Behavior of Circular Hollow Steel-Reinforced Concrete Columns under Axial Compression

Author:

Wei Qiuyu1,Ren Qingxin12,Wang Qinghe1,Zhang Yannian3ORCID

Affiliation:

1. School of Civil Engineering, Shenyang Jianzhu University, Shenyang 110168, China

2. School of Transportation, Civil Engineering & Architecture, Foshan University, Foshan 528051, China

3. School of Civil Engineering, Dalian Jiaotong University, Dalian 116028, China

Abstract

The circular hollow steel-reinforced concrete (HSRC) column consists of an inner circular hollow steel tube and outer circular hollow reinforced concrete (RC). This design provides several advantages, including being lightweight, having a wide sectional profile, and having a high flexural stiffness. This paper aims to investigate the behavior of the circular HSRC columns under axial compression through testing and finite element (FE) modeling. An FE model was established to simulate the circular HSRC columns under axial compression, which was validated against the test data. Additionally, the load distribution and the interface stress between the outer hollow RC and inner steel tube were analyzed. Subsequently, a systematic parametric analysis was conducted on the diameter (d) and thickness (t) of the steel tube; slenderness ratio (λ); strength of concrete (fcu); yield strength of steel tube (fsy), longitudinal rebar (fly), and stirrup (fgy); as well as the stirrup spacing (s). The critical influencing factors of the circular HSRC columns under axial compression were identified. fcu, λ, d, fly, and fsy dramatically influence the bearing capacity, and the stiffness is notably affected by λ and fcu. Finally, three simplified design methods were summarized and evaluated for calculating the bearing capacity of the circular HSRC columns under axial compression.

Funder

National Natural Science Foundation of China

Science and Technology Project of MHRUD, China

Liaoning Research Project, China

Publisher

MDPI AG

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