Technical Papers
May 22, 2020

Experimental and Analytical Study on the Shear-Strength of Partially Grouted Masonry Walls

Publication: Journal of Structural Engineering
Volume 146, Issue 8

Abstract

This paper reports on an experimental study of six full-scale partially grouted masonry walls (PG-MWs), and evaluated the accuracy of international design codes based on the test results. The main test parameters were the horizontal spacing between vertical grout cells and the horizontal reinforcement ratio. All test walls had identical thickness, height, and length, and were constructed using concrete masonry units (CMUs). The walls were subjected to a constant axial load and incrementally increasing in-plane lateral cyclic displacement applied to the top of each wall. The horizontal spacing between the vertical grouted cells ranged from 610 mm (24 in.) to 1,219 mm (48 in.), and the horizontal reinforcement ratio ranged from 0.127% to 0.254%. Results showed that the strength of the PG-MWs was very sensitive to the spacing between vertical grouted cells, and that the contribution of shear reinforcement to the shear strength was lower than what is commonly adopted in design codes, especially for the walls with higher ratios of horizontal reinforcement. The accuracy of current design codes in predicting the strength of the tested walls was investigated, and possible modifications were proposed. Disregarding the effect of grout spacing resulted in an inaccurate estimation of the strength in the current design codes. Consequently a simple grout spacing modification factor was introduced which could significantly improve the strength prediction in PG-MWs. Using a test database of PG-MWs collected from the literature, it was shown that the proposed method could effectively improve the shear strength prediction and reduce the scatter of the predicted strength.

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Data Availability Statement

All data generated during the study including strain measurements, forces, and displacement are available from the corresponding author by request.

References

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Information & Authors

Information

Published In

Go to Journal of Structural Engineering
Journal of Structural Engineering
Volume 146Issue 8August 2020

History

Received: Jun 6, 2019
Accepted: Feb 13, 2020
Published online: May 22, 2020
Published in print: Aug 1, 2020
Discussion open until: Oct 22, 2020

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Authors

Affiliations

Jamal Elmapruk [email protected]
Lecturer, Dept. of Civil and Environmental Engineering, Elmergib Univ., AlKhoms, Libya; formerly, Graduate Student, Dept. of Civil and Environmental Engineering, Washington State Univ, Pullman, WA 99164-2910. Email: [email protected]
Benavides Professor, Dept. of Civil, Architectural, and Environmental Engineering, Missouri Univ. of Science and Technology, Rolla, Mo 65401 (corresponding author). ORCID: https://orcid.org/0000-0001-6928-9875. Email: [email protected]
Reza Hassanli [email protected]
Lecturer, School of Natural and Built Environments, Univ. of South Australia, Adelaide, SA 5000, Australia. Email: [email protected]

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