameters, which often require a large amount of computational costs to determine. In this paper, an inverse parameter determination method is proposed to identify the constitutive parameters of elastoplastic materials, with the consideration of both strain rate effect and temperature effect. To carry out an efficient design, a hybrid optimization algorithm that combines the genetic algorithm and the Nelder-Mead simplex algorithm is proposed and developed. The proposed inverse method was employed to determine the parameters for an elasto-viscoplastic constitutive model and Johnson-cook model, which demonstrates the capability of this method in considering strain rate and temperature effect, simultaneously. This hybrid optimization algorithm shows a better accuracy and efficiency than using a single algorithm. Finally, the predictability analysis using partial experimental data is completed to further demonstrate the feasibility of the proposed method.

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      참고문헌 (Reference)

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      2 Kajberg, J., "Viscoplastic parameter estimation by high strain-rate experiments and inverse modelling-Speckle measurements and high-speed photography" 44 (44): 145-164, 2007

      3 Yan, Y., "The inverse parameter identification of Hill 48 yield criterion and its verification in press bending and roll forming process simulations" 20 : 46-53, 2015

      4 Littell, J., "The experimental and analytical characterization of the macromechanical response for triaxial braided composite materials" University of Akron 2008

      5 Giglio, M., "Relation between Ductile Fracture Locus and Deformation of Phases in Ti-6Al-4V Alloy" 53 (53): 2250-2258, 2013

      6 Hammer, J. T., "Plastic deformation and ductile fracture of Ti-6Al-4V under various loading conditions" The Ohio State University 2012

      7 Avril, S., "Overview of identification methods of mechanical parameters based on full-field measurements" 48 (48): 381-402, 2008

      8 Shang, S., "On the existence of a global minimum in inverse parameters identification by SelfOptimizing inverse analysis method" 77 (77): 803-814, 2019

      9 Sato, Y., "Multiscale approach to predict crack initiation in unidirectional off-axis laminates" 23 (23): 461-475, 2014

      10 Sima, M., "Modified material constitutive models for serrated chip formation simulations and experimental validation in machining of titanium alloy Ti-6Al4V" 50 (50): 943-960, 2010

      1 Aydin, M. S., "Yield locus evolution and constitutive parameter identification using plane strain tension and tensile tests" 211 (211): 1957-1964, 2011

      2 Kajberg, J., "Viscoplastic parameter estimation by high strain-rate experiments and inverse modelling-Speckle measurements and high-speed photography" 44 (44): 145-164, 2007

      3 Yan, Y., "The inverse parameter identification of Hill 48 yield criterion and its verification in press bending and roll forming process simulations" 20 : 46-53, 2015

      4 Littell, J., "The experimental and analytical characterization of the macromechanical response for triaxial braided composite materials" University of Akron 2008

      5 Giglio, M., "Relation between Ductile Fracture Locus and Deformation of Phases in Ti-6Al-4V Alloy" 53 (53): 2250-2258, 2013

      6 Hammer, J. T., "Plastic deformation and ductile fracture of Ti-6Al-4V under various loading conditions" The Ohio State University 2012

      7 Avril, S., "Overview of identification methods of mechanical parameters based on full-field measurements" 48 (48): 381-402, 2008

      8 Shang, S., "On the existence of a global minimum in inverse parameters identification by SelfOptimizing inverse analysis method" 77 (77): 803-814, 2019

      9 Sato, Y., "Multiscale approach to predict crack initiation in unidirectional off-axis laminates" 23 (23): 461-475, 2014

      10 Sima, M., "Modified material constitutive models for serrated chip formation simulations and experimental validation in machining of titanium alloy Ti-6Al4V" 50 (50): 943-960, 2010

      11 Lecompte, D., "Mixed numerical-experimental technique for orthotropic parameter identification using biaxial tensile tests on cruciform specimens" 44 (44): 1643-1656, 2007

      12 Boyer, R., "Materials Properties Handbook:Titanium Alloys" ASM International 1993

      13 Chaparro, B. M., "Material parameters identification : Gradient-based, genetic and hybrid optimization algorithms" 44 (44): 339-346, 2008

      14 Korkmaz, M. E., "Investigation of tensile Johnson-Cook model parameters for Nimonic 80A superalloy" 801 : 542-549, 2019

      15 He, L., "Inverse identification of constitutive parameters of Ti2AlNb intermetallic alloys based on cooperative particle swarm optimization" 31 (31): 1774-1785, 2018

      16 Peroni, L., "Identification of strain-rate and thermal sensitive material model with an inverse method" 2010

      17 Ozel, T., "Identification of constitutive material model parameters for high-strain rate metal cutting conditions using evolutionary computational algorithms" 22 (22): 659-667, 2007

      18 Notta-Cuvier, D., "Identification of Johnson-Cook’s viscoplastic model parameters using the virtual fields method : Application to titanium alloy Ti6Al4V" 49 (49): 22-45, 2013

      19 Aymen Nasr, "Friction tuned mass damper optimization for structure under harmonic force excitation" 국제구조공학회 65 (65): 761-769, 2018

      20 Johnson, G. R., "Fracture characteristics of three metals subjected to various strains, strain rates, temperatures and pressures" 21 (21): 31-48, 1985

      21 Leseur, D., "Experimental investigations of material models for Ti-6A1-4V and 2024-T3" Lawrence Livermore National Laboratory 1999

      22 Yatnalkar, R. S., "Experimental investigation of plastic deformation of ti-6al-4v under various loading conditions" The Ohio State University. State of Ohio 2010

      23 Cooreman, S., "Elasto-plastic material parameter identification by inverse methods : Calculation of the sensitivity matrix" 44 (44): 4329-4341, 2007

      24 Dorogoy, A., "Determination of the JohnsonCook material parameters using the SCS specimen" 49 (49): 881-885, 2009

      25 Wang, Y., "Constitutive modeling, processing map establishment and microstructure analysis of spray deposited Al-Cu-Li alloy 2195" 779 : 735-751, 2019

      26 Kajberg, J., "Characterisation of materials subjected to large strains by inverse modelling based on in-plane displacement fields" 41 (41): 3439-3459, 2004

      27 Grediac, M., "Applying the virtual fields method to the identification of elasto-plastic constitutive parameters" 22 (22): 602-627, 2006

      28 Fu, J., "Application of the virtual fields method to the identification of the homogeneous anisotropic hardening parameters for advanced high strength steels" 93 : 229-250, 2017

      29 Milani, A. S., "An improved multi-objective identification of JohnsonCook material parameters" 36 (36): 294-302, 2009

      30 Moreau, A., "An evaluation of different mixed experimental/numerical procedures using FRF for the identification of viscoelastic materials" 2006

      31 Liu, R., "An enhanced constitutive material model for machining of Ti-6Al-4V alloy" 213 (213): 2238-2246, 2013

      32 Notta-Cuvier, D., "An advanced procedure to identify viscoplastic parameters using the virtual fields method" 2011

      33 Nelder, J. A., "A simplex method for function minimization" 7 (7): 308-313, 1965

      34 Yun, G. J., "A self-optimizing inverse analysis method for estimation of cyclic elasto-plasticity model parameters" 27 (27): 576-595, 2011

      35 Salvado, F. C., "A review on the strain rate dependency of the dynamic viscoplastic response of FCC metals" 88 : 186-231, 2017

      36 Lin J. Wang, "A new conjugate gradient algorithm for solving dynamic load identification" 국제구조공학회 64 (64): 271-278, 2017

      37 Cheng, W., "A constitutive model for Ti6Al4V considering the state of stress and strain rate effects" 137 : 103103-, 2019

      38 Bouda, P., "A computational approach to design new tests for viscoplasticity characterization at high strain-rates" 64 (64): 1639-1654, 2019

      39 Lun-hai Zhi, "A Kalman filter based algorithm for wind load estimation on high-rise buildings" 국제구조공학회 64 (64): 449-459, 2017

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      2016 1.12 0.62 0.94
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
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