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3D Modeling of Ultrasonic Wave Propagation in Pervious Concrete

  • 01-09-2025
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Abstract

This study delves into the intricate relationship between ultrasonic wave velocity and porosity in pervious concrete, a critical factor for sustainable urban drainage systems. Through a meticulously designed 3D finite element model, the research simulates ultrasonic wave propagation, offering insights into how porosity influences wave velocity. The model, validated through experimental data, provides a robust tool for estimating porosity non-destructively. Key findings reveal that ultrasonic wave velocity decreases with increasing porosity, a trend consistent across various aggregate sizes and material properties. The study also highlights the significant impact of aggregate size, Young's modulus, and density on the wave velocity-porosity relationship. By integrating these parameters, the model offers a comprehensive understanding of wave propagation in pervious concrete, paving the way for improved material characterization and quality control in construction. The research concludes with a validated analytical model, providing a practical tool for engineers and scientists to predict ultrasonic properties in pervious concrete, enhancing the reliability of non-destructive testing techniques.

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Title
3D Modeling of Ultrasonic Wave Propagation in Pervious Concrete
Authors
Agustin Spalvier
Juan Sánchez
Nicolás Pérez
Publication date
01-09-2025
Publisher
Springer US
Published in
Journal of Nondestructive Evaluation / Issue 3/2025
Print ISSN: 0195-9298
Electronic ISSN: 1573-4862
DOI
https://doi.org/10.1007/s10921-025-01248-z
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