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The composition of the englacial and subglacial component in bulk meltwaters draining the Gornergletscher, Switzerland

Published online by Cambridge University Press:  20 January 2017

Martyn Tranter
Affiliation:
Department of Oceanography, University of Southampton, Southampton SO9 5NH, England
Robert Raiswell
Affiliation:
Department of Oceanography, University of Southampton, Southampton SO9 5NH, England
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Abstract

A new method of hydrograph separation for bulk meltwaters draining Alpine glaciers is proposed. It is based on the two-component (subglacial and englacial) mixing model of Collins (1978), but allows the composition of the subglacial component to vary between ascending and descending lines of the hydrograph. The mean englacial component can be derived from linear relationships between sulphate concentrations and other ions in bulk meltwaters. On certain occasions during the ablation season, the maximum concentration of ions in the subglacial component can be determined from the linear relationship between bulk meltwater sulphate concentrations and discharge. The bulk discharge is then a direct measure of the mass fraction of the englacial component. At maximum discharge, the contribution of the subglacial component approaches zero, which has implications for the storage and mixing of waters in subglacial reservoirs. Further, the subglacial component is not of constant composition, and may itself be a mixture of dilute supraglacial and concentrated subglacial water.

Information

Type
Research Article
Copyright
Copyright © International Glaciological Society 1991
Figure 0

Fig. 1. Discharge and conductivity variations for the Gornera, the main stream draining Gornergletscher, (a) 16 September 1980; (b) 18ߝ20 September 1980.

Figure 1

Fig. 2. Variation in meltwater chemistry, (a) 16 September (A samples); (b) 18–20 September (Β samples). Note that sulphate concentrations for the Β samples are estimated from the charge-balance deficit (see Appendix).

Figure 2

Table 1

Figure 3

Table 2. Regression equations for the relationship between bulk meltwater sulphate concentrations and other ions (units: µeq. l−1)

Figure 4

Table 3. The range in composition of supraglacial meltwaters (units: µ.eq. l−1

Figure 5

Fig. 3. (a) A samples. Measured sulphate concentration versus discharge. The ascending limb of the hydrograph follows the linear relationship: SO42- = −190Qb + 1700 (R = −0.998; n = 4). We are not confident of the trend defined by the four points on the descending limb of the hydrograph. (b) Β samples. Sulphate concentrations estimated from the charge-balancedeficit (see Appendix), versus discharge.Two distinct linear trends are evident. The first is defined by four consecutive points on the ascending limb of the hydrograph on the morning of 17 September: SO42- = −28Qb + 370 (R = −0.982; n = 4) The remainder of the data defines the following relationship: SO42- = −32Qb + 300 (R = −0.872; n = 34). Both correlation coefficients are significant at 0.1%.

Figure 6

Fig. 4. The relationship between sulphate and discharge (ascending limb of the hydrograph) in the main stream draining Les Bossons, (a) 24 September 1981. The four points on the ascending limb of the hydrograph define the following expression: SO42- = −140Qb + 110 (R = −0.986; n = 4).(b) 25 September 1981. The five points on the ascending limb of the hydrograph define the following expression: SO42- = −290Qb + 170 (R = −0.995; n = 5). Both correlation coefficients are significant at 0.1%.

Figure 7

Table 4. Composition of the subglacial component (units: µeq. l−1)

Figure 8

Fig. 5. Hydrograph separation of bulk meltwaters draining Gornergletscher, (a) 16 September 1980 (A samples); (b) 18–20 September 1980 (B samples).