(Table 1) Lake elevation change derived from 4 or more years of measurements


Autoria(s): Zhang, Guoqing; Xie, Hongjie; Kang, Shichang; Yi, Donghui; Ackley, Stephen F
Cobertura

MEDIAN LATITUDE: 33.127986 * MEDIAN LONGITUDE: 88.446092 * SOUTH-BOUND LATITUDE: 28.567210 * WEST-BOUND LONGITUDE: 80.899580 * NORTH-BOUND LATITUDE: 38.302450 * EAST-BOUND LONGITUDE: 100.170000 * MINIMUM ELEVATION: 3193.35 m a.s.l. * MAXIMUM ELEVATION: 5115.74 m a.s.l.

Data(s)

13/02/2011

Resumo

In this study, ICESat altimetry data are used to provide precise lake elevations of the Tibetan Plateau (TP) during the period of 2003-2009. Among the 261 lakes examined ICESat data are available on 111 lakes: 74 lakes with ICESat footprints for 4-7 years and 37 lakes with footprints for 1 -3 years. This is the first time that precise lake elevation data are provided for the 111 lakes. Those ICESat elevation data can be used as baselines for future changes in lake levels as well as for changes during the 2003-2009 period. It is found that in the 74 lakes (56 salt lakes) examined, 62 (i.e. 84%) of all lakes and 50 (i.e. 89%) of the salt lakes show tendency of lake level increase. The mean lake water level increase rate is 0.23 m/year for the 56 salt lakes and 0.27 m/year for the 50 salt lakes of water level increase. The largest lake level increase rate (0.80 m/year) found in this study is the lake Cedo Caka. The 74 lakes are grouped into four subareas based on geographical locations and change tendencies in lake levels. Three of the four subareas show increased lake levels. The mean lake level change rates for subareas I, II, III, IV, and the entire TP are 0.12, 0.26, 0.19, -0.11, and 0.2 m/year, respectively. These recent increases in lake level, particularly for a high percentage of salt lakes, supports accelerated glacier melting due to global warming as the most likely cause.

Formato

text/tab-separated-values, 814 data points

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.842774

doi:10.1594/PANGAEA.842774

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Zhang, Guoqing; Xie, Hongjie; Kang, Shichang; Yi, Donghui; Ackley, Stephen F (2011): Monitoring lake level changes on the Tibetan Plateau using ICESat altimetry data (2003-2009). Remote Sensing of Environment, 115(7), 1733-1742, doi:10.1016/j.rse.2011.03.005

Palavras-Chave #Argog_Co; Baqan_Co; Cedo_Caka; Chaoyang_Co; Co_Nag; Co_Ngoin; Co_Nyi; Co_Rabamgodang; Con_Arimar; Darab_Co; Date/time end; Date/time start; Dawa_Co; Deyu_Co; Dogai_Coring; Dorsoidong_Co; ELEVATION; Elevation 2; Event label; Gopug_Co; Goren_Co; Gyado_Co; Gyarab_Co; Gyaring_Lake; Gyeze_Caka; Har_Lake; Himalaya; Hoh_Sai_Lake; Hoh_Xil_Lake; Hulu_Lake; ICESat satellite data; International Polar Year (2007-2008); IPY; Jang_Co; Kekao_Lake; Kunggyu_Co; Kushuihuan_Lake; Kyobxang_Co; Lagkor_Co; Lake; Lakes_Tibet; Lake type; Latitude of event; Lixi_Oidaim_Co; Longitude of event; Longwei_Co; Mapam_Yumco; Marye_Co; Meriqancomari; MULT; Multiple investigations; Nam_Co; Namka_Co; Ngangla_Ringco; Ngangzi_Co; Number; Number of years; Peiku_Co; Pibi_Lake; Puma_Yumco; Qagain_Co; Qinghai_Lake; Ringco_Ogma; Ringinyubu_Co; Sector; Selin_Co; Serbug_Co; Standard deviation; Suang_Lake; Tangra_Yumco; Taro_Co; Tibetan Plateau; Urru_Co; Water level change; Waxunggabma_Co; Weishan_Lake; Xianhe_Lake; Xijir_Ulan_Lake; Xogor_Co; Yamzhog_Yumco; Yangain_Canco; Yinbo_Lake; Yurbao_Co; Yuye_Lake; Zhangne_Co; Zhari_Namco; Zige_Tangco
Tipo

Dataset