Laser & Optoelectronics Progress, Volume. 61, Issue 5, 0514007(2024)
Effect of in situ TiC Generation on the Ambient/High Temperature Wear Resistance of TiC-Ni25 Composite Coatings
[1] Zhang W Z, Cao Y F, Yuan Y P et al. Simulation study of flow and heat transfer in oscillating cooling pistons based on CFD[J]. Transactions of CSICE, 28, 74-78(2010).
[2] Tian Y X, Zhang X C, Zhang J Y et al. Three-dimensional FEA for the thermal field of pistons[J]. Chinese Internal Combustion Engine Engineering, 25, 62-65(2004).
[3] Hao J J, Li H P, Ma Y J et al. Experimental investigation on repairing iron cast parts with grit-blasting pretreatment[J]. Transactions of the Chinese Society of Agricultural Machinery, 34, 120-122, 126(2003).
[4] Chen G Q, Chen X G. Production study on hard chromium plating technology for chilled cast iron piston rod[J]. Hot Working Technology, 42, 141-143(2013).
[5] Kong D J, Hua T S, Ding J N et al. Effects of laser quenching on residual stresses and wear resistance of grey cast iron[J]. Lubrication Engineering, 34, 51-54(2009).
[6] Zhang G J, Wu P G, Xu J N et al. Development of basic research for application of laser cladding technology[J]. Heat Treatment of Metals, 36, 5-13(2011).
[7] Keller J, Fridrici V, Kapsa P et al. Influence of chemical composition and microstructure of gray cast iron on wear of heavy duty diesel engines cylinder liners[J]. Wear, 263, 1158-1164(2007).
[8] Dong Y J, Wang H M. Microstructure and dry sliding wear resistance of laser clad TiC reinforced Ti-Ni-Si intermetallic composite coating[J]. Surface and Coatings Technology, 204, 731-735(2009).
[9] Zhao Y, Yu T B, Guan C et al. Microstructure and friction coefficient of ceramic (TiC, TiN and B4C) reinforced Ni-based coating by laser cladding[J]. Ceramics International, 45, 20824-20836(2019).
[10] Cheng C, Shi W Q, Wu T et al. Study of TiC content on the morphology and mechanical properties of laser-fused Fe-based coatings[J]. Laser & Optoelectronics Progress, 60, 1914004(2023).
[11] Oukach S, Pateyron B, Pawłowski L. Physical and chemical phenomena occurring between solid ceramics and liquid metals and alloys at laser and plasma composite coatings formation: a review[J]. Surface Science Reports, 74, 213-241(2019).
[12] Yang S, Zhong M L, Liu W J. TiC particulate composite coating produced in situ by laser cladding[J]. Materials Science and Engineering: A, 343, 57-62(2003).
[13] Zhang Z H, Wang X, Zhang Q Q et al. Fabrication of Fe-based composite coatings reinforced by TiC particles and its microstructure and wear resistance of 40Cr gear steel by low energy pulsed laser cladding[J]. Optics & Laser Technology, 119, 105622(2019).
[14] Gorsse S, le Petitcorps Y, Matar S et al. Investigation of the Young’s modulus of TiB needles in situ produced in titanium matrix composite[J]. Materials Science and Engineering: A, 340, 80-87(2003).
[15] Tamirisakandala S, Miracle D B, Srinivasan R et al. Titanium alloyed with boron[J]. Advanced Materials and Processes, 164, 41(2006).
[16] Adomako N K, Noh S, Oh C S et al. Laser deposition additive manufacturing of 17-4PH stainless steel on Ti-6Al-4V using V interlayer[J]. Materials Research Letters, 7, 259-266(2019).
[17] Park C W, Adomako N K, Lee M G et al. Interfacial structure and pore formation mechanism during laser cladding of pure vanadium on Ti-6Al-4V alloy[J]. International Journal of Refractory Metals and Hard Materials, 101, 105671(2021).
[18] Du B S, Xu G X, Zhang Z W et al. Preparation and microstructure characterization of insitu self-generated nickel-based wear resistant coating on titanium-based alloy surface by plasma arc cladding[J]. Surface Technology, 48, 214-219(2019).
[19] Ge T, Chen L, Gu P F et al. Microstructure and properties improvement of TiC/Inconel 625 composite coatings using extreme high-speed laser cladding[J]. Laser & Optoelectronics Progress, 60, 0514002(2023).
[20] Wang W F, Wang M C, Sun F J. Morphological characteristics and growth mechanism of in situ TiC in titanium-base composite coating formed by laser cladding[J]. Heat Treatment of Metals, 34, 65-69(2009).
[21] Sui J W, Gao W X, Tan X C et al. Research on the influence of ferrovanadium content to (Ti, V)C reinforced Fe-based laser cladding layer[J]. Materials Review, 30, 108-112(2016).
[22] Li Y J, Dong S Y, Yan S X et al. Microstructure evolution during laser cladding Fe-Cr alloy coatings on ductile cast iron[J]. Optics & Laser Technology, 108, 255-264(2018).
[23] Liang J, Liu Y, Yang S et al. Microstructure and wear resistance of laser cladding Ti-Al-Ni-Si composite coatings[J]. Surface and Coatings Technology, 445, 128727(2022).
[24] Fan Q X, Shen S W, Zhang Q Q et al. Effect of laser power on temperature and stress fields of H13-TiC cladding layer[J]. Laser & Optoelectronics Progress, 60, 2114001(2023).
Get Citation
Copy Citation Text
Guoye Jiang, chen Peng. Effect of in situ TiC Generation on the Ambient/High Temperature Wear Resistance of TiC-Ni25 Composite Coatings[J]. Laser & Optoelectronics Progress, 2024, 61(5): 0514007
Category: Lasers and Laser Optics
Received: Apr. 3, 2023
Accepted: May. 13, 2023
Published Online: Feb. 29, 2024
The Author Email: Guoye Jiang (gyjiang@cauc.edu.cn)
CSTR:32186.14.LOP231012