Early stages of liquid-metal embrittlement in an advanced high-strength steel
Tài liệu tham khảo
Meschut, 2020
Park, 2015, Pitting corrosion behavior in advanced high strength steels, J. Alloys Compd., 619, 205, 10.1016/j.jallcom.2014.08.243
Han, 2018, Experimental determination of phase diagram in the Zn-Fe binary system, J. Alloys Compd., 737, 490, 10.1016/j.jallcom.2017.11.320
Raghavan, 2003, Fe-Zn (Iron-Zinc), J. Phase Equil., 24, 544, 10.1361/105497103772084598
Ling, 2018, Liquid metal embrittlement of galvanized steels during industrial processing: a review, 25, 10.1007/978-981-10-8330-3_2
Bhattacharya, 2018, Liquid metal embrittlement during resistance spot welding of Zn-coated high-strength steels, Mater. Sci. Technol., 34, 1809, 10.1080/02670836.2018.1461595
Razmpoosh, 2021, Pathway to understand liquid metal embrittlement (LME) in Fe-Zn couple: from fundamentals toward application, Prog. Mater. Sci., 10.1016/j.pmatsci.2021.100798
Ling, 2020, Towards an explanation of liquid metal embrittlement cracking in resistance spot welding of dissimilar steels, Mater. Des., 195, 10.1016/j.matdes.2020.109055
Geunsu, 2015
Van den Bosch, 2012, On the LME susceptibility of Si enriched steels, J. Nucl. Mater., 429, 105, 10.1016/j.jnucmat.2012.05.017
Kang, 2016, Zn penetration in liquid metal embrittled TWIP steel, Metall. Mater. Trans., 47, 2885, 10.1007/s11661-016-3475-x
American Welding, 2019, Effect of silicon and retained austenite on the liquid metal embrittlement cracking behavior of GEN3 and high-strength automotive steels, WJ, 98, 351, 10.29391/2019.98.029
Wolski, 2001, AES quantification of intergranular film thickness in the Ni-Bi system with respect to the liquid metal embrittlement phenomenon, Surf. Interface Anal., 31, 280, 10.1002/sia.989
Hugo, 1998, In-situ TEM observation of aluminum embrittlement by liquid gallium, Scripta Mater., 38, 523, 10.1016/S1359-6462(97)00464-8
Hugo, 1999, Gallium penetration of aluminum: in-situ TEM observations at the penetration front, Scripta Mater., 41, 1341, 10.1016/S1359-6462(99)00293-6
Naderi, 2015, Kinetic, volumetric and structural effects induced by liquid Ga penetration into ultrafine grained Al, Acta Mater., 99, 196, 10.1016/j.actamat.2015.07.061
Ren, 1999, Influence of grain boundary structure on liquid metal penetration behavior, MRS Proc, 578, 411, 10.1557/PROC-578-411
Case, 2010, Mercury liquid metal embrittlement of alloys for oil and gas production and processing, 1
Lu, 1999, In situ TEM research of dislocation emission and microcrack nucleation for Ti after adsorption by Hg, Corrosion Sci., 41, 699, 10.1016/S0010-938X(98)00143-7
Razmpoosh, 2020, Role of random and coincidence site lattice grain boundaries in liquid metal embrittlement of Iron (FCC)-Zn couple, Metall. Mater. Trans., 51, 3938, 10.1007/s11661-020-05857-3
Razmpoosh, 2018, Liquid metal embrittlement in laser lap joining of TWIP and medium-manganese TRIP steel: the role of stress and grain boundaries, Mater. Char., 145, 627, 10.1016/j.matchar.2018.09.018
Razmpoosh, 2021, Atomic-scale investigation of liquid-metal-embrittlement crack-path: revealing mechanism and role of grain boundary chemistry, Acta Mater., 204, 10.1016/j.actamat.2020.116519
Lee, 2019, Microstructural evolution of liquid metal embrittlement in resistance-spot-welded galvanized TWinning-Induced Plasticity (TWIP) steel sheets, Mater. Char., 147, 233, 10.1016/j.matchar.2018.11.008
Ling, 2019, Liquid metal embrittlement cracking during resistance spot welding of galvanized Q&P980 steel, Metall. Mater. Trans., 50, 5128, 10.1007/s11661-019-05388-6
Cho, 2014, Microstructure of liquid metal embrittlement cracks on Zn-coated 22MnB5 press-hardened steel, Scripta Mater., 90–91, 25, 10.1016/j.scriptamat.2014.07.008
Klinger, 2007, The effect of stress on grain boundary interdiffusion in a semi-infinite bicrystal, Acta Mater., 55, 4689, 10.1016/j.actamat.2007.04.039
Hong, 2020, Si effect on Zn-assisted liquid metal embrittlement in Zn-coated TWIP steels: importance of Fe-Zn alloying reaction, Surf. Coating. Technol., 393, 10.1016/j.surfcoat.2020.125809
Rice, 1989, Embrittlement of interfaces by solute segregation, Mater. Sci. Eng., A, 107, 23, 10.1016/0921-5093(89)90372-9
McKinley, 1954, The vapor pressure of zinc between 150°C and 350°C, J. Chem. Phys., 22, 1120, 10.1063/1.1740276
Yilmaz, 2020, Resistance spot weldability of TBF steel sheets with dissimilar thickness, Metall. Res. Technol., 117, 10.1051/metal/2020071
Siar, 2020, Effect of severe welding conditions on liquid metal embrittlement of a 3rd-generation advanced high-strength steel, Metals, 10, 1, 10.3390/met10091166
Murugan, 2019, Critical design parameters of the electrode for liquid metal embrittlement cracking in resistance spot welding, Weld. World, 63, 1613, 10.1007/s40194-019-00797-y
Razmpoosh, 2020, Crystallographic study of liquid-metal-embrittlement crack path, Mater. Lett., 267, 10.1016/j.matlet.2020.127511
SEP 1220-2:2011-08, Testing and Documentation Guideline for the Joinability of Thin Sheet of Steel - Part 2: Resistance Spot Welding.
Belin, 2000, Synthesis and crystal structure determinations in the Γ and δ phase domains of the Iron–Zinc system: electronic and bonding analysis of Fe13Zn39 and FeZn10, a subtle deviation from the Hume–Rothery standard?, J. Solid State Chem., 151, 85, 10.1006/jssc.2000.8626
Koster, 1981, Structure of the cubic iron–zinc phase Fe22Zn78, Acta Crystallogr. B Struct. Crystallogr. Cryst. Chem., 37, 1905, 10.1107/S056774088100753X
Hong, 1997, Transmission electron microscopy of the iron-zinc delta1 intermetallic phase, Scripta Mater., 36, 1423, 10.1016/S1359-6462(97)00030-4
Wang, 2015, Formation of Fe-Zn intermetallic phases in Galvannealed Mn-Si TRIP steels, 81
Hu, 2000, Relationship between the crystallographic structure of electroplated Fe-Zn Alloy film and its thermal equilibrium diagram, J. Jpn Inst. Metal, 64, 234, 10.2320/jinstmet1952.64.4_234
Inui, 2018, Crystal structures and mechanical properties of Fe–Zn intermetallic compounds formed in the coating layer of Galvannealed steels, ISIJ Int., 58, 1550, 10.2355/isijinternational.ISIJINT-2018-066
Hong, 1996, The mechanical properties and dislocation structure of the Γ intermetallic phase in the Fe-Zn system, Philos. Mag. A, 74, 509, 10.1080/01418619608242158
Zhu, 2020, Phase equilibria and diffusion coefficients in the Fe-Zn binary system, Mater. Des., 188, 10.1016/j.matdes.2019.108437
Ophus, 2019, Four-dimensional scanning transmission electron microscopy (4D-STEM): from scanning nanodiffraction to ptychography and beyond, Microsc. Microanal., 25, 563, 10.1017/S1431927619000497
Yuan, 2019, Lattice strain mapping using circular Hough transform for electron diffraction disk detection, Ultramicroscopy, 207, 10.1016/j.ultramic.2019.112837
DiGiovanni, 2021, Liquid metal embrittlement transport mechanism in the Fe/Zn system: stress-assisted diffusion, Materialia, 10.1016/j.mtla.2021.101153
Dohie, 2007, The grain-boundary diffusion of Zn in α-Fe, J. Phase Equilibria Diffus., 28, 322, 10.1007/s11669-007-9093-y
Jordan, 1997, Effect of substrate grain size on iron-zinc reaction kinetics during hot-dip galvanizing, Metall. Mater. Trans., 28, 2683, 10.1007/s11661-997-0025-6
Culcasi, 1999, Control of the growth of zinc–iron phases in the hot-dip galvanizing process, Surf. Coating. Technol., 122, 21, 10.1016/S0257-8972(99)00404-1
Inagaki, 1995, Alloying reactions in hot dip galvanizing and galvannealing processes, ISIJ Int., 35, 1388, 10.2355/isijinternational.35.1388
Alpas, 2000, Effect of microstructure on fracture mechanisms in Galvannealed coatings, ISIJ Int., 40, 172, 10.2355/isijinternational.40.172
Iost, 1993, Toughness and residual stresses in galvanizing coatings, J. Mater. Sci. Lett., 12, 1340, 10.1007/BF00241701
