Destructive and non-destructive testing of locally sourced concrete in Pakistan

Authors

  • Muhammad Munib Munir Department of Civil Engineering, The University of Lahore, Lahore, Pakistan.
  • Saeed Ur Rehman Department of Civil Engineering, The University of Lahore, Lahore, Pakistan
  • Abdul Hanan Department of Civil Engineering, The University of Lahore, Lahore, Pakistan
  • Muaz Ur Rehman Department of Civil Engineering, The University of Lahore, Lahore, Pakistan
  • Ali Ahsan Munawar Department of Civil Engineering, The University of Lahore, Lahore, Pakistan

Keywords:

Compressive strength, Quality control in concrete, Schmidt rebound hammer, In-situ strength assessment, Non-destructive testing

Abstract

Assessing concrete strength is crucial for structural safety, especially when using local materials that may vary in quality and composition. This study examines the destructive (DT) and nondestructive testing (NDT) methods for evaluating the strength of locally sourced concrete in Pakistan. M15-grade concrete cubes (n=50, 1:2:4 mix, w/c = 0.6) were tested for strength after 28 days of curing. Schmidt Rebound Hammer (SRHT) in vertical and horizontal orientations served as NDT, while DT was performed using a cube compression testing (CT) machine. Regression analysis revealed a positive correlation between rebound numbers and compressive strength, with cubic models providing the best fit (R²= 0.59). Further, there was no statistically significant difference (P<0.05) between predicted and measured strengths. The developed calibration equations offer a practical, rapid, and non-destructive approach for estimating in-situ concrete strength in similar local construction contexts.

References

Akram, M. S., Farooq, S., Naeem, M., & Ghazi, S. (2017). Prediction of mechanical behaviour from mineralogical composition of Sakesar limestone, Central Salt Range, Pakistan. Bulletin of Engineering Geology and the Environment, 76, 601–615. https://doi.org/10.1007/s10064-016-1002-3

Alharthy, S. E. (2021). Destructive and non-destructive test characteristics of concrete produced with iron slag aggregate. Water Science, 35(1), 186–194. https://doi.org/10.1080/23570008.2021.1994243

Azam, R., Riaz, M. R., Haq, E. U., Shihata, A., & Zawam, M. (2022). Development of quality assessment criteria for burnt clay bricks of different ages based on ultrasonic pulse velocity test. Buildings, 12(8), 1069. https://doi.org/10.3390/buildings12081069

Hajjeh, H. R. (2012). Correlation between destructive and non-destructive strengths of concrete cubes using regression analysis. Contemporary Engineering Sciences, 5(10), 493–509. https://www.m-hikari.com/ces/ces2012/ces9-12-2012/hajjehCES9-12-2012.pdf

Hamidian, M., Shariati, A., Arabnejad Khanouki, M. M., Sinaei, H., Toghroli, A., & Nouri, K. (2012). Application of Schmidt rebound hammer and ultrasonic pulse velocity techniques for structural health monitoring. Scientific Research and Essays, 7(21), 1997–2001.

Kallu, R., & Roghanchi, P. (2015). Correlations between direct and indirect strength test methods. International Journal of Mining Science and Technology, 25(3), 355–360. https://doi.org/10.1016/j.ijmst.2015.03.005

Kazmi, S. M. S., Abbas, S., Munir, M. J., & Khitab, A. (2016). Exploratory study on the effect of waste rice husk and sugarcane bagasse ashes in burnt clay bricks. Journal of Building Engineering, 7, 372–378.

Kim, T.-K., Lee, J., Park, S., Choi, H., & Nguyen, P. (2015). Performance based evaluation of concrete strength under various curing conditions to investigate climate change effects. Sustainability, 7(8), 10052–10077. https://doi.org/10.3390/su70810052

Raj, K., & Pedram, R. (2015). Correlations between direct and indirect strength test methods. International Journal of Mining Science and Technology, 25(3), 355-360. https://doi.org/10.1016/j.ijmst.2015.03.005

Munir, M. J., Abbas, S., Qazi, A. U., Nehdi, M. L., & Kazmi, S. M. S. (2018). Role of test method in detection of alkali–silica reactivity of concrete aggregates. Proceedings of the Institution of Civil Engineers—Construction Materials, 171(5), 203–221. http://dx.doi.org/10.1680/jcoma.16.00058

Sultan, M., Jawad, M., Iqbal, M. M., Ghafoor, I., Farooq, U., Ud Din, S., & Mushtaq, A. (2023). A comparative study: Effects of fineness of cement on consistency and compressive strength of different branded cement in Pakistan. Journal of Applied Engineering Sciences, 13(1), 9–16. https://doi.org/10.2478/jaes-2023-0002

Vasanelli, E., Colangiuli, D., Calia, A., & Luprano, V. A. (2017). Estimating in situ concrete strength combining direct and indirect measures via cross validation procedure. Construction and Building Materials, 151, 916–924. https://doi.org/10.1016/j.conbuildmat.2017.06.141

Published

2026-03-31

Issue

Section

Original Research Articles

How to Cite

Munir, M. M., Ur Rehman, S., Hanan, A., Ur Rehman, M., & Munawar, A. A. (2026). Destructive and non-destructive testing of locally sourced concrete in Pakistan. Asian Journal of Science, Engineering and Technology (AJSET), 5(1), 49-56. https://ideapublishers.org/index.php/ajset/article/view/5.1.5

Similar Articles

1-10 of 15

You may also start an advanced similarity search for this article.