Computers and Concrete
Volume 6, Number 2, 2009, pages 95-108
DOI: 10.12989/cac.2009.6.2.095
Displacement-based seismic design of reinforced concrete columns strengthened by FRP jackets using a nonlinear flexural model
Chang-Geun Cho, Hee-Cheon Yun and Yun-Yong Kim
Abstract
In the current research, a displacement-based seismic design scheme to retrofit reinforced concrete columns using FRP composite materials has been proposed. An accurate prediction for the nonlinear flexural analysis of FRP jacketed concrete members has been presented under multiaxial constitutive laws of concrete and composite materials. Through modification of the displacement coefficient method (DCM) and the direct displacement-based design method (DDM) of reinforced concrete structures, two algorithms for a performance-based seismic retrofit design of reinforced concrete columns with a FRP jacket have been newly introduced. From applications to retrofit design it is known that two methods are easy to apply in retrofit design and the DCM procedure underestimates the target displacement to compare with the DDM procedure.
Key Words
displacement-based design; nonlinear flexural model; concrete column; FRP jacket; multi-axial constitutive law; seismic retrofit.
Address
Chang-Geun Cho : School of Architecture, Chosun University, Gwangju, Korea
Hee-Cheon Yun and Yun-Yong Kim : Dept. of Civil Engineering, Chungnam National University, Daejeon, Korea