TiCoCrFeMn (BCC + C14) High-Entropy Alloy Multiphase Structure Analysis Based on the Theory of Molecular Orbitals
暂无分享,去创建一个
K. Karczewski | S. Jóźwiak | M. Kopeć | Dominika Gorniewicz | Hubert Przygucki | Dominika Górniewicz
[1] P. Liaw,et al. Investigation of phase-transformation path in TiZrHf(VNbTa)x refractory high-entropy alloys and its effect on mechanical property , 2021 .
[2] Y. V. Krishna,et al. Machine learning approach to predict new multiphase high entropy alloys , 2021 .
[3] K. Bhanu Sankara Rao,et al. On the origins of ultra-high hardness and strain gradient plasticity in multi-phase nanocrystalline MoNbTaTiW based refractory high-entropy alloy , 2021 .
[4] David J Armstrong,et al. High-Entropy Alloys for Advanced Nuclear Applications , 2021, Entropy.
[5] Hao Liu,et al. Microstructure and Properties of CoCrFeNiTi High-Entropy Alloy Coating Fabricated by Laser Cladding , 2020, Journal of Materials Engineering and Performance.
[6] David J Armstrong,et al. Novel reduced-activation TiVCrFe based high entropy alloys , 2020, Journal of Alloys and Compounds.
[7] N. Stepanov,et al. Exceptionally high strain-hardening and ductility due to transformation induced plasticity effect in Ti-rich high-entropy alloys , 2020, Scientific Reports.
[8] Vinod Kumar,et al. Hot workability of Co–Fe–Mn–Ni–Ti eutectic high entropy alloy , 2020 .
[9] P. Liaw,et al. A multi-phase CrMnFeCoNiAl0.75 high-entropy alloy with high strength at intermediate temperature , 2020 .
[10] M. R. Toroghinejad,et al. Evaluation of microstructure and texture formation during annealing of cold-rolled FeCrCuMnNi multiphase high-entropy alloy , 2020 .
[11] T. Yadav,et al. Formation and stability of C14 type Laves phase in multi component high-entropy alloys , 2020 .
[12] N. Lavery,et al. Multi-phase nature of sintered vs. arc-melted CrxAlFeCoNi high entropy alloys - experimental and theoretical study , 2019, Journal of Alloys and Compounds.
[13] P. Rivera-Díaz-del-Castillo,et al. Modelling martensitic transformation in titanium alloys: The influence of temperature and deformation , 2019, Materialia.
[14] R. Cava,et al. High-entropy alloy superconductors: Status, opportunities, and challenges , 2019, Physical Review Materials.
[15] Dierk Raabe,et al. High-entropy alloys , 2019, Nature Reviews Materials.
[16] M. R. Toroghinejad,et al. Investigation of microstructure, texture, and mechanical properties of FeCrCuMnNi multiphase high entropy alloy during recrystallization , 2019, Materials Characterization.
[17] D. Choudhuri,et al. Interplay between Single Phase Solid Solution Strengthening and Multi-Phase Strengthening in the Same High Entropy Alloy , 2019, Materials Science and Engineering: A.
[18] Ruirun Chen,et al. CoCrFeMnNi high-entropy alloys reinforced with Laves phase by adding Nb and Ti elements , 2019, Journal of Materials Research.
[19] Yong Zhang,et al. Entropic Alloys for Cryogenic Applications , 2018, Stainless Steels and Alloys.
[20] Y. H. Li,et al. Improved deformation behavior in Ti-Zr-Fe-Mn alloys comprising the C14 type Laves and β phases , 2018, Materials & Design.
[21] Arun Devaraj,et al. A Review of Metastable Beta Titanium Alloys , 2018, Metals.
[22] S. Abbasi,et al. Design of a New Multi-element Beta Titanium Alloy Based on d-Electron Method , 2018 .
[23] I. Guillot,et al. Design and tensile properties of a bcc Ti-rich high-entropy alloy with transformation-induced plasticity , 2017 .
[24] U. Jansson,et al. Superior hydrogen storage in high entropy alloys , 2016, Scientific Reports.
[25] U. Klement,et al. Predicting the solid solubility limit in high-entropy alloys using the molecular orbital approach , 2015 .
[26] Jinyong Zhang. Mechanical Behavior and Microstructural Evolution in Metastable β Ti-Mo Based Alloys with TRIP and TWIP Effects , 2014 .
[27] Z. Jagličić,et al. Discovery of a superconducting high-entropy alloy. , 2014, Physical review letters.
[28] H. Bei,et al. Relative effects of enthalpy and entropy on the phase stability of equiatomic high-entropy alloys , 2013 .
[29] Chuan Zhang,et al. Computational Thermodynamics Aided High-Entropy Alloy Design , 2012, JOM.
[30] Yongbum Choi,et al. Alloy Design of Ti Alloys Using Ubiquitous Alloying Elements and Characteristics of Their Levitation-Melted Alloys , 2010 .
[31] D. V. Louzguine-Luzgin,et al. Synthetic relationship between titanium and alloying elements in designing Ni-free Ti-based bulk metallic glass alloys , 2007 .
[32] Akira Takeuchi,et al. Classification of Bulk Metallic Glasses by Atomic Size Difference, Heat of Mixing and Period of Constituent Elements and Its Application to Characterization of the Main Alloying Element , 2005 .
[33] H. Yukawa,et al. Alloy Design Based on Molecular Orbital Method , 2005 .
[34] B. Cantor,et al. Microstructural development in equiatomic multicomponent alloys , 2004 .
[35] H. Yukawa,et al. Alloy design with the aid of molecular orbital method , 1997 .
[36] N. Parvin,et al. The effect of processing parameters and heat-treatment on the microstructure and mechanical properties of PM CoCrFeMnNiTi0.1 high-entropy alloy , 2021 .
[37] J. Kawałko,et al. Effect of high-temperature exposure on the microstructure and mechanical properties of the Al5Ti5Co35Ni35Fe20 high-entropy alloy , 2020, Journal of Materials Research and Technology.
[38] U. Glatzel,et al. New multiphase compositionally complex alloys driven by the high entropy alloy approach , 2019, Materials Characterization.
[39] M. Gao,et al. High-Entropy Alloys: Fundamentals and Applications , 2016 .
[40] R. Kozak,et al. Single-phase high-entropy alloys – an overview , 2014 .
[41] J. Ćwik. Magnetism and magnetocaloric effect in multicomponent Laves-phase compounds: Study and comparative analysis , 2014 .
[42] E. Akiba. Hydrogen Absorption by Laves Phase Related BCC Solid Solution Alloys , 1997 .