Comparative Study of Microstructural Characteristics and Hardness of β-Quenched Zr702 and Zr–2.5Nb Alloys
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L. Chai | N. Guo | R. Qiu | Kang Xiang | H. Guan | Yufan Zhu | J. Dai | Yuanzhuo Liu
[1] Andrei Victor Sandu,et al. Characterization and Mechanical Proprieties of New TiMo Alloys Used for Medical Applications , 2019, Materials.
[2] H. Feng,et al. Numerical simulation of dynamic fracture in functionally graded materials using peridynamic modeling with composite weighted bonds , 2019, Engineering Analysis with Boundary Elements.
[3] B. Zhang,et al. A Coupled EBSD/TEM Analysis of the Microstructure Evolution of a Gradient Nanostructured Ferritic/Martensitic Steel Subjected to Surface Mechanical Attrition Treatment , 2019, Materials.
[4] Guanglong Xu,et al. Diffusivities and Atomic Mobilities in bcc Ti-Mo-Zr Alloys , 2018, Materials.
[5] P. Hodgson,et al. Five-parameter intervariant boundary characterization of martensite in commercially pure titanium , 2018, Acta Materialia.
[6] L. Chai,et al. Microstructural characteristics of as-forged and β -air-cooled Zr–2.5Nb alloy , 2018, Transactions of Nonferrous Metals Society of China.
[7] L. Chai,et al. Strengthening or weakening texture intensity of Zr alloy by modifying cooling rates from α + β region , 2018, Materials Chemistry and Physics.
[8] Wei Xu,et al. Zirconium Alloys for Orthopaedic and Dental Applications , 2018, Advanced Engineering Materials.
[9] L. Chai,et al. Nanotwins induced by pulsed laser and their hardening effect in a Zr alloy , 2018 .
[10] Rui-qian Zhang,et al. Microstructure evolution and recrystallization behavior of cold-rolled Zr-1Sn-0.3Nb-0.3Fe-0.1Cr alloy during annealing , 2018 .
[11] Fusen Yuan,et al. Stacking faults in Zr(Fe, Cr)2 Laves structured secondary phase particle in Zircaloy-4 alloy. , 2017, Nanoscale.
[12] H. Seifert,et al. Protective coatings on zirconium-based alloys as accident-tolerant fuel (ATF) claddings , 2017 .
[13] Hao Wu,et al. α→β Transformation characteristics revealed by pulsed laser-induced non-equilibrium microstructures in duplex-phase Zr alloy , 2017 .
[14] M. Daymond,et al. Microstructural evaluation and crystallographic texture modification of heat-treated zirconium Excel pressure tube material , 2016 .
[15] B. Luan,et al. Concurrent inheritance of microstructure and texture after slow β→α cooling of commercially pure Zr , 2016 .
[16] S. Kano,et al. Study on recrystallization and correlated mechanical properties in Mo-modified Zr-Nb alloys , 2016 .
[17] Fucheng Zhang,et al. Effect of cooling process on the formation of duplex microstructure in Zr–2.3Nb alloy , 2015 .
[18] Q. Liu,et al. Microstructural and textural evolution of commercially pure Zr sheet rolled at room and liquid nitrogen temperatures , 2015 .
[19] S. Kano,et al. Effects of alloying elements (Sn, Nb, Cr, and Mo) on the microstructure and mechanical properties of zirconium alloys , 2015 .
[20] S. Zaefferer,et al. Theory and application of electron channelling contrast imaging under controlled diffraction conditions , 2014 .
[21] M. Zhang,et al. Experimental observation of 12 α variants inherited from one β grain in a Zr alloy , 2013 .
[22] S. Ringer,et al. Atom probe microscopy characterization of as quenched Zr–0.8 wt% Fe and Zr–0.15 wt% Cr binary alloys , 2013 .
[23] M. Darrieulat,et al. Influence of the cooling rate on the texture and the microstructure of Zircaloy-4 studied by means of a Jominy end-quench test , 2012 .
[24] S. Cai,et al. Deformation of high β-phase fraction Zr–Nb alloys at room temperature , 2012 .
[25] M. Thuvander,et al. Methods of quantitative matrix analysis of Zircaloy-2. , 2011, Ultramicroscopy.
[26] S. Cai,et al. Texture inheritance and variant selection through an hcp–bcc–hcp phase transformation , 2010 .
[27] H. Okamoto. Sn-Zr (Tin-Zirconium) , 2010 .
[28] K. Narasimhan,et al. Annealing of cold worked two-phase Zr-2.5 Nb—Associated microstructural developments , 2009 .
[29] R. Tewari,et al. Microstructural evolution in zirconium based alloys , 2008 .
[30] Wen-qing Liu,et al. A superior corrosion behavior of Zircaloy-4 in lithiated water at 360 °C/18.6 MPa by β-quenching , 2008 .
[31] Sang Yoon Park,et al. Corrosion and microstructural characteristics of Zr–Nb alloys with different Nb contents , 2008 .
[32] Hyun-Gil Kim,et al. Microstructure and corrosion characteristics of Zr–1.5Nb–0.4Sn–0.2Fe–0.1Cr alloy with a β-annealing , 2008 .
[33] F. Montheillet,et al. Microstructure transformation during warm working of β-treated lamellar Zircaloy-4 within the upper α-range , 2006 .
[34] M. Limbäck,et al. Effect of beta-to-alpha phase transition rate on corrosion behaviour of Zircaloy , 2006 .
[35] Ali R Massih,et al. The effect of beta quenching in final dimension on the irradiation growth of tubes and channels , 2005 .
[36] M. Limbäck,et al. Effect of quenching rate on the β-to-α phase transformation structure in zirconium alloy , 2003 .
[37] Yong Hwan Jeong,et al. Correlation between microstructure and corrosion behavior of Zr-Nb binary alloy , 2002 .
[38] Marc A. Meyers,et al. THE ONSET OF TWINNING IN METALS: A CONSTITUTIVE DESCRIPTION , 2001 .
[39] S. Banerjee,et al. Morphology and substructure of lath martensites in dilute ZrNb alloys , 2000 .
[40] J. Crépin,et al. Microstructural study of β treated grade 702 zirconium. Scanning electron microscopy and transmission electron microscopy, complementarity of two observational scales , 1997 .
[41] J. Wadier,et al. Precipitate growth kinetics in Zircaloy-4 , 1990 .
[42] D. Northwood,et al. Phase Transformations in Zirconium and Its Alloys , 1979 .
[43] K. Tangri,et al. Transformation characteristics of rapidly heated and quenched zircaloy-4-oxygen alloys , 1979 .
[44] P. Niessen,et al. The continuous cooling transformation behaviour of zirconium-niobium-oxygen alloys , 1971 .
[45] R. Holt. The beta to alpha phase transformation in zircaloy-4 , 1970 .
[46] P. Mrkous,et al. CORROSION OF ZIRCONIUM AND ITS ALLOYS. , 1966 .
[47] W. G. Burgers. On the process of transition of the cubic-body-centered modification into the hexagonal-close-packed modification of zirconium , 1934 .