Acta Metallurgica Sinica (English Letters) ›› 2024, Vol. 37 ›› Issue (4): 726-738.DOI: 10.1007/s40195-024-01662-8
Previous Articles Next Articles
Hai Zhao1,2, Yi Ding2, Wei Gao2, Bo Yu3, Jinghui Li4, Mingya Zhang4()
Received:
2023-08-23
Revised:
2023-09-27
Accepted:
2023-10-27
Online:
2024-04-10
Published:
2024-03-05
Contact:
Mingya Zhang, ahutzmh@163.com
Hai Zhao, Yi Ding, Wei Gao, Bo Yu, Jinghui Li, Mingya Zhang. Tribological and Corrosion Properties of the CoCrAlYTaSiC-xCNTs Coatings Deposited by Laser Cladding[J]. Acta Metallurgica Sinica (English Letters), 2024, 37(4): 726-738.
Add to citation manager EndNote|Ris|BibTeX
Co | Cr | Al | Ta | Y | Si | C |
---|---|---|---|---|---|---|
40.05 | 40.31 | 11.02 | 4.93 | 0.44 | 1.15 | 2.10 |
Table 1 Chemical composition of experimental material CoCrAlYTaSiC power (wt%)
Co | Cr | Al | Ta | Y | Si | C |
---|---|---|---|---|---|---|
40.05 | 40.31 | 11.02 | 4.93 | 0.44 | 1.15 | 2.10 |
Fig. 4 Bright-field transmission electron microscopy micrographs a and b and corresponding selected area diffraction patterns (SADPs) of various phases in the C4 coating c-f
Fig. 6 3D and 2D profiles of the CoCrAlYTaSiC-xCNTs composite coatings against the GCr15 steel at the load of 196 N for 600 m: a C0 coating; b C1 coating; c C2 coating; d C4 coating
Fig. 7 Wear features of the CoCrAlYTaSiC-xCNTs composite coatings against the GCr15 steel at the load of 196 N for 600 m: a and b C0 coating; c and d C1 coating; e and f C2 coating; g and h C4 coating
Coatings | Ecorr (V) | Rp (Ω) | ip × 10-5 (μA cm2) | βc | βa | jcorr × 10-4 (μA cm2) |
---|---|---|---|---|---|---|
C0 | − 0.328 | 33 | 7.17 | 7.598 | 3.831 | 4.13 |
C1 | − 0.318 | 45 | 7.39 | 8.685 | 1.354 | 3.76 |
C2 | − 0.301 | 56 | 1.43 | 8.702 | 4.323 | 2.51 |
C4 | − 0.334 | 75 | 1.67 | 8.874 | 1.546 | 1.23 |
Table 2 Electrochemical corrosion parameters of the coatings soaked in 0.5 mol H2SO4 solution
Coatings | Ecorr (V) | Rp (Ω) | ip × 10-5 (μA cm2) | βc | βa | jcorr × 10-4 (μA cm2) |
---|---|---|---|---|---|---|
C0 | − 0.328 | 33 | 7.17 | 7.598 | 3.831 | 4.13 |
C1 | − 0.318 | 45 | 7.39 | 8.685 | 1.354 | 3.76 |
C2 | − 0.301 | 56 | 1.43 | 8.702 | 4.323 | 2.51 |
C4 | − 0.334 | 75 | 1.67 | 8.874 | 1.546 | 1.23 |
Coatings | Rs (Ω cm2) | CPE1 (mΩ−1 cm−2 S−n) | n | Rct (Ω cm2) | CPE (mΩ−1 cm−2 S-n) | Rf (Ω cm2) |
---|---|---|---|---|---|---|
C0 | 1.647 | 2.976 | 0.984 | 12.69 | 8.574 | 55.66 |
C1 | 1.689 | 2.264 | 0.984 | 18.02 | 1.948 | 175.4 |
C2 | 1.716 | 3.314 | 0.978 | 19.18 | 3.157 | 214.4 |
C4 | 1.798 | 1.365 | 0.991 | 25.07 | 8.359 | 70.89 |
Table 3 Electrochemical corrosion parameters of the coatings in 0.5 mol H2SO4 solution (EIS fitting data)
Coatings | Rs (Ω cm2) | CPE1 (mΩ−1 cm−2 S−n) | n | Rct (Ω cm2) | CPE (mΩ−1 cm−2 S-n) | Rf (Ω cm2) |
---|---|---|---|---|---|---|
C0 | 1.647 | 2.976 | 0.984 | 12.69 | 8.574 | 55.66 |
C1 | 1.689 | 2.264 | 0.984 | 18.02 | 1.948 | 175.4 |
C2 | 1.716 | 3.314 | 0.978 | 19.18 | 3.157 | 214.4 |
C4 | 1.798 | 1.365 | 0.991 | 25.07 | 8.359 | 70.89 |
Fig. 10 Surface SEM morphologies of coatings after electrochemical corrosion: a and b C0 coating; c and d C1 coating; e and f C2 coating; g and h C4 coating
[1] |
Y. Chen, X. Zhao, P. Xiao, Corros. Sci. 163, 108256 (2020)
DOI URL |
[2] |
H. Singh, D. Puri, S. Parkash, M. Srinivas, Anti-Corros. Methods Mater. 53, 283 (2006)
DOI URL |
[3] | Y. Liu, K. Hou, M. Ou, Y. Ma, K. Liu, Acta Metall. Sin. -Engl. Lett. 34, 1657 (2021) |
[4] |
J. Wang, D. Li, T. Shao, Surf. Coat. Technol. 440, 128503 (2022)
DOI URL |
[5] | K. Yang, Y. Xin, Z. Jiang, X. Liu, Z. Xue, S. Zhang, Acta Metall. Sin. 47, 177 (2023) |
[6] |
H. Wang, Z.H. Zhang, Z.Y. Hu, F.C. Wang, S.L. Li, E. Korznikov, X.C. Zhao, Y. Liu, Z.F. Liu, Z. Kang, Sci. Rep. 6, 26258 (2016)
DOI PMID |
[7] |
K. Balani, S.P. Harimkar, A. Keshri, Y. Chen, N.B. Dahotre, A. Agarwal, Acta Mater. 56, 5984 (2008)
DOI URL |
[8] |
M.M.H. Bastwros, A.M.K. Esawi, A. Wifi, Wear 307, 164 (2013)
DOI URL |
[9] |
Y. Say, O. Guler, B. Dikici, Mater. Sci. Eng. A 798, 139636 (2020)
DOI URL |
[10] |
M. Alishahi, S.M. Monirvaghefi, A. Saatchi, S.M. Hosseini, Appl. Surf. Sci. 258, 2439 (2012)
DOI URL |
[11] |
Y. Hu, C. Cai, Y. Wang, H. Yu, Y. Zhou, G. Zhou, Corros. Sci. 142, 22 (2018)
DOI URL |
[12] |
Z. Liu, W. Gao, K.L. Dahm, F. Wang, Acta Mater. 46, 1691 (1998)
DOI URL |
[13] |
A. Feizabadi, M.S. Doolabi, S.K. Sadrnezhaad, M. Rezaei, J. Alloys Compd. 746, 509 (2018)
DOI URL |
[14] | M. Rizwan, J. Lu, F. Chen, R. Chai, R. Ullah, Y. Zhang, Z. Zhang, Acta Metall. Sin. -Engl. Lett. 34, 1201 (2021) |
[15] | Y. Fang, G. Dai, Y. Guo, Z. Sun, H. Liu, Q. Yuan, Acta Metall. Sin. 59, 136 (2022) |
[16] |
L. Huang, X.F. Sun, H.R. Guan, Z.Q. Hu, Surf. Coat. Technol. 201, 1421 (2006)
DOI URL |
[17] |
Q.Q. Cheng, J.L. Chen, G.W. Yi, Y. Shan, Y.S. Geng, J.Y. Wang, W.Z. Wang, J. Alloys Compd. 938, 168518 (2023)
DOI URL |
[18] |
X.L. Liu, G. Lindwall, T. Gheno, Z. Liu, Calphad 52, 125 (2016)
DOI URL |
[19] |
H. Xiang, Y.D. Xu, L.T. Zhang, L.F. Cheng, Scr. Mater. 55, 339 (2006)
DOI URL |
[20] |
M. Chao, W. Wang, E. Liang, D. Ouyang, Surf. Coat. Technol. 202, 1918 (2008)
DOI URL |
[21] | Y. Liang, Y. Che, X. Liu, The thermodynamic data manual of inorganic materials, 1st edn. (NEU Press, Shenyang, 1994) |
[22] |
S.P. Dwivedi, A. Saxena, S. Sharma, G. Singh, J. Singh, M. Mia, S. Chattopadhyaya, A. Pramanil, J. Mater. Res. Technol. 15, 2918 (2021)
DOI URL |
[23] |
Y. Yi, S. Long, R. Zhang, C. Wu, S. Zhou, Ceram. Int. 47, 19434 (2021)
DOI URL |
[24] |
Z. Gao, Y. Li, H. Shi, F. Lyu, X. Li, L. Wang, X. Zhan, Vacuum 214, 112177 (2023)
DOI URL |
[25] |
Q. Yang, Y. Qian, Z. Fan, J. Lin, D. Wang, J. Zhong, M. Oeser, Carbon 172, 402 (2021)
DOI URL |
[26] |
Z. Chen, H. Zhang, C. Zhu, B. Zhao, Constr. Build. Mater. 101, 884 (2015)
DOI URL |
[27] | K. Manjunatha, G. GiridharaI, N. Jegadeeswaran, Mater. Today: Proc. 45, 15 (2020) |
[28] | W.Q. Shao, S.O. Chen, D. Li, H.S. Cao, Y.C. Zhang, S.S. Zhang, Bull. Mater. 31, 903 (2008) |
[29] |
C. Lai, M. Zhong, W. Xu, M. Yi, H. Wu, M. Huang, Tribol. Int. 187, 108726 (2023)
DOI URL |
[30] |
S. Awasthi, J.K. Gaur, M.S. Bobji, J. Alloys Compd. 848, 156259 (2020)
DOI URL |
[31] |
S.B. Kim, T.J. Chung, D.Y. Kim, J. Eur. Ceram. Soc. 12, 147 (1993)
DOI URL |
[32] |
J. Zhou, D. Kong, J. Alloys Compd. 795, 416 (2019)
DOI URL |
[33] |
J. Zhou, D. Kong, Surf. Coat. Technol. 383, 125229 (2020)
DOI URL |
[34] |
X. Zhang, Y. Yang, Z. Zhou, Chem. Soc. Rev. 49, 3040 (2020)
DOI PMID |
[35] |
D.D. Macdonald, Electrochim. Acta 51, 1376 (2006)
DOI URL |
[36] |
S. Zhou, Y. Zhao, X. Wang, W. Li, D. Chen, T.B. Sercombe, J. Alloys Compd. 820, 153422 (2020)
DOI URL |
[37] |
X. Cui, G. Zhu, Y. Pan, Q. Shao, C. Zhao, M. Dong, Y. Zhang, Z. Guo, Polymer 138, 203 (2018)
DOI URL |
[38] |
G.J. Liu, Y.S. Zhang, M. Wu, R. Huang, Constr. Build. Mater. 157, 357 (2017)
DOI URL |
[39] |
Y. Zhao, Z. Song, J. Jin, M. Xie, S. Zhao, S. Zhou, Chin. J. Lasers 46, 0902005 (2019)
DOI URL |
[40] | A. Toghan, A. Fawzy, A.I. Alakhras, A.A. Farag, Int. J. Electrochem. Sci. 17, 2212108 (2022) |
[41] |
K.V. Rybalka, L.A. Beketaeva, N.G. Bukhan’ko, A.D. Davydov, Corros. Sci. 53, 630 (2011)
DOI URL |
[42] |
C.C. Yen, H.N. Lu, M.H. Tsai, B.W. Wu, Y.C. Lo, C.C. Wang, S.Y. Chang, S.K. Yen, Corros. Sci. 157, 462 (2019)
DOI URL |
[43] | A.M. Kumar, Z.M. Gasem, Prog. Org. Coat. 78, 387 (2015) |
[1] | Yan Wen, Xuan Sun, Jian Zhou, Bingliang Liu, Haojie Guo, Yuxin Li, Fei Yin, Liqiang Wang, Lechun Xie, Lin Hua. Influence of Electroshocking Treatment on Microstructure and Mechanical Properties of Ti-6.5Al-3.5Mo-1.5Zr-0.3Si Thin-Wall Specimen Manufactured by Laser Melting Deposition [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(1): 145-158. |
[2] | Shuilong Huang, Qingjun Chen, Li Ji, Kan Wang, Guosheng Huang. Microstructure and Internal Friction Behavior of Laser 3D Printed Fe-Based Amorphous Composites [J]. Acta Metallurgica Sinica (English Letters), 2024, 37(1): 196-204. |
[3] | Kai Hu, Lei Zhang, Yuanjie Zhang, Bo Song, Shifeng Wen, Qi Liu, Yusheng Shi. Electrochemical Corrosion Behavior and Mechanical Response of Selective Laser Melted Porous Metallic Biomaterials [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(8): 1235-1246. |
[4] | H. Ashrafi, M. Shamanian, M. Sanayei, F. Farhadi, J.A. Szpunar. EBSD Characterization of Microstructure and Micro-texture in a Friction Stir-Welded DP600 Steel [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(5): 789-802. |
[5] | Dingcong Cui, Qingfeng Wu, Feng Jin, Chenbo Xu, Mingxin Wang, Zhijun Wang, Junjie Li, Feng He, Jinglong Li, Jincheng Wang. Heterogeneous Deformation Behaviors of an Inertia Friction Welded Ti2AlNb Joint: an In-situ Study [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(4): 611-622. |
[6] | Shude Ji, Xiao Cui, Lin Ma, Hua Liu, Yingying Zuo, Zhiqing Zhang. Achieving High-Quality Aluminum to Copper Dissimilar Metals Joint via Friction Stir Double-Riveting Welding [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(4): 552-572. |
[7] | Xueli Wang, Xin Ji, Bin He, Dongpo Wang, Chengning Li, Yongchang Liu, Wei Guan, Lei Cui. Prediction of M-A Constituents and Impact Toughness in Stir Zone of X80 Pipeline Steel Friction Stir Welds [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(4): 573-585. |
[8] | Zhenlin Wang, Beibei Wang, Zhen Zhang, Peng Xue, Yunfei Hao, Yanhua Zhao, Dingrui Ni, Guoqing Wang, Zongyi Ma. Enhanced Fatigue Properties of 2219 Al Alloy Joints via Bobbin Tool Friction Stir Welding [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(4): 586-596. |
[9] | Xin Zou, Cunli Liu, Muyang Deng, Ji Chen, Lanting Zhang, Ke Chen. Inhibition of Abnormal Grain Growth in Stir Zone via In-Situ Intermetallic Particle Formation During Friction Stir Welding of AA6061 [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(4): 597-610. |
[10] | Xiangchen Meng, Yuming Xie, Xiaotian Ma, Mingyang Liang, Xiaoyang Peng, Shiwei Han, Lei Kan, Xin Wang, Sihao Chen, Yongxian Huang. Towards Friction Stir Remanufacturing of High-Strength Aluminum Components [J]. Acta Metallurgica Sinica (English Letters), 2023, 36(1): 91-102. |
[11] | Jian-Yu Li, Shi-Ning Kong, Chi-Kun Liu, Bin-Bin Wang, Zhao Zhang. Chemical Composition Effect on Microstructures and Mechanical Properties in Friction Stir Additive Manufacturing [J]. Acta Metallurgica Sinica (English Letters), 2022, 35(9): 1494-1508. |
[12] | Fei Qiang, Wen Wang, Ke Qiao, Pai Peng, Ting Zhang, Xiao-Hu Guan, Jun Cai, Qiang Meng, Hua-Xia Zhao, Kuai-She Wang. Microstructure and Mechanical Properties in Friction Stir Welded Thick Al-Zn-Mg-Cu Alloy Plate [J]. Acta Metallurgica Sinica (English Letters), 2022, 35(8): 1329-1342. |
[13] | Pengcheng Zhu, Lin Zhang, Zhaochang Li, K. H. Lo, Jianfeng Wang, Yufeng Sun, Shaokang Guan. Microstructure and Mechanical Properties of Friction Stir Welded 1.5 GPa Martensitic High-Strength Steel Plates [J]. Acta Metallurgica Sinica (English Letters), 2022, 35(7): 1079-1089. |
[14] | Rabia Kara, Huseyin Zengin. Tribological and Electrochemical Corrosion Properties of CNT-Incorporated Plasma Electrolytic Oxidation (PEO) Coatings on AZ80 Magnesium Alloy [J]. Acta Metallurgica Sinica (English Letters), 2022, 35(7): 1195-1206. |
[15] | Wen Wang, Shan-Yong Chen, Ke Qiao, Pai Peng, Peng Han, Bing Wu, Chen-Xi Wang, Jia Wang, Yu-Hao Wang, Kuai-She Wang. Microstructure, Mechanical Properties, and Corrosion Behavior of Mg-Al-Ca Alloy Prepared by Friction Stir Processing [J]. Acta Metallurgica Sinica (English Letters), 2022, 35(5): 703-713. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||