Steel and Composite Structures
Volume 48, Number 5, 2023, pages 507-530
DOI: 10.12989/scs.2023.48.5.507
A numerical study on shear response of concrete-filled stainless steel tubes
Sina Kazemzadeh Azad and Brian Uy
Abstract
The number of studies investigating the response of concrete-filled tubes (CFTs) under shear has been very limited
in the literature. This lack of research has been traditionally reflected in international design standards as rather conservative
shear strength predictions for CFTs. The dearth of research on the shear response is even more pronounced for the case of
concrete-filled stainless steel tubes (CFSSTs). In line with this, the present study investigates the shear response of circular and
square CFSSTs using advanced finite element (FE) analysis. A thorough review of the previous studies on the shear response of
carbon steel CFTs is provided along with a summary of past experimental programmes as well as the developed and codified
design methods. A comprehensive numerical study is then conducted considering a wide range of circular and square, austenitic
and lean duplex CFSSTs with different concrete infills and shear span-to-depth ratios. The effect of the tail length on the shear
response is investigated and the minimum required tail length for achieving full shear capacity is established. The simulations
are also used to highlight the importance of the dilation of the concrete core in the shear response of concrete-filled tubes and its
relationship with the utilised boundary conditions. Furthermore, the numerical results are compared in detail with the predictions
of design approaches developed previously for carbon steel CFTs and their accuracy and applicability to the stainless steel
counterpart are demonstrated and recommendations are made accordingly.
Key Words
CFSST; concrete-filled; design; finite element analysis; shear; stainless steel
Address
Sina Kazemzadeh Azad and Brian Uy:School of Civil Engineering, The University of Sydney, NSW 2006, Australia