Laser Technology, Volume. 47, Issue 4, 463(2023)
Effect of WC mass fraction on microstructure and properties of laser cladding Ni-based coatings
[1] [1] WANG Y, LI H, LIANG J L, et al. Current status of research on corrosion behavior and surface corrosion protection of Q235 steel[J]. Electroplating & Finishing, 2019, 38(11): 545-548(in Chinese).
[2] [2] WANG H Zh, CHENG Y H, YANG J Y, et al. Influence of laser remelting on organization, mechanical properties and corrosion resistance of Fe-based amorphous composite coating[J]. Surface and Coatings Technology, 2021, 414(3): 127081.
[3] [3] HUANG G K, QU L, LU Y Zh, et al. Corrosion resistance improvement of 45 steel by Fe-based amorphous coating[J]. Vacuum,2018, 153(3):39-42.
[4] [4] WANG H Zh, CHENG Y H, ZHANG X Ch, et al. Effect of laser scanning speed on microstructure and properties of Fe based amorphous/nanocrystalline cladding coatings[J]. Materials Chemistry and Physics, 2020, 250: 123091.
[5] [5] XI W Ch, SONG B X, WANG Z X, et al. Effect of laser re-melting on geometry and mechanical properties of YCF102 cladding layer[J]. Surface and Coatings Technology, 2021, 408: 126789.
[6] [6] WANG H Zh, CHENG Y H, YANG J Y, et al. Influence of laser remelting on organization, mechanical properties and corrosion resistance of Fe-based amorphous composite coating[J]. Surface and Coatings Technology, 2021, 414(3): 127081.
[7] [7] CHEN W, XU L Y, HAO K D, et al. Additive manufacturing of 15-5PH/WC composites with the synergistic enhancement of strength and ductility[J]. Materials Science and Engineering, 2022, A840: 142926.
[8] [8] ZHENG Zh H, LV J, LOU M, et al. Mechanical and tribological properties of WC incorporated Ti(C, N)-based cermets[J]. Ceramics International, 2022, 48(7): 10086-10095.
[9] [9] LU L W, FENG D R, WANG Y R, et al. Microstructure, wear resistance and electrochemical properties of spherical/non-spherical WC reinforced Inconel 625 superalloy by laser melting deposition[J]. Journal of Manufacturing Processes, 2022, 74(12): 413-422.
[10] [10] CHEN H, LU Y Y, WU K H, et al. Effect of WC addition on TiC reinforced Fe matrix composites produced by laser deposition[J]. Surface and Coatings Technology, 2022, 434: 128185.
[11] [11] TAN Ch, HU J, SHI Q, et al. Enhanced hardness and toughness in WC/W2C-Ni-Cu composites fabricated by selective laser melting[J]. International Journal of Refractory Metals and Hard Materials, 2022, 105: 105805.
[12] [12] FAN Sh Q, ZHANG L T, LI H T, et al. Effect of initial state of WC on microstructure and properties of laser cladding Ni60 /WC coatings[J]. Transactions of Materials and Heat Treatment, 2021, 42(6): 157-162(in Chinese).
[13] [13] LUO J W, NIU B, CHEN J F, et al. Preparation technology and properties of metal matrix composite wear-resistant materials reinforced by WC particles[J]. Journal of Netshape Forming Engineering, 2020, 12(4): 126-131(in Chinese).
[14] [14] DING Y X, WU Zh. Research of properties of laser cladding on Ni/WC-Y2O3 surface of 35CrMo steel[J]. Surface Technology, 2011, 40(5): 32-34(in Chinese).
[15] [15] LI L Ch, WEI X. Study on the effect of laser cladding composite coating and its WC on crack formation mechanism[J]. Laser Technology, 2023,47(1): 52-58(in Chinese).
[17] [17] HU Y J, WANG Z X, PANG M. Effect of WC content on laser cladding Ni-based coating on the surface of stainless steel[J]. Materials Today Communications, 2022, 31: 103357.
[18] [18] XIA Y L, CHEN H N, LIANG X D, et al. Circular oscillating laser melting deposition of nickel-based superalloy reinforced by WC: Microstructure, wear resistance and electrochemical properties[J]. Journal of Manufacturing Processes, 2021, 68(6): 1694-1704.
[19] [19] ZHANG H Y, ZHANG J, ZHU L, et al. Effects of WC content on microstructure and properties of TC4 composite prepared by laser cladding[J]. Hot Working Technology, 2022, 51(8): 83-87(in Chinese).
[20] [20] LI Q,CHEN F Q,WANG Q, et al. Research progress of laser-cladding WC reinforced Ni-based composite coating[J]. Surface Technology, 2022, 51(2): 129-143(in Chinese).
[21] [21] ZHANG J Ch, JIANG J B, HUANG X, et al. Effect of carbon nanotubes content on microstructure and properties of laser cladded Ni-based composite coating[J].Chinese Journal Lasers, 2022, 49(2): 0202301(in Chinese).
[22] [22] CAO J H, HOU Z B, GUO D W, et al. Morphology characteristics of solidification structure in high-carbon steel billet based on fractal theory[J]. Journal of Materials Science, 2019, 54(19): 12851-12862.
[23] [23] WANG H, QU C, ZHENG Y, et al. Study on the effect of vibration on solidification structures in the vibration cast-rolling process[J]. Materialwissenschaft und Werkstofftechnik, 2021, 52(4): 452-459.
[24] [24] ZHU H, LI Y, LI B, et al. Effects of low-temperature tempering on microstructure and properties of the laser-cladded AISI 420 martensitic stainless steel coating[J]. Coatings, 2018, 8: 451.
[25] [25] DONG Y, SHU L S, LIN R. Microstructure and friction and wear properties of laser cladded Fe-Cr-Mo-Si alloy coating[J]. Laser & Optoelectronics Progress, 2021, 58(19): 1914007(in Chinese).
[27] [27] BAO Y F, GUO L P, ZHONG Ch H, et al. Effects of WC on the cavitation erosion resistance of FeCoCrNiB0.2 high entropy alloy coating prepared by laser cladding[J]. Materials Today Communications, 2021, 26(1): 102154.
[28] [28] SIDDIQUI A A, DUBEY A K. Recent trends in laser cladding and surface alloying[J]. Optics & Laser Technology, 2021, 134(8): 106619.
Get Citation
Copy Citation Text
WANG Shanshan, SHI Wenqing, WU Teng, CHENG Cai, ZHU Zhikai, CHEN Ximiao, XIE Linyi, HE Kuanfang. Effect of WC mass fraction on microstructure and properties of laser cladding Ni-based coatings[J]. Laser Technology, 2023, 47(4): 463
Received: May. 20, 2022
Accepted: --
Published Online: Dec. 11, 2023
The Author Email: SHI Wenqing (swqafj@163.com)