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Backwasting rate on debris-covered Koxkar glacier, Tuomuer mountain, China

Published online by Cambridge University Press:  08 September 2017

Haidong Han
Affiliation:
State Key Laboratory of Cryospheric Sciences, Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, 320 Donggang West Road, Lanzhou 730000, China E-mail: hhd@lzb.ac.cn
Jian Wang
Affiliation:
State Key Laboratory of Cryospheric Sciences, Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, 320 Donggang West Road, Lanzhou 730000, China E-mail: hhd@lzb.ac.cn
Junfeng Wei
Affiliation:
State Key Laboratory of Cryospheric Sciences, Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, 320 Donggang West Road, Lanzhou 730000, China E-mail: hhd@lzb.ac.cn
Shiyin Liu
Affiliation:
State Key Laboratory of Cryospheric Sciences, Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, 320 Donggang West Road, Lanzhou 730000, China E-mail: hhd@lzb.ac.cn
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Abstract

A physically based energy-balance model with improved parameterization of solar radiation for a sloped ice surface has been developed to estimate the backwasting rate of an ice cliff in a debris-covered area. The model has been tested against observations between 5 August and 5 September 2008 on 38 ice cliffs in the debris-covered area of Koxkar glacier, Tuomuer mountain, China. We calculated that the energy-balance model gave a good estimate of the backwasting rates, with errors in the range ±1.96 cm d−1 and root-mean-square errors of 0.99 cm d−1. Errors arising from setting of surface albedo and turbulent flux parameterization were limited. We found that shortwave radiation is the most important heat source for ice-cliff ablation, contributing about 76% of the total heat available for ice melt, while the sensible heat flux provides nearly 24% of the total heat for ice-cliff wastage. The latent heat flux and net longwave radiation are comparatively small according to the model calculation. The mean backwasting rate of ice cliffs in the debris-covered area of Koxkar glacier is estimated at 7.64 m a−1 when the winter ablation is neglected. With this annual backwasting rate and given a mean slope angle of 46.4°, the backwasting of ice cliffs produces about 1.60 × 106 m3 of meltwater, accounting for about 7.3% of the total melt runoff from the debris-covered area.

Information

Type
Research Article
Copyright
Copyright © International Glaciological Society 2010
Figure 0

Fig. 1. Location of Koxkar glacier, Tuomuer mountain, China.

Figure 1

Fig. 2. Distribution of ice cliffs and supraglacial ponds/lakes in the debris-covered area on Koxkar glacier, mapped from a panchromatic SPOT image of 27 April 2006.

Figure 2

Fig. 3. Schematic diagram of the measurements of ice-cliff backwasting.

Figure 3

Table 1. AWS meteorological sensors

Figure 4

Table 2. Statistics of meteorological variables measured by AWS on Koxkar glacier from 5 August to 5 September 2008

Figure 5

Fig. 4. Scatter diagram of estimated versus observed backwasting rates for all 38 ice cliffs during the observation period.

Figure 6

Fig. 5. Relationship between solar elevation, h, and albedo of ice surface observed at site A3 from 5 August to 5 September 2008. Days with snow-covered surface were excluded.

Figure 7

Fig. 6. Dependence of daily shortwave radiation for a unit sloped area on the slope orientation of ice cliffs, considering the effect of cloud and scatter in the atmosphere, mapped using calculated daily shortwave radiation for all 38 ice cliffs in the debris-covered area on Koxkar glacier from 5 August to 5 September 2008.

Figure 8

Fig. 7. Variations of mean global solar radiation (solid curve) during the study period compared with a normal distribution curve (dotted curve, σ = 2.1), showing the asymmetry of global solar radiation with time.

Figure 9

Fig. 8. Proportions of shortwave components reaching the ice-cliff slope for different azimuth slope angles, plotted based on calculation for all 38 ice cliffs from 5 August to 5 September 2008.

Figure 10

Fig. 9. Heat-balance elements at ice cliff F5 from 5 August to 5 September 2008. Dates are month/day.

Figure 11

Fig. 10. Variations of estimated backwasting rate and daily mean air temperature at ice cliff F5 during the 2008 melt season. The black curve shows the variations in backwasting rate. The grey curve is the corresponding daily mean temperature at the site.

Figure 12

Fig. 11. Estimated backwasting rate, rb, versus daily mean air temperature, , at ice cliff F5 during the 2008 melt season.