Shear Strength Prediction of Steel-Fiber-Reinforced Concrete Beams Using the M5P Model

Author:

Al-Abdaly Nadia Moneem1,Hussein Mahdi J.2ORCID,Imran Hamza3ORCID,Henedy Sadiq N.4,Bernardo Luís Filipe Almeida5ORCID,Al-Khafaji Zainab6

Affiliation:

1. Department of Civil Engineering, Najaf Technical Institute, Al-Furat Al-Awsat Technical University, Najaf Munazira Str., Najaf 54003, Iraq

2. Construction and Building Engineering Technologies Department, Najaf Engineering Technical College, Al-Furat Al-Awsat Technical University, Najaf Munazira Str., Najaf 54003, Iraq

3. Department of Environmental Science, College of Energy and Environmental Science, Alkarkh University of Science, Baghdad 10081, Iraq

4. Department of Civil Engineering, Mazaya University College, Nasiriya City 64001, Iraq

5. Department of Civil Engineering and Architecture, University of Beira Interior, 6201-001 Covilhã, Portugal

6. Building and Construction Techniques Engineering Department, Al-Mustaqbal University College, Hillah 51001, Iraq

Abstract

This article presents a mathematical model developed using the M5P tree to predict the shear strength of steel-fiber-reinforced concrete (SFRC) for slender beams using soft computing techniques. This method is becoming increasingly popular for addressing complex technical problems. Other approaches, such as semi-empirical equations, can show known inaccuracies, and some soft computing methods may not produce predictive equations. The model was trained and tested using 332 samples from an experimental database found in the previous literature, and it takes into account independent variables such as the effective depth d, beam width bw, longitudinal reinforcement ratio ρ, concrete compressive strength fc, shear span to effective depth ratio a/d, and steel fiber factor Fsf. The predictive performance of the proposed M5P-based model was also compared with the one of existing models proposed in the previous literature. The evaluation revealed that the M5P-based model provided a more consistent and accurate prediction of the actual strength compared to the existing models, achieving an R2 value of 0.969 and an RMSE value of 37.307 for the testing dataset. It was found to be a reliable and also straightforward model. The proposed model is likely to be highly helpful in assessing the shear capacity of SFRC beams during the pre-planning and pre-design stages and could also be useful to help for future revisions of design standards.

Publisher

MDPI AG

Subject

Mechanics of Materials,Biomaterials,Civil and Structural Engineering,Ceramics and Composites

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