Comprehensive remote sensing experiment of water cycle and energy balance in the Shandian river basin

  • role: First author第一作者
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • Email:zhaotj@aircas.ac.cn
  • Introduction:, 1985, , , E-mail: zhaotj@aircas.ac.cn
ZHAO Tianjie1,  
  • role: Corresponding author通信作者
  • Affiliation:

    中国科学院国家空间科学中心, 北京 100190

  • Email:shijiancheng@nssc.ac.cn
  • Introduction:, 1955, , , E-mail: shijiancheng@nssc.ac.cn
SHI Jiancheng2*,  
  • Affiliation:

    上海航天电子技术研究所, 上海 201109

  • No information about the author is available
XU Hongxin3,  
  • Affiliation:

    上海航天电子技术研究所, 上海 201109

  • No information about the author is available
SUN Yanlong3,  
  • Affiliation:

    水利部信息中心, 北京 100053

  • No information about the author is available
CHEN Deqing4,  
  • Affiliation:

    水利部信息中心, 北京 100053

  • No information about the author is available
CUI Qian4,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
JIA Li1,  
  • Affiliation:

    上海航天电子技术研究所, 上海 201109

  • No information about the author is available
HUANG Shuo3,  
  • Affiliation:

    上海卫星工程研究所, 上海 201109

  • No information about the author is available
NIU Shengda5,  
  • Affiliation:

    上海航天技术研究院, 上海 201109

  • No information about the author is available
LI Xiuwei6,  
  • Affiliation:

    北京师范大学, 北京 100875

  • No information about the author is available
YAN Guangjian7,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
CHEN Liangfu1,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
LIU Qinhuo1,  
  • Affiliation:

    中国科学院东北地理与农业生态研究所, 长春 130102

  • No information about the author is available
ZHAO Kai8,  
  • Affiliation:

    中国科学院东北地理与农业生态研究所, 长春 130102

  • No information about the author is available
ZHENG Xingming8,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
ZHAO Limin1,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
ZHENG Chaolei1,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
JI Dabin1,  
  • Affiliation:

    西南交通大学, 成都 611756

  • No information about the author is available
XIONG Chuan9,  
  • Affiliation:

    中山大学 测绘科学与技术学院, 珠海 519082

  • No information about the author is available
WANG Tianxing10,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
LI Rui1,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
PAN Jinmei1,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
WEN Jianguang1,  
  • Affiliation:

    北京师范大学, 北京 100875

  • No information about the author is available
MU Xihan7,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
YU Chao1,  
  • Affiliation:

    北京工商大学, 北京 100048

  • No information about the author is available
ZHENG Yaomin11,  
  • Affiliation:

    北京师范大学, 北京 100875

  • No information about the author is available
JIANG Lingmei7,  
  • Affiliation:

    北京师范大学, 北京 100875

  • No information about the author is available
CHAI Linna7,  
  • Affiliation:

    清华大学, 北京 100084

  • No information about the author is available
LU Hui12,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
YAO Panpan1,  
  • Affiliation:

    中国水利水电科学研究院, 北京 100038

  • No information about the author is available
MA Jianwei13,  
  • Affiliation:

    河海大学, 南京 210098

  • No information about the author is available
LYU Haishen14,  
  • Affiliation:

    北京师范大学, 北京 100875

  • No information about the author is available
WU Jianjun7,  
  • Affiliation:

    中国科学院水利部成都山地灾害与环境研究所, 成都 610041

  • No information about the author is available
ZHAO Wei15,  
  • Affiliation:

    河南理工大学, 焦作 454000

  • No information about the author is available
YANG Na16,  
  • Affiliation:

    山东农业大学, 泰安 271018

  • No information about the author is available
GUO Peng17,  
  • Affiliation:

    电子科技大学, 成都 611731

  • No information about the author is available
LI Yuxia18,  
  • Affiliation:

    南京大学, 南京 210023

  • No information about the author is available
HU Lu19,  
  • Affiliation:

    中国科学院空天信息创新研究院 遥感科学国家重点实验室, 北京 100101

  • No information about the author is available
GENG Deyuan1,  
  • Affiliation:

    中山大学 测绘科学与技术学院, 珠海 519082

  • No information about the author is available
ZHANG Ziqian10,  
  • Affiliation:

    锡林郭勒盟水文勘测局, 锡林郭勒 027300

  • No information about the author is available
HU Jianfeng20,  
  • Affiliation:

    锡林郭勒盟气象台, 锡林郭勒 026000

  • No information about the author is available
DU Aiping21

resumen

Remote sensing experiment is an important tool for the verification of remote sensing principles, development of radiative transfer models and retrieval algorithms, and calibration/validation of satellite products. It can help the demonstration of new satellite missions and the promotion of its application in Earth system science. The comprehensive remote sensing experiment of water cycle and energy balance in the Shandian River (the upper stream of Luan River) integrates the space, airborne and ground based remote sensing technologies to conduct a full-band and active-passive observation of typical elements related to water cycle and energy balance processes of the Earth system. It is aimed to study the spatial-temporal variability and observation strategy of those hydro-thermal elements at various remote sensing scales, to study the remote sensing methodologies of those elements and their application in land surface and hydrology models, and to support the design and feasibility studies of new satellite missions (Terrestrial Water Resources Satellite, Energy Budget Observation Mission) in China.The paper describes the general design of this experiment, its scientific objectives and main compositions including the airborne missions, ground sampling strategies, ground-based observation experiments and key variables measurement through wireless sensor networks. Airborne experiments were conducted to obtain multi-resolution, multi-angle observations of both active and passive microwave together with infrared, multispectral, and hyperspectral data. It enables us to explore the remote sensing of various parameters and the impacts of scaling issues, as well as the incidence angle effects associated with the synthetic aperture radiometer system. Ground-based synchronous observation experiments were carried out based on microwave radiometer, radar and spectroradiometer. Concurrent ground data included soil moisture, ground temperature, vegetation water content and surface roughness, etc. are sampled based on large-medium-small quadrats to cover a wide range of land surface conditions. Moreover, ground observation networks were established to monitor meteorological parameters, soil temperature and moisture, surface radiation, evapotranspiration, and precipitation, etc.This experiment provides a unique platform to explore the synergy of active, passive microwave and optical data for water cycle and energy balance remote sensing at improved accuracy and resolution. The experiment overview and preliminary analysis of remote sensing and ground data have confirmed that the data set will help to address a variety of science questions of land-atmosphere energy and water exchanges under global change.

palabra clave

remote sensing experiment;water cycle;energy balance;Shandian river basin;airborne observation;watershed observation network

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