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volume 61 issue 2 pages 165-178

СРАВНЕНИЕ ГИДРОТЕРМИЧЕСКОЙ СТРУКТУРЫ ДВУХ ЛЕДНИКОВ ШПИЦБЕРГЕНА И ТЯНЬ-ШАНЯ ПО ДАННЫМ РАДИОЗОНДИРОВАНИЯ

Ю.Я. МАЧЕРЕТ 1
А.Ф. ГЛАЗОВСКИЙ 1
Е.В. ВАСИЛЕНКО 2
И.И. ЛАВРЕНТЬЕВ 1
В.В. МАЦКОВСКИЙ 1
1
 
Институт географии РАН
2
 
Институт «Академприбор»
Publication typeJournal Article
Publication date2021-05-24
scimago Q3
wos Q4
SJR0.265
CiteScore1.4
Impact factor0.5
ISSN20766734, 24123765
Geochemistry and Petrology
Water Science and Technology
Earth-Surface Processes
Global and Planetary Change
Abstract
The distribution of cold and temperate ice and water in polythermal glaciers significantly affects their dynamics, thermal and hydrological regime. Radar techniques are an effective remote method of their studies that allows one to determine a glacier thickness by the delay time and to estimate the water content in temperate ice and at bedrock by the intensity of reflections from the interface between cold and temperate ice and the glacier bed. In case study of Austre Gronfjordbreen in Spitsbergen and Central Tuyksu glacier in Tien Shan we consider the features of their hydrothermal structure in spring and summer periods using the data of ground-based radio-­echo sounding at frequency of 20 MHz. To estimate the relative water content, we used data from measurements of relative power reflections from the cold-temperate ice interface, at the bedrock, and from the temperate ice body. In these glaciers (Austre Gronfjordbreen and Central Tuyksu), the average thickness of cold and temperate ice is, respectively, 61 ± 6 and 27 ± 2 m, and 39 ± 4 and 20 ± 2 m, the volume of cold ice is 0.466 ± 0.005 km 3 and 0.044 ± 0.002 km 3 , and volume of temperate ice is 0.104 ± 0.001 and 0.034 ± 0.001 km 3 . Warm ice contains 2080 × 10 3 and 680 × 10 3 m 3 of water, respectively, with an average content of 2%. Measurements along the longitudinal profiles of these glaciers showed that in some parts on Austre Gronfjordbreen in the spring period the average intensity of reflections from the cold­temperate ice interface and the bedrock is −0.02 – −26.3 and −6.0 – −11.8 dB, respectively, and at the whole profile this is −13.36 dB. At Central Tuyuksu glacier the spring values are −14.5 – −32.4 and −29.6 dB, respectively. We attribute such differences of glaciers to the different water content in the temperate ice below and above these boundaries, to the specific distribution of the ice facies zones and glacial nourishment, to the different intensity of surface melting in the spring and summer periods, and to the different crevassing and velocity of glaciers.
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МАЧЕРЕТ Ю. et al. СРАВНЕНИЕ ГИДРОТЕРМИЧЕСКОЙ СТРУКТУРЫ ДВУХ ЛЕДНИКОВ ШПИЦБЕРГЕНА И ТЯНЬ-ШАНЯ ПО ДАННЫМ РАДИОЗОНДИРОВАНИЯ // Led i Sneg. 2021. Vol. 61. No. 2. pp. 165-178.
GOST all authors (up to 50) Copy
МАЧЕРЕТ Ю., ГЛАЗОВСКИЙ А., ВАСИЛЕНКО Е., ЛАВРЕНТЬЕВ И., МАЦКОВСКИЙ В. СРАВНЕНИЕ ГИДРОТЕРМИЧЕСКОЙ СТРУКТУРЫ ДВУХ ЛЕДНИКОВ ШПИЦБЕРГЕНА И ТЯНЬ-ШАНЯ ПО ДАННЫМ РАДИОЗОНДИРОВАНИЯ // Led i Sneg. 2021. Vol. 61. No. 2. pp. 165-178.
RIS |
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RIS Copy
TY - JOUR
DO - 10.31857/s2076673421020079
UR - https://doi.org/10.31857/s2076673421020079
TI - СРАВНЕНИЕ ГИДРОТЕРМИЧЕСКОЙ СТРУКТУРЫ ДВУХ ЛЕДНИКОВ ШПИЦБЕРГЕНА И ТЯНЬ-ШАНЯ ПО ДАННЫМ РАДИОЗОНДИРОВАНИЯ
T2 - Led i Sneg
AU - МАЧЕРЕТ, Ю.Я.
AU - ГЛАЗОВСКИЙ, А.Ф.
AU - ВАСИЛЕНКО, Е.В.
AU - ЛАВРЕНТЬЕВ, И.И.
AU - МАЦКОВСКИЙ, В.В.
PY - 2021
DA - 2021/05/24
PB - Akademizdatcenter Nauka
SP - 165-178
IS - 2
VL - 61
SN - 2076-6734
SN - 2412-3765
ER -
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@article{2021_МАЧЕРЕТ,
author = {Ю.Я. МАЧЕРЕТ and А.Ф. ГЛАЗОВСКИЙ and Е.В. ВАСИЛЕНКО and И.И. ЛАВРЕНТЬЕВ and В.В. МАЦКОВСКИЙ},
title = {СРАВНЕНИЕ ГИДРОТЕРМИЧЕСКОЙ СТРУКТУРЫ ДВУХ ЛЕДНИКОВ ШПИЦБЕРГЕНА И ТЯНЬ-ШАНЯ ПО ДАННЫМ РАДИОЗОНДИРОВАНИЯ},
journal = {Led i Sneg},
year = {2021},
volume = {61},
publisher = {Akademizdatcenter Nauka},
month = {may},
url = {https://doi.org/10.31857/s2076673421020079},
number = {2},
pages = {165--178},
doi = {10.31857/s2076673421020079}
}
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МАЧЕРЕТ, Ю.Я., et al. “СРАВНЕНИЕ ГИДРОТЕРМИЧЕСКОЙ СТРУКТУРЫ ДВУХ ЛЕДНИКОВ ШПИЦБЕРГЕНА И ТЯНЬ-ШАНЯ ПО ДАННЫМ РАДИОЗОНДИРОВАНИЯ.” Led i Sneg, vol. 61, no. 2, May. 2021, pp. 165-178. https://doi.org/10.31857/s2076673421020079.