Laboratory Experimental Laws for the Radon Exhalation of Similar Uranium Samples with Low-Frequency Vibrations
Abstract
:1. Introduction
2. Theory and Materials
2.1. The Radon Exhalation
2.2. The Porosity and the Damage Degree
2.3. Similar Samples
2.4. Trial Procedures
- (1)
- Check the tightness of the device and commission the system.
- (2)
- The temperature of the radon-collecting space is heated to 30 °C by starting the module. The space is purified for 30 min by turning on the purge function of RAD 7. According to the test plan, the wrapped single-sided exposed or double-sided exposed sample is installed on the fixed device and put into the radon exhalation tank.
- (3)
- The vibration frequency of the exciter is set according to the plan. Every test group is set for 200 pieces of data, of which each piece of data is obtained after 5 min by starting the RAD 7 to record. At the end of the experiment, the samples were taken out and the ambient temperature, humidity and atmospheric pressure were measured in real time, and the corresponding test data were recorded at the same time.
- (4)
- The change of the exciting force is monitored by using the piezoelectric sensors. First, the test sample is divided into four detection areas using the fluorescence pen, then the two sensors of the non-metallic ultrasonic testing device are pressed onto the two sides of the sample respectively by using a special adhesive, each test time is 30 s, and the data are recorded after the test. The damage degree of the rock is tested and calculated after the test by using a non-metallic ultrasonic testing device.
3. Results
3.1. Similar Samples
3.2. Radon Concentration and Time
4. Analysis and Discussion
4.1. Radon Exhalation and Frequency
4.2. Damage Degree and Porosity
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Mining Operation Factor | Medium-Length Hole Blasting | Shallow Hole Blasting | Seismic Wavelet | Drilling Jumbo | Shovel Car | ||
---|---|---|---|---|---|---|---|
Wenchuan Quake Wave | Darui Synthetic Wave | Kobe Seismic | |||||
Vibration frequency (Hz) | 10~60 | 9~48 | 5~27 | 4~12 | 1~25 | 10~50 | 50 |
Test Plan | Water Cement Ratio | Sand-Binder Ratio | Micro Silicon Powder | Iron Powder |
---|---|---|---|---|
Sample 1 | 0.28 | 1.00 | 0.09 | 0.20 |
Sample 2 | 0.28 | 1.20 | 0.12 | 0.25 |
Sample 3 | 0.30 | 1.20 | 0.06 | 0.20 |
Test Plan | Compressive Strength/MPa | Tensile Strength (MPa) | Particle Density/(g·cm−3) | Cohesion (MPa) | Internal Friction Angle (°) | Dry Density/(g·cm−3) | Radium Content (Bq·g−1) | Percentage of Uranium Mass (%) |
---|---|---|---|---|---|---|---|---|
Sample 1 | 62.9 | 3.67 | 2.42 | 16.03 | 51.36 | 2.301 | 1.57 | 0.0071 |
Sample 2 | 71.2 | 4.12 | 2.49 | 15.91 | 50.44 | 2.365 | 1.72 | 0.0068 |
Sample 3 | 53.4 | 3.53 | 2.46 | 14.55 | 54.21 | 2.290 | 1.78 | 0.0085 |
The original sample of granite | 206.86 | 13.23 | 2.62 | 49.52 | 48.60 | 2.415 | 0.073 | 0.03 |
Test Plan | Cp | CRc | CPt | CC | Cσ |
---|---|---|---|---|---|
Sample 1 | 1.09 | 4.93 | 4.45 | 3.30 | 1.16 |
Sample 2 | 1.11 | 3.17 | 4.50 | 3.55 | 0.94 |
Sample 3 | 1.08 | 4.07 | 3.93 | 3.57 | 0.94 |
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Cai, Z.-q.; Li, X.-y.; Lei, B.; Yuan, J.-f.; Hong, C.-s.; Wang, H. Laboratory Experimental Laws for the Radon Exhalation of Similar Uranium Samples with Low-Frequency Vibrations. Sustainability 2018, 10, 2937. https://doi.org/10.3390/su10082937
Cai Z-q, Li X-y, Lei B, Yuan J-f, Hong C-s, Wang H. Laboratory Experimental Laws for the Radon Exhalation of Similar Uranium Samples with Low-Frequency Vibrations. Sustainability. 2018; 10(8):2937. https://doi.org/10.3390/su10082937
Chicago/Turabian StyleCai, Zi-qi, Xiang-yang Li, Bo Lei, Jing-fan Yuan, Chang-shou Hong, and Hong Wang. 2018. "Laboratory Experimental Laws for the Radon Exhalation of Similar Uranium Samples with Low-Frequency Vibrations" Sustainability 10, no. 8: 2937. https://doi.org/10.3390/su10082937
APA StyleCai, Z. -q., Li, X. -y., Lei, B., Yuan, J. -f., Hong, C. -s., & Wang, H. (2018). Laboratory Experimental Laws for the Radon Exhalation of Similar Uranium Samples with Low-Frequency Vibrations. Sustainability, 10(8), 2937. https://doi.org/10.3390/su10082937