Significantly improved interfacial mechanical properties in boron nitride nanosheet/Ti composite via nano-configuration: A molecular dynamics study
暂无分享,去创建一个
Zhenying Xu | Zhen-qiang Liu | L. Tian | Ruitao Li | Yun Wang | Hong Liu | Chao Zhang | Koubao Zhang
[1] S. Xiao,et al. Development of a 2NN-MEAM potential for Ti B system and studies of the temperature dependence of the nanohardness of TiB2 , 2022, Computational Materials Science.
[2] Shiqi Zhou,et al. Strengthening behaviour of continuous graphene network in metal matrix composites , 2021 .
[3] Zhenying Xu,et al. Enhanced mechanical properties of boron nitride nanosheets/copper composites with a bioinspired laminated structure , 2021, Composite Interfaces.
[4] Jiu-Jun Xu,et al. Tribology Properties of Titanium‐Based Metals Reinforced by BN Nanosheets , 2021, Advanced Engineering Materials.
[5] Jie Yang,et al. Significantly improved interfacial shear strength in graphene/copper nanocomposite via wrinkles and functionalization: A molecular dynamics study , 2021 .
[6] S. Tang,et al. Effect of interfacial bonding on dislocation strengthening in graphene nanosheet reinforced iron composite: A molecular dynamics study , 2021 .
[7] Di Zhang,et al. Structural modelling and mechanical behaviors of graphene/carbon nanotubes reinforced metal matrix composites via atomic-scale simulations: A review , 2021 .
[8] K. Khor,et al. High-performance titanium-based composite strengthened with in-situ network-distributed 3D reinforcements , 2021 .
[9] Wei Huang,et al. Microstructural evolution and strengthening mechanisms in cold-rolled Cu–Ag alloys , 2021 .
[10] Y. Fu,et al. Simultaneously enhancing the strength and ductility in titanium matrix composites via discontinuous network structure , 2020 .
[11] C. Shi,et al. A powder-metallurgy-based strategy toward three-dimensional graphene-like network for reinforcing copper matrix composites , 2020, Nature Communications.
[12] Liangchi Zhang,et al. Tensile Properties of Boron Nitride-Carbon Nanosheet-Reinforced Aluminum Nanocomposites Using Molecular Dynamics Simulation , 2020 .
[13] S. Sengul,et al. Tensile strength and failure mechanism of hcp zirconium nanowires: Effect of diameter, temperature and strain rate , 2020 .
[14] D. Golberg,et al. Spark plasma sintered Al-based composites reinforced with BN nanosheets exfoliated under ball milling in ethylene glycol , 2019, Materials Science and Engineering: A.
[15] Mingxin Huang,et al. Strong and ductile Mg alloys developed by dislocation engineering , 2019, Journal of Materials Science & Technology.
[16] Xin Lin,et al. Grain morphology evolution and texture characterization of wire and arc additive manufactured Ti-6Al-4V , 2018, Journal of Alloys and Compounds.
[17] Lirong Zhang,et al. Molecular dynamics studies on the strengthening mechanism of Al matrix composites reinforced by grapnene nanoplatelets , 2018, Computational Materials Science.
[18] S. Muller,et al. Failure mechanisms in pre-cracked Ni-graphene nanocomposites , 2018, Computational Materials Science.
[19] Zishun Liu,et al. The structural and mechanical properties of graphene aerogels based on Schwarz-surface-like graphene models , 2018 .
[20] Weiqiao Deng,et al. Combination Rules for Morse-Based van der Waals Force Fields. , 2018, The journal of physical chemistry. A.
[21] S. Narumanchi,et al. Chemically linked metal-matrix nanocomposites of boron nitride nanosheets and silver as thermal interface materials , 2018, Nanotechnology.
[22] J. Zou,et al. High tensile-strength and ductile titanium matrix composites strengthened by TiB nanowires , 2017 .
[23] A. F. Fonseca,et al. Graphene-Titanium Interfaces from Molecular Dynamics Simulations. , 2017, ACS applied materials & interfaces.
[24] B. Hu,et al. High dislocation density–induced large ductility in deformed and partitioned steels , 2017, Science.
[25] Di Zhang,et al. Leaf-like carbon nanotube-graphene nanoribbon hybrid reinforcements for enhanced load transfer in copper matrix composites , 2017 .
[26] Di Zhang,et al. Simultaneously enhancing the strength, ductility and conductivity of copper matrix composites with graphene nanoribbons , 2017 .
[27] S. R. Bakshi,et al. Formation of TiCx during reactive spark plasma sintering of mechanically milled Ti/carbon nanotube mixtures , 2017 .
[28] Chang-yu Zhou,et al. Orientation and strain rate dependent tensile behavior of single crystal titanium nanowires by molecular dynamics simulations , 2017 .
[29] Jianqiang Guo,et al. Reinforcement with graphene nanoflakes in titanium matrix composites , 2017 .
[30] Y. Sui,et al. Tensile mechanical properties of nano-layered copper/graphene composite , 2017 .
[31] Hongmei Zhang,et al. Microstructure evolution and superior tensile properties of low content graphene nanoplatelets reinforced pure Ti matrix composites , 2017 .
[32] N. Nomura,et al. Effectively enhanced load transfer by interfacial reactions in multi-walled carbon nanotube reinforced Al matrix composites , 2017 .
[33] S. Bai,et al. “White graphene” – hexagonal boron nitride based polymeric composites and their application in thermal management , 2016 .
[34] Ping Liu,et al. The mechanical behavior dependence on the TiB whisker realignment during hot-working in titanium matrix composites , 2016, Scientific Reports.
[35] Weiwei Zhou,et al. In-situ characterization of interfacial shear strength in multi-walled carbon nanotube reinforced aluminum matrix composites , 2016 .
[36] K. Uosaki,et al. Highly Efficient Electrochemical Hydrogen Evolution Reaction at Insulating Boron Nitride Nanosheet on Inert Gold Substrate , 2016, Scientific Reports.
[37] Y. Chen,et al. Atomically Thin Boron Nitride: Unique Properties and Applications , 2016, 1605.01136.
[38] Chengyuan Wang,et al. Mechanical properties of hybrid boron nitride–carbon nanotubes , 2016 .
[39] Youngsik Choi,et al. Study on the strengthening mechanisms of Cu/CNT nano-composites , 2015 .
[40] M. Dapino,et al. Interfacial shear strength estimates of NiTi–Al matrix composites fabricated via ultrasonic additive manufacturing , 2015 .
[41] Junha Shin,et al. Strengthening behavior of few-layered graphene/aluminum composites , 2015 .
[42] Qiang Liu,et al. Crack propagation behaviors at Cu/SiC interface by molecular dynamics simulation , 2014 .
[43] S. Barraza‐Lopez. Coherent electron transport through freestanding graphene junctions with metal contacts: a materials approach , 2013 .
[44] Y. Suh,et al. Length-scale-dependent strengthening of particle-reinforced metal matrix composites with strain gradient plasticity , 2013 .
[45] J. Zhang,et al. Room temperature tensile fracture characteristics of in situ TiBw/Ti6Al4V composites with a quasi-continuous network architecture , 2011 .
[46] P. Withers,et al. Interfacial shear strength behaviour of Ti/SiC metal matrix composites at room and elevated temperature , 2010 .
[47] L. Geng,et al. In situ (TiBw + TiCp)/Ti6Al4V composites with a network reinforcement distribution , 2010 .
[48] M. Gupta,et al. Enhancing tensile/compressive response of magnesium alloy AZ31 by integrating with Al2O3 nanoparticles , 2009 .
[49] M. Gupta,et al. Adding carbon nanotubes and integrating with AA5052 aluminium alloy core to simultaneously enhance stiffness, strength and failure strain of AZ31 magnesium alloy , 2009 .
[50] C. Zhi,et al. Large‐Scale Fabrication of Boron Nitride Nanosheets and Their Utilization in Polymeric Composites with Improved Thermal and Mechanical Properties , 2009 .
[51] R. Nowak,et al. A Titanium-Decorated Fullerene Cluster – A Molecular Dynamics Simulation , 2008 .
[52] Paulo S. Branicio,et al. Structural characterization of deformed crystals by analysis of common atomic neighborhood , 2007, Comput. Phys. Commun..
[53] S. Sinnott,et al. Ceramic/metal interface structures and their relationship to atomic- and meso-scale properties , 2003 .
[54] N. Hansen,et al. Dislocation configurations in metal-matrix composites correlated with numerical predictions , 1995 .
[55] Frank M. Mourits,et al. A critical evaluation of Lennard–Jones and Stockmayer potential parameters and of some correlation methods , 1977 .