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Supervised by Ministry of Industry and Information Technology of The People's Republic of China Sponsored by Harbin Institute of Technology Editor-in-chief Yu Zhou ISSNISSN 1005-9113 CNCN 23-1378/T

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Related citation:HE Zhen-jun,SONG Yu-pu.Experimental investigation on strength and deformation of plain high-strength concrete under multiaxial stress state[J].Journal of Harbin Institute Of Technology(New Series),2009,16(5):616-622.DOI:10.11916/j.issn.1005-9113.2009.05.004.
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Experimental investigation on strength and deformation of plain high-strength concrete under multiaxial stress state
Author NameAffiliation
HE Zhen-jun State Key Laboratory of Coastal and Offshore Engineering,Dalian University of Technology,Dalian 116024,China 
SONG Yu-pu State Key Laboratory of Coastal and Offshore Engineering,Dalian University of Technology,Dalian 116024,China 
Abstract:
To investigate the strength and deformation behavior of plain high-strength concrete (HSC) under multiaxial stress states,a large static-dynamic true triaxial machine was employed,and multiaxial tests were performed on 100 mm×100 mm×100 mm cubes concrete specimens.Friction-reducing pads were three-layer plastic membranes with glycerine in-between for the compressive loading plane.The tensile loading plane of concrete samples was processed by attrition machine,and then the samples were glued up with the loading plate with structural glue.Failure modes of specimens were described.The principal static compressive strengths,strains at the peak stress and stress-strain curves were measured,and the influence of stress ratios on them was analyzed as well.Experimental results show that the ratio of the compressive strength σ3f over the uniaxial compressive strength fc depends on brittleness-stiffness of concrete besides stress state and stress ratios.The formula of Kupfer-Gerstle’s and Ottosen’s failure criterion for plain HSC under biaxial compression and multiaxial stress state is proposed respectively.
Key words:  high-strength concrete (HSC)  stress ratios  multiaxial strength  mechanical properties  stress-strain relationship
DOI:10.11916/j.issn.1005-9113.2009.05.004
Clc Number:TU528.01
Fund:

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