DocumentCode :
21313
Title :
Simulation and Validation of the InfraSnow: An Instrument to Measure Snow Optically Equivalent Grain Size
Author :
Gergely, M. ; Wolfsperger, Fabian ; Schneebeli, Marc
Author_Institution :
WSL Inst. for Snow & Avalanche Res. (SLF), Davos, Switzerland
Volume :
52
Issue :
7
fYear :
2014
fDate :
Jul-14
Firstpage :
4236
Lastpage :
4247
Abstract :
Quantifying snow grain size is crucial to analyze radiative transfer and mechanical interactions in the snow cover. We present a nondestructive method for fast measurements of snow optically equivalent diameter (OED). The method consists of diffuse near-infrared reflectance measurements by a compact integrating sphere setup to derive OED. This principle is realized in the handheld InfraSnow instrument. The correlation between snow OED and reflectance is calculated by applying Monte Carlo ray tracing to a 3-D implementation of the measurement geometry. Including the geometrical boundary conditions is essential to obtain a good agreement between modeled and measured InfraSnow reflectance values. In addition to InfraSnow reflectance, snow density is required as second input parameter to the OED analysis. Our InfraSnow OED measurements agree with reference OED measurements by micro computed tomography (micro-CT) within 25% for seven of the ten tested snow blocks. Furthermore, the relative differences between both measurement methods are close to the estimated uncertainties of the InfraSnow methodology. If density is measured by micro-CT and then used as InfraSnow model input to derive OED, an average agreement with the reference micro-CT OED values within 13% is found. If density is measured by a permittivity sensor, the average agreement is within 20%.
Keywords :
hydrological equipment; hydrological techniques; snow; InfraSnow OED measurements; InfraSnow instrument simulation; InfraSnow instrument validation; InfraSnow methodology; InfraSnow reflectance values; Monte Carlo ray tracing; diffuse near-infrared reflectance measurements; geometrical boundary conditions; handheld InfraSnow instrument; measurement geometry; mechanical interactions; nondestructive method; radiative transfer; snow cover; snow optically equivalent diameter; snow optically equivalent grain size; Instruments; Materials; Optical variables measurement; Snow; Standards; Temperature measurement; Uncertainty; Diffuse reflectance; X-ray tomography; integrating sphere; radiative transfer; ray tracing; snow density; snow grain size; snow variability;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2013.2280502
Filename :
6606890
Link To Document :
بازگشت