Chinese Journal of Lasers, Volume. 50, Issue 12, 1202210(2023)

Composition Design, Microstructures and Properties of Fe‑Based Wear‑ and Corrosion‑Resistant Coatings by Laser Cladding

Jieliang Ye1, Yueqiao Feng1, Zhuguo Li1、*, and Xunguo Zhang2
Author Affiliations
  • 1Shanghai Key laboratory of Materials Laser Processing and Modification, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
  • 2Shanghai Aerospace Power Technology Institute, Shanghai 100047, China
  • show less
    References(24)

    [1] Zhu H M, Tan C L, Kuang T C et al. Microstructure and properties of Al63Cu27Zn10 coating prepared by laser cladding on AZ80 magnesium alloy under low-temperature water cooling condition[J]. Chinese Journal of Lasers, 42, 100305(2015).

    [2] Deng Z Q, Shi S H, Zhou B et al. Laser cladding forming of unequal-height curved arc-shaped thin-wall structures[J]. Chinese Journal of Lasers, 44, 0902005(2017).

    [3] Pang X T, Yao C W, Gong Q F et al. Influence of multilayer laser cladding on the microstructure and properties of 30CrMnSiNi2A steel substrate[J]. Chinese Journal of Lasers, 48, 0602104(2021).

    [4] Liu J G, Zheng W J, Wang G S et al. Study on wear resistance of 20Cr2Ni4A steel surface WC reinforced iron-based coating[J]. Surface Technology, 50, 236-242(2021).

    [5] Liu W H, Shieu F S, Hsiao W T. Enhancement of wear and corrosion resistance of iron-based hard coatings deposited by high-velocity oxygen fuel (HVOF) thermal spraying[J]. Surface and Coatings Technology, 249, 24-41(2014).

    [6] Zeisig J, Schädlich N, Giebeler L et al. Microstructure and abrasive wear behavior of a novel FeCrMoVC laser cladding alloy for high-performance tool steels[J]. Wear, 382/383, 107-112(2017).

    [7] Xiao Q, Sun W L, Yang K X et al. Wear mechanisms and micro-evaluation on WC particles investigation of WC-Fe composite coatings fabricated by laser cladding[J]. Surface and Coatings Technology, 420, 127341(2021).

    [8] Zhou S F, Zeng X Y, Hu Q W et al. Analysis of crack behavior for Ni-based WC composite coatings by laser cladding and crack-free realization[J]. Applied Surface Science, 255, 1646-1653(2008).

    [9] Li B C, Zhu H M, Qiu C J et al. Development of high strength and ductile martensitic stainless steel coatings with Nb addition fabricated by laser cladding[J]. Journal of Alloys and Compounds, 832, 154985(2020).

    [10] Zhang Z, Yu T, Kovacevic R. Erosion and corrosion resistance of laser cladded AISI 420 stainless steel reinforced with VC[J]. Applied Surface Science, 410, 225-240(2017).

    [11] Yuan F, Wei G Y, Gao S R et al. Tuning the pitting performance of a Cr-13 type martensitic stainless steel by tempering time[J]. Corrosion Science, 203, 110346(2022).

    [12] Zhao Y G, Liu W, Zhang T Y et al. Assessment of the correlation between M23C6 precipitates and pitting corrosion resistance of 0Cr13 martensitic stainless steel[J]. Corrosion Science, 189, 109580(2021).

    [13] Li J, Lu Y H, Zhang H Y et al. Effect of grain size and hardness on fretting wear behavior of Inconel 600 alloys[J]. Tribology International, 81, 215-222(2015).

    [14] Kumar S, Krisam S, Jacob A et al. Microstructures and element distributions in an aged hyper duplex stainless steel and corresponding hardness variation[J]. Materials & Design, 194, 108951(2020).

    [15] Jang J H, Lee C H, Heo Y U et al. Stability of (Ti, M)C (M = Nb, V, Mo and W) carbide in steels using first-principles calculations[J]. Acta Materialia, 60, 208-217(2012).

    [16] Zhao C C, Zhou Y F, Xing X L et al. Precipitation stability and micro-property of (Nb, Ti)C carbides in MMC coating[J]. Journal of Alloys and Compounds, 763, 670-678(2018).

    [17] Akhbarizadeh A, Shafyei A, Golozar M A. Effects of cryogenic treatment on wear behavior of D6 tool steel[J]. Materials & Design, 30, 3259-3264(2009).

    [18] Zhang H, Liu Y P, Bai X et al. Laser cladding highly corrosion-resistant nano/submicron ultrafine-grained Fe-based composite layers[J]. Surface and Coatings Technology, 424, 127636(2021).

    [19] Petch N J. The influence of grain boundary carbide and grain size on the cleavage strength and impact transition temperature of steel[J]. Acta Metallurgica, 34, 1387-1393(1986).

    [20] Kuzucu V, Aksoy M, Korkut M H. The effect of strong carbide-forming elements such as Mo, Ti, V and Nb on the microstructure of ferritic stainless steel[J]. Journal of Materials Processing Technology, 82, 165-171(1998).

    [21] Gray D E[M]. American institute of physics handbook(1963).

    [22] Li Y F, Gao Y M, Xiao B et al. The electronic, mechanical properties and theoretical hardness of chromium carbides by first-principles calculations[J]. Journal of Alloys and Compounds, 509, 5242-5249(2011).

    [23] Murty B S, Kori S A, Chakraborty M. Grain refinement of aluminium and its alloys by heterogeneous nucleation and alloying[J]. International Materials Reviews, 47, 3-29(2002).

    [24] Zhang Y J, Zhang J L, Yan Q et al. Amorphous alloy strengthened stainless steel manufactured by selective laser melting: enhanced strength and improved corrosion resistance[J]. Scripta Materialia, 148, 20-23(2018).

    Tools

    Get Citation

    Copy Citation Text

    Jieliang Ye, Yueqiao Feng, Zhuguo Li, Xunguo Zhang. Composition Design, Microstructures and Properties of Fe‑Based Wear‑ and Corrosion‑Resistant Coatings by Laser Cladding[J]. Chinese Journal of Lasers, 2023, 50(12): 1202210

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Laser Surface Machining

    Received: May. 18, 2022

    Accepted: Oct. 24, 2022

    Published Online: Apr. 24, 2023

    The Author Email: Li Zhuguo (lizg@sjtu.edu.cn)

    DOI:10.3788/CJL220867

    Topics