Laser Technology, Volume. 47, Issue 3, 353(2023)
Research progress of laser remanufacturing materials and processes for titanium alloy parts
[1] [1] HUO D X, LIANG J L, LI H, et al. Progress of research and application of titanium alloy[J]. Foundry Technology, 2016, 37(10): 2065-2066(in Chinese).
[2] [2] LI Y, ZHAO Y Q, ZENG W D. Application and development of aerial titanium alloys[J]. Materials Reports, 2020, 34(Z1): 280-282(in Chinese).
[3] [3] WENG F, CHEN Ch Zh, YU H J. Research status of laser cladding on titanium and its alloys: A review[J]. Materials & Design, 2014, 58: 412-425.
[4] [4] GUAN Zh Zh. Laser processing technology manual[M]. 2nd ed. Beijing: China Metrology Publishing House, 2007: 288-293(in Chin-ese).
[5] [5] CHEN J M, GUO Ch, ZHOU J S. Microstructure and tribological properties of laser cladding Fe-based coating on pure Ti substrate [J]. Transactions of Nonferrous Metals Society of China, 2012, 22(9): 2171-2178.
[6] [6] SHEN J Y, REN W B, XUE Y P, et al. Laser repairing process of TC4 blades with crack and volume damage[J]. Infrared and Laser Engineering, 2019, 48(6): 0606008(in Chinese).
[7] [7] JEYAPRAKASH N, YANG Ch H, TSENG S P. Characterization and tribological evaluation of NiCrMoNb and NiCrBSiC laser cladding on near-α titanium alloy[J]. The International Journal of Advanced Manufacturing Technology, 2020, 106(5): 2347-2361.
[8] [8] QIN X, QI W J, ZUO X G. Friction and high temperature oxidation resistance of laser cladding NiCrCoAlY-Cr3C2 composite coating on TC4 titanium alloy[J]. Journal of Materials Engineering, 2021, 49(12): 107-114(in Chinese).
[9] [9] LIU S S, WANG Y H, ZHANG W P. Microstructure and wear resistance of laser clad cobalt-based composite coating on TA15 surface[J]. Rare Metal Materials and Engineering, 2014, 43(5): 1041-1046.
[10] [10] WENG F, YU H J, CHEN Ch Zh, et al. Microstructures and wear properties of laser cladding Co-based composite coatings on Ti-6Al-4V[J]. Materials & Design, 2015, 80: 174-181.
[11] [11] DIAO Y H, ZHANG K M. Microstructure and corrosion resistance of TC2 Ti alloy by laser cladding with Ti/TiC/TiB2 powders [J]. A-pplied Surface Science, 2015, 352: 163-168.
[12] [12] WANG W F, JIN L Sh, YANG J G, et al. Directional growth whisker reinforced Ti-base composites fabricated by laser cladding [J]. Surface and Coatings Technology, 2013, 236: 45-51.
[13] [13] REN W B, XUE Y P, ZHOU J Y, et al. Coating and interface performance control of Ti-6Al-4V blade with thinned edge for laser remanufacture[J]. Rare Metal Materials and Engineering, 2020, 49(7): 2400-2406(in Chinese).
[14] [14] TAN J H, SUN R L, NIU W, et al. Research status of TC4 alloy laser cladding materials[J]. Materials Reports, 2020, 34(8): 15132-15137(in Chinese).
[15] [15] SAMAR A S A, ABDEL H, ADEL N, et al. Laser powder cladding of Ti-6Al-4V α/β alloy[J]. Materials, 2017, 10(10): 1178-1193.
[16] [16] LIU X Q, ZHOU H M, ZHAO Zh Y, et al. Effect of TiB2 content on microstructure and properties of laser clad Co-based coating[J]. Heat Treatment of Metals, 2018, 43(10): 168-172(in Chinese).
[17] [17] LIU Y N, GU M, SUN R L, et al. Microstructure and properties of in-situ TiC/Ti2Ni composite coating prepared via laser cladding on titanium alloy[J]. Chinese Journal of Lasers, 2021, 48(14): 1402011(in Chinese).
[18] [18] ZHANG H X, DAI J J, MA Z W, et al. Effect of Y2O3 on microstructures and wear resistance of TiC reinforced Ti-Al-Si coating by laser cladding on TC4 alloy[J]. Surface Review and Letters, 2019, 26(10): 1950077.
[19] [19] DAS A K, SHARIFF S M, CHOUDHURY A R. Effect of rare earth oxide (Y2O3) addition on alloyed layer synthesized on Ti-6Al-4V substrate with Ti+SiC+h-BN mixed precursor by laser surface engineering[J]. Tribology International, 2016, 95: 35-43.
[20] [20] GONG Y L, WU M P, MIAO X J, et al. Effect of CeO2 on crack sensitivity and tribological properties of Ni60A coatings prepared by laser cladding[J/OL].(2021-04-28)[2022-04-07]. https://journals.sagepub.com/doi/10.1177/16878140211013125.
[21] [21] HE X H, XU X J, GE X L, et al. F101 Ni-based coating containing La2O3 by laser cladding on TC4 titanium alloy[J]. Rare Metal Materials and Engineering, 2017, 46(4): 1074-1079(in Chinese).
[22] [22] MOHAMMAD N, REZA S R, MASOUD B. An empirical-statistical model for laser cladding of Ti-6Al-4V powder on Ti-6Al-4V substrate[J]. Optics and Laser Technology, 2018, 100: 265-271.
[23] [23] ZHAO X X, XIAO H Q, YOU Ch Ch, et al. Process and microstructure properties of laser cladding TiAl alloy coating on TC4 surface[J]. Laser Technology, 2021, 45(6): 697-702(in Chinese).
[24] [24] GAO J, SONG D Y, FENG J W. Influence of processing parameters on geometrical features of CBN coatings by laser cladding on titanium alloy surface[J]. Surface Technology, 2015, 44(1): 77-87(in Chinese).
[25] [25] ZHANG X W, LIU H X, JIANG Y H, et al. Microstructure of Al2O3/Ti-Al composite coatings prepared by laser aluminum thermal reduction processing[J]. Journal of Inorganic Materials, 2013, 28(9): 1033-1039(in Chinese).
[26] [26] WENG F, YU H J, CHEN Ch Zh, et al. Effect of process parameters on the microstructure evolution and wear property of the laser cladding coatings on Ti-6Al-4V alloy[J]. Journal of Alloys and Compounds, 2017, 692: 989-996.
[27] [27] TAN J H, SUN R L, NIU W, et al. Effect of laser scanning speed on microstructure and properties of TC4 alloy surface laser cladding composite coating[J]. Materials Reports, 2020, 34(6): 12094-12100(in Chinese).
[28] [28] QIU Y, ZHANG F Y, HU T T, et al. Effect of laser power on microstructure and hardness of Ti40 flame-retardant titanium alloy deposited by laser cladding on TC4 surface[J]. Chinese Journal of Lasers, 2019, 46(11):1102011(in Chinese).
[29] [29] ZHAO Sh J, QI W J, HUANG Y H, et al. Numerical simulation study on thermal cycle characteristics of temperature field of TC4 surface laser cladding Ni60 based coating[J]. Surface Technology, 2020, 49(2): 301-308(in Chinese).
[30] [30] MA J F, WANG J, TANG L P, et al. Temperature field simulation and experimental research of boron carbide/cobalt-based composite coating fabricated by laser cladding on titanium Alloy[J]. Applied Laser, 2021, 41(4): 732-737(in Chinese).
[31] [31] GUO W, LI K K, CHAI R X, et al. Numerical simulation and experiment of dilution effect of laser cladding 304 stainless steel[J]. Laser & Optoelectronics Progress, 2019, 56(5): 051402(in Chin-ese).
[32] [32] WANG Y, HUANG Y L, YANG Y Q. Numerical simulation on coaxial powder feeding laser directional energy deposition of IN718[J]. Chinese Journal of Lasers, 2021, 48(6): 0602115(in Chin-ese).
[33] [33] ZHANG T G, ZHANG Q, YAO B, et al. Numerical simulation of temperature field and stress field of Ni-based laser cladding layer on TC4 surface[J]. Laser & Optoelectronics Progress, 2021, 58(3): 0314003(in Chinese).
[34] [34] LIANG G B, ZHU J H, YI D Q, et al. Numerical simulation of laser cladding path selection for TC4 titanium alloy[J]. Journal of Henan University of Science and Technology (Natural Science Edition), 2021, 42(6): 12-18(in Chinese).
[35] [35] HE Q K, SONG L X. Stress analysis of laser cladding on different thickness substrates[J]. Journal of Laser, 2018, 39(1): 60-63(in Chinese).
[36] [36] LEI Y W, SUN R L, TANG Y, et al. Numerical simulation of temperature distribution and TiC growth kinetics for high power laser clad TiC/NiCrBSiC composite coatings[J]. Optics and Laser Technology, 2011, 44(4): 1141-1147.
[37] [37] LI D Y, ZHANG J, DENG Zh Ch. Phase field study on the effect of reinforced phase particles on the solidification structure of laser melt injection[J]. Hot Working Technology, 2018, 47(10): 179-182(in Chinese).
[38] [38] QI H B, ZHANG Y H, FENG X F, et al. Simulation of solidification microstructure evolution in laser additive manufacturing of multicomponent alloy[J]. Transactions of the China Welding Institution, 2020, 41(5): 71-77(in Chinese).
[39] [39] MA G Y, YAN S, WU D J, et al. Microstructure evolution and mechanical properties of ultrasonic assisted laser clad yttria stabilized zirconia coating[J]. Ceramics International, 2017, 43(13): 9622-9629.
[40] [40] YANG G, XUE X, QIN L Y, et al. Influence of a rotating magnetic field on laser melting titanium alloy melt pool[J]. Rare Metal Materials and Engineering, 2016, 45(7): 1804-1810(in Chinese).
[41] [41] LI Ch, WANG Y L, JIANG F L, et al. Effect of ultrasonic assistance on mechanical properties of laser cladding Al2O3-ZrO2 ceramic coating[J]. Surface Technology, 2020, 49(11): 309-319(in Ch-inese).
[42] [42] REN W B, ZHUANG B L, LEI W N, et al. Microstructure and performance evolution of Ti-6Al-4V alloy coating by laser cladding and laser shocking composite remanufacture[J]. Optics and Laser Technology, 2021, 143: 107342.
[43] [43] FARAYIBI P K, ABIOYE T E, MURRAY J W, et al. Surface improvement of laser clad Ti-6Al-4V using plain water jet and pulsed electron beam irradiation[J]. Journal of Materials Processing Technology, 2015, 218: 1-11.
[44] [44] LI Ch G, FENG X S, LU Q H, et al. Strength and toughness of laser-remelted Al2O3-TiO2 coatings[J]. Transactions of the China Welding Institution, 2013, 34(9): 63-66(in Chinese).
Get Citation
Copy Citation Text
LI Junhui, REN Weibin, REN Yuzhong, LEI Weining. Research progress of laser remanufacturing materials and processes for titanium alloy parts[J]. Laser Technology, 2023, 47(3): 353
Category:
Received: Apr. 19, 2022
Accepted: --
Published Online: Dec. 5, 2023
The Author Email: REN Weibin (renweibin100@163.com)