Characterizing and Predicting the Resilient Modulus of Recycled Aggregates from Building Demolition Waste with Breakage-Induced Gradation Variation
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials Tested
2.2. Gradations Designed
2.3. Description of Laboratory Testing Program
2.3.1. Compaction Tests
2.3.2. Monotonic Triaxial Compression Tests
2.3.3. Repeated Load Triaxial Tests
3. Testing Results and Analysis
3.1. Laboratory Compaction Results
3.2. Shear Strength Properties
3.3. Resilient Modulus Properties
3.3.1. Hysteresis Curves of Deviator Stress versus Axial Strain
3.3.2. Effects of the Stress State on the Resilient Modulus
3.3.3. Effect of Gradation on the Resilient Modulus
4. Development of the Resilient Modulus Prediction Model
4.1. Evaluation of Existing Prediction Models of the Resilient Modulus
4.2. Development of New Improved Prediction Model
5. Discussions
6. Summary and Conclusions
- The results of particle morphology analysis showed that there appeared to be no significant differences in the particle morphology among different particle size groups of the same type of recycled BDW aggregates. Therefore, the effect of particle shape on the test results was excluded in this study by controlling the particle shape index to remain relatively similar or close to each other.
- The testing results of laboratory monotonic triaxial compression tests conducted under consolidated drained conditions on recycled BDW aggregates indicated that, as the relative content of fine particles increased, the apparent cohesion and internal friction angle showed a non-linear increase and decrease, respectively. This indicates that particle breakage and degradation weakened the inter-particle frictional interactions among recycled BDW aggregates, resulting in a reduction in the overall shear strength.
- The results from the laboratory RLT tests revealed that the resilient modulus of recycled BDW aggregates gradually increased with the decreasing relative content of fine particles or equivalently decreasing particle breakage and degradation) at the same stress level.
- Both the deviatoric stress and confining pressure exerted great influences on the Mr of recycled BDW aggregates, while a greater influence was exerted by the confining pressure when compared to the deviatoric stress.
- Based on the laboratory testing data, an improved resilient modulus prediction model that takes into account particle-breakage-induced gradation variation and stress states was proposed, and its better prediction accuracy was statistically confirmed.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Size | Gravel | Mortar | Brick | Others (Tiles, Wood, etc.) |
---|---|---|---|---|
5–10 mm | 62.87 | 27.82 | 7.58 | 1.73 |
10–20 mm | 68.49 | 25.75 | 3.88 | 1.88 |
20–40 mm | 69.87 | 23.56 | 4.34 | 2.23 |
Crushing Value/% | Water Absorption/% | Specific Gravity | |||
---|---|---|---|---|---|
23.7~29.6 | 13.5~17.8 | 10.2~11.8 | 18.5~24.5 | 6.9~9.2 | 2.53~2.69 |
Test Method | Specimen Height (cm) | Specimen Volume (cm3) | Sub-Layers | Blows Per Sub-Layer | Maximum Particle Size (mm) |
---|---|---|---|---|---|
Heavy Ⅱ-2 | 12 | 2177 | 3 | 98 | 40 |
SequenceNo. | Confining Pressure, σ3/kPa | Contact Stress, σc/kPa | Deviator Stress, σd/kPa | Axial Stress, σmax/kPa | No. of Load Applications |
---|---|---|---|---|---|
0 | 103.4 | 10.3 | 93.1 | 103.4 | 1000 |
1 | 20.7 | 2.1 | 18.6 | 20.7 | 100 |
2 | 20.7 | 4.1 | 37.3 | 41.4 | 100 |
3 | 20.7 | 6.2 | 55.9 | 62.1 | 100 |
4 | 34.5 | 3.5 | 31 | 34.5 | 100 |
5 | 34.5 | 6.9 | 62 | 68.9 | 100 |
6 | 34.5 | 10.3 | 93.1 | 103.4 | 100 |
7 | 68.9 | 6.9 | 62 | 68.9 | 100 |
8 | 68.9 | 13.8 | 124.1 | 137.9 | 100 |
9 | 68.9 | 20.7 | 186.1 | 206.8 | 100 |
10 | 103.4 | 6.9 | 62 | 68.9 | 100 |
11 | 103.4 | 10.3 | 93.1 | 103.4 | 100 |
12 | 103.4 | 20.7 | 186.1 | 206.8 | 100 |
13 | 137.9 | 10.3 | 93.1 | 103.4 | 100 |
14 | 137.9 | 13.8 | 124.1 | 137.9 | 100 |
15 | 137.9 | 27.6 | 248.2 | 275.8 | 100 |
Gradation Parameter G/S | Maximum Dry Density (g·cm−3) | Optimum Moisture Content (%) | Apparent Cohesion c’ (kPa) | Internal Friction Angle φ’ (°) |
---|---|---|---|---|
2.5 | 1.929 | 8.98 | 35.3 | 54.3 |
2.0 | 1.977 | 9.02 | 43.9 | 49.8 |
1.8 | 1.981 | 9.19 | 46.8 | 48.2 |
1.6 | 1.978 | 9.03 | 51.7 | 46.4 |
1.0 | 1.968 | 9.21 | 57.7 | 30.2 |
Model No. | Model Equations | Authors |
---|---|---|
No. 1 | Monismith [38] | |
No. 2 | Moossazadeh and Witczak [39] | |
No. 3 | Seed [40] | |
No. 4 | Pezo [41] | |
No. 5 | Uzan [42] | |
No. 6 | AASHTO 2004 [36] |
G/S Value | k1 | k2 | k3 | adj. R2 | RMSE |
---|---|---|---|---|---|
1.0 | 11.946 | 0.544 | 0.119 | 0.996 | 5.078 |
1.6 | 11.076 | 0.559 | 0.128 | 0.996 | 5.559 |
1.8 | 12.265 | 0.550 | 0.127 | 0.998 | 4.654 |
2.0 | 12.638 | 0.564 | 0.112 | 0.993 | 8.349 |
2.5 | 14.567 | 0.550 | 0.114 | 0.995 | 6.943 |
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Xiao, Y.; Kong, K.; Aminu, U.F.; Li, Z.; Li, Q.; Zhu, H.; Cai, D. Characterizing and Predicting the Resilient Modulus of Recycled Aggregates from Building Demolition Waste with Breakage-Induced Gradation Variation. Materials 2022, 15, 2670. https://doi.org/10.3390/ma15072670
Xiao Y, Kong K, Aminu UF, Li Z, Li Q, Zhu H, Cai D. Characterizing and Predicting the Resilient Modulus of Recycled Aggregates from Building Demolition Waste with Breakage-Induced Gradation Variation. Materials. 2022; 15(7):2670. https://doi.org/10.3390/ma15072670
Chicago/Turabian StyleXiao, Yuanjie, Kunfeng Kong, Umar Faruk Aminu, Zhiyong Li, Qiang Li, Hongwei Zhu, and Degou Cai. 2022. "Characterizing and Predicting the Resilient Modulus of Recycled Aggregates from Building Demolition Waste with Breakage-Induced Gradation Variation" Materials 15, no. 7: 2670. https://doi.org/10.3390/ma15072670
APA StyleXiao, Y., Kong, K., Aminu, U. F., Li, Z., Li, Q., Zhu, H., & Cai, D. (2022). Characterizing and Predicting the Resilient Modulus of Recycled Aggregates from Building Demolition Waste with Breakage-Induced Gradation Variation. Materials, 15(7), 2670. https://doi.org/10.3390/ma15072670