Experimental study of concrete-filled multiplanar circular hollow section tubular trusses

Abstract This paper presents an experimental study on concrete-filled multiplanar tubular trusses made of circular hollow section (CHS) members. A total of four types of concrete-filled multiplanar tubular trusses including Triangular truss (TT), Inverse-Triangular truss (IT), Square truss (ST) and Trapezoid truss (TZ) were tested under static loading. The failure mode, load carrying capacity, overall deflection and strain intensity of all specimens are reported. The effects of top and bottom chord members, straight and diagonal brace members and lateral bracings on the load carrying capacity, flexural rigidity and ductility of all specimens were also investigated. The typical failure modes observed from the tests include the local buckling of straight brace members, the surface plasticity and shear failure of the bottom chord members, the weld fracture around tubular joints at the bottom chord members, and the end support failure of the top chord member. The load carrying capacity, flexural rigidity and ductility of different types of multiplanar tubular trusses made of identical CHS members are quite different due to the remarkable changes of the mechanical behaviour of CHS members. On the other hand, the lateral bracings play different roles under different load levels in enhancing the load carrying capacity of different types of multiplanar tubular trusses. It is demonstrated from the comparison that the Inverse-Triangular truss (IT) has optimum flexural rigidity, ductility and efficiency in practice.

[1]  Akihiko Kawano,et al.  The Deformation Capacity of Trusses with Concrete Filled Tubular Chords , 2002 .

[2]  Fabio Minghini,et al.  Nonlinear analysis of composite beams with concrete-encased steel truss , 2013 .

[3]  Bruno Briseghella,et al.  Shaking table tests for the evaluation of the seismic performance of an innovative lightweight bridge with CFST composite truss girder and lattice pier , 2014 .

[4]  Lin-Hai Han,et al.  Flexural behaviour of curved concrete filled steel tubular trusses , 2014 .

[5]  Thomas M. Murray,et al.  Design and behavior of light composite steel–concrete trusses with drilled standoff screw shear connections , 2010 .

[6]  Roberto Scotta,et al.  Flexural and shear capacity of composite steel truss and concrete beams with inferior precast concrete base , 2013 .

[7]  B. Kozy,et al.  Bearing Capacity in Long-Span Tubular Truss Chords , 2007 .

[8]  E. M. Dexter,et al.  Static Strength of Axially Loaded Tubular K-Joints. II: Ultimate Capacity , 1999 .

[9]  Chen Ji,et al.  Recommendation of Revisions on Code for Design of Steel Structures GB 50017-2003 , 2010 .

[10]  Jaap Wardenier Design guide for circular hollow section (CHS) joints under predominantly static loading , 1991 .

[11]  Brian Uy,et al.  Advanced design for trusses of steel and concrete-filled tubular sections , 2011 .

[12]  Josef Machacek,et al.  Composite steel and concrete bridge trusses , 2011 .

[13]  E. M. Dexter,et al.  Static Strength of Axially Loaded Tubular K-Joints. I: Behavior , 1999 .