Effect of Ni interlayer on interfacial microstructure and fatigue behavior of friction stir lap welded 6061 aluminum alloy and QP1180 steel
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Wen Wang | P. Han | K. Qiao | Zhengyang Hao | Kuaishe Wang | Tingting Zhang | Kairui Xue | Qiang Liu | Pengfei Zheng
[1] Song Gao,et al. Achievement of high-quality joints and regulation of intermetallic compounds in ultrasonic vibration enhanced friction stir lap welding of aluminum/steel , 2023, Journal of Materials Research and Technology.
[2] P. Han,et al. Microstructural evolution and deformation behavior of friction stir welded twin-induced plasticity steel , 2023, Journal of Materials Science & Technology.
[3] Wen Wang,et al. Evolution mechanism of intermetallic compounds and the mechanical properties of dissimilar friction stir welded QP980 steel and 6061 aluminum alloy , 2023, Materials Characterization.
[4] Jingling Xue,et al. Interfacial Microstructure and Strengthening Mechanism of Dissimilar Laser Al/Steel Joint Via a Porous High Entropy Alloy Coating , 2023, SSRN Electronic Journal.
[5] Gyoko Oh. Fatigue probabilistic assessments on a circular lap welding joint of stainless steels under axial loading , 2022, The International Journal of Advanced Manufacturing Technology.
[6] Jun Liu,et al. Interface Characteristics and Mechanical Properties of 2024 Aluminum Alloy and 304 Stainless Steel Dissimilar Alloys FSLW Joint with Ni Interlayer , 2022, Metals.
[7] Liaqat Ali Shah,et al. The role of pin eccentricity in friction stir welding of Al-Mg-Si alloy sheets: microstructural evolution and mechanical properties , 2022, The International Journal of Advanced Manufacturing Technology.
[8] H. Fujii,et al. Elucidation of intermetallic compounds and mechanical properties of dissimilar friction stir lap welded 5052 Al alloy and DP590 steel , 2022, Journal of Alloys and Compounds.
[9] Chunquan Hong,et al. Effect of nickel interlayer thickness on lap joint laser welding for aluminium-steel dissimilar materials , 2022, Science and Technology of Welding and Joining.
[10] Pai Peng,et al. Effects of interlayer metal on microstructures and mechanical properties of friction stir lap welded dissimilar joints of magnesium and aluminum alloys , 2022, Journal of Materials Processing Technology.
[11] Pai Peng,et al. Experimental investigation on fatigue crack initiation and propagation mechanism of friction stir lap welded dissimilar joints of magnesium and aluminum alloys , 2021, Materials Characterization.
[12] Gyoko Oh. Fatigue strength distribution and probabilistic evaluation on stainless steel welded components under mixed mode loading , 2021, International Journal of Fatigue.
[13] Liqiang Wang,et al. Intermetallic compounds: Formation mechanism and effects on the mechanical properties of friction stir lap welded dissimilar joints of magnesium and aluminum alloys , 2021, Materials Science and Engineering: A.
[14] Y. Uematsu,et al. Fatigue crack propagation near the interface between Al and steel in dissimilar Al/steel friction stir welds , 2020 .
[15] Jihua Huang,et al. Effect mechanism of Ni coating layer on the characteristics of Al/steel dissimilar metal brazing , 2020 .
[16] Xing-ji Li,et al. Investigating elastic constants across diverse strain-matrix sets , 2020, Computational Materials Science.
[17] B. Carlson,et al. Evaluation of intermetallic compound layer at aluminum/steel interface joined by friction stir scribe technology , 2019, Materials & Design.
[18] Guangyao Li,et al. Fatigue fracture properties of magnetic pulse welded dissimilar Al-Fe lap joints , 2019, International Journal of Fatigue.
[19] Jidong Kang,et al. Friction stir lap welding of aluminum alloy to advanced high strength steel using a cold-spray deposition as an interlayer , 2019, Materials Letters.
[20] S. Ji,et al. Reducing Intermetallic Compounds of Mg/Al Joint in Friction Stir Lap Welding , 2018, Journal of Materials Engineering and Performance.
[21] T. Matsuda,et al. Relationship between intermetallic compound layer thickness with deviation and interfacial strength for dissimilar joints of aluminum alloy and stainless steel , 2018, Materials Science and Engineering: A.
[22] Yongxian Huang,et al. Microstructure and Mechanical Properties of Al/Steel Friction Stir Lap Weld , 2017 .
[23] A. Gerlich,et al. Refill friction stir spot welding of dissimilar aluminum alloy and AlSi coated steel , 2017 .
[24] A. Abdollah-zadeh,et al. Influence of welding parameters on intermetallic compounds formation in dissimilar steel/aluminum friction stir welds , 2017 .
[25] T. Yasui,et al. Fatigue Properties of Butt Welded Aluminum Alloy and Carbon Steel Joints by Friction Stirring , 2017 .
[26] A. Macwan,et al. Microstructure, tensile and fatigue properties of ultrasonic spot welded aluminum to galvanized high-strength-low-alloy and low-carbon steel sheets , 2017 .
[27] S. Ao,et al. Microstructure and fatigue behavior of resistance element welded dissimilar joints of DP780 dual-phase steel to 6061-T6 aluminum alloy , 2017 .
[28] Yifu Shen,et al. Dissimilar friction stir welding of 6061 Al to 316 stainless steel using Zn as a filler metal , 2016 .
[29] S. Ghosh,et al. Effect of partial and full austenitisation on microstructure and mechanical properties of quenching and partitioning steel , 2016 .
[30] Y. Uematsu,et al. Fatigue behaviour of Al/steel dissimilar resistance spot welds fabricated using Al–Mg interlayer , 2016 .
[31] Y. Uematsu,et al. Fatigue behaviour of dissimilar Al alloy/galvanised steel friction stir spot welds fabricated by scroll grooved tool without probe , 2015 .
[32] Fukumoto Masahiro,et al. Fatigue behaviour of aluminium alloy/steel joints by spot friction stirring , 2015 .
[33] Yoshiaki Morisada,et al. Dissimilar FSW of immiscible materials: Steel/magnesium , 2015 .
[34] H. Das,et al. High Cycle Fatigue Behaviour of Friction Stir Lap Welded 6061 Aluminium Alloy to Coated Steel Sheet Joint , 2014, Transactions of the Indian Institute of Metals.
[35] Franccois-Xavier Coudert,et al. Necessary and Sufficient Elastic Stability Conditions in Various Crystal Systems , 2014, 1410.0065.
[36] X. Chong,et al. First principles study the stability, mechanical and electronic properties of manganese carbides , 2014 .
[37] Anupam Vivek,et al. Microstructures and Mechanical Properties of Laser Penetration Welding Joint With/Without Ni-Foil in an Overlap Steel-on-Aluminum Configuration , 2014, Metallurgical and Materials Transactions A.
[38] Priti Wanjara,et al. Lap shear strength and fatigue behavior of friction stir spot welded dissimilar magnesium-to-aluminum joints with adhesive , 2013 .
[39] Jinglong Li,et al. Joining aluminum to titanium alloy by friction stir lap welding with cutting pin , 2012 .
[40] Ke Ma,et al. Influence of a Ni-foil interlayer on Fe/Al dissimilar joint by laser penetration welding , 2012 .
[41] Y. Uematsu,et al. Comparative study of fatigue behaviour in dissimilar Al alloy/steel and Mg alloy/steel friction stir spot welds fabricated by scroll grooved tool without probe , 2012 .
[42] A. Kokabi,et al. Effect of tool travel and rotation speeds on weld zone defects and joint strength of aluminium steel lap joints made by friction stir welding , 2012 .
[43] Toshihiro Shimizu,et al. Fatigue behaviour of dissimilar friction stir spot welds between A6061-T6 and low carbon steel sheets welded by a scroll grooved tool without probe , 2011 .
[44] J. F. Santos,et al. Influence of intermetallic phases and Kirkendall-porosity on the mechanical properties of joints between steel and aluminium alloys , 2011 .
[45] T. Saeid,et al. Weldability and mechanical properties of dissimilar aluminum–copper lap joints made by friction stir welding , 2010 .
[46] Y. Chen,et al. Role of zinc coat in friction stir lap welding Al and zinc coated steel , 2008 .
[47] Xiaojuan Liu,et al. Crystal structures and elastic properties of superhard IrN2 and IrN3 from first principles , 2007 .
[48] S. Chatterjee,et al. Structure and properties of diffusion bonded transition joints between commercially pure titanium and type 304 stainless steel using a nickel interlayer , 2007 .
[49] Xiaojuan Liu,et al. Structures and elastic properties of OsN2 investigated via first-principles density functional calculations , 2007 .
[50] K. Ikeuchi,et al. Characterization of aluminum/steel lap joint by friction stir welding , 2005 .
[51] D. Matlock,et al. Carbon partitioning into austenite after martensite transformation , 2003 .
[52] T. Yakou,et al. Control of intermetallic compound layers at interface between steel and aluminum by diffusion-treatment , 2002 .
[53] Matt Probert,et al. First-principles simulation: ideas, illustrations and the CASTEP code , 2002 .
[54] G. Ackland. Embrittlement and the Bistable Crystal Structure of Zirconium Hydride , 1998 .
[55] S. Pugh. XCII. Relations between the elastic moduli and the plastic properties of polycrystalline pure metals , 1954 .
[56] R. Hill. The Elastic Behaviour of a Crystalline Aggregate , 1952 .
[57] Xiaoguo Song,et al. Microstructure and mechanical properties of Al/steel dissimilar welds fabricated by friction surfacing assisted friction stir lap welding , 2020 .
[58] B. Carlson,et al. Tensile and Fatigue Behaviour of AA6022-T4 to IF Steel Resistance Spot Welds , 2017 .
[59] P.M.S.T. de Castro,et al. Study of the fatigue behaviour of dissimilar aluminium joints produced by friction stir welding , 2016 .
[60] B. Ghaffari,et al. Fatigue and fracture of friction stir linear welded dissimilar aluminum-to-magnesium alloys , 2016 .
[61] T. Ogura,et al. Fracture toughness and fatigue crack growth behavior of A3003/SUS304 lap friction stir welded joints , 2015 .
[62] M. Born,et al. Dynamical Theory of Crystal Lattices , 1954 .