Systems and Sensors for Debris-flow Monitoring and Warning
Abstract
:1. Introduction
2. Debris-flow monitoring devices
3. Debris-flow warning devices
3.1. Advance warning systems
3.2 Event warning systems
4. Conclusions
Acknowledgments
References
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Parameter | Sensor employed for the measurement |
---|---|
Peak flow depth | Direct post-event observation through theodolite or GPS, wire sensors, photocells, ultrasonic sensors |
Flow depth as function of time | Ultrasonic sensors, radar sensors |
Ground vibration | Seismometer or geophones (velocimeters, accelerometers) |
Underground sound | Microphones |
Mean flow velocity | Ultrasonic sensors, geophones |
Surface velocity | Electromagnetic doppler speedometers, video recordings, speed sensors based on spatial filtering velocimetry |
Basal forces (normal and shear stress) | Load cells |
Fluid pore pressure | Pressure sensors |
Impact force | Pressure mark gauges, piezoelectric sensors |
Sensors | Operation | Advantages | Limitations |
---|---|---|---|
Ultrasonic, radar and laser sensors. | Measurement of the flow stage. | Easy to set warning thresholds. | Ultrasonic sensors have to be hung over the channel; installation can prove difficult if the channel banks are unstable. |
Geophones and seismometers. | Measurement of ground vibrations caused by debris flow. | Easy and safe installation (the sensors are buried in safe places on stream banks). | Setting warning thresholds can be quite complicated. Risk of false alarms due to other sources of ground vibration (passage of trains or trucks, rockfalls, etc.). The need to filter the signal may increase system complexity. |
Pendulums. | Detection of the debris-flow from the tilting of the pendulum. | Simple and robust device. | The pendulum must be hung over the channel; installation can prove difficult if the channel banks are unstable. |
Wire sensors. | Detection of the debris-flow from wire breaking. | Simple and robust device. | Need for restoration after activation. Risk of false alarms due to accidental circumstances (passage of animals, falling trees, etc.). |
Photocells (infrared photobeams, etc.). | Detection of debris-flow passage. | Non-contact detectors: do not need restoration after activation. | A careful installation is needed to avoid having the sensors come into contact with the flow. |
CCD camera for machine-vision detection. | Recognition of debris flows. | Safe installation (the camera can be placed beside the channel). | The presence of fog or the occurrence of debris flow at night may complicate the use of the system and its workability. |
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Arattano, M.; Marchi, L. Systems and Sensors for Debris-flow Monitoring and Warning. Sensors 2008, 8, 2436-2452. https://doi.org/10.3390/s8042436
Arattano M, Marchi L. Systems and Sensors for Debris-flow Monitoring and Warning. Sensors. 2008; 8(4):2436-2452. https://doi.org/10.3390/s8042436
Chicago/Turabian StyleArattano, Massimo, and Lorenzo Marchi. 2008. "Systems and Sensors for Debris-flow Monitoring and Warning" Sensors 8, no. 4: 2436-2452. https://doi.org/10.3390/s8042436
APA StyleArattano, M., & Marchi, L. (2008). Systems and Sensors for Debris-flow Monitoring and Warning. Sensors, 8(4), 2436-2452. https://doi.org/10.3390/s8042436