Snow drift: acoustic sensors for avalanche warning and research

被引:23
作者
Lehning, M. [1 ]
Naaim, F. [2 ]
Naaim, M. [2 ]
Brabec, B. [1 ]
Doorschot, J. [1 ]
Durand, Y. [3 ]
Guyomarc'h, G. [3 ]
Michaux, J. -L. [2 ]
Zimmerli, M. [1 ]
机构
[1] Swiss Fed Inst Snow & Avalanche Res SLF, CH-7260 Davos, Switzerland
[2] CEMAGREF ETNA, F-38402 St Martin Dheres, France
[3] METEO FRANCE, Ctr Etud Neige, F-38406 St Martin Dheres, France
基金
瑞士国家科学基金会;
关键词
D O I
10.5194/nhess-2-121-2002
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Based on wind tunnel measurements at the CSTB (Jules Verne) facility in Nantes and based on field observations at the SLF experimental site Versuchsfeld Weissfluhjoch, two acoustic wind drift sensors are evaluated against different mechanical snow traps and one optical snow particle counter. The focus of the work is the suitability of the acoustic sensors for applications such as avalanche warning and research. Although the acoustic sensors have not yet reached the accuracy required for typical research applications, they can, however, be useful for snow drift monitoring to help avalanche forecasters. The main problem of the acoustic sensors is a difficult calibration that has to take into account the variable snow properties. Further difficulties arise from snow fall and high wind speeds. However, the sensor is robust and can be operated remotely under harsh conditions. It is emphasized that due to the lack of an accurate reference method for snow drift measurements, all sensors play a role in improving and evaluating snow drift models. Finally, current operational snow drift models and snow drift sensors are compared with respect to their usefulness as an aid for avalanche warning. While drift sensors always make a point measurement, the models are able to give a more representative drift index that is valid for a larger area. Therefore, models have the potential to replace difficult observations such as snow drift in operational applications.
引用
收藏
页码:121 / 128
页数:8
相关论文
共 14 条
[1]   A BLOWING SNOW PARTICLE DETECTOR [J].
BROWN, T ;
POMEROY, JW .
COLD REGIONS SCIENCE AND TECHNOLOGY, 1989, 16 (02) :167-174
[2]  
Budd WF., 1966, Antarct Res Ser, V9, P71, DOI DOI 10.1029/AR009P0071
[3]   FlowCapt: a new acoustic sensor to measure snowdrift and wind velocity for avalanche forecasting [J].
Chritin, V ;
Bolognesi, R ;
Gubler, H .
COLD REGIONS SCIENCE AND TECHNOLOGY, 1999, 30 (1-3) :125-133
[4]   Measurements and one-dimensional model calculations of snow transport over a mountain ridge [J].
Doorschot, J ;
Raderschall, N ;
Lehning, M .
ANNALS OF GLACIOLOGY, VOL 32, 2001, 2001, 32 :153-158
[5]  
Doorschot J., 2002, BOUND LAYER IN PRESS
[6]   Drifting-snow acoustic detector: experimental tests in La Molina, Spanish Pyrenees [J].
Font, D ;
Naaim-Bouvet, F ;
Roussel, M .
ANNALS OF GLACIOLOGY, VOL 26, 1998, 1998, 26 :221-224
[7]  
Gandemer J., 1992, J WIND IND AERODYN, P43
[8]   Acoustic snowdrift measurements: experiences from the FlowCapt instrument [J].
Jaedicke, C .
COLD REGIONS SCIENCE AND TECHNOLOGY, 2001, 32 (01) :71-81
[9]   A snowdrift index based on SNOWPACK model calculations [J].
Lehning, M ;
Doorschot, J ;
Bartelt, P .
ANNALS OF GLACIOLOGY, VOL 31, 2000, 2000, 31 :382-386
[10]  
Lehning M, 2000, SNOW ENGINEERING: RECENT ADVANCES AND DEVELOPMENTS, P113