Interplay between faulting and base level in the development of Himalayan frontal fold topography

被引:38
作者
Barnes, Jason B. [1 ,2 ]
Densmore, Alexander L. [1 ,2 ]
Mukul, Malay [3 ]
Sinha, Rajiv [5 ]
Jain, Vikrant [4 ]
Tandon, Sampat K. [4 ]
机构
[1] Univ Durham, Dept Geog, Durham DH1 3LE, England
[2] Univ Durham, Inst Hazard Risk & Resilience, Durham DH1 3LE, England
[3] Indian Inst Technol, Dept Earth Sci, Bombay 400076, Maharashtra, India
[4] Univ Delhi, Dept Geol, Delhi 110007, India
[5] Indian Inst Technol, Dept Civil Engn, Kanpur 208016, Uttar Pradesh, India
关键词
MAGNETIC-POLARITY STRATIGRAPHY; DEPENDENT RIVER INCISION; BALANCED CROSS-SECTIONS; GARHWAL SUB-HIMALAYA; ACTIVE NORMAL FAULTS; CHINESE TIAN-SHAN; NW HIMALAYA; DEHRA-DUN; LATERAL PROPAGATION; FORELAND BASIN;
D O I
10.1029/2010JF001841
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Fold topography preserves a potentially accessible record of the structure and evolution of an underlying thrust fault system, provided we understand the factors that shape that topography. Here we examine the morphology and fault geometry of two active folds at the northwest Himalayan front. The Chandigarh and Mohand anticlines show the following patterns: (1) most (similar to 60%-70%) growth in catchment size and relief (across multiple scales) is accomplished within similar to 5 km of the fault tips, (2) range-scale relief is divided unevenly between the fold flanks because of base level contrasts, (3) mean gradients of the uplifting catchments correspond to different flank-averaged rock uplift rates, (4) high hillslope-scale relief coincides with areas of fast rock uplift and stronger lithologies, and (5) existing relief represents only similar to 15% of the total rock eroded since faulting began, implying significant erosion. The first-order fold topography is developed quickly and asymmetrically as a result of fault-generated rock uplift (which sets the space available for the fold and the distribution of rock uplift rates) with some modulation by base level (which affects the erosional response of the landscape to the uplift). A linear rate of growth in catchment relief with range half-width correlates with catchment-averaged rock uplift rate, suggesting that this metric may be used to infer variations in fault dip at depth. In these frontal fold settings, high slip rates, weak uplifting rocks, and rapid erosion may combine to quickly limit the topographic growth of emerging folds and disconnect their morphology from the displacement field.
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页数:19
相关论文
共 106 条
[1]  
[Anonymous], 1974, HIMAL GEOL
[2]  
[Anonymous], J HIMALAYAN GEOLOGY
[3]   Displacement profiles and displacement-length scaling relationships of thrust faults constrained by seismic-reflection data [J].
Bergen, Kristian J. ;
Shaw, John H. .
GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2010, 122 (7-8) :1209-1219
[4]   Topography, relief, and TRMM-derived rainfall variations along the Himalaya [J].
Bookhagen, B ;
Burbank, DW .
GEOPHYSICAL RESEARCH LETTERS, 2006, 33 (08)
[5]   Quantifying the slip rates, spatial distribution and evolution of active normal faults from geomorphic analysis: Field examples from an oblique-extensional graben, southern Turkey [J].
Boulton, Sarah J. ;
Whittaker, Alexander C. .
GEOMORPHOLOGY, 2009, 104 (3-4) :299-316
[6]   Glacial erosion and relief production in the Eastern Sierra Nevada, California [J].
Brocklehurst, SH ;
Whipple, KX .
GEOMORPHOLOGY, 2002, 42 (1-2) :1-24
[7]   DUCTILE THRUSTING IN THE HIMALAYAS - SHEAR SENSE CRITERIA AND STRETCHING LINEATIONS [J].
BRUNEL, M .
TECTONICS, 1986, 5 (02) :247-265
[8]   Interactions of growing folds and coeval depositional systems [J].
Burbank, D ;
Meigs, A ;
Brozovic, N .
BASIN RESEARCH, 1996, 8 (03) :199-223
[9]   CAUSES OF RECENT HIMALAYAN UPLIFT DEDUCED FROM DEPOSITED PATTERNS IN THE GANGES BASIN [J].
BURBANK, DW .
NATURE, 1992, 357 (6380) :680-683
[10]  
Burbank DW, 1999, BASIN RES, V11, P75