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Original Articles

Optimization of Textured Parameters to Improve the Tribological Behavior of TC4-Based Bionic Coating Using RSM

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Pages 441-456 | Received 30 Oct 2021, Accepted 04 Feb 2022, Published online: 05 Apr 2022

References

  • Jin, H. X., Wei, K. X., Li, J. M., Zhou, J. Y., and Peng, W. J. (2015), “Research Development of Titanium Alloy in Aerospace Industry,” Chin. J. Nonferrous Met., 25(2), pp 280–292.
  • Sun, Q., Hu, T., Fan, H., Zhang, Y. and Hu, L. (2016), “Thermal Oxidation Behavior and Tribological Properties of Textured TC4 Surface: Influence of Thermal Oxidation Temperature and Time,” Tribol. Int., 94, pp 479–489. doi:https://doi.org/10.1016/j.triboint.2015.10.013
  • Cai, J. M., Mi, G. B., Gao, F., and Huang, H. (2016), “Research and Development of Some Advanced High Temperature Titanium Alloys for Aero-Engine,” J. Mater. Eng., 44(8), pp 1–10.
  • Weng, F., Chen, C. Z., and Yu, H. J. (2014), “Research Status of Laser Cladding on Titanium and Its Alloys: A Review,” Mater. Des., 58(6), pp 412–425. doi:https://doi.org/10.1016/j.matdes.2014.01.077
  • Banerjee, D and William, J. C. (2013), “Perspectives on Titanium Science and Technology,” Acta Mater., 61, pp 844–879. doi:https://doi.org/10.1016/j.actamat.2012.10.043
  • Hu, T. C., Hu, L. T., and Ding, Q. (2012), “Effective Solution for the Tribological Problems of Ti-6Al-4V: Combination of Laser Surface Texturing and Solid Lubricant Film,” Surf. Coat. Technol. 206(24), pp 5060–5066. doi:https://doi.org/10.1016/j.surfcoat.2012.06.014
  • Wang, L., Wang, S. Q., Chen, K. M., and Zhang, Q. Y. (2015), “A Comparison on the Wear Performance of TC4 and TC11 Alloys,” Tribology, 35(2), pp 214–220.
  • Kasem, H., and Cohen, Y. (2017), “Effect of Counterface Roughness on the Friction of Bionic Wall-Shaped Microstructures for Gecko-Like Attachments,” Bioinspir. Biomim., 12(4), pp 046010.
  • Wei, Y., Han, Z. W., Feng, H. L., Zhang, J. Q., Cao, H. N., and Tian, Y. (2017), “Gas–Solid Erosive Wear of Biomimetic Pattern Surface Inspired from Plant,” Tribol. Trans., 60(1), pp 159–165.
  • Han, Z. W., Feng, H. L., Yin, W., Niu, S. C., Zhang, J. Q., and Chen, D. B. (2015), “An Efficient Bionic Anti-Erosion Functional Surface Inspired by Desert Scorpion Carapace,” Tribol. Trans., 58(2), pp 357–364.
  • Tong, J., Wang, H., Ma, Y., and Ren, L. (2005), “Two-Body Abrasive Wear of the Outside Shell Surfaces of Mollusc Lamprotula fibrosa Heude, Rapana venosa Valenciennes and Dosinia anus Philippi,” Tribol. Lett., 19(4), pp 331–338. doi:https://doi.org/10.1007/s11249-005-7450-8
  • Xian, J., Ling, X., and Tang, D. (2006), “Microstructures and Friction-Wear Characteristics of Bivalve Shells,” Tribol. Int., 39(7), pp 657–662.
  • Stempflé, P., Bourrat, X., Rousseau, M., Lopez, E., and Takadoum, J. (2013), “Nanotribology of Nacre: Anisotropic Dissipation in a Multiscale Hybrid Material,” Tribol. Int., 63, pp 250–264. doi:https://doi.org/10.1016/j.triboint.2012.09.010
  • Jiang, H. Y., Ghods, S., Ma, Y. H., Dai, X. J., Yang, F. J., and He, X. Y. (2020), “Designed for the Enhancement of Structure Mechanostability and Strength: Suture-Serrate Margins of Bivalve Shells,” J. Mech. Behav. Biomed., 103, pp 103586. doi:https://doi.org/10.1016/j.jmbbm.2019.103586
  • Tian, X. M., Han, Z. W., Li, X. J., Pu, Z. G., and Ren, L. Q. (2010), “Biological Coupling Anti-Wear Properties of Three Typical Molluscan Shells—Scapharca subcrenata, Rapana venosa and Acanthochiton rubrolineatus,” Sci. China Mater., 53(11), pp 2905–2913.
  • Zhang, H., Peng, Z., Qi, S., and Kai, Z. (2017), “Influence of Multiple Bionic Unit Coupling on Sliding Wear of Laser-Processed Gray Cast Iron,” J. Mater. Eng. Perform., 26(4), pp 1–12.
  • Johari, H., Henoch, C. W., Custodio, D., and Levshin, A. (2007), “Effects of Leading-Edge Protuberances on Airfoil Performance,” AIAA J., 45(11), pp 2634–2642.
  • Li, B., Li, X., Jia, X., Chen, F., and Fang, H. (2019), “The Role of Blade Sinusoidal Tubercle Trailing Edge in a Centrifugal Pump with Low Specific Speed,” Processes, 7(9), pp 625. doi:https://doi.org/10.3390/pr7090625
  • Zhan, X., Yi, P., Liu, Y., Jiang, Y., and Zhang, Y. (2020), “Effects of Texture Spacing and Bulges of Bionic Sinusoidal Texture on the Adhesion Properties and Fracture Mechanism of Plasma-Sprayed Coatings,” Surf. Coat. Technol., 393, pp 125772. doi:https://doi.org/10.1016/j.surfcoat.2020.125772
  • Zhu, Y., Chen, J., Du, J., Fan, Y., and Zheng, J. (2016), “Tribological Behavior of Laser Textured Nodular Cast Iron Surface,” Chin. J. Lasers, 43(6), pp 0602007.
  • Shimizu, J., Nakayama, T., Watanabe, K., Yamamoto, T., Onuki, T., Ojima, H., and Zhou, L. (2019), “Friction Characteristics of Mechanically Microtextured Metal Surface in Dry Sliding,” Tribol. Int., 149, pp 105634. doi:https://doi.org/10.1016/j.triboint.2019.02.042
  • Segu, D. Z., Lu, C. X., Hwang, P., and Kang, S. W. (2021), “Optimization of Tribological Characteristics of a Combined Pattern Textured Surface Using Taguchi Design,” J. Mater. Eng. Perform. 20(5), pp 3786–3794. doi:https://doi.org/10.1007/s11665-021-05673-9
  • Flegler, F., and Groche, P. (2020), “Influence of Sheet Metal Texture on the Adhesive Wear and Friction Behaviour of EN AW-5083 Aluminum Under Dry and Starved Lubrication,” Tribol. Int. 141, pp 105956. doi:https://doi.org/10.1016/j.triboint.2019.105956
  • Huang, Q., Shi, X., Xue, Y., Zhang, K., and Wu, C. (2021), “Optimization of Bionic Textured Parameter to Improve the Tribological Performance of AISI 4140 Self-Lubricating Composite Through Response Surface Methodology,” Tribol. Int., 161, pp 107104. doi:https://doi.org/10.1016/j.triboint.2021.107104
  • Grutzmacher, P. G., Profito, F. J., and Rosenkranz, A. (2019), “Multi-Scale Surface Texturing in Tribology—Current Knowledge and Future Perspectives,” Lubricants, 7(11), pp 95. doi:https://doi.org/10.3390/lubricants7110095
  • Rosenkranz, A., Grutzmacher, P. G., Murzyn, K., Mathieu, C., and Mucklich, F. (2021), “Multi-Scale Surface Patterning to Tune Friction Under Mixed Lubricated Conditions,” Appl. Nanosci., 11(3), pp 751–762.
  • Konig, F., Rosenkranz, A., Grutzmacher, P. G., Mucklich, F., and Jacobs, G. (2020), “Effect of Single- and Multi-Scale Surface Patterns on the Frictional Performance of Journal Bearings—A Numerical Study,” Tribol. Int., 143, pp 106041. doi:https://doi.org/10.1016/j.triboint.2019.106041
  • Tang, M. K., Huang, X. J., Yu, J. G., Li, X. W., and Zhang Q. X. (2016), “The Effect of Textured Surfaces with Different Roughness Structures on the Tribological Properties of Al Alloy,” J. Mater. Eng. Perform., 25, pp 4115–4125. doi:https://doi.org/10.1007/s11665-016-2251-9
  • Jana, M., Roman, M., Martin, K., and Martin, N. (2018), “Influence of Laser Surface Texturing on Tribological Performance of Tool Steels,” J. Mater. Eng. Perform., 27, pp 5417–5426.
  • Segu, D. Z., and Hwang, P. (2015), “Friction Control by Multi-shape Textured Surface Under Pin-On-Disc test,” Tribol. Int., 91, pp 111–117. doi:https://doi.org/10.1016/j.triboint.2015.06.028
  • Segu, D. Z., Wang, L. L., Hwang, P., and Kang, S. W. (2021), “Experimental Characterization of Friction and Wear Behavior of Textured Titanium Alloy (Ti-6Al-4V) for Enhanced Tribological Performance,” Mater. Res. Express., 8(8), pp 085008.
  • Boidi, G., Grützmacher, P. G., Kadiric, A., Profito, F. J., Machado, I. F., Gachot, C. and Dini, D. (2021), “Fast Laser Surface Texturing of Spherical Samples to Improve the Frictional Performance of Elasto-Hydrodynamic Lubricated Contacts,” Friction, 9(5), pp 15. doi:https://doi.org/10.1007/s40544-020-0462-4
  • Xu, Y., Li, Z., Zhang, G., Wang, G., Zeng, Z., Wang, C. T., Wang, C., Zhao, S., Zhang, Y., and Ren, T. (2019), “Electrochemical Corrosion and Anisotropic Tribological Properties of Bioinspired Hierarchical Morphologies on Ti-6Al-4V Fabricated by Laser Texturing,” Tribol. Int,. pp 352–364.
  • Pawlak, W., Kubiak, K. J., Wendler, B. G., and Mathia, T. G. (2015), “Wear Resistant Multilayer Nanocomposite WC1 − x/C Coating on Ti-6Al-4V Titanium Alloy,” Tribol. Int., 82, pp 400–406. doi:https://doi.org/10.1016/j.triboint.2014.05.030
  • Ren, J., Liu, X. B., Lu X. L., Yu, P. C., Zhu, G. X., Chen, Y., and Xu, D. (2016), “Microstructure and Tribological Properties of Self-Lubricating Antiwear Composite Coating on Ti6Al4V Alloy,” Surf. Eng., 33, pp 20–26. doi:https://doi.org/10.1179/1743294415Y.0000000054
  • Scharf, T. W., and Prasad, S. V. (2013), “Solid Lubricants: A Review,” J. Mater. Sci., 48(2), pp 511–531. doi:https://doi.org/10.1007/s10853-012-7038-2
  • Rosenkranz, A., Costa, H., Baykara, M. Z., and Martini, A. (2021), “Synergetic Effects of Surface Texturing and Solid Lubricants to Tailor Friction and Wear—A Review,” Tribol. Int., 155, pp 106792.
  • Xue, Y., Shi, X., Zhou, H., Yang, Z., Zhang, J., Wu, C., and Xue, B. (2021), “Effects of Textured Surface Combined With Sn-Ag-Cu Coating on Tribological Properties and Friction-Induced Noise of Ti-6Al-4V Alloy,” Tribol. Trans. 64(3), pp 562–577. doi:https://doi.org/10.1080/10402004.2021.1881196
  • Qin, S., Shi, X., Xue, Y., Huang, Q., and Zhang, K. (2021), “Tribological Behaviors and Friction-Induced Vibration and Noise Performance of TC4 With Bionic Coating Prepared by Laser Additive Manufacturing,” J. Mater. Eng. Perform., pp 1–15.
  • Gachot, C., Rosenkranz, A., Hsu, S. M., and Costa, H. L. (2017), “A Critical Assessment of Surface Texturing for Friction and Wear Improvement,” Wear, 372–373, pp 21–41. doi:https://doi.org/10.1016/j.wear.2016.11.020
  • Holmberg, K., Ronkainen, H., and Matthews, A. (2000), “Tribology of Thin Coatings,” Ceram. Int. 26, pp 787–795. doi:https://doi.org/10.1016/S0272-8842(00)00015-8
  • Stachowiak, G., and Podsiadlo, P. (2008), “3-D Characterization, Optimization, and Classification of Textured Surfaces,” Tribol. Lett., 32(1), pp 13–21.

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