PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Mechanical properties of titanium grade 1 after laser shock wave treatment

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the presented work the impact of a laser shock wave on the mechanical properties of a Titanium Grade 1 was investigated. Based on a series of experimental studies related to the impact of the laser shock wave on the tested material, the impact of the given treatment on the structure and mechanical properties was assessed. The influence of the environment on the distribution of plasma temperature and pressure in the material during the implementation of the laser shock wave was analyzed. The effect of the laser treatment on the structure and micromechanical properties was initially estimated on the basis of the analysis of experimental results in the form of static strength testof samples after laser treatment. A slight increase in material strength was detected with a minimal decrease in ductility. In order to comprehensively understand the observed phenomenon, a number of fractographic tests were performed, especially the analysis of the porosity of the fracture surfaces. A decrease in the porosity of the material after impact laser treatment was observed as a result of local plastic deformation.
Rocznik
Strony
48--61
Opis fizyczny
Bibliogr. 27 poz., rys., tab., wykr.
Twórcy
  • Faculty of Mechanical Engineering, Military University of Technology, 2 gen. Sylwestra Kaliskiego St., Warsaw, Poland
  • Faculty of Mechanical Engineering, Military University of Technology, 2 gen. Sylwestra Kaliskiego St., Warsaw, Poland
  • Faculty of Computer Information Systems and Software Engineering, Ternopil Ivan Puluj NationalTechnical University, 56 Ruska St., Ternopil, Ukraine
  • Faculty of Computer Information Systems and Software Engineering, Ternopil Ivan Puluj NationalTechnical University, 56 Ruska St., Ternopil, Ukraine
  • Faculty of Computer Information Systems and Software Engineering, Ternopil Ivan Puluj NationalTechnical University, 56 Ruska St., Ternopil, Ukraine
  • Faculty of Mechanical Engineering, Military University of Technology, 2 gen. Sylwestra Kaliskiego St., Warsaw, Poland
  • Faculty of Materials Science and Engineering, Warsaw University of Technology, 141 Wołoska St.,02-507 Warsaw, Poland
Bibliografia
  • 1. MontrossC.S.,WeiT.,YeL.,ClarkG.,MaiY-W.:Laser shock processing and its effects on microstructure and properties of metal alloys: a review.International Journal of Fatigue24(2002), 1021-1036.
  • 2. Boustie M.,Berthe L.,De Resseguier T.,Arrigoni M.:Laser Shock Waves: Fundamentals and Applications. Proceedings of the 1st International Symposium on Laser Ultrasonics: Science, Technology andApplications (2008), 1–6.
  • 3. Peyre P.:Laser Shock Processing on Metal.Metals7(2017),409.
  • 4. John M., Kalvala P.R., Misra M., Menezes P.L.:Peening Techniques for Surface Modification: Processes, Properties, and Applications. Materials14(2021), 3841.
  • 5. CuencaE.,DucoussoM.,RondepierreA.,VideauL.,CuvillierN.,BertheL.,CoulouvratF.Propagation of laser-generated shock waves in metals: 3D axisymmetric simulations compared to experiments.JournalofAppliedPhysics.128(2020), 244903.
  • 6. SokolD.W., ClauerA.H.,DulaneyJ.L., LahrmanD.W.:Applications of laser peening to titanium alloys. Conference on Lasers and Electro-Optics/Quantum Electronics and Laser Science and Photonic Applications.Systems and Technologies,Technical Digest (CD) Optica Publishing Group (2005)
  • 7. Zhang C., Dong Y.,Ye C.:Recent Developments and Novel Applications of Laser Shock Peening: A Review. Advanced Engineering Materials 23(2021),2001216.
  • 8. Ouyang P., Luo X., Dong Z., Zhang S.:Numerical Prediction of the Effect of Laser Shock Peening on Residual Stress and Fatigue Life of Ti-6Al-4V Titanium Alloy.Materials15 (2022),5503.
  • 9. Ranjith Kumar G., Rajyalakshmi G., Swaroop S.:A critical appraisal of laser peening and its impact on hydrogen embrittlement of titanium alloys.Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture223(2019),2371-2398.
  • 10. Shen X., Shukla P., Yao F., Nath S., An Z.,Lawrence J.:Laser Shock Peening of Orthopaedic Ti-6Al-7Nb: Evaluation of Topography, Wetting Characteristics, Microstructure and Residual Stress.International Journal of Peening Science & Technology1(2019), 137-154.
  • 11. JiaoY., HeW.,ShenX.:EnhancedhighcyclefatigueresistanceofTi-17 titanium alloy after multiple laser peening without coating.International Journal of Advanced Manufacturing Technology104 (2019), 1333–1343.
  • 12. Huang S., Zhu Y., Guo W., Peng P., Diao X.: Effects of Laser Shock Processing on Impact Toughness of Ti-17 Titanium Alloy.High Temperature Materials and Processes 37 (2018), 325-332.
  • 13. Wu J., Lin X., Qiao H., Zhao J., Ding W., Zhu R.:Microstructural Evolution and Surface Mechanical Properties of the Titanium Alloy Ti-13Nb-13Zr Subjected to Laser Shock Processing.Materials16(2023), 238.
  • 14. Ocaña J., Porro A., Morales M., Iordachescu D., Díaz M., Ruiz de Lara L., Correa C., Gil-Santos A.: Laser Shock Processing: an emerging technique for the enhancement of surface properties and fatigue life of high-strength metal alloys J.L. International Journal of Microstructure and Materials Properties 8 (2013), 38-52.
  • 15. Maawad E., Sano Y., Wagner L., Brokmeier H.-G., Genzel Ch.: Investigation of laser shock peening effects on residual stress state and fatigue performance of titanium alloys. Materials Science and Engineering: A 536 (2012) 82-91.
  • 16. Shu S., Huang X., Cheng Z., Shen Y., He Z., Liu W.: Understanding the Relations between Surface Stress State and Microstructure Feature for Enhancing the Fatigue Performance of TC6 Titanium Alloy.Coatings 11(2021), 1261.
  • 17. Kanjer A., Lavisse L., Optasanu V., Berger P., Gorny C., Peyre P., Herbst F., Heintz O., Geoffroy N., Montesin T., Marco de Lucas M.C.: Effect of laser shock peening on the high temperature oxidation resistance of titanium. Surface and Coatings Technology 326 (2017), 146-155.
  • 18. Fan Y., Wang Y., Vukelic S., Yao Y.L.: Wave-solid interactions processes in laser-shock-induced deformation. Journal of Applied Physics 98 (2005), 104904.
  • 19. Kovalyuk B.P., Nikiforov Y.N., Nischenko M.M.: The phase conversion in stainless steel under LSW processing. Reviews on Advanced Materials Science 8 (2004), 34-40.
  • 20. Majkowska-Marzec B., Sypniewska J.:Microstructure and mechanical properties of laser surface-treated ti13nb13zr alloy with MWCNTs coatings. Advances in Materials Science 21 (2021), 5-18.
  • 21. Trzepieciński T.,Szpunar M.: (2021). Multivariate modelling of effectiveness of lubrication of Ti-6Al-4V titanium alloy sheet using vegetable oil-based lubricants. Advances in Materials Science 21(2021),26-39.
  • 22. Kosturek R., Grzelak K., Torzewski J.,Wachowski M.,Śnieżek L.:Microstructure and mechanical properties of Sc-modified AA2519-T62 laser beam welded butt joints. Advances in Materials Science 22(2022),57-69.
  • 23. Kiani A., Radmanesh M. High‐Energy Nanosecond Laser Pulses for Synthesis of Better Bone Implants. High Energy and Short Pulse Lasers. Ed. R. Viskup, Rijeka, Croatia, InTechOpen(2016).
  • 24. Mizutani M., Honda R., Yuda A., Komotori J.,Ohmori H.:Effects of Nanosecond Laser Fabrication on Bioactivity of Pure Titanium. Procedia CIRP 5 (2013), 242-246.
  • 25. Seo B.Y.,Son K.,Son Y.-T.,Dahal R.H.,Kim S.,Kim J.,Hwang J.,Kwon S.-M.,Lee J.-M.,Lee K.-B.:Influence of Dental Titanium Implants with Different Surface Treatments Using Femtosecond and Nanosecond Lasers on Biofilm Formation.Journal of Functional Biomaterials 14(2023),297.
  • 26. Lont A., Górka J., Janicki D.,Matus K.:The laser alloying process of ductile cast iron surface with titanium powder in nitrogen atmosphere. Coatings 12(2022),227.
  • 27. Lisiecki A.:Study of optical properties of surface layers produced by laser surface melting and laser surface nitriding of titanium alloy. Materials 12(2019),3112.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4764a690-5f93-435e-a0cf-24b856cea431
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.