Synthesis and Evaluation of Engineering Properties of Polymer-Coated Glass Beads
Abstract
:1. Introduction
2. Experimental Program
2.1. Testing Materials
2.2. Synthesis of Polyurethane-Coated Glass Bead (PUGB)
2.3. Sample Preparation and Experimental Procedure
3. Experimental Results
3.1. Analysis of Chemical Structure
3.2. Microstructure Observation
3.3. Variation of Extreme Void Ratios
3.4. Vertical Compressibility at Zero-Lateral Strain
3.5. Shear Wave Velocity Vs
4. Discussion
4.1. Relationship between α and β
4.2. Variation and Transition Behavior of M and Gmax with CPU
4.3. Potential Use of Surface-Modified Materials as Geotechnical Materials
5. Conclusions
- (1)
- Polymer coating on the GB surface reduced the surface roughness, increasing the contact area of the particles as the CPU increased. The intrinsic adhesion of the polymer increased the maximum void ratio of PUGB-GB mixtures. However, the minimum void ratios of the mixtures showed negligible changes with CPU because the adhesion could not withstand the stress applied during the vibration table test.
- (2)
- Lower constrained modulus (M) was observed for the PUGB-GB mixture with higher CPU as the vertical deformation increased due to an increase in the initial void ratio of the mixture and a decrease in surface roughness.
- (3)
- The shear wave velocity (Vs) of the mixtures decreased with CPU because coated polymer reduced the contact stiffness between particles.
- (4)
- The critical CPU, at which the PUGB particles start to become involved in the load-carrying skeleton of the mixture, was found to be ~2%. This finding was also confirmed by the A-factor and B-exponent values, which describe the measured state of the maximum shear modulus (Gmax), which are also found to vary significantly at CPU = ~2%.
- (5)
- The stress- and strain- dependent behavior of the PUGB-GB mixture is demonstrated by comparing the evolution of modulus, where the trends of M exhibit changes at certain average stress, while variation trends of Gmax remain constant over the ranges of applied stress.
- (6)
- Comparing the behavior of PUGB-GB mixtures and the rubber-sand mixtures, it can be seen that the introduction of PUGB particles leads to a smaller M reduction with a similar Gmax of the mixture compared to rubber.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Material | Glass Bead (GB) | Device/Technique | |
---|---|---|---|
Specific gravity, GS | 2.48 | Pycnometer (ASTM D845) | |
Median particle size D50 [mm] | 0.51 | Sieve (ASTM D6913) | |
Coefficient of uniformity, Cu | 1.22 | - | |
Coefficient of curvature, Cc | 0.97 | - | |
Extreme void ratio | Minimum void ratio, emin | 0.55 | Vibratory Table (ASTM D4253) |
Maximum void ratio, emax | 0.69 | Funnel (ASTM D4254) |
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Yoon, B.; Choo, H.; Lee, C. Synthesis and Evaluation of Engineering Properties of Polymer-Coated Glass Beads. Materials 2023, 16, 4476. https://doi.org/10.3390/ma16124476
Yoon B, Choo H, Lee C. Synthesis and Evaluation of Engineering Properties of Polymer-Coated Glass Beads. Materials. 2023; 16(12):4476. https://doi.org/10.3390/ma16124476
Chicago/Turabian StyleYoon, Boyoung, Hyunwook Choo, and Changho Lee. 2023. "Synthesis and Evaluation of Engineering Properties of Polymer-Coated Glass Beads" Materials 16, no. 12: 4476. https://doi.org/10.3390/ma16124476
APA StyleYoon, B., Choo, H., & Lee, C. (2023). Synthesis and Evaluation of Engineering Properties of Polymer-Coated Glass Beads. Materials, 16(12), 4476. https://doi.org/10.3390/ma16124476