Dynamic Response of Reinforced Recycled Aggregate Concrete Pavement under Impact Loading
Abstract
:1. Introduction
- (1)
- To investigate the effect of steel reinforcement distribution and slab thickness on the impact force characteristics and impact behaviors of RCP;
- (2)
- To evaluate the applicability of reinforced recycled aggregate concrete pavement under impact loads compared to the reinforced natural aggregate concrete pavement.
2. Experimental Methods
2.1. Materials
- (1)
- Cement and Water
- (2)
- Fine Aggregate
- (3)
- Coarse Aggregate
- (4)
- Steel reinforcement
2.2. Concrete Mix Design
2.3. Description of RCP Specimens
2.4. Instrumentation
2.5. Test Program
3. Experimental Results and Discussion
3.1. Impact Force Characteristics
3.2. Damage Characteristics and Crack Patterns
3.3. Displacement Response
3.4. Strain Due to Impact Load
4. Conclusions
- (1)
- The peak impact force increased with the increase in reinforcement ratio. The impact force reached its peak value immediately after the impact, but the displacement, concrete strain and steel strain reached their peak value a few microseconds later. Therefore, the peak impact force cannot be directly considered the true impact resistance capacity.
- (2)
- The increase in slab thickness resulted in an increase in the peak inertia force, but it decreased the peak impact force. Moreover, the energy consumption ratio reached 91.5% in 6MR specimen, which been severely damaged.
- (3)
- All RCP specimens had similar crack patterns on the bottom surface, and the number of cracks decreased with the increase in the slab thickness. The reinforcement arrangement could affect the crack pattern; circumferential cracks on the top surface appeared in the 7M1R slab with 100 mm reinforced spacing, and similar cracks were not found in the 7MR slab with 150 mm reinforced spacing.
- (4)
- The reinforcement ratio played an important role in peak deflection and residual displacement. As the reinforcement ratio increased from 0.48% to 0.72%, the peak and residual displacements at D1 point decreased by 7.0% and 12.2%, respectively. The global flexural response could be observed in the RCP specimens. Microscopic punching shear failure modes were observed only in the 8MR and 7M1R specimens.
- (5)
- The 7MN specimen showed lower peak and residual displacement and higher peak impact force compared to the 7MR specimen, but no significant difference was observed between damage characteristics and crack patterns in the 7MR and 7MN specimens.
- (6)
- The influence of using RAC in RCP was relatively small, even at 100% RCA replacement ratio, and the impact of using RCA was diminished for RCP made with 100 mm longitudinal reinforcement spacing.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Loss on Ignition (%) | Initial Setting Time (min) | Final Setting Time (min) | Specific Surface Area (m2/kg) | Compressive Strength (Mpa) | Flexural Strength (Mpa) | ||
---|---|---|---|---|---|---|---|
7 Days | 28 Days | 7 Days | 28 Days | ||||
2.35 | 170 | 290 | 337 | 27.3 | 45.6 | 5.6 | 8.2 |
Type of Coarse Aggregate | Apparent Density (g/m3) | Clay Content (%) | Water Absorption (%) | Crushing Value Index (%) |
---|---|---|---|---|
NCA | 2644 | 0.6 | 0.9 | 8.2 |
RCA | 2567 | 1.2 | 3.4 | 14.5 |
Type of Concrete | Cement (kg/m3) | Fine Aggregate (kg/m3) | Coarse Aggregate(kg/m3) | Water (kg/m3) | Water-Cement Ratio | Sand Rate (%) |
---|---|---|---|---|---|---|
NAC | 18.57 | 22.10 | 46.96 | 7.80 | 0.42 | 32 |
RAC | 22.29 | 21.03 | 44.69 | 7.80 | 0.35 | 32 |
Type of Concrete | Compressive Strength, 28 Days | Split Tensile Strength, 28 Days | Flexural Strength, 28 Days | |||
---|---|---|---|---|---|---|
Mean (Mpa) | Standard Deviation | Mean (Mpa) | Standard Deviation | Mean (Mpa) | Standard Deviation | |
NAC | 46.80 | 1.694 | 3.55 | 0.141 | 5.64 | 0.303 |
RAC | 48.28 | 1.236 | 3.21 | 0.172 | 5.44 | 0.376 |
RCP Specimen | Thickness (mm) | Type of Concrete | Bar Spacing (mm) | Average Compressive Strength (Mpa) | Maturing Age |
---|---|---|---|---|---|
6MR | 60 | RAC | 150 | 48.67 | 1 year, 11 days |
7MR | 70 | RAC | 150 | 48.73 | 1 year, 8 days |
8MR | 80 | RAC | 150 | 47.78 | 1 year, 9 days |
7MN | 70 | NAC | 150 | 47.21 | 1 year, 11 days |
7M1R | 70 | RAC | 100 | 49.43 | 1 year, 11 days |
RCP Specimen | Fim,p (kN) | Fin,p (kN) | Ip (kN.s) | Vr (m/s) | Eim (J) | Eab (J) | Eab/Eim (%) |
---|---|---|---|---|---|---|---|
6MR | 206.1 | 85.9 | 1143.4 | 1.292 | 1960.0 | 1793.0 | 91.5 |
7MR | 175.9 | 110.7 | 1148.5 | 1.315 | 1960.0 | 1787.0 | 91.2 |
8MR | 150.9 | 116.1 | 1153.0 | 1.338 | 1960.0 | 1781.0 | 90.9 |
7MN | 200.2 | 105.1 | 1151.1 | 1.328 | 1960.0 | 1783.5 | 91.0 |
7M1R | 220.5 | 111.7 | 1198.5 | 1.565 | 1960.0 | 1715.0 | 87.5 |
RCP Specimen | Bottom Surface | Top Surface | ||||
---|---|---|---|---|---|---|
Crack Pattern | Num of Crack | Maximum Crack Widths | Crack Pattern | Num of Cack | Maximum Crack Widths | |
6MR | radial crack, diagonal crack | 21 | 1.60 | radial crack | 1 | 0.08 |
7MR | radial crack, diagonal crack | 9 | 1.80 | radial crack | 1 | 0.12 |
8MR | radial crack, diagonal crack | 7 | 1.80 | circumferential crack radial crack | 2 | 0.08 |
7MN | radial crack, diagonal crack | 8 | 1.46 | radial crack | 2 | 0.06 |
7M1R | radial crack, diagonal crack | 14 | 1.50 | circumferential crack radial crack | 2 | 0.04 |
RCP Specimen | D1 | D2 | ||||
---|---|---|---|---|---|---|
ωp1 | ωr1 | ωfr1 | ωp2 | ωr2 | ωfr2 | |
6MR | 15.87 | 7.46 | 9.24 | 9.80 | 5.04 | 6.83 |
7MR | 16.40 | 7.54 | 9.67 | 9.75 | 4.67 | 5.83 |
8MR | 17.10 | 8.47 | 10.42 | 11.61 | 5.91 | 7.89 |
7MN | 14.60 | 6.84 | 8.50 | 10.55 | 5.27 | 6.23 |
7M1R | 15.25 | 6.63 | 8.16 | 11.53 | 5.34 | 6.66 |
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Yuan, J.; Wu, J.; Su, T.; Lin, D. Dynamic Response of Reinforced Recycled Aggregate Concrete Pavement under Impact Loading. Appl. Sci. 2022, 12, 8804. https://doi.org/10.3390/app12178804
Yuan J, Wu J, Su T, Lin D. Dynamic Response of Reinforced Recycled Aggregate Concrete Pavement under Impact Loading. Applied Sciences. 2022; 12(17):8804. https://doi.org/10.3390/app12178804
Chicago/Turabian StyleYuan, Jifeng, Jin Wu, Tian Su, and Dadi Lin. 2022. "Dynamic Response of Reinforced Recycled Aggregate Concrete Pavement under Impact Loading" Applied Sciences 12, no. 17: 8804. https://doi.org/10.3390/app12178804
APA StyleYuan, J., Wu, J., Su, T., & Lin, D. (2022). Dynamic Response of Reinforced Recycled Aggregate Concrete Pavement under Impact Loading. Applied Sciences, 12(17), 8804. https://doi.org/10.3390/app12178804