A New Approach to Estimating the Path Loss in Underground Wireless Sensor Networks
Abstract
:1. Introduction
2. RF Signals in Soil
2.1. Dielectric Properties of Soil
2.2. Propagation Models
3. TDR and Field Trials
3.1. Proposed Path Loss Estimation Method
3.2. Trial Setup
4. Results and Discussion
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
RF | Radio Frequency |
TDR | Time Domain Reflectometry |
BEC | Bulk Electrical Conductivity |
PSD | Particle Size Distribution |
EM | Electromagnetic |
GPR | Ground Penetrating Radar |
WSN | Wireless Sensor Networks |
WUSN | Wireless Underground Sensor Networks |
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Location | Classification * | GWC | ε’ (TDR)/ε’ (Peplinski) | ε’’ (TDR)/ε’’ (Peplinski) | σDC (mS/m) |
---|---|---|---|---|---|
A | Gravelly SAND | 12.97% | 6.53/7.14 | 1.88/1.31 | 2.32 |
B | Gravelly SAND | 17.02% | 10.21/11.78 | 1.42/1.96 | 3.74 |
C | Clayey Silt | 41.72% | 27.42/28.66 | 5.93/6.74 | 61.23 |
Location | RMSE | ||
---|---|---|---|
CRIM-Fresnel | Modified-Friis (Conventional) | New Modified-Friis | |
A | 13.59 | 3.06 | 2.85 |
B | 12.31 | 7.00 | 4.19 |
C | 11.58 | 1.47 | 1.36 |
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Sadeghioon, A.M.; Chapman, D.N.; Metje, N.; Anthony, C.J. A New Approach to Estimating the Path Loss in Underground Wireless Sensor Networks. J. Sens. Actuator Netw. 2017, 6, 18. https://doi.org/10.3390/jsan6030018
Sadeghioon AM, Chapman DN, Metje N, Anthony CJ. A New Approach to Estimating the Path Loss in Underground Wireless Sensor Networks. Journal of Sensor and Actuator Networks. 2017; 6(3):18. https://doi.org/10.3390/jsan6030018
Chicago/Turabian StyleSadeghioon, Ali M., David N. Chapman, Nicole Metje, and Carl J. Anthony. 2017. "A New Approach to Estimating the Path Loss in Underground Wireless Sensor Networks" Journal of Sensor and Actuator Networks 6, no. 3: 18. https://doi.org/10.3390/jsan6030018