Browse > Article

Diagonal Tension Failure Model for RC Slender Beams without Shear Reinforcement Based on Kinematical Conditions (I) - Development  

You, Young-Min (Dept. of Civil, Architectural and Environmental Engineering, University of Missouri-Rolla (UMR))
Kang, Won-Ho (Dept. of Civil and Ocean Engineering, Dong-A University)
Publication Information
Journal of Ocean Engineering and Technology / v.21, no.6, 2007 , pp. 7-15 More about this Journal
Abstract
A mechanical model was developed to predict the behavior of point-loaded RC slender beams (a/d > 2.5) without stirrups. It is commonly accepted by most researchers that a diagonal tension crack plays a predominant role in the failure mode of these beams, but the failure mechanism of these members is still debatable. In this paper, it was assumed that diagonal tension failure was triggered by the concrete cover splitting due to the dowel action at the initial location of diagonal tension cracks, which propagate from flexural cracks. When concrete cover splitting occurred, the shape of a diagonal tension crack was simultaneously developed, which can be determined from the principal tensile stress trajectory. This fictitious crack rotates onto the crack tip with load increase. During the rotation, all forces acting on the crack (i.e, dowel force of longitudinal bars, vertical component of concrete tensile force, shear force by aggregate interlock, shear force in compression zone) were calculated by considering the kinematical conditions such as crack width or sliding. These forces except for the shear force in the compression zone were uncoupled with respect to crack width and sliding by the proposed constitutive relations for friction along the crack. Uncoupling the shear forces along the crack was aimed at distinguishing each force from the total shear force and clarifying the failure mechanism of RC slender beams without stirrups. In addition, a proposed method deriving the dowel force of longitudinal bars made it possible to predict the secondary shear failure. The proposed model can be used to predict not only the entire behavior of point-loaded RC slender shear beams, but also the ultimate shear strength. The experiments used to validate the proposed model are reported in a companion paper.
Keywords
Diagonal tension failure; RC Slender beam; Kinematical conditions;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Broms, B.B. (1969). 'Shear Strength of Reinforced Concrete Beams', Journal of the Structural Division, ASCE, Vol 95, No 6, pp 1339-1358
2 Fischer, J. (1997). Versagensmodell fur Schubschlanke Balken, DAfStb, H 480, Beuth, Berlin
3 Kirn, W. and White, R.N. (1991). 'Shear-Critical Crackign in Slender Reinforced Concrete Beams', ACI Structural Journal, Vol 96, No 5, pp 757-765
4 Krefeld, W.J. and Thurston, C.W. (1966). 'Contribution of Longitudinal Steel to Shear Resistance of Reinforced Concrete Beams,' ACI Journal, Vol 63, No 14, pp 325-344
5 Timoshenko, S. (1958). Strength of Materials: Part II, VAN NOSTRAND REINHOLD Inc, New York, N. Y
6 CEB-FIP, (1993). CEB-FIP Model Code 1990, Comite Eura-International du Beton, Redwood Books, Wiltshire
7 Walther, R. (1966). 'Calculation of the Shear Strength of Reinforced and Prestressed Concrete Beams by Shear Failure Theory,' Cement and Concrete Association, No 110, pp 28
8 Markeset, G. (1993). Failure of concrete under compressive strain gradients, PhD Thesis, The Norwegian Institute of Technology, Trondheim, Norway
9 Morsch, E. (1902). Der Eisenbetonbau, Seine Anwendung und Theorie, 1st Edition, Im Selbstverlag der Firma, Neustadt, pp 119
10 Walraven, J.C. (1981). 'Fundamental Analysis of Aggregate Interlock,' Journal of Structural Divison, ASCE, Vol 107, No 11, pp 2245-2269
11 Nielsen, M.P. (1998). Limit Analysis and Concrete Plasticity, 2th Edition, CRC Press, New York, pp 908
12 Reineck, K.H. (1990). Mechanical Model for the Behavior of Reinforced Concrete Members in Shear, PhD thesis, University of Stuttgart, Germany
13 Konig, G. and Fehling E. (1988). 'Zur Ri$\beta$breitenbeschrankung im Stahlbetonbau', Beton-und Stahlbetonbau, Heft 6, pp 161-167
14 Chana, P.S. (1987). 'Investigation of the Mechanism of Shear Failure of Reinforced Concrete Beams,' Magazine of Concrete Research, Vol 39, No 12, pp 196-204   DOI   ScienceOn
15 Remmel, G. (1994). Zum Zug- und Schubtragverhalten von Bauteilen aus Hochfestem Beton, DAfStb, H. 444, Beuth, Berlin
16 Kim, W. and White, R.N. (1991). 'Initiation of Shear Cracking in Reinforced Concrete Beams with No Web Reinforcement', ACI Structural Journal, Vol 88, No 3, pp 301-308
17 Moody, K.G., Viest, I.M, Elstner, R.C. and Hognestad, E. (1955). 'Shear Strength of Reinforced Concrete Beams-Part 1 and 2', ACI Journal, Proceedings Vol 51, No 4, pp 317-332 and No 5, pp 417-436