Performance Evaluation of Reinforced Recycled Aggregate Concrete Columns under Cyclic Loadings
Abstract
:1. Introduction
2. Numerical Modelling
2.1. Description of the Modeling Method
2.1.1. Constitutive Model for Recycled Aggregate Concrete (RAC)
2.1.2. Constitutive Model for Steel Reinforcement
2.2. Validation and Discussion
3. Parametric Investigation
3.1. Influences of r and of the Addition Water Method
3.2. Influences of fy and ρs
3.3. Influence of Bi-Directional Loading
4. Grey Relational Analysis (GRA)
4.1. Mathematical Model of GRA
4.2. Evaluation of Variable Sensitivity
- (i)
- for the maximum lateral load Pu, the influencing sequence was: L/h > ρs = fy = n > r;
- (ii)
- for the displacement ductility μ, the influencing sequence was: L/h > ρs = fy > n > r.
- (1)
- The steel strength (i.e., fy), the geometric ratio (i.e., L/h), the reinforcement area ratio (i.e., ρs), and the axial load ratio (n) had the most significant influences on the seismic performance of RRC columns, with γ ranging from 0.80 to 0.87;
- (2)
- The sensitivity of RCA percentage on the seismic performance of RRC columns was much less remarkable than that of the steel strength and the other three structural factors (i.e., L/h, ρs, and n); however, considering that concrete constituted a large portion of the overall resistance, the influence of RCA percentage should be considered in the seismic design and evaluation of RRC columns.
5. Conclusions
- (1)
- The lateral load-carrying capacity of RRC columns using the AWM generally reduces (up to 10%) with an increase in the RCA replacement percentage, whilst this trend is reversed when the ETWM is used.
- (2)
- Increasing the steel strength is advantageous to the gain in lateral strength of the RRC column, but this leads to a reduction in ductility. Similar two-edged results are also observed when increasing the area ratio of steel reinforcement.
- (3)
- Bi-directional loading has a negative influence on the lateral load-carrying capacity, but it has a positive influence on the ductility of RRC columns.
- (4)
- The steel strength and some well-recognized structural factors (i.e., the shear-span ratio, the area ratio of steel reinforcement, and the axial load ratio) are identified by the GRA method as the most essential parameters affecting the seismic performances of RRC columns, with the grey relational entropy density, γ, ranging from 0.80 to 0.87.
- (5)
- The sensitivity of RCA percentage on the seismic performance of RRC columns is quite modest compared to those of the four factors listed in (4); however, quality and percentage of RAC still should be well-controlled in seismic design of RRC columns.
Author Contributions
Funding
Conflicts of Interest
Abbreviations
A | Column sectional area |
Ac | Concrete sectional area |
As | Total sectional area of longitudinal rebars |
b | Column sectional width |
Dc | Diameter of concrete cylinder |
d | Diameter of longitudinal rebar |
dhoop | Diameter of transverse rebar |
Ec | Elastic modulus of concrete |
Es | Elastic modulus of longitudinal rebar |
fc | Concrete cylindrical compressive strength |
fy | Yield strength of longitudinal rebar |
fy,v | Yield strength of transverse rebar |
h | Column sectional height |
Hc | Height of concrete cylinder |
L | Column effective length |
N | Axial load |
n | Axial load ratio |
P | Lateral load |
r | Replacement ratio of RCAs [%] |
S | Hoop spacing |
weff/c | Effective water to cement ratio |
wd | Coefficient accounting for concrete density |
ws | Coefficient considering sample aspect ratio |
wa | Coefficient considering sample aspect ratio |
σc | Stress of concrete |
σs | Stress of longitudinal bar |
εcor | Peak strain of RAC |
εc | Strain of concrete |
εs | Strain of longitudinal rebar |
εcon | Peak strain of NAC |
ρc,f | Bulk density of concrete |
ρs | Area ratio of steel rebar |
ξi | Grey correlation coefficient |
γi | Grey correlation entropy density |
α | Bi-directional cyclic loading angle |
μ | Displacement ductility coefficient |
Δ0.85 | Lateral displacement at 85% peak load |
Δy | Yield lateral displacement |
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Sample | weff/c | r [%] | fc [MP] | Ec [GP] | L [mm] | h = b [mm] | n | d [mm] | fy [MP] | Es [GP] | dhoop [mm] | S [mm] | fy,v [MP] | Pu,t [kN] | Pu,s [kN] | Pu,t/Pu,s | μt | μs | μt/μs |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Xiao et al. [42] | |||||||||||||||||||
NCCC-1 | 0.488 | 0 | 28.98 | 36.3 | 1280 | 350 | 0.30 | 16 | 353 | 196 | 8 | 200 | 340 | 178 | 174 | 1.02 | 5.98 | 5.67 | 1.05 |
RCCC-2 | 0.43 | 100 | 26.98 | 25.0 | 1280 | 350 | 0.30 | 16 | 353 | 196 | 8 | 200 | 340 | 164 | 162 | 1.01 | 4.56 | 3.93 | 1.16 |
Yang [43] | |||||||||||||||||||
NAC-0.30-40 | 0.45 | 0 | 33.52 | 33.0 | 1000 | 240 | 0.30 | 12 | 549 | 241 | 6 | 40 | 389 | 93 | 95 | 0.98 | 3.80 | 4.10 | 0.93 |
NAC-0.30-60 | 0.45 | 0 | 33.52 | 33.0 | 1000 | 240 | 0.30 | 12 | 549 | 241 | 6 | 60 | 389 | 92 | 94 | 0.98 | 3.63 | 3.94 | 0.92 |
NAC-0.30-100 | 0.45 | 0 | 33.52 | 33.0 | 1000 | 240 | 0.30 | 12 | 549 | 241 | 6 | 100 | 389 | 87 | 93 | 0.93 | 3.29 | 3.70 | 0.89 |
RAC50-0.30-40 | 0.45 | 50 | 28.88 | 31.6 | 1000 | 240 | 0.30 | 12 | 549 | 241 | 6 | 40 | 389 | 84 | 90 | 0.93 | 4.13 | 4.42 | 0.93 |
RAC50-0.30-60 | 0.45 | 50 | 28.88 | 31.6 | 1000 | 240 | 0.30 | 12 | 549 | 241 | 6 | 60 | 389 | 91 | 90 | 1.02 | 3.79 | 4.27 | 0.89 |
RAC50-0.30-100 | 0.45 | 50 | 28.88 | 31.6 | 1000 | 240 | 0.30 | 12 | 549 | 241 | 6 | 100 | 389 | 87 | 89 | 0.98 | 3.53 | 3.77 | 0.94 |
RAC50-0.15-60 | 0.45 | 50 | 28.88 | 31.6 | 1000 | 240 | 0.15 | 12 | 549 | 241 | 6 | 60 | 389 | 69 | 61 | 1.12 | 4.02 | 4.27 | 0.94 |
RAC50-0.45-60 | 0.45 | 50 | 28.88 | 31.6 | 1000 | 240 | 0.45 | 12 | 549 | 241 | 6 | 60 | 389 | 94 | 89 | 1.06 | 3.08 | 4.44 | 0.69 |
RAC100-0.30-60 | 0.45 | 100 | 28.00 | 31.3 | 1000 | 240 | 0.30 | 12 | 549 | 241 | 6 | 60 | 389 | 82 | 89 | 0.92 | 3.35 | 4.56 | 0.73 |
Average valve | 1.00 | 0.92 | |||||||||||||||||
Cov | 0.06 | 0.13 |
Performance | Grey Relational Entropy Density γi | ||||
---|---|---|---|---|---|
r | L/h | fy | ρs | n | |
Pu | 0.62 | 0.87 | 0.86 | 0.86 | 0.85 |
μ | 0.58 | 0.84 | 0.83 | 0.83 | 0.80 |
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Wang, F.; Yu, Y.; Zhao, X.-Y.; Xu, J.-J.; Xie, T.-Y.; Deresa, S.T. Performance Evaluation of Reinforced Recycled Aggregate Concrete Columns under Cyclic Loadings. Appl. Sci. 2019, 9, 1460. https://doi.org/10.3390/app9071460
Wang F, Yu Y, Zhao X-Y, Xu J-J, Xie T-Y, Deresa ST. Performance Evaluation of Reinforced Recycled Aggregate Concrete Columns under Cyclic Loadings. Applied Sciences. 2019; 9(7):1460. https://doi.org/10.3390/app9071460
Chicago/Turabian StyleWang, Fan, Yong Yu, Xin-Yu Zhao, Jin-Jun Xu, Tian-Yu Xie, and Simret Tesfaye Deresa. 2019. "Performance Evaluation of Reinforced Recycled Aggregate Concrete Columns under Cyclic Loadings" Applied Sciences 9, no. 7: 1460. https://doi.org/10.3390/app9071460
APA StyleWang, F., Yu, Y., Zhao, X. -Y., Xu, J. -J., Xie, T. -Y., & Deresa, S. T. (2019). Performance Evaluation of Reinforced Recycled Aggregate Concrete Columns under Cyclic Loadings. Applied Sciences, 9(7), 1460. https://doi.org/10.3390/app9071460