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Summary Snow has been studied widely in hydrology for many decades whereas recent meteorological interest in snow is caused by increased
emphasis on high latitudes and wintertime in climate-change research as well as by the need to improve weather-forecast models
during these conditions. Ground-based measurements of snow properties are needed both to improve understanding of surface-atmosphere
exchange processes and to provide ground truth to new remote-sensing algorithms. This justifies a review of techniques to
measure snow in combination with establishment of criteria for the suitability of the methods for process studies. This review
assesses the state-of-art in ground-based snow-measurement techniques in the end of the 1990s in view of their accuracy, time
resolution, possibility to automate, practicality and suitability in different terrain. Methods for snow-pack water equivalent,
depth, density, growth, quality, liquid-water content and water leaving the snow pack are reviewed. Synoptic snow measurements
in Fennoscandian countries are widely varying and there is no single standard on which process-related studies can build.
A long-term, continuous monitoring of mass and energy properties of a snow cover requires a combination of point-measurement
techniques. Areally representative values of snow properties can be achieved through a combination of automatically collected
point data with repeated manual, areally covering measurements, remote-sensing data and digital elevation models, preferably
in a GIS framework.
Received August 27, 1999 相似文献
148.
R. A. Treidl 《Boundary-Layer Meteorology》1970,1(2):155-168
When relatively warm, moist air moves over a snow surface, sensible heat and moisture are extracted from its lower layers and used to melt the snow. The depth of the cooled layer depends on horizontal wind speeds and the presence of high vertical wind shear. The mechanism for air mass modification appears to be turbulent mixing. 相似文献
149.
A 2D finite volume model for bebris flow and its application to events occurred in the Eastern Pyrenees 总被引:1,自引:0,他引:1
V.MEDINA A.BATEMAN M.HüRLIMANN Ph.D student Sediment Transport Research Group Department of Engineering Hydraulic Marine Environmental Engineering Technical University of Catalonia 《国际泥沙研究》2008,23(4):348-360
FLATModel is a 2D finite volume code that contains several original approaches to improve debris-flow simulation. Firstly, FLATModel incorporates a "stop-and-go" technique in each cell to allow continuous collapses and remobilizations of the debris-flow mass. Secondly, flow velocity and consequently yield stress is directly associated with the type of rheology to improve boundary accuracy. Thirdly, a simple approach for entrainment is also included in the model to analyse the effect of basal erosion of debris flows. FLATMODEL was tested at several events that occurred in the Eastern Pyrenees and simulation results indicated that the model can represent rather well the different characteristics observed in the field. 相似文献
150.
Diurnal variation of deep cloud systems over the Indian region using INSAT-1B pixel data 总被引:1,自引:0,他引:1
Summary
Among the various time scales of deep clouds, diurnal variation is found to be prominent over the tropics. The present study
examines the diurnal variation in the number and area cover associated with the cloud systems over the tropical Indian region
using INSAT-1B pixel data. Three periods, namely, April–May 1988, July–August 1988, and January–February 1989 are considered.
The dependence of diurnal characteristics on the temperature threshold, life duration and size of cloud systems, and land-sea
contrast has been explored. The diurnal characteristics of cloud systems living for more than a day have been studied for
the first time. It is shown that cloud systems exhibit strong diurnal dependence at the coldest temperature threshold used
(201 K). Also, the diurnal variation is more for larger cloud systems and for longer living systems. In general, more deep
cloud activity is found from the satellite data during the pre-dawn and early morning hours. Precipitation is enhanced during
morning to early noon hours. Further, using data from a recent field experiment, clear evidence of diurnal variation in precipitation
over the Bay of Bengal is also presented.
Received March 20, 2000/Revised October 3, 2000 相似文献