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http://dx.doi.org/10.4334/JKCI.2012.24.1.025

Bi-Axial Stress Field Analysis on Shear-Friction in RC Members  

Kim, Min-Joong (U-TOP Engineering)
Lee, Gi-Yeol (Dept. of Civil Engineering, Suncheon First College)
Lee, Jun-Seok (Dept. of Civil Engineering, Chonnam National University)
Kim, Woo (Dept. of Civil Engineering, Chonnam National University)
Publication Information
Journal of the Korea Concrete Institute / v.24, no.1, 2012 , pp. 25-35 More about this Journal
Abstract
For a member subjected to direct shear forces, forces are transferred across interface concrete area and resisted by shear transfer capacity. Shear-friction equations in recent concrete structural design provisions are derived from experimental test results where shear-friction capacity is defined as a function of steel reinforcement area contained in the interface. This empirical equation gave too conservative values for concrete members with large amounts of reinforcement. This paper presents a method to evaluate shear transfer strengths and to define ultimate conditions which result in crushing of concrete struts after yielding of longitudinal reinforcement perpendicular to the interface concrete. This method is based on the bi-axial stress field theory where different constitutive laws are applied in various means to gain accurate shear strengths by considering softening effects of concrete struts based on the modified compression-field theory and the softened truss model. The validity of the proposed method is examined by applying to some selected test specimens in literatures and results are compared with recent design code provisions. A general agreement is observed between predicted and measured values at ultimate loading stages in initially uncracked normal-strength concrete test.
Keywords
shear-friction; shear transfer; shear strength; bi-axial stress field;
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