APPLIED LASER, Volume. 44, Issue 6, 46(2024)
Study on Microstructure and Wear Behavior of Laser Cladding CoFeCrNiV High Entropy Alloy Coating on the Surface of Automobile Welded Parts
[1] [1] YEH J W, CHEN S K, LIN S J, et al. Nanostructured high-entropy alloys with multiple principal elements: Novel alloy design concepts and outcomes[J]. Advanced Engineering Materials, 2004, 6(5): 299-303.
[8] [8] OTTO F, DLOUHY A, SOMSEN C, et al. The influences of temperature and microstructure on the tensile properties of a CoCrFeMnNi high-entropy alloy[J]. Acta Materialia, 2013, 61(15): 5743-5755.
[9] [9] GUAN Y J, CUI X F, CHEN D, et al. Microstructure and properties analysis of FeCoNiAlCu dual-phase high-entropy alloy coating by laser cladding[J]. Surface and Coatings Technology, 2023, 467: 129695.
[10] [10] LU Y P, DONG Y, GUO S, et al. A promising new class of high-temperature alloys: Eutectic high-entropy alloys[J]. Scientific Reports, 2014, 4: 6200.
[11] [11] GUAN Y J, CUI X F, CHEN D, et al. Realizing high strength and toughness of gradient high-entropy alloy coating by in situ interface reaction of FeCoCrNi/FeCoCrAl[J]. Surface and Coatings Technology, 2023, 464: 129569.
[12] [12] CHAO Q, GUO T T, JARVIS T, et al. Direct laser deposition cladding of Al CoCrFeNi high entropy alloys on a high-temperature stainless steel[J]. Surface and Coatings Technology, 2017, 332: 440-451.
[13] [13] NI C, SHI Y, LIU J, et al. Characterization of Al0.5FeCu0.7NiCoCr high-entropy alloy coating on aluminum alloy by laser cladding[J]. Optics & Laser Technology, 2018, 105: 257-263.
[14] [14] YANG J X, BAI B, KE H, et al. Effect of metallurgical behavior on microstructure and properties of FeCrMoMn coatings prepared by high-speed laser cladding[J]. Optics & Laser Technology, 2021, 144: 107431.
[15] [15] MAO X Y, WANG Y X, JIANG J, et al. Microstructure and corrosion properties of micro-nano FeCoNiCrMnAl0.5 coatings fabricated by plasma spraying[J]. Materials Letters, 2022, 314: 131855.
[16] [16] STEPANOV N D, SHAYSULTANOV D G, SALISHCHEV G A, et al. Effect of V content on microstructure and mechanical properties of the CoCrFeMnNiVx high entropy alloys[J]. Journal of Alloys and Compounds, 2015, 628: 170-185.
[17] [17] HAFTLANGF, ZARGARAN A, SON S, et al. The subsurface deformed region and superficial protective tribo-oxide layer during wear in a non-equiatomic CoCrFeNiV high entropy alloy[J]. Materials & Design, 2022, 218: 110685.
[19] [19] GLUDOVATZB, HOHENWARTER A, CATOOR D, et al. A fracture-resistant high-entropy alloy for cryogenic applications[J]. Science, 2014, 345(6201): 1153-1158.
[20] [20] XU Z, LI D Y, CHEN D L, et al. Effect of Ti on the wear behavior of AlCoCrFeNi high-entropy alloy during unidirectional and bi-directional sliding wear processes[J]. Wear, 2021, 476: 203650.
[21] [21] YIN B L, MARESCA F, CURTIN W A. Vanadium is an optimal element for strengthening in both fcc and bcc high-entropy alloys[J]. Acta Materialia, 2020, 188: 486-491.
[22] [22] BI L X, LI X N, HU Y L, et al. Weak enthalpy-interaction-element-modulated NbMoTaW high-entropy alloy thin films[J]. Applied Surface Science, 2021, 565: 150462.
[23] [23] YANGL, CHENG Z, ZHU W W, et al. Significant reduction in friction and wear of a high-entropy alloy via the formation of self-organized nanolayered structure[J]. Journal of Materials Science & Technology, 2021, 73: 1-8.
[24] [24] WANG W L, HU L, LUO S B, et al. Liquid phase separation and rapid dendritic growth of high-entropy CoCrCuFeNi alloy[J]. Intermetallics, 2016, 77: 41-45.
[25] [25] WUH, ZHANG S, WU C L, et al. Electrochemical corrosion behavior in sulfuric acid solution and dry sliding friction and wear properties of laser-cladded CoCrFeNiNb high entropy alloy coatings[J]. Surface and Coatings Technology, 2023, 460: 129425.
[26] [26] ARIF Z U, KHALID M Y, UR REHMAN E, et al. A review on laser cladding of high-entropy alloys, their recent trends and potential applications[J]. Journal of Manufacturing Processes, 2021, 68: 225-273.
[27] [27] YUAN W Y, LI R F, CHEN Z H, et al. A comparative study on microstructure and properties of traditional laser cladding and high-speed laser cladding of Ni45 alloy coatings[J]. Surface and Coatings Technology, 2021, 405: 126582.
[28] [28] DU C C, HU L, REN X D, et al. Cracking mechanism of brittle FeCoNiCrAl HEA coating using extreme high-speed laser cladding[J]. Surface and Coatings Technology, 2021, 424: 127617.
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Zhang Qiuhua. Study on Microstructure and Wear Behavior of Laser Cladding CoFeCrNiV High Entropy Alloy Coating on the Surface of Automobile Welded Parts[J]. APPLIED LASER, 2024, 44(6): 46
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Received: Jan. 21, 2024
Accepted: Dec. 13, 2024
Published Online: Dec. 13, 2024
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