Cold Spray High Entropy Alloy Coating Surface Microstructural Characterization and Mechanical Testing
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 33363
Cold Spray High Entropy Alloy Coating Surface Microstructural Characterization and Mechanical Testing

Authors: Raffaella Sesana, Nazanin Sheibanian, Luca Corsaro, Sedat Özbilen, Rocco Lupoi, Francesco Artusio

Abstract:

High Entropy Alloy (HEA) coatings of Al0.1-0.5CoCrCuFeNi and MnCoCrCuFeNi on Mg substrates were prepared from mechanically alloyed HEA powder feedstocks and at three different Cold Spray (CS) process gas (N2) temperatures (650, 750 and 850 °C). Mechanically alloyed and cold-sprayed HEA coatings were characterized by macro photography, optical microscopy, scanning electron microscopy with energy-dispersive X-ray spectroscopy (SEM/EDS) analysis, micro-hardness testing, roughness, and porosity measurements. As a result of mechanical alloying (MA), harder particles are deformed and fractured. The particles in the Cu-rich region were coarser and more globular than those in the A1 phase, which is relatively soft and ductile. In addition to the A1 particles, there were some separate Cu-rich regions. Due to the brittle nature of the powder and the acicular shape, Mn-HEA powder exhibited a different trend with smaller particle sizes. It is observed that MA results in a loose structure characterized by many gaps, cracks, signs of plastic deformation, and small particles attached to the surface of the particle. Considering the experimental results obtained, it is not possible to conclude that the chemical composition of the HEA influences the roughness of the coating. It has been observed that the deposited volume increases with temperature only in the case of Al0.1 and Mg-based HEA, while for the rest of the Al-based HEA, there are no noticeable changes. There is a direct correlation between micro-hardness and the chemical composition of a coating: the micro-hardness of a coating increases as the percentage of aluminum increases in the sample. Compared to the substrate, the coating has a much higher hardness, and the hardness measured at the interface is intermediate.

Keywords: Characterization, cold spraying, High Entropy Alloy, coatings, SEM+EDS.

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 77

References:


[1] Murty, B. S., Ranganathan, S, and Yeh, J. W. High-Entropy Alloys. Burlington: Butterworth-Heinemann, 2014. Web.
[2] Tsai, Ming-Hung, and Jien-Wei Yeh. "High-Entropy Alloys: A Critical Review". Materials Research Letters 2.3 (2014): 107-23. Web.
[3] Yin, Shuo, Wenya Li, Bo Song, Xingchen Yan, Min Kuang, Yaxin Xu, Kui Wen, and Rocco Lupoi. "Deposition of FeCoNiCrMn High Entropy Alloy (HEA) Coating via Cold Spraying." Journal of Materials Science & Technology35.6 (2019): 1003-007. Web.
[4] Nikbakht, Roghayeh, Mohammad Saadati, Taek-Soo Kim, Mohammad Jahazi, Hyoung Seop Kim, and Bertrand Jodoin. "Cold Spray Deposition Characteristic and Bonding of CrMnCoFeNi High Entropy Alloy." Surface & Coatings Technology 425 (2021): 127748. Web.
[5] Wu, Jian, Yujie Chen, and Heguo Zhu. "A Review on the Tribological Performances of High‐Entropy Alloys." Advanced Engineering Materials 24.8 (2022): 2101548-N/a. Web.
[6] Luo, Dawei, Qing Zhou, Zhuobin Huang, Yulong Li, Yulin Liu, Qikang Li, Yixuan He, and Haifeng Wang. "Tribological Behavior of High Entropy Alloy Coatings: A Review." Coatings (Basel)12.10 (2022): 1428. Web.
[7] Gifty, Oppong Boakye, et al. "Microstructural Properties and Wear Resistance of Fe-Cr-Co-Ni-Mo-Based High Entropy Alloy Coatings Deposited with Different Coating Techniques." Applied Sciences 12.6 (2022): 3156. ProQuest.Web. 14 Nov. 2022.
[8] Xia, Jiayi, Xin, Dongqun, Chen, Xizhang and Xin, Heyang. “Investigation of the microstructure and friction mechanism of novel CoCrCu0.2FeMox high-entropy alloy coating using plasma arc cladding.” Metals and corrosion (2022).
[9] Miracle, D.B., and O.N. Senkov. "A Critical Review of High Entropy Alloys and Related Concepts." Acta Materialia 122 (2017): 448-511. Web.
[10] Zhang, Yong, Ting Ting Zuo, Zhi Tang, Michael C. Gao, Karin A. Dahmen, Peter K. Liaw, and Zhao Ping Lu. "Microstructures and Properties of High-entropy Alloys." Progress in Materials Science 61 (2014): 1-93. Web.
[11] Tong, CJ., Chen, MR., Yeh, JW. et al. Mechanical performance of the AlxCoCrCuFeNi high-entropy alloy system with multiprincipal elements. Metall Mater Trans A 36, 1263–1271 (2005).
[12] Zou, Yongming, Zhaoguo Qiu, Chunjie Huang, Dechang Zeng, Rocco Lupoi, Nannan Zhang, and Shuo Yin. "Microstructure and Tribological Properties of Al2O3 Reinforced FeCoNiCrMn High Entropy Alloy Composite Coatings by Cold Spray." Surface & Coatings Technology 434 (2022): 128205. Web.
[13] Wu, Jien-Min, Su-Jien Lin, Jien-Wei Yeh, Swe-Kai Chen, Yuan-Sheng Huang, and Hung-Cheng Chen. "Adhesive Wear Behavior of AlxCoCrCuFeNi High-entropy Alloys as a Function of Aluminum Content." Wear 261.5-6 (2006): 513-19. Web.
[14] Xiao, Jin-Kun, Hong Tan, Yu-Qing Wu, Juan Chen, and Chao Zhang. "Microstructure and Wear Behavior of FeCoNiCrMn High Entropy Alloy Coating Deposited by Plasma Spraying." Surface & Coatings Technology 385 (2020): 125430. Web.
[15] Zhang, Baosen, Yaqiu Yu, Shuaishuai Zhu, Zhijia Zhang, Xuewei Tao, Zhangzhong Wang, and Bin Lu. "Microstructure and Wear Properties of TiN–Al2O3–Cr2B Multiphase Ceramics In-situ Reinforced CoCrFeMnNi High-entropy Alloy Coating." Materials Chemistry and Physics 276 (2022): 125352. Web.
[16] Liu, S.S., M. Zhang, G.L. Zhao, X.H. Wang, and J.F. Wang. "Microstructure and Properties of Ceramic Particle Reinforced FeCoNiCrMnTi High Entropy Alloy Laser Cladding Coating." Intermetallics 140 (2022): 107402. Web.
[17] Zhu, Shuaishuai, Yaqiu Yu, Baosen Zhang, Zhijia Zhang, Xiao Yan, and Zhangzhong Wang. "Microstructure and Wear Behaviour of In-situ TiN-Al2O3 Reinforced CoCrFeNiMn High-entropy Alloys Composite Coatings Fabricated by Plasma Cladding." Materials Letters 272 (2020): 127870. Web.
[18] S. Ozbilen and R. Lupoi, Al0. 5 HEA protective coatings on Mg based parts by mechanical alloying, cold spraying and argon annealing. TSA, Technology Transfer Office, TCD, Dublin, Ireland, February 2023.
[19] S. Ozbilen, J. F. B. Vasquez, W. Abbott, S. Yin, M. Morris, R. Lupoi, Mechanical milling, characterisation, and phase prediction of Al0.1-0.5(Mn)CoCrCuFeNi HEA powder feedstock for cold spray deposition processing, under revision, J. of Alloys and Compounds, May 2023. https://doi.org/10.1016/j.jallcom.2023.170854.
[20] Yin, S.; Lupoi, R.; Chen, C. Property Enhancement of Cold Sprayed Al-Diamond MMC Coating by Using Core-Shelled Diamond Reinforcements. Proc. Int. Therm. Spray Conf. 2019, 2019, 469–475.
[21] Lupoi, R.; Meyer, M.; Wits, W.W.; Yin, S. The Role of Particles Flow Characteristics in the Performance of Cold Spray Nozzles. CIRP Ann. 2020, 69, 189–192.