Abstract
In this study, the powder hardness and substrate surface hardness on the coating formation in the cold spray process was investigated. The AA6082 aluminum alloy hardened by the shot-peening process was used as the base material. Two different metallic powders and a ceramic particle powder were used as powder materials with different hardness. Thus, the powder particles from different materials were sprayed onto the surface under the same spraying process conditions. In order to obtain a workpiece surface with different hardness values, shot-peening treatment was applied to the substrate material at different treatment times. According to the microstructural examination, the harder metallic coating powder has accumulated more and the lower hardness metallic coating powder has accumulated less when the substrate material hardness increases. Al2O3 particles in the layer formed were distributed close to homogeneous. Furthermore, the size of Al2O3 particles near the contact surface has become much finer especially in the long-term shot peened samples due to their higher hardness. From the indentation experiments, the elastic behavior and recovery amount of the composite coating layer increased due to the increase of the substrate surface hardness, and the stress distributions were performed less after the load was removed.
-
Author contributions: All the authors have accepted respon-sibility for the entire content of this submitted manuscript and approved submission.
-
Research funding: None declared.
-
Conflict of interest statement: The authors declare no conflicts of interest regarding this article.
References
[1] A. Malachowska, Analysis of the cold gas spraying process and determination of selected properties of metallic coatings on polymers, Ph.D. dissertation, Department of Materials Science, Université de Limoges, Uniwersytet Wrocławski, Limoges, Wrocław, Poland, France, 2016.Search in Google Scholar
[2] H. Assadi, H. Kreye, F. Gärtner, and T. Klassen, “Cold spraying – a materials perspective,” Acta Mater., vol. 116, pp. 382–407, 2016, https://doi.org/10.1016/j.actamat.2016.06.034.Search in Google Scholar
[3] R. Melentiev, N. Yu, and G. Lubineau, “Polymer metallization via cold spray additive manufacturing: a review of process control, coating qualities, and prospective applications,” Addit. Manuf., vol. 48, p. 102459, 2021, https://doi.org/10.1016/j.addma.2021.102459.Search in Google Scholar
[4] S. Singh, J. S. Grewal, and K. Rakha, “Erosion wear performance of HVOF and cold spray coatings deposited on T-91 boiler steel,” Mater. Today: Proc., vol. 62, no. 14, pp. 7509–7516, 2022, https://doi.org/10.1016/j.matpr.2022.04.277.Search in Google Scholar
[5] K. Petráčková, J. Kondás, and M. Guagliano, “Fixing a hole (with cold spray),” Int. J. Fatig., vol. 110, pp. 144–152, 2018, https://doi.org/10.1016/j.ijfatigue.2018.01.014.Search in Google Scholar
[6] M. Grujicic, C. L. Zhao, W. S. DeRosset, and D. Helfritch, “Adiabatic shear instability based mechanism for particles/substrate bonding in the cold-gas dynamic-spray process,” Mater. Des., vol. 25, no. 8, pp. 681–688, 2004, https://doi.org/10.1016/j.matdes.2004.03.008.Search in Google Scholar
[7] H. Assadi, T. Schmidt, H. Richter, et al.., “On parameter selection in cold spraying,” J. Therm. Spray Technol., vol. 20, pp. 1161–1176, 2011, https://doi.org/10.1007/s11666-011-9662-9.Search in Google Scholar
[8] M. R. Rokni, S. R. Nutt, C. A. Widener, V. K. Champagne, and R. H. Hrabe, “Review of relationship between particle deformation, coating microstructure, and properties in high-pressure cold spray,” J. Therm. Spray Technol., vol. 26, pp. 1308–1355, 2017, https://doi.org/10.1007/s11666-017-0575-0.Search in Google Scholar
[9] V. S. Vladislav, T. M. Vidyuk, A. A. Filippov, and I. D. Kuchumova, “Microstructure, mechanical and tribological properties of cold sprayed CuW coatings,” Int. J. Refract. Metals Hard Mater., vol. 106, p. 105866, 2022, https://doi.org/10.1016/j.ijrmhm.2022.105866.Search in Google Scholar
[10] T. Y. Liao, A. Biesiekierski, C. B. Christopher, et al.., “Multifunctional cold spray coatings for biological and biomedical applications: a review,” Prog. Surf. Sci., vol. 97, no. 2, p. 100654, 2022, https://doi.org/10.1016/j.progsurf.2022.100654.Search in Google Scholar
[11] Z. Wang, S. Cai, K. Jin, X. Wang, and W. Chen, “In-flight aggregation and deposition behaviour of particles in low pressure cold spray,” Surf. Coat. Technol., vol. 409, p. 126875, 2021, https://doi.org/10.1016/j.surfcoat.2021.126875.Search in Google Scholar
[12] H. Singh, T. S. Sidhu, and S. B. S. Kalsi, “Cold spray technology: future of coating deposition processes,” Frat. Ed. Integrità Strutt., vol. 6, no. 22, pp. 69–84, 2012, https://doi.org/10.3221/IGF-ESIS.22.08.Search in Google Scholar
[13] H. Singh, T. S. Sidhu, S. B. S. Kalsi, and J. Karthikeyan, “Development of cold spray from innovation to emerging future coating technology,” J. Braz. Soc. Mech. Sci. Eng., vol. 35, no. 3, pp. 231–245, 2013, https://doi.org/10.1007/s40430-013-0030-1.Search in Google Scholar
[14] S. Pathak and G. C. Saha, “Development of sustainable cold spray coatings and 3D additive manufacturing components for repair/manufacturing applications: a critical review,” Coatings, vol. 7, no. 8, p. 122, 2017, https://doi.org/10.3390/coatings7080122.Search in Google Scholar
[15] N. H. Tariq, L. Gyansah, X. Qiu, et al.., “Thermo-mechanical post-treatment: a strategic approach to improve microstructure and mechanical properties of cold spray additively manufactured composites,” Mater. Des., vol. 156, pp. 287–299, 2018, https://doi.org/10.1016/j.matdes.2018.06.062.Search in Google Scholar
[16] T. Gurgenc, “Microstructure, mechanical properties and ELM based wear loss prediction of plasma sprayed ZrO2-MgO coatings on a magnesium alloy,” Mater. Test., vol. 61, no. 8, pp. 787–796, 2019, https://doi.org/10.3139/120.111387.Search in Google Scholar
[17] P. Poza and M. Á. Garrido-Maneiro, “Cold-sprayed coatings: microstructure, mechanical properties, and wear behaviour,” Prog. Mater. Sci., vol. 123, p. 100839, 2021, https://doi.org/10.1016/j.pmatsci.2021.100839.Search in Google Scholar
[18] I.-D. Uţu and I. Mitelea, “SNMS investigations of thermally sprayed coatings,” Mater. Test., vol. 57, no. 3, pp. 267–272, 2015, https://doi.org/10.3139/120.110706.Search in Google Scholar
[19] D. J. VaracalleJr, D. P. Guillen, D. M. Deason, W. Rhodaberger, and E. Sampson, “Effect of grit-blasting on substrate roughness and coating adhesion,” J. Therm. Spray Technol., vol. 15, no. 3, pp. 348–355, 2006, https://doi.org/10.1361/105996306X124347.Search in Google Scholar
[20] R. C. Dykhuizen and M. F. Smith, “Gas dynamic principles of cold spray,” J. Therm. Spray Technol., vol. 7, no. 2, pp. 205–212, 1998, https://doi.org/10.1361/105996398770350945.Search in Google Scholar
[21] J. Vlcek, H. Huber, H. Voggenreiter, A. Fischer, and E. Lugscheider, “Kinetic powder compaction applying the cold spray process: a study on parameters,” in International Thermal Spray Conference, Singapore, 2001, pp. 417–422.10.31399/asm.cp.itsc2001p0417Search in Google Scholar
[22] C. Yolcu and F. Kahraman, “Effect of reinforcement particle amounts on dry sliding wear behavior of shot-peened SiC/A356 composites,” Mater. Test., vol. 64, no. 4, pp. 594–601, 2022, https://doi.org/10.1515/mt-2021-2060.Search in Google Scholar
[23] O. S. Zaroog, M. R. Isa, and M. Z. B. Mohd Mohni, “Time dependent hardness and residual stress reduction in a shot-peened aluminum alloy 2024-T351,” Mater. Test., vol. 58, nos. 11–12, pp. 997–1000, 2016, https://doi.org/10.3139/120.110952.Search in Google Scholar
[24] O. S. Zaroog, A. Ali, B. B. Sahari, and R. Zahari, “Residual stress relaxation and surface hardness of a 2024-t351 aluminium alloy,” Mater. Test., vol. 52, no. 9, pp. 632–639, 2010, https://doi.org/10.3139/120.110171.Search in Google Scholar
[25] T. Hussain, D. G. McCartney, and P. H. Shipway, “Bonding between aluminium and copper in cold spraying: story of asymmetry,” Mater. Sci. Technol., vol. 28, no. 12, pp. 1371–1378, 2012, https://doi.org/10.1179/1743284712Y.0000000051.Search in Google Scholar
© 2022 Walter de Gruyter GmbH, Berlin/Boston
Articles in the same Issue
- Frontmatter
- A holistic view on materials
- Influence of pulsed laser beam welding in vacuum on the mechanical properties of non-grain oriented electrical steel sheets
- Fracture characteristics of various concrete composites containing polypropylene fibers through five fracture mechanics methods
- Influence of heat input on hot cracking sensitivity of the EA395-9 filler metal
- Effects of cubic boron nitride (c-BN) nanoparticle addition on the wear properties of carbon FRP composites
- Fatigue performances of helicopter gears
- Surface quality improvement at selective laser melting AlSi10Mg by optimizing single point diamond turning parameters
- Effect of diffusion bonding time on microstructure and mechanical properties of dissimilar Ti6Al4V titanium alloy and AISI 304 austenitic stainless steel joints
- Deformation mechanism of AZ91 alloy during compression at different temperatures
- Tensile shear fracture load bearing capability, softening of HAZ and microstructural characteristics of resistance spot welded DP-1000 steel joints
- Nanoparticle effects on post-buckling behaviour of patched hybrid composites
- High-speed tensile tests on high-manganese steel at low temperatures
- A novel hybrid flow direction optimizer-dynamic oppositional based learning algorithm for solving complex constrained mechanical design problems
- Effect of the substrate surface and coating powder hardness on the formation of a cold sprayed composite layer
Articles in the same Issue
- Frontmatter
- A holistic view on materials
- Influence of pulsed laser beam welding in vacuum on the mechanical properties of non-grain oriented electrical steel sheets
- Fracture characteristics of various concrete composites containing polypropylene fibers through five fracture mechanics methods
- Influence of heat input on hot cracking sensitivity of the EA395-9 filler metal
- Effects of cubic boron nitride (c-BN) nanoparticle addition on the wear properties of carbon FRP composites
- Fatigue performances of helicopter gears
- Surface quality improvement at selective laser melting AlSi10Mg by optimizing single point diamond turning parameters
- Effect of diffusion bonding time on microstructure and mechanical properties of dissimilar Ti6Al4V titanium alloy and AISI 304 austenitic stainless steel joints
- Deformation mechanism of AZ91 alloy during compression at different temperatures
- Tensile shear fracture load bearing capability, softening of HAZ and microstructural characteristics of resistance spot welded DP-1000 steel joints
- Nanoparticle effects on post-buckling behaviour of patched hybrid composites
- High-speed tensile tests on high-manganese steel at low temperatures
- A novel hybrid flow direction optimizer-dynamic oppositional based learning algorithm for solving complex constrained mechanical design problems
- Effect of the substrate surface and coating powder hardness on the formation of a cold sprayed composite layer