Literature DB >> 34201659

Axial Compressive Strength Models of Eccentrically-Loaded Rectangular Reinforced Concrete Columns Confined with FRP.

Haytham F Isleem1, Muhammad Abid2, Wesam Salah Alaloul3, Muhammad Kamal Shah2, Shayan Zeb2, Muhammad Ali Musarat3, Muhammad Faisal Javed4, Fahid Aslam5, Hisham Alabduljabbar5.   

Abstract

The majority of experimental and analytical studies on fiber-reinforced polymer (FRP) confined concrete has largely concentrated on plain (unreinforced) small-scale concrete columns, on which the efficiency of strengthening is much higher compared with large-scale columns. Although reinforced concrete (RC) columns subjected to combined axial compression and flexural loads (i.e., eccentric compression) are the most common structural elements used in practice, research on eccentrically-loaded FRP-confined rectangular RC columns has been much more limited. More specifically, the limited research has generally been concerned with small-scale RC columns, and hence, the proposed eccentric-loading stress-strain models were mainly based on the existing concentric-loading models of FRP-confined concrete columns of small scale. In the light of such demand to date, this paper is aimed at developing a mathematical model to better predict the strength of FRP-confined rectangular RC columns. The strain distribution of FRP around the circumference of the rectangular sections was investigated to propose equations for the actual rupture strain of FRP wrapped in the horizontal and vertical directions. The model was accomplished using 230 results of 155 tested specimens compiled from 19 studies available in the technical literature. The test database covers an unconfined concrete strength ranging between 9.9 and 73.1 MPa, and section's dimension ranging from 100-300 mm and 125-435 mm for the short and long sides, respectively. Other test parameters, such as aspect ratio, corner radius, internal hoop steel reinforcement, FRP wrapping layout, and number of FRP wraps were all considered in the model. The performance of the model shows a very good correlation with the test results.

Entities:  

Keywords:  FRP rupture strain; FRP-confined concrete; eccentric axial compression; large-scale RC columns; rectangular sections; strength model

Year:  2021        PMID: 34201659     DOI: 10.3390/ma14133498

Source DB:  PubMed          Journal:  Materials (Basel)        ISSN: 1996-1944            Impact factor:   3.623


  1 in total

1.  Predicting the Lateral Load Carrying Capacity of Reinforced Concrete Rectangular Columns: Gene Expression Programming.

Authors:  Raheel Asghar; Muhammad Faisal Javed; Raid Alrowais; Alamgir Khalil; Abdeliazim Mustafa Mohamed; Abdullah Mohamed; Nikolai Ivanovich Vatin
Journal:  Materials (Basel)       Date:  2022-04-05       Impact factor: 3.623

  1 in total

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