A Novel Study of Waveguide Propagation Rules of Coal Rock AE Signal: Effects of Waveguide Size and Installation Method on the Propagation Rules of Coal Rock AE Signal
Abstract
:1. Introduction
2. Theoretical Basis of AE Propagation of 1D Elastic Waveguide
3. Numerical Simulations on the Effects of the Waveguide’s Size on AE Signal’s Propagation
3.1. Establishment of Numerical Model and the Setting of Mechanical Parameters
3.2. Analysis of the Results Using the First Simulation Scheme
3.3. Analysis of the Results Using the Second Simulation Scheme
4. Laboratory Tests on the Effects of the Waveguide’s Size on AE Signal’s Propagation
4.1. Test Scheme and Parameter Settings
4.2. Test Results and Analysis
5. Effects of the Waveguide’s Installation Method on AE Proportion Rules
6. Conclusions
- (1)
- This study firstly established the theory model of 1D elastic waveguide based on wave mechanics and then made some relevant assumptions. According to numerical simulation results, this elastic theory model is applicable to waveguides with a length smaller than 5 m and a diameter smaller than 40 mm.
- (2)
- According to numerical simulation and laboratory test results, the waveguide’s diameter imposed only a slight effect on the acceleration amplitude and the AE event number at the waveguide’s receiving end within a range of 5~40 mm.
- (3)
- According to numerical simulation and laboratory test results, the waveguide’s length imposed only a slight effect on the acceleration amplitude and the AE event number at the waveguide’s receiving end within a range of 0.5~5 m.
- (4)
- AE signal receiving effects through waveguide installation method are close to that of the hole-bottom installation, based on the AE signal temporal spectrum amplitude and AE event numbers. Therefore, the waveguide installation method can completely replace the hole-bottom installation method.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Material | Elastic Modulus (E/Gpa) | Poisson’s Ratio | Density (kg/m3) |
---|---|---|---|
Coal rock | 10 | 0.25 | 2500 |
Waveguide | 200 | 0.2 | 7800 |
Diameter of Waveguide (mm) | A | B | C | D | E |
---|---|---|---|---|---|
5 | 1.1231 | 0.7702 | 0.1577 | 0.1277 | 0.1122 |
10 | 0.4308 | 0.2392 | 0.1528 | 0.1202 | 0.1121 |
20 | 0.2507 | 0.1466 | 0.1402 | 0.1428 | 0.1310 |
40 | 0.1855 | 0.1425 | 0.1577 | 0.1147 | 0.1113 |
Maximum of the Absolute Value of the Acceleration Amplitude (m/s2) | |||||||
---|---|---|---|---|---|---|---|
Length of Waveguide (m) | A | B | C | D | E | F | G |
0.5 | 1.0062 | 0.65696 | 0.48468 | 0.18361 | |||
1 | 0.81294 | 0.51426 | 0.3777 | 0.20348 | 0.12437 | ||
3 | 0.76692 | 0.48412 | 0.35048 | 0.17887 | 0.098559 | 0.081358 | |
5 | 0.76563 | 0.48509 | 0.35005 | 0.17825 | 0.092124 | 0.069585 | 0.057397 |
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Dong, G.; Zou, Y. A Novel Study of Waveguide Propagation Rules of Coal Rock AE Signal: Effects of Waveguide Size and Installation Method on the Propagation Rules of Coal Rock AE Signal. Sustainability 2017, 9, 1209. https://doi.org/10.3390/su9071209
Dong G, Zou Y. A Novel Study of Waveguide Propagation Rules of Coal Rock AE Signal: Effects of Waveguide Size and Installation Method on the Propagation Rules of Coal Rock AE Signal. Sustainability. 2017; 9(7):1209. https://doi.org/10.3390/su9071209
Chicago/Turabian StyleDong, Guowei, and Yinhui Zou. 2017. "A Novel Study of Waveguide Propagation Rules of Coal Rock AE Signal: Effects of Waveguide Size and Installation Method on the Propagation Rules of Coal Rock AE Signal" Sustainability 9, no. 7: 1209. https://doi.org/10.3390/su9071209
APA StyleDong, G., & Zou, Y. (2017). A Novel Study of Waveguide Propagation Rules of Coal Rock AE Signal: Effects of Waveguide Size and Installation Method on the Propagation Rules of Coal Rock AE Signal. Sustainability, 9(7), 1209. https://doi.org/10.3390/su9071209