Freeze/Thaw-Induced Deformation Monitoring and Assessment of the Slope in Permafrost Based on Terrestrial Laser Scanner and GNSS

被引:41
作者
Luo, Lihui [1 ,2 ]
Ma, Wei [2 ]
Zhang, Zhongqiong [2 ]
Zhuang, Yanli [1 ]
Zhang, Yaonan [1 ]
Yang, Jinqiang [3 ]
Cao, Xuecheng [3 ]
Liang, Songtao [3 ]
Mu, Yanhu [2 ]
机构
[1] Chinese Acad Sci, Cold & Arid Reg Environm & Engn Res Inst, Lanzhou 730000, Gansu, Peoples R China
[2] Chinese Acad Sci, Cold & Arid Reg Environm & Engn Res Inst, State Key Lab Frozen Soils Engn, Lanzhou 730000, Gansu, Peoples R China
[3] 61243 Regiment, Lanzhou 730000, Gansu, Peoples R China
基金
中国国家自然科学基金;
关键词
freeze-thaw cycle; global navigation satellite system; Qinghai-Tibet engineering corridor; slope in permafrost; terrestrial laser scanning; ACTIVE-LAYER THICKNESS; LINE SAR INTERFEROMETRY; QINGHAI-TIBET PLATEAU; MOUNTAIN AREAS; RIVER-BASIN; ROCK WALLS; STABILITY; CHINA; THAW; VARIABILITY;
D O I
10.3390/rs9030198
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Most previous studies of the Qinghai-Tibet engineering corridor (QTEC) have focused on the impacts of climate change on thaw-induced slope failures, whereas few have considered freeze-induced slope failures. Terrestrial laser scanning was used in combination with global navigation satellite systems to monitor three-dimensional surface changes between 2014 and 2015 on the slope of permafrost in the QTEC, which experienced two thawing periods and a freezing period. Soil temperature and moisture sensors were also deployed at 11 depths to reveal the hydrological-thermal dynamics of the active layer. We analyzed scanned surface changes in the slope based on comparisons of multi-temporal point cloud data to determine how the hydrological-thermal process affected active layer deformation during freeze-thaw cycles, thereby comprehensively quantifying the surface deformation. During the two thawing periods, the major structure of the slope exhibited subsidence trends, whereas the major structure of the slope had an uplift trend in the freezing period. The seasonal subsidence trend was caused by thaw settlement and the seasonal uplift trend was probably due to frost heaving. This occurred mainly because the active layer and the upper permafrost underwent a phase transition due to heat transfer. The ground movements occurred approximately in the soil temperature conduction direction between the top of the soil and the permafrost table. The elevation deformation range was mainly -0.20 m to 0.20 m. Surface volume increases with heaving after freezing could have compensated for the loss of thawing twice and still led to the upward swelling of the slope. Thus, this type of slope in permafrost is dominated by frost heave. Deformation characteristics of the slope will support enhanced decision making regarding the implementation of remote sensing and hydrological-thermal measurement technologies to monitor changes in the slopes in permafrost adjacent to engineering corridors, thereby improving the understanding and assessment of hazards.
引用
收藏
页数:20
相关论文
共 53 条
[1]   Exploring Steep Bedrock Permafrost and its Relationship with Recent Slope Failures in the Southern Alps of New Zealand [J].
Allen, S. K. ;
Gruber, S. ;
Owens, I. F. .
PERMAFROST AND PERIGLACIAL PROCESSES, 2009, 20 (04) :345-356
[2]  
[Anonymous], 1974, Int. J. Rock Mech. Min. Sci. Geomechanics., DOI DOI 10.1139/T74-058
[3]   Towards rockfall forecasting through observing deformations and listening to microseismic emissions [J].
Arosio, D. ;
Longoni, L. ;
Papini, M. ;
Scaioni, M. ;
Zanzi, L. ;
Alba, M. .
NATURAL HAZARDS AND EARTH SYSTEM SCIENCES, 2009, 9 (04) :1119-1131
[4]   LiDAR remote sensing of the cryosphere: Present applications and future prospects [J].
Bhardwaj, Anshuman ;
Sam, Lydia ;
Bhardwaj, Akanksha ;
Javier Martin-Torres, F. .
REMOTE SENSING OF ENVIRONMENT, 2016, 177 :125-143
[5]   Thaw-Consolidation Effects on the Stability of Alpine Talus Slopes in Permafrost [J].
Bommer, Christian ;
Fitze, Philipp ;
Schneider, Hansruedi .
PERMAFROST AND PERIGLACIAL PROCESSES, 2012, 23 (04) :267-276
[6]  
Burn CR, 1998, PERMAFROST PERIGLAC, V9, P411, DOI 10.1002/(SICI)1099-1530(199810/12)9:4<411::AID-PPP292>3.0.CO
[7]  
2-6
[8]   Surface deformation detected by ALOS PALSAR small baseline SAR interferometry over permafrost environment of Beiluhe section, Tibet Plateau, China [J].
Chen, Fulong ;
Lin, Hui ;
Zhou, Wei ;
Hong, Tianhua ;
Wang, Gang .
REMOTE SENSING OF ENVIRONMENT, 2013, 138 :10-18
[9]   Interaction between permafrost and infrastructure along the Qinghai-Tibet Railway detected via jointly analysis of C- and L-band small baseline SAR interferometry [J].
Chen, Fulong ;
Lin, Hui ;
Li, Zhen ;
Chen, Quan ;
Zhou, Jianmin .
REMOTE SENSING OF ENVIRONMENT, 2012, 123 :532-540
[10]   Responses of permafrost to climate change and their environmental significance, Qinghai-Tibet Plateau [J].
Cheng, Guodong ;
Wu, Tonghua .
JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2007, 112 (F2)