Ground Deformation Monitoring over Xinjiang Coal Fire Area by an Adaptive ERA5-Corrected Stacking-InSAR Method

Author:

Zhang Yuxuan12ORCID,Wang Yunjia12,Huo Wenqi12,Zhao Feng12ORCID,Hu Zhongbo3ORCID,Wang Teng12ORCID,Song Rui12,Liu Jinglong4ORCID,Zhang Leixin12ORCID,Fernández José3ORCID,Escayo Joaquin3ORCID,Cao Fei5,Yan Jun5

Affiliation:

1. Key Laboratory of Land Environment and Disaster Monitoring, MNR, China University of Mining and Technology (CUMT), Xuzhou 221116, China

2. School of Environment Science and Spatial Informatics, China University of Mining and Technology (CUMT), Xuzhou 221116, China

3. Instituto de Geociencias (IGEO), CSIC-UCM, 7, 28040 Madrid, Spain

4. CommSensLab, Department of Signal Theory and Communications, Universitat Politecnica de Catalunya (UPC), 08034 Barcelona, Spain

5. Xinjiang Uygur Autonomous Region Mine Safety Service and Guarantee Center, Urumqi 830063, China

Abstract

Underground coal fire is a global geological disaster that causes the loss of resources as well as environmental pollution. Xinjiang, China, is one of the regions suffering from serious underground coal fires. The accurate monitoring of underground coal fires is critical for management and extinguishment, and many remote sensing-based approaches have been developed for monitoring over large areas. Among them, the multi-temporal interferometric synthetic aperture radar (MT-InSAR) techniques have been recently employed for underground coal fires-related ground deformation monitoring. However, MT-InSAR involves a relatively high computational cost, especially when the monitoring area is large. We propose to use a more cost-efficient Stacking-InSAR technique to monitor ground deformation over underground coal fire areas in this study. Considering the effects of atmosphere on Stacking-InSAR, an ERA5 data-based estimation model is employed to mitigate the atmospheric phase of interferograms before stacking. Thus, an adaptive ERA5-Corrected Stacking-InSAR method is proposed in this study, and it is tested over the Fukang coal fire area in Xinjiang, China. Based on original and corrected interferograms, four groups of ground deformation results were obtained, and the possible coal fire areas were identified. In this paper, the ERA5 atmospheric delay products based on the estimation model along the LOS direction (D-LOS) effectively mitigate the atmospheric phase. The accuracy of ground deformation monitoring over a coal fire area has been improved by the proposed method choosing interferograms adaptively for stacking. The proposed Adaptive ERA5-Corrected Stacking-InSAR method can be used for efficient ground deformation monitoring over large coal fire areas.

Funder

National Natural Science Foundation of China

project G2HOTSPOTS

China Postdoctoral Science Foundation

Construction Program of Space-Air-Ground-Well Cooperative Awareness Spatial Information Project

National Key R&D Program of China

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences

Reference67 articles.

1. Disaster and control of spontaneous combustion in coal field, China;Tan;Meitiandizhi Kantan,2000

2. Simulation of spontaneous combustion, to study the causes of coal fires in the Rujigou Basin;Rosema;Fuel,2001

3. Underground coal fire emission of spontaneous combustion, Sandaoba coalfield in Xinjiang, China: Investigation and analysis;Deng;Sci. Total Environ.,2021

4. Environmental Hazards of Coal Fire and Their Prevention in China;Qi;Environ. Eng. Manag. J. (EEMJ),2013

5. Innovative Technologies for Exploration, Monitoring and Extinction of Underground Coal Fires;Jianjun;J. China Coal Soc.,2009

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