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Ultrasonic and microscopic studies of aluminum matrix composite reinforced with hollow ceramic microspheres

https://doi.org/10.26896/1028-6861-2026-92-5-41-46

Abstract

Solving the problem of operational nondestructive evaluation of cast aluminum matrix composites is of great practical importance for improving their production technology. The purpose of the work is ultrasonic and microscopic studies of a promising aluminum matrix composite obtained by casting with mechanical mixing of reinforcing hollow ceramic microspheres. Optical and scanning electron microscopy, hydrostatic weighing, and ultrasonic echo method were used to study specimens with different volume fractions of pores and reinforcing microspheres. It is shown that saturation of aluminum matrix with reinforcing hollow microspheres consisting mainly of aluminum oxide makes it possible to obtain the composite less dense than the initial alloy. The main characteristic of the composite structure affecting its properties is the total volume fraction of micropores and reinforcing microspheres. It was found that in the studied specimens, the heterogeneity of the distribution and the average size of the pores and reinforcing microspheres do not affect the propagation velocities of ultrasonic waves and elastic properties. The density, ultrasonic wave velocities, Young’s modulus, and Poisson’s ratio decrease monotonously with an increase in the total volume fraction of micropores and hollow microspheres. It is concluded that the Poisson’s ratio can be used as an informative parameter for rapid quality control of the composite. The results obtained can be used to improve the technique of nondestructive quality control of produced aluminum matrix composites reinforced with hollow ceramic microspheres.

About the Authors

K. V. Kurashkin
Mechanical Engineering Research Institute, RAS
Russian Federation

Konstantin V. Kurashkin

85, ul. Belinskogo, Nizhny Novgorod, 603024



A. V. Gonchar
Mechanical Engineering Research Institute, RAS
Russian Federation

Alexander V. Gonchar

85, ul. Belinskogo, Nizhny Novgorod, 603024



A. A. Solovyov
Mechanical Engineering Research Institute, RAS
Russian Federation

Alexander A. Solovyov

85, ul. Belinskogo, Nizhny Novgorod, 603024



E. N. Razov
Mechanical Engineering Research Institute, RAS
Russian Federation

Evgeny N. Razov

85, ul. Belinskogo, Nizhny Novgorod, 603024



References

1. Chak V., Chattopadhyay H., Dora T. A review on fabrication methods, reinforcements and mechanical properties of aluminum matrix composites / JMP. 2020. Vol. 56. P. 1059 – 1074. DOI: 10.1016/j.jmapro.2020.05.042

2. Wang Y., Zhang J. A review of the friction and wear behavior of particle-reinforced aluminum matrix composites / Lubricants. 2023. Vol. 11. Art. 317. DOI: 10.3390/lubricants11080317

3. Garg P., Jamwal A., Kumar D., et al. Advance research progresses in aluminium matrix composites: manufacturing and applications / JMR & T. 2019. Vol. 8. P. 4924 – 4939. DOI: 10.1016/j.jmrt.2019.06.028

4. Rohatgi P., Raman S., Majumdar B., Banerjee A. Ultrasonic techniques in evaluation of metal matrix particulate composites / Mat. Sci. Eng. A. 1990. Vol. 123. P. 89 – 97. DOI: 10.1016/0921-5093(90)90214-n

5. Bindumadhavan P., Wah H., Prabhakar O. Assessment of particle-matrix debonding in particulate metal matrix composites using ultrasonic velocity measurements / Mat. Sci. Eng. A. 2002. Vol. 323. P. 42 – 51. DOI: 10.1016/s0921-5093(01)01399-5

6. Mouchtachi A., El Guerjouma R., Baboux J. Nondestructive ultrasonic evaluation of fibrous metal matrix composites / Appl. Compos. Mater. 1994. Vol. 1. P. 387 – 393. DOI: 10.1007/bf00568043

7. Lee J.-H, Park Y.-Ch. Nondestructive characterization of metal matrix composite by ultrasonic measurement / Compos. Eng. 1995. Vol. 5. P. 1423 – 1431. DOI: 10.1016/0961-9526(95)00076-y

8. Gür C. H., Ogel B. Nondestructive microstructural characterization of aluminium matrix composites by ultrasonic techniques / Mater. Charact. 2001. Vol. 47. P. 227 – 233. DOI: 10.1016/s1044-5803(01)00174-7

9. Podymova N. B., Karabutov A. A. Combined effects of reinforcement fraction and porosity on ultrasonic velocity in SiC particulate aluminum alloy matrix composites / Compos. Part B. 2017. Vol. 113. P. 138 – 143. DOI: 10.1016/j.compositesb.2017.01.017

10. Toozandehjani M., Ostovan F., Shamshirsaz M., et al. Velocity and attenuation of ultrasonic wave in Al-Al2O3 nanocomposite and their correlation to microstructural evolution during synthesizing procedure / JMR & T. 2021. Vol. 15. P. 2529 – 2542. DOI: 10.1016/j.jmrt.2021.09.065

11. Erol A., Bilici V., Yönetken A. Characterization of the elastic modulus of ceramic-metal composites with physical and mechanical properties by ultrasonic technique / Open Chem. 2022. Vol. 20. P. 593 – 601. DOI: 10.1515/chem-2022-0180

12. Podymova N. B., Kalashnikov I. E., Kobeleva L. I. Laser-ultrasonic study of the local porosity of reactive cast aluminum matrix composites / Inorg. Mater. 2022. Vol. 58. P. 1512 – 1519. DOI: 10.1134/s0020168522150109

13. Kurashkin K. V., Mishakin V. V. Ultrasonic estimation of the residual stresses / Inorg. Mater. 2014. Vol. 50. P. 1506 – 1510. DOI: 10.1134/s0020168514150060

14. Carvajal L., Artigas A., Monsalve A., et al. Acoustic birefringence and Poisson’s ratio determined by ultrasound: tools to follow-up deformation by cold rolling and recrystallization / Mater. Res. 2017. Vol. 20. P. 304 – 310. DOI: 10.1590/1980-5373-mr-2016-1082

15. Mishakin V. V., Gonchar A. V., Kurashkin K. V., et al. On low-cycle fatigue of austenitic steel. Part I: changes of Poisson’s ratio and elastic anisotropy / IJES. 2021. Vol. 168. Art. 103567. DOI: 10.1016/j.ijengsci.2021.103567

16. Kirikov S. V., Mishakin V. V., Klyushnikov V. A. Influence of microcracks on Poisson’s ratio during plastic deformation of austenitics / Tech. Phys. 2023. Vol. 68. P. S449 – S456. DOI: 10.1134/s1063784223900656

17. Romanov A. D., Romanova E. A., Chernyshov E. A., et al. Production of aluminum matrix composite material hardened with hollow ceramic microspheres / Metallurgist. 2021. Vol. 65. P. 320 – 325. DOI: 10.1007/s11015-021-01160-7

18. Chernyshov E. A., Romanov A. D., Kaverin B. S., et al. Development of technology for preparing composite material based on aluminum strengthened with hollow ceramic microspheres / Metallurgist. 2019. Vol. 62. P. 1255 – 1260. DOI: 10.1007/s11015-019-00783-1

19. Mays T. J. A new classification of pore sizes / Stud. Surf. Sci. Catal. 2007. Vol. 160. P. 57 – 62. DOI: 10.1016/s0167-2991(07)80009-7

20. Gonchar A. V., Mishakin V. V., Romanova E. A., et al. Determination of effective modules of elasticity of ceramic microsphers of aluminum matrix composite material / Mekh. Kompos. Mater. Konstr. 2023. Vol. 29. No. 3. P. 424 – 433 [in Russian]. DOI: 10.33113/mkmk.ras.2023.29.03.08


Review

For citations:


Kurashkin K.V., Gonchar A.V., Solovyov A.A., Razov E.N. Ultrasonic and microscopic studies of aluminum matrix composite reinforced with hollow ceramic microspheres. Industrial laboratory. Diagnostics of materials. 2026;92(5):41-46. (In Russ.) https://doi.org/10.26896/1028-6861-2026-92-5-41-46

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