SIMPLIFIED TECHNIQUE FOR CONSTITUTIVE ANALYSIS OF SFRC

被引:6
作者
Meskenas, Adas [1 ]
Gribniak, Viktor [1 ,2 ]
Kaklauskas, Gintaris [1 ]
Arnautov, Aleksandr K. [2 ]
Rimkus, Arvydas [1 ]
机构
[1] Vilnius Gediminas Tech Univ, Dept Bridges & Special Struct, LT-10223 Vilnius, Lithuania
[2] Univ Latvia, Inst Polymer Mech IMP, LV-1586 Riga, Latvia
关键词
steel fibre reinforced concrete; constitutive analysis; residual stresses; flexural members; crack width; deformations; FIBER-REINFORCED CONCRETE; TENSION; BEAMS; BARS; BEHAVIOR; MODEL;
D O I
10.3846/13923730.2014.909882
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Steel fibre reinforced concrete (SFRC) has become widespread material in areas such as underground shotcrete structures and industrial floors. However, due to the absence of material models of SFRC reliable for numerical analysis, application fields of this material are still limited. Due to interaction of concrete with fibres, a cracked section is able to carry a significant portion of tensile stresses, called the residual stresses. In present practices, residual stresses used for strength, deflection and crack width analysis are quantified by means of standard tests. However, interpretation of these test results is based on approximation using empirically deduced relationships, adequacy of which might be insufficient for an advanced numerical analysis. Based on general principles of material mechanics, this paper proposes a methodology for determination of residual stress-crack opening relationships using experimental data of three-point bending tests. To verify the constitutive analysis results, a numerical modelling is utilised employing a nonlinear finite element analysis program ATENA. Simulated load-crack width relationships and moment-curvature diagrams were compared with the experimental data by validating adequacy of the derived constitutive models.
引用
收藏
页码:446 / 453
页数:8
相关论文
共 26 条
[1]  
[Anonymous], 2002, Materials and Structures, V35, P579
[2]  
[Anonymous], 2001, MATER STRUCT, V34, P3
[4]  
CEN (European Committee for Standardization), 2005, 14651 CEN EUR COMM S
[5]  
Chao SH, 2009, ACI STRUCT J, V106, P897
[6]  
CNR, 2007, 2042006 CNRDT NAT RE
[7]  
DAfStb. (German Committee for Structural Concrete), 2010, TECHN RUL STEEL FIBR
[8]  
DBV (German Concrete and Construction Technology Association), 2001, DBV STEEL FIB REINF
[9]   Fibre reinforced concrete: new design perspectives [J].
di Prisco, Marco ;
Plizzari, Giovanni ;
Vandewalle, Lucie .
MATERIALS AND STRUCTURES, 2009, 42 (09) :1261-1281
[10]  
Dupont D, 2003, THESIS CATHOLIC U LE