An experimental investigation was performed to estimate the ultimate strength ratio of square and circular concrete-filled multi-skin steel tubes (CFMST). In this study, 18 composite column specimens were designed and tested experimentally under axial and eccentric loads. The CFMST columns are divided according to their cross section into two groups, circular and square. Each group is divided into three subgroups according to the type of loading (e/h=0, e/h=1, an d e/h=2), and each group contains three columns, a column containing (one, two layers, three layers). The external dimensions of both sections are the same. Some geometrical parameters were investigated both experimentally and theoretically in order to explain their effect on the ultimate strength of CFMST columns. A variety of steel layers, loading types, and other parameters were investigated. It is observed that the ultimate strength of a square section is greater than a circular section experimentally by (21.05, 22.22 and 54.53) % under axial load and (10,23.81 and 16.67) % to(e/h=1), and it1s also increased by (21.43,15 and23.53) % for (one to three layers). While theoretically, it was found that the ultimate strength of circular section increases the ultimate strength of the square section by (4.37, 3.44 and13.01) % under axial load, (13.1, 2.19 and 7.83) % under eccentric load(e/h=1), and (4.07, 9.15, and2.41) % under eccentric load(e/h=2) for (one to three layers).

1.
G.
Heirman
,
L.
Vandewalle
,
O.
Wallevik
, and
I.
Nielsson
, “
The influence of fillers on the properties of self-compacting concrete in fresh and hardened state
,” In
Proc. of the 3rd Int. Symp. on Self-Compacting Concrete (SCC2003)
(pp.
606
618
).
2.
M.
Lai
,
L.
Hanzic
, and
J.C.
Ho
,
Fillers to improve passing ability of concrete
.
Structural Concrete
,
20
(
1
),
185
197
. (
2019
).
3.
S. M. K.
Manojkumar
V.
Chitawadagi
,
Mattur C.
Narasimhana
,
Axial strength of circular concrete-filled steel tube columns—DOE approach
.
Journal of constructional steel research
,
66
(
10
),
1248
1260
, (
2009
).
4.
S. P.
Schneider
and
Y. M.
Alostaz
,
Experimental Behavior of Connections to Concrete-Filled Steel Tubes
,
Construct. Steel Res.
45
(
3
),
321
352
, (
1998
)
5.
M. D. Y.
Essopjee
,
Performance Of Concrete-Filled Double-Skin Circular Tubes In Compression
,
Concrete-filled tube, double skin, slender columns, axial compression, yielding, overall buckling, confinement effect.
1., South Africa, p.
18
,
2006
, doi: : This.
6.
O. F. K. and L. G. M.F. Hassanein
,
Behaviour and design of square concrete-filled double skin tubular columns with inner circular tubes
.
Engineering Structures
,
100
,
410
424
. (
2015
).
7.
S.
Ipek
, and
E.M.
Güneyisi
,
Ultimate axial strength of concrete-filled double skin steel tubular column sections
.
Advances in Civil Engineering
, (
2019
).
8.
L.H.
Han
,
G.H.
Yao
, and
Z.
Tao
,
Performance of concrete-filled thin-walled steel tubes under pure torsion
.
Thin-Walled Structures
,
45
(
1
),
24
36
. (
2007
).
9.
EFNARC
,
Specification and Guidelines for Self-Compacting Concrete
,
Europe
, p.
32
,
2002
.
10.
M. S. Abo
Dhaheer
,
W. S.
Alyhya
,
B. L.
Karihaloo
, and
S.
Kulasegaram
,
Proportioning of self – compacting concrete mixes based on target plastic viscosity and compressive strength : mix design procedure
,
J. Sustain. Cem. Mater.
, (September), (
2015
).
11.
M. S. Abo
Dhaheer
,
W. S.
Alyhya
, and
B. L.
Karihaloo
,
Proportioning of self-compacting concrete mixes based on target plastic viscosity and compressive strength : Part II - experimental validation
,
0373
(June), (
2016
).
This content is only available via PDF.
You do not currently have access to this content.