Metodología experimental para la generación, procesamiento e interpretación de señales ultrasónicas en materiales compuestos

Main Article Content

Saúl Hernández Moreno
Antonio Balvantín García
Víctor Ramírez Elías

Abstract

Composite materials have a wide field of applications in different types of industries such as automotive, aeronautics, aerospace, transportation and military. Non-destructive evaluation, using ultrasound, plays an important role in the prevention of catastrophic failures in engineering components and structures during their entire operational life. This work presents the development of an experimental methodology for the generation, acquisition, processing, and interpretation of ultrasonic signals in composite materials through the implementation of a signal acquisition, processing and storage interface using the commercial software LabVIEW®. The use of the virtual instrument developed allows the monitoring and capture of signals by implementing different filters during the inspection. Finally, an analysis of the captured signals is shown using the Fast Fourier Transform, FFT, to determine the frequency components of the signal, implementing a function developed in MATLAB®.

Downloads

Download data is not yet available.

Article Details

How to Cite
Hernández Moreno, S., Balvantín García, A., & Ramírez Elías , V. (2023). Metodología experimental para la generación, procesamiento e interpretación de señales ultrasónicas en materiales compuestos. Ingenio Magno, 13(2), 75 -80. Retrieved from http://revistas.ustatunja.edu.co/index.php/ingeniomagno/article/view/2614
Section
Articulos

References

[1] BOEING. (Agosto de 2022). Advanced Composite Use. (787 DREAMLINER BY DESIGN) Obtenido de https://www.boeing.com/commercial/787/by-design/#/advanced-composite-use
[2] Treesatayapun, C., Baltazar, A., Balvantin, A., & Kim, J. Y. (2009, March). THICKNESS DETERMINATION OF A PLATE WITH VARYING THICKNESS USING AN ARTIFICIAL NEURAL NETWORK FOR TIME‐FREQUENCY REPRESENTATION OF LAMB WAVES. In AIP Conference Proceedings (Vol. 1096, No. 1, pp. 619-626). American Institute of Physics
[3] Huang, L., Zeng, L., Lin, J., & Zhang, N. (2020). Baseline-free damage detection in composite plates using edge-reflected Lamb waves. Composite Structures, 247, 112423.
[4] Osorio, J. A. C., Vargas, J. A. M., & Escobar, J. A. M. (2010). Alternativa al análisis en frecuencia de la FFT mediante el algoritmo Goertzel. Scientia et technica, 1(44), 217-222.
[5] Soluciones NI. (05 de Agosto de 2022). Obtenido de https://www.ni.com/es-mx/shop/labview.html
[6] Xu, C. B., Yang, Z. B., Zhai, Z., Qiao, B. J., Tian, S. H., & Chen, X. F. (2019). A weighted sparse reconstruction-based ultrasonic guided wave anomaly imaging method for composite laminates. Composite Structures, 209, 233-241.
[7] Xu, C., Yang, Z., Tian, S., & Chen, X. (2019). Lamb wave inspection for composite laminates using a combined method of sparse reconstruction and delay-and-sum. Composite Structures, 223, 110973.
[8] Yang, B., Xuan, F. Z., Chen, S., Zhou, S., Gao, Y., & Xiao, B. (2017). Damage localization and identification in WGF/epoxy composite laminates by using Lamb waves: Experiment and simulation. Composite Structures, 165, 138-147.

Most read articles by the same author(s)