Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
In this study, Ni20Cr coatings were obtained by cold spraying on an aluminum alloy 7075 substrate. The obtained coatings were characterized by a uniform microstructure and low porosity. The sprayed coating has the same phase composition as the powder used. Next, the cold sprayed coatings were heat treated using a TRUMPF TLF 6000 TURBO (4 kW) CO2 laser. The laser surface melting of the coatings resulted in the formation of a columnar structure and an improvement in their mechanical properties. The Ni20Cr cold sprayed coatings after additional laser melting showed lower porosity and an increase in microhardness and Young`s modulus.
Słowa kluczowe
Wydawca
Czasopismo
Rocznik
Tom
Strony
853--860
Opis fizyczny
Bibliogr. 38 poz., rys., tab., wykr.
Twórcy
autor
- Kielce University of Technology, 7 Tysiąclecia Państwa Polskiego Av., 25-314 Kielce, Poland
Bibliografia
- [1] L. Pawlowski, The science and engineering of thermal spray coatings, J. Willey & Sons Ltd, Chichester, II ed. (2008).
- [2] D. Tejero-Martin, M. Rezvani Rad, A. McDonald, T. Hussain, J. Therm. Spray Technol. 28 (4), 598-644 (2019).
- [3] G. Di Girolamo, E. Serra, Thermally Sprayed Nanostructured Coatings for Anti-wear and TBC Applications: State-of-the-art and Future Perspectives, Anti-Abrasive Nanocoatings, Ed., Woodhead Publishing Limited, 513-541 (2015) https://doi.org/10.1016/B978-0-85709-211-3.00020-0
- [4] A. Góral, L. Lityńska-Dobrzyńska, W. Żórawski, K. Berent, J. Wojewoda-Budka, Arch. Metall. Mater. 58 (2), 335-339 (2013).
- [5] C. M. Kay, J. Karthikeyan, High Pressure Cold Spray, ASM International 2016.
- [6] H. Assadi, H. Kreye, F. Gartner, T. Klassen, Acta Materialia 116, 382-407 (2016).
- [7] M. R. Rokni, S. R. Nutt, C. A. Widener, G. A. Crawford, V. K. Champagne, Springer. 5, 143-192 (2018).
- [8] A. Góral, W. Żórawski, P. Czaja, L. Lityńska-Dobrzyńska, M. Makrenek, S. Kowalski, J. Mater. Res. 110, 49-59 (2019), DOI: 10.3139/146.111698
- [9] Q. Wang, N. Birbilis, X. Zahang, Metall. Mater. Trans. A Phys. Metall. Mater. Sci. 43, 1395-1399 (2012),
- [10] C. W. Ziemian, M. M. Sharma, B. D. Bouffard, T. Nissly, T. Eden, Mater. Des. 54, 212-221(2014)
- [11] L. Ajdelsztajn, B. Jodoin, J. M. Schoenung, Surf. Coat. Tech. 201, 1166-1172 (2006).
- [12] M. Scendo, W. Żórawski, A. Góral, Metals 9, 890-910 (2019). DOI:103390/met9080890
- [13] E. Qin, B. Wang, W. Li, Ma, H. Lu, S. Wu, J. Therm. Spray Technol. 28, 1072-1080 (2019).
- [14] D. Kong, B. Zhao, J. Alloys Compd. 705, 700-707 (2017).
- [15] T. Otmianowski, B. Antoszewski, W. Żórawski, Proceesing of 15th International Thermal Spray Conference, 25-29 May, Nice, France, 1333-1336 (1998).
- [16] B. Antoszewski, P. Sęk, Proc. SPIE 8703, 8703-8743 (2012) DOI: 10.1117/12.2015240
- [17] P. Sęk, Open Eng. 10, 454-461 (2020).
- [18] M. Tlotleng, M. Shukla, E. Akinlabi, S. Pityana, Surface Engineering Techniques and Application: Research Advancements 177- 221 (2014), DOI: 10.4018/978-1-4666-5141-8.ch006
- [19] D. K. Christoulis, M. Jeandin, E. Irissou, J.G. Legoux, W. Knapp, Laser-Assisted Cold Spray (LACS) InTech. 59-96 (2012), DOI: 10.5772/36104
- [20] S. B. Mishra, K. Chandra, S. Prakash, J. Tribol. 128, 469-475 (2006) DOI:10.1115/1.2197843
- [21] A. Mangla, V. Chawla, G. Singh, Int. J. Eng. Sci. Res. Technol. 6, 674-686 (2017).
- [22] N. Abu-Warda, A. J. López, M. D. López, M. V. Utrilla, Surf. Coat. Tech. 381, 125133 (2020).
- [23] EN ISO 6507-1: 2018.
- [24] https://www.scribd.com/document/423195204/DSMTS-0109-2-Ni20Cr-Powders
- [25] A. Góral, W. Żórawski, M. Makrenek, Surf. Coat.Tech. 361, 9-18 (2019).
- [26] S. H. Zhang, T. Y. Cho, J. H. Yoon, W. Fang, K. O. Song, M. X. Li, Y. K. Joo, C. G. Lee, Charact. 59, 1412-1418 (2008).
- [27] N. Serres, F. Hlawka, S. Costil, C. Langlade, F. Machi, J. Therm. Spray Technol. 20, 336-343 (2011).
- [28] P. Poza, C. J. Munez, M. A. Garrido-Maneiro, S. Vezzu, S. Rech, A. Trentin, Surf. Coat. Tech. 243, 51-57 (2014).
- [29] B. Song, S. Dong, P. Coddet, H. Liao, C. Codde, Mater. Dec. 53, 1-7 (2014).
- [30] P. Serra, J. M. Miguel, J. L. Morenza, J. M. Guilemany, J. Mater. Res. 16, 3416-3422 (2001).
- [31] A. Góral, W. Żórawski, L. Litynska-Dobrzyńska, M. Makrenek, M. Goły, A. Trelka, Surf. Coat.Tech. 405, 126701 (2021).
- [32] J. Mateos, J. M. Cuetos, E. Ferna´ndez, R. Vijande, Wear 239, 274 (2000).
- [33] C. Navas, R. Vijande, J. M. Cuetos, M. R. Fernández, J. de Damborenea, Surf. Coat.Tech. 235, 776-785 (2006).
- [34] Y. Zhang, X.F. Gao, X. Liang, K. Chong, D. Wu, Y. Zou, Surf Coat Tech. 398, 126099 (2020).
- [35] A. Sova, S. Grigoriev, A. Okunkova, I. Smurov, Surf. Coat.Tech. 235, 283-289 (2013).
- [36] EN ISO 25178 (2012).
- [37] S. Adamczak, D. Janecki, K. Stępień, Measurement 44 (1), 164-173 (2011),
- [38] D. Janecki, K. Stepień, S. Adamczak, Measurement, 43, 659-663 (2010)
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-c5c27c23-0ad9-4355-a9cf-4679b1801e5b