Dispersed strain bands promote the ductility of gradient nano-grained material: A strain gradient constitutive modeling considering damage effect
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[1] Jitang Fan,et al. Constitutive modeling of mechanical behaviors in gradient nanostructured alloys with hierarchical dual-phased microstructures , 2022, Acta Mechanica.
[2] Minsheng Huang,et al. Multiscale discrete dislocation dynamics study of gradient nano-grained materials , 2022, International Journal of Plasticity.
[3] N. Tsuji,et al. Significant Bauschinger effect and back stress strengthening in an ultrafine grained pure aluminum fabricated by severe plastic deformation process , 2022, Scripta Materialia.
[4] Rui-Ning Yuan. Establishing a quantitative relationship between strain gradient and hetero-deformation-induced stress in gradient-structured metals , 2022, Acta Mechanica.
[5] Yin Zhang,et al. Unraveling the origin of extra strengthening in gradient nanotwinned metals , 2022, Proceedings of the National Academy of Sciences.
[6] Chong-xiang Huang,et al. Mechanical response of the constrained nanostructured layer in heterogeneous laminate , 2022, Scripta Materialia.
[7] Bo Xu,et al. Synergetic strengthening and deformation mechanisms in gradient Al0.1CoCrFeNi high-entropy alloy , 2022, Materials Science and Engineering: A.
[8] Chong-xiang Huang,et al. Activating dispersed strain bands in tensioned nanostructure layer for high ductility: the effects of microstructure inhomogeneity , 2021, International Journal of Plasticity.
[9] Xinkai Ma,et al. Improvement of strength and ductility in a gradient structured Ni fabricated by severe torsion deformation , 2021 .
[10] Liucheng Zhou,et al. Laser shock peened Ti-6Al-4V alloy: experiments and modeling , 2021, International Journal of Mechanical Sciences.
[11] P. Liaw,et al. The predicted rate-dependent deformation behaviour and multistage strain hardening in a model heterostructured body-centered cubic high entropy alloy , 2021 .
[12] G. Kang,et al. Size-dependent plasticity of hetero-structured laminates: A constitutive model considering deformation heterogeneities , 2021 .
[13] Yanfei Gao,et al. What really governs the upper bound of uniform ductility in gradient or layered materials , 2021 .
[14] Jianjun Li,et al. Modelling the Shear Banding in Gradient Nano-Grained Metals , 2021, Nanomaterials.
[15] Chong-xiang Huang,et al. Superior strength-ductility synergy achieved by synergistic strengthening and strain delocalization in a gradient-structured high-manganese steel , 2021 .
[16] Xiaolei Wu,et al. Heterostructured Materials , 2021, Progress in Materials Science.
[17] Shaohua Chen,et al. On Strain Hardening Mechanism in Gradient Nanostructures , 2021, Heterostructured Materials.
[18] Yuntian Zhu,et al. Effect of global constraint on the mechanical behavior of gradient materials , 2021 .
[19] G. Kang,et al. The tension-compression behavior of gradient structured materials: A deformation-mechanism-based strain gradient plasticity model , 2021 .
[20] Xiaolei Wu,et al. Inter-zone constraint modifies the stress-strain response of the constituent layer in gradient structure , 2021, Science China Materials.
[21] Jianjun Li,et al. Enhanced frictional performance in gradient nanostructures by strain delocalization , 2021, International Journal of Mechanical Sciences.
[22] Z. Ren,et al. Gradient plasticity in gradient nanocrystalline metals: Extra toughness from dislocation migration , 2021, Mechanics of Materials.
[23] J. Seol,et al. Mechanical property enhancement in gradient structured aluminum alloy by ultrasonic nanocrystalline surface modification , 2021 .
[24] W. Shang,et al. Influence of grain size distribution on mechanical properties and HDI strengthening and work-hardening of gradient-structured materials , 2021 .
[25] N. Tsuji,et al. Mechanical response of dislocation interaction with grain boundary in ultrafine-grained interstitial-free steel , 2021 .
[26] Xiaolei Wu,et al. Gradient and lamellar heterostructures for superior mechanical properties , 2021, MRS Bulletin.
[27] Y. F. Wang,et al. Quantifying the Synergetic Strengthening in Gradient Material , 2018, Heterostructured Materials.
[28] Xiaolei Wu,et al. Heterogeneous materials: a new class of materials with unprecedented mechanical properties , 2017, Heterostructured Materials.
[29] Hao Zhou,et al. Influence of Gradient Structure Volume Fraction on the Mechanical Properties of Pure Copper , 2015, Heterostructured Materials.
[30] Xiaolei Wu,et al. Synergetic Strengthening by Gradient Structure , 2014, Heterostructured Materials.
[31] P. Liaw,et al. Probing deformation mechanisms of gradient nanostructured CrCoNi medium entropy alloy , 2020 .
[32] Huajian Gao,et al. Heterostructured materials: superior properties from hetero-zone interaction , 2020, Materials Research Letters.
[33] Xiaolei Wu,et al. Ductility and strain hardening in gradient and lamellar structured materials , 2020 .
[34] Huajian Gao,et al. Mechanical properties and deformation mechanisms of gradient nanostructured metals and alloys , 2020, Nature Reviews Materials.
[35] Yin Zhang,et al. Strain gradient plasticity in gradient structured metals , 2020 .
[36] G. Kang,et al. Crystal plasticity finite element analysis of gradient nanostructured TWIP steel , 2020, International Journal of Plasticity.
[37] Ge Wu,et al. Nanostructural metallic materials: Structures and mechanical properties , 2020, Materials Today.
[38] Chong-xiang Huang,et al. Shear band stability and uniform elongation of gradient structured material: Role of lateral constraint , 2020 .
[39] Yuntian Zhu,et al. Hetero-deformation induced strengthening and toughening of pure iron with inverse and multi-gradient structures , 2020 .
[40] F. Yuan,et al. Multiple mechanism based constitutive modeling of gradient nanograined material , 2020 .
[41] R. Scattergood,et al. Dense dispersed shear bands in gradient-structured Ni , 2020, International Journal of Plasticity.
[42] Yuntian Zhu,et al. Heterostructure induced dispersive shear bands in heterostructured Cu , 2019, Scripta Materialia.
[43] F. Roters,et al. Dislocation mechanism based size-dependent crystal plasticity modeling and simulation of gradient nano-grained copper , 2019, International Journal of Plasticity.
[44] Bin Li,et al. Optimizing mechanical properties of gradient-structured low-carbon steel by manipulating grain size distribution , 2019, Materials Science and Engineering: A.
[45] Liucheng Zhou,et al. Deformation mechanisms based constitutive modelling and strength-ductility mapping of gradient nano-grained materials , 2019, Materials Science and Engineering: A.
[46] F. Yuan,et al. Ductility by shear band delocalization in the nano-layer of gradient structure , 2018, Heterostructured Materials.
[47] Huajian Gao,et al. Extra strengthening and work hardening in gradient nanotwinned metals , 2018, Science.
[48] Huajian Gao,et al. Mechanical properties and optimal grain size distribution profile of gradient grained nickel , 2018, Acta Materialia.
[49] F. Yuan,et al. Improving ductility by increasing fraction of interfacial zone in low C steel/304 SS laminates , 2018 .
[50] Jian Lu,et al. Microstructures-based constitutive analysis for mechanical properties of gradient-nanostructured 304 stainless steels , 2017 .
[51] Linli Zhu,et al. Simulating Size and Volume Fraction-Dependent Strength and Ductility of Nanotwinned Composite Copper , 2016 .
[52] Hyoung-Seop Kim,et al. Micromechanical finite element analysis of strain partitioning in multiphase medium manganese TWIP+TRIP steel , 2016 .
[53] F. Yuan,et al. Back stress strengthening and strain hardening in gradient structure , 2016 .
[54] P. Chakraborti,et al. Effect of deformation mode and grain size on Bauschinger behavior of annealed copper , 2016 .
[55] I. Beyerlein,et al. A study of microstructure-driven strain localizations in two-phase polycrystalline HCP/BCC composites using a multi-scale model , 2015 .
[56] Shaohua Chen,et al. A physical model revealing strong strain hardening in nano-grained metals induced by grain size gradient structure , 2015 .
[57] Dierk Raabe,et al. Dislocation density distribution around an wedge indent in single- crystalline nickel: Comparing non-local crystal plasticity finite element predictions with experiments , 2014 .
[58] Fuping Yuan,et al. Extraordinary strain hardening by gradient structure , 2014, Proceedings of the National Academy of Sciences.
[59] N. Tsuji,et al. Evaluation of Dislocation Density for 1100 Aluminum with Different Grain Size during Tensile Deformation by Using In-Situ X-ray Diffraction Technique , 2014 .
[60] A. Soh,et al. Modeling of the plastic deformation of nanostructured materials with grain size gradient , 2012 .
[61] Jian Lu,et al. Modelling the plastic deformation of nanostructured metals with bimodal grain size distribution , 2012 .
[62] N. Tao,et al. Revealing Extraordinary Intrinsic Tensile Plasticity in Gradient Nano-Grained Copper , 2011, Science.
[63] Ke Lu,et al. Surface Nanocrystallization (SNC) of Metallic Materials-Presentation of the Concept behind a New Approach , 2009 .
[64] Jean-Louis Chaboche,et al. A review of some plasticity and viscoplasticity constitutive theories , 2008 .
[65] Beatriz Cordero,et al. Covalent radii revisited. , 2008, Dalton transactions.
[66] P. Ferreira,et al. What is behind the inverse Hall–Petch effect in nanocrystalline materials? , 2007 .
[67] M. Meyers,et al. Mechanical properties of nanocrystalline materials , 2006 .
[68] Huajian Gao,et al. A conventional theory of mechanism-based strain gradient plasticity , 2004 .
[69] Subra Suresh,et al. Mechanical behavior of nanocrystalline metals and alloys , 2003 .
[70] K. T. Ramesh,et al. Effects of nanocrystalline and ultrafine grain sizes on constitutive behavior and shear bands in iron , 2003 .
[71] C. Koch. Ductility in Nanostructured and Ultra Fine-Grained Materials: Recent Evidence for Optimism , 2002 .
[72] Huajian Gao,et al. Mechanism-based strain gradient plasticity— I. Theory , 1999 .
[73] D. Parks,et al. Crystallographic aspects of geometrically-necessary and statistically-stored dislocation density , 1999 .
[74] Mark Kachanov,et al. Elastic Solids with Many Cracks and Related Problems , 1993 .
[75] T. Narutani,et al. Grain-size strengthening in terms of dislocation density measured by resistivity , 1991 .
[76] M. Ashby. The deformation of plastically non-homogeneous materials , 1970 .