ULTRASONIC TESTING OF SURFACE DEFECTS IN MOLYBDENUM—NIOBIUM MONOCRYSTALS
- 作者: Shchipakov N.1,2, Degtyarev M.2, Vorykhanov A.1, Kochetov D.3, Zvonkov S.3
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隶属关系:
- Bauman Moscow State Technical University
- Welding and Testing of BMSTU
- SC Research Institute of Scientific Production Association LUCH
- 期: 编号 1 (2026)
- 页面: 5-16
- 栏目: Acoustic methods
- URL: https://journals.rcsi.science/0130-3082/article/view/309856
- DOI: https://doi.org/10.7868/S3034498026010013
- ID: 309856
如何引用文章
详细
The article considers the ultrasonic method of non-destructive testing of samples, which are single crystals of molybdenum-niobium alloy, manufactured by the method of crucibleless electron-beam zone melting. The propagation of transverse elastic vibrations in an anisotropic single crystal is simulated. Based on the simulation results, the optimal testing parameters are selected. Experimental studies are carried out on samples with artificial surface defects in the form of scratches of different depths
作者简介
Nikita Shchipakov
Bauman Moscow State Technical University; Welding and Testing of BMSTU
编辑信件的主要联系方式.
Email: shchipak@yandex.ru
俄罗斯联邦, 105005 Moscow, 2nd Baumanskaya str., 5, building 1
105005 Moscow, 2nd Baumanskaya str., 5, building 1
Maxim Degtyarev
Welding and Testing of BMSTU
Email: maxim-degtyarev@mail.ru
俄罗斯联邦, 105005 Moscow, 2nd Baumanskaya str., 5, building 1
Aleksandr Vorykhanov
Bauman Moscow State Technical University
Email: voryhanov00@yandex.ru
俄罗斯联邦, 105005 Moscow, 2nd Baumanskaya str., 5
Denis Kochetov
SC Research Institute of Scientific Production Association LUCH
Email: kochetovdi@sialuch.ru
俄罗斯联邦, 142103 Podolsk, Zheleznodorozhnaya str., 24
Sergey Zvonkov
SC Research Institute of Scientific Production Association LUCH
Email: zvonkovsa@sialuch.ru
俄罗斯联邦, 142103 Podolsk, Zheleznodorozhnaya str., 24
参考
- Smirnov V.P. Thermonuclear Energy is the Largest International Innovation Project. Russian Chemical Journal (Rossiiskii Khimicheskii Zhurnal). 2008. No. 6. P. 79–94.
- Jiao B., Han W., Zhang W., Hu Z., Li J. Preparation, Deformation Behavior and Irradiation Damage of Refractory Metal Single Crystals for Nuclear Applications: A Review // Materials. 2024. V. 17. P. 3417. https://doi.org/10.3390/ma17143417.
- Yan A., Atif A.M., Wang X., Lan T., Wang Z. The Microstructure and Cracking Behaviors of Pure Molybdenum Fabricated by Selective Laser Melting // Materials. 2022. V. 15. P. 6230. https://doi.org/10.3390/ma15186230
- Raj B., Mudali U.K. Materials Science and Technology: Research and Challenges in Nuclear Fission Power // Proc. Indian Natl. Sci. Acad. 2015. V. 81. P. 801—826.
- Was G.S., Petti D., Ukai S., Zinkle S. Materials for Future Nuclear Energy Systems // J. Nucl. Mater. 2019. V. 527. P. 151837.
- Shen X., Lu X., Guo J., Liu Y., Qi J., Lv Z. Nondestructive Testing of Metal Cracks: Contemporary Methods and Emerging Challenges // Crystals. 2024. V. 14. P. 54. https://doi.org/10.3390/cryst14010054.
- ISO 9934-1:2016. Non-destructive Testing. Magnetic Particle Testing. Part 1: General Principles. Geneva, Switzerland: International Organization for Standardization, 2016.
- ISO 3452-1:2008. Non-destructive testing. Penetrant testing. Part 1: General principles (IDT). Geneva, Switzerland: International Organization for Standardization, 2008.
- Pejryd L., Karlsson P., Hällgren S., and Kahlin M. Non-destructive evaluation of internal defects in additive manufactured aluminium / In European Congress and Exhibition on Powder Metallurgy. European PM Conference Proceedings, 2016. The European Powder Metallurgy Association. P. 1—7.
- Honarvar F., Varvani-Farahani A. A review of ultrasonic testing applications in additive manufacturing: Defect evaluation, material characterization, and process control // Ultrasonics. 2020. V. 108. doi: 10.1016/j.ultras.2020.106227
- Thompson A., Maskery I., Leach R. X-ray computed tomography for additive manufacturing: a review // Measurement Science and Technology. 2016. V. 27 (7). P. 072001. doi: 10.1088/0957-0233/27/7/072001
- Hubbell W. C., Brotzen F. R. Elastic constants of niobiummolybdenum alloys in the temperature range –190 to +100 °C // Journal of Applied Physics. 1972. V. 43. P. 3306. doi: 10.1063/1.1661712
- Lane C. J. L., Dunhill A. K., Drinkwater B. W., Wilcox P. D. The inspection of anisotropic single-crystal components using a 2-D ultrasonic array // IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control. 2010. V. 57 (12). P. 2742—2752. doi: 10.1109/tuffc.2010.1748
- http://luch-istok.ru/produktsiya/monokristally-tugoplavkih-metallov/ Дата посещения: 15.12.24.
- Rinkevich A.B., Stepanova N.N., Rodionov D.P., Perov, D.V. Ultrasonic Testing of Mono- and Polycrystalline Products from Nickel-Based Superalloys // Defectoskopiya. 2009. No. 11. P. 3—21.
- Xu L., Zhang Z., Tao C., Xu N. Wave velocity measurement in the through-thickness direction of the anisotropic material plate with ultrasonic polar scan // Materials & Design. 2023. V. 232. https://doi.org/10.1016/j.matdes.2023.112144.
- Malashin I., Tynchenko V., Martysyuk D., Shchipakov N., Krysko N., Degtyarev M., Nelyub V., Gantimurov A., Borodulin A., Galinovsky A. Assessment of Anisotropic Acoustic Properties in Additively Manufactured Materials: Experimental, Computational, and Deep Learning Approaches // Sensors. 2024. V. 24. P. 4488. https://doi.org/10.3390/s24144488.
- Jobling J., Saunders E., Barden T., Lowe M., Lan B. A feasibility study on phase characterisation of nickel-based superalloys using ultrasound // NDT & E International. 2024. V. 145 (1). P. 103120. doi: 10.1016/j.ndteint.2024.103120
- Aizpurua-Maestre I., De Miguel A., Lanzagorta J.L., Carcreff E., Galdos L. Single-Crystal Inspection Using an Adapted Total Focusing Method // Sensors. 2025. May 17. V. 25 (10). P. 3157. doi: 10.3390/s25103157
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