Publicado

2019-01-01

Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite

Implementación de la técnica de la transmisión ultrasónica para la caracterización de compuestos laminados reforzados con fibras

DOI:

https://doi.org/10.15446/dyna.v86n208.70279

Palabras clave:

composite material, Christoffel's equation, stiffness tensor, ultrasound, through-transmission technique. (en)
material compuesto, ecuación de Chistoffel, tensor de rigidez, ultrasonido, técnica de la transmisión ultrasónica. (es)

Autores/as

Laminated composites are widely used in applications when a high strength-to-weight ratio is required. Aeronautic, naval and automotive industries use these materials to reduce the weight of the vehicles and, consequently, fuel consumption. However, the fiber-reinforced laminated materials are anisotropic and the elastic properties can vary widely due to non-standardized manufacturing processes. The elastic characterization using mechanical tests is not easy, destructive and, in most cases, not all the elastic constants can be obtained. Therefore, alternative techniques are required to assure the quality of the mechanical parts and the evaluation of new materials. In this work, the implementation of the ultrasonic through-transmission technique and the characterization of some engineering materials is reported. Isotropic materials and laminated composites of carbon fiber and glass fiber in a polymer matrix were characterized by ultrasound and mechanical tests. An improved methodology for the transit time delay calculation is reported.

Los compuestos laminados son usados en aplicaciones donde una alta relación resistencia/peso es requerida. Las industrias aeronáutica, naval y automotriz usan estos materiales para reducir el peso de sus vehículos y ahorrar combustible. Sin embargo, los materiales compuestos laminados son anisotrópicos y sus propiedades varían ampliamente debido a procesos de manufactura no estandarizados. La caracterización elástica de estos materiales usando ensayos mecánicos no es fácil, por lo general las pruebas son destructivas y, en la mayoría de los casos, no es posible obtener todas las constantes elásticas. Por tanto, técnicas de caracterización alternativas son requeridas para asegurar la calidad de las piezas fabricadas y el estudio de nuevos materiales. En este trabajo se reporta la implementación de la técnica de la transmisión ultrasónica y la caracterización de algunos materiales de ingeniería. Muestras de materiales isotrópicos y compuestos laminados de fibra de carbono y vidrio en matriz polimérica fueron caracterizados por ultrasonido y ensayos mecánicos. Se reporta una metodología alternativa para el cálculo de los atrasos.

Referencias

Adamowski, J.C., Buiochi, F. and Higuti, R., Ultrasonic material characterization using diffraction-free pvdf receivers. Physics Procedia, 3(1), pp. 593-603, 2010. DOI: 10.1016/j.phpro.2010.01.076

Zimmer, J.E. and Cost, J.R., Determination of the elastic constants of a unidirectional fiber composite using ultrasonic velocity measurements. The Journal of the Acoustical Society of America, 47(3), pp. 795-803, 1970. DOI: 10.1121/1.1911962

Franco, E.E., Meza, J.M. and Buiochi, F., Measurement of elastic properties of materials by the ultrasonic through-trasnmission technique. Revista Dyna, 78(168), pp. 59-64, 2011. http://www.scielo.org.co/scielo.php?script=sci_arttext&pid=S0012-73532011000400007&lng=en&tlng=en

Sun, M., Optimal recovery of elastic properties for anisotropic materials through ultrasonic measurement. PhD thesis, University of Maine, Orono, Maine, USA, 2002.

Rose, J.L., Ultrasonic waves in solid media. Pennsylvania: Cambridge University Press, 2004. DOI: 10.1017/CBO9781107273610

Rokhlin, S.I. and Wang, W., Double through-transmission bulk wave method for ultrasonic phase velocity measurement and determination of elastic constants of composite materials. The Journal of the Acoustical Society of America, 91(6), pp. 3303-3312, 1992. DOI: 10.1121/1.402847

Rokhlin, S., Chimenti, D. and Nag, P., Physical Ultrasonics of Composites. New York: Oxford University Press, 2011.

Rokhlin, S.I. and Wang, W., Critical angle measurement of elastic constants in composite material. The Journal of the Acoustical Society of America, 86(5), pp. 1876-1882, 1989. DOI: 10.1121/1.398566

Markham, M.F., Measurement of the elastic constants of fiber composites by ultrasonics. Composites, 11, pp. 145-149, 1970. DOI: 10.1016/0010-4361(69)90059-7

Van Buskirk, W.C., Cowin, S.C. and Carter Jr., R., A theory of acoustic measurement of the elastic constants of a general anisotropic solid. Journal of Materials Science, 21(8), pp. 2759-2762, 1986. DOI: 10.1007/BF00551484

Castellano, A., Foti, P., Fraddosio, A., Marzano, S. and Piccioni, M.D., Mechanical characterization of cfrp composites by ultrasonic immersion tests: Experimental and numerical approaches. Composites: Part B, 66(5), pp. 299-310, 2014. DOI: 10.1016/j.compositesb.2014.04.024

Aristegui, C. and Baste, S., Optimal recovery of the elasticity tensor of general anisotropic materials from ultrasonic velocity data. The Journal of the Acoustical Society of America, 101(2), pp. 813-833, 1997. DOI: 10.1121/1.418040

Balasubramanian, K. and Whitney, S.C., Ultrasonic through-transmission characterization of thick fiber-reinforced composites. NDT & E International, 29(4), pp. 225-236, 1996. DOI: 10.1016/S0963-8695(96)00014-X

Hosten, B., Stiffness matrix invariants to validate the characterization of composite materials with ultrasonic methods. Ultrasonics, 30(6), pp. 365-370, 1992. DOI: 10.1016/0041-624X(92)90092-Z

Meza, C.A., Pazos-Ospina, J.F., Franco, E.E., Ealo, J.L., Collazos-Burbano, D.A. and Casanova G.F., Ultrasonic determination of the elastic constants of epoxy-natural fiber composites. Physics Procedia, 70, pp. 467-470, 2015. DOI: 10.1016/j.phpro.2015.08.287

Bader, T.K., Dastoorian, F., Ebrahimi, G., Unger, G., Lahayne, O., Hellmich, C. and Pichler, B., Combined ultrasonic-mechanical characterization of orthotropic elastic properties of an unrefined bagasse fiber-polypropylene composite. Composites Part B: Engineering, 95, pp. 96-104, 2016. DOI: 10.1016/j.compositesb.2016.03.070

Baste, S. and Morvan, J.M., Under load strain partition of a ceramic matrix composite using an ultrasonic method. Experimental Mechanics, 36(2), pp. 148-154, 1996. DOI: 10.1007/BF02328711

Mat, A.N., Jaafar, R., Kadri, S., Hadi, M.I. and Rohani, S., Elastic constant determination of hardwoods using ultrasonic insertion technique. Ultrasonics, 75, pp. 194-198, 2017. DOI: 10.1016/j.ultras.2016.11.025

Meza, J.M., Franco, E.E., Farias, M.C., Buiochi, F., Souza, R.M. y Cruz, J., Medición del módulo de elasticidad en materiales de ingeniería utilizando la técnica de indentación instrumentada y de ultrasonido. Revista de Metalurgia, 44(168), pp. 52-65, 2008. DOI: 10.3989/revmetalm.2008.v44.i1.95

Bower, A.F. Applied Mechanics of Solids. Boca Raton: CRC Press, 2009.

Daniel, I.M. and Ishai, O., Engineering Mechanics of Composite Materials. New York : Oxford University Press, 2006.

Mouhat, F. and Coudert, F.X., Necessary and sufficient elastic stability conditions in various crystal systems. Physical review B, 90 (224104), 2014. DOI: 10.1103/PhysRevB.90.224104

Auld, B.A. Acoustic Field and Waves in Solids. New York: John Wiley & Sons, 1973.

Cómo citar

IEEE

[1]
C. A. Meza, E. E. Franco, y J. L. Ealo, «Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite», DYNA, vol. 86, n.º 208, pp. 153–161, ene. 2019.

ACM

[1]
Meza, C.A., Franco, E.E. y Ealo, J.L. 2019. Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite. DYNA. 86, 208 (ene. 2019), 153–161. DOI:https://doi.org/10.15446/dyna.v86n208.70279.

ACS

(1)
Meza, C. A.; Franco, E. E.; Ealo, J. L. Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite. DYNA 2019, 86, 153-161.

APA

Meza, C. A., Franco, E. E. & Ealo, J. L. (2019). Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite. DYNA, 86(208), 153–161. https://doi.org/10.15446/dyna.v86n208.70279

ABNT

MEZA, C. A.; FRANCO, E. E.; EALO, J. L. Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite. DYNA, [S. l.], v. 86, n. 208, p. 153–161, 2019. DOI: 10.15446/dyna.v86n208.70279. Disponível em: https://revistas.unal.edu.co/index.php/dyna/article/view/70279. Acesso em: 18 mar. 2026.

Chicago

Meza, Carlos A., Ediguer E. Franco, y Joao L. Ealo. 2019. «Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite». DYNA 86 (208):153-61. https://doi.org/10.15446/dyna.v86n208.70279.

Harvard

Meza, C. A., Franco, E. E. y Ealo, J. L. (2019) «Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite», DYNA, 86(208), pp. 153–161. doi: 10.15446/dyna.v86n208.70279.

MLA

Meza, C. A., E. E. Franco, y J. L. Ealo. «Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite». DYNA, vol. 86, n.º 208, enero de 2019, pp. 153-61, doi:10.15446/dyna.v86n208.70279.

Turabian

Meza, Carlos A., Ediguer E. Franco, y Joao L. Ealo. «Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite». DYNA 86, no. 208 (enero 1, 2019): 153–161. Accedido marzo 18, 2026. https://revistas.unal.edu.co/index.php/dyna/article/view/70279.

Vancouver

1.
Meza CA, Franco EE, Ealo JL. Implementation of the ultrasonic through-transmission technique for the elastic characterization of fiber-reinforced laminated composite. DYNA [Internet]. 1 de enero de 2019 [citado 18 de marzo de 2026];86(208):153-61. Disponible en: https://revistas.unal.edu.co/index.php/dyna/article/view/70279

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1. Krzysztof Ciecieląg, Krzysztof Kęcik, Agnieszka Skoczylas, Jakub Matuszak, Izabela Korzec, Radosław Zaleski. (2022). Non-Destructive Detection of Real Defects in Polymer Composites by Ultrasonic Testing and Recurrence Analysis. Materials, 15(20), p.7335. https://doi.org/10.3390/ma15207335.

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