Spatiotemporal trends in erosion rates across a pronounced rainfall gradient: Examples from the southern Central Andes

被引:196
作者
Bookhagen, Bodo [1 ]
Strecker, Manfred R. [2 ]
机构
[1] UC Santa Barbara, Dept Geog, Santa Barbara, CA 93106 USA
[2] Univ Potsdam, Inst Earth & Environm Sci, Potsdam, Germany
关键词
erosion; landscape evolution; specific stream power; cosmogenic radionuclides; paleoclimate; climate-tectonic feedback processes; NORTHERN SIERRAS PAMPEANAS; SANTA-MARIA BASIN; ROCK-UPLIFT RATES; COSMOGENIC NUCLIDES; THRESHOLD HILLSLOPES; CLIMATE-CHANGE; LANDSCAPE EVOLUTION; CHANNEL ADJUSTMENT; SEDIMENT FLUX; PRECIPITATION;
D O I
10.1016/j.epsl.2012.02.005
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The tectonic and climatic boundary conditions of the broken foreland and the orogen interior of the southern Central Andes of northwestern Argentina cause strong contrasts in elevation, rainfall, and surface-process regimes. The climatic gradient in this region ranges from the wet, windward eastern flanks (similar to 2 m/yr rainfall) to progressively drier western basins and ranges (similar to 0.1 m/yr) bordering the arid Altiplano-Puna Plateau. In this study, we analyze the impact of spatiotemporal climatic gradients on surface erosion: First, we present 41 new catchment-mean erosion rates derived from cosmogenic nuclide inventories to document spatial erosion patterns. Second, we re-evaluate paleoclimatic records from the Calchaquies basin (66 W, 26 S), a large intermontane basin bordered by high (> 4.5 km) mountain ranges, to demonstrate temporal variations in erosion rates associated with changing climatic boundary conditions during the late Pleistocene and Holocene. Three key observations in this region emphasize the importance of climatic parameters on the efficiency of surface processes in space and time: (1) First-order spatial patterns of erosion rates can be explained by a simple specific stream power (SSP) approach. We explicitly account for discharge by routing high-resolution, satellite derived rainfall. This is important as the steep climatic gradient results in a highly non-linear relation between drainage area and discharge. This relation indicates that erosion rates (ER) scale with ER similar to SSP1.4 on cosmogenic-nuclide time scales. (2) We identify an intrinsic channel-slope behavior in different climatic compartments. Channel slopes in dry areas (< 0.25 m/yr rainfall) are slightly steeper than in wet areas (> 0.75 m/yr) with equal drainage areas, thus compensating lower amounts of discharge with steeper slopes. (3) Erosion rates can vary by an order of magnitude between presently dry (similar to 0.05 mm/yr) and well-defined late Pleistocene humid (similar to 0.5 mm/yr) conditions within an intemontane basin. Overall, we document a strong climatic impact on erosion rates and channel slopes. We suggest that rainfall reaching areas with steeper channel slopes in the orogen interior during wetter climate periods results in intensified sediment mass transport, which is primarily responsible for maintaining the balance between surface uplift, erosion, sediment routing and transient storage in the orogen. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:97 / 110
页数:14
相关论文
共 120 条
[1]   Holocene paleohydrology and glacial history of the central Andes using multiproxy lake sediment studies [J].
Abbott, MB ;
Wolfe, BB ;
Wolfe, AP ;
Seltzer, GO ;
Aravena, R ;
Mark, BG ;
Polissar, PJ ;
Rodbell, DT ;
Rowe, HD ;
Vuille, M .
PALAEOGEOGRAPHY PALAEOCLIMATOLOGY PALAEOECOLOGY, 2003, 194 (1-3) :123-138
[3]  
Alaka M.A. R., 1976, World survey of climatology: Climates of Central and South America
[4]   EVOLUTION OF THE SANTA-CRUZ MOUNTAINS, CALIFORNIA, THROUGH TECTONIC GROWTH AND GEOMORPHIC DECAY [J].
ANDERSON, RS .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1994, 99 (B10) :20161-20179
[5]  
Bagnold R.A., 1960, U.S. Geological Survey Circular, V421, P23, DOI [10.3133/cir421, DOI 10.3133/CIR421]
[6]   BED LOAD TRANSPORT BY NATURAL RIVERS [J].
BAGNOLD, RA .
WATER RESOURCES RESEARCH, 1977, 13 (02) :303-312
[7]   The history of South American tropical precipitation for the past 25,000 years [J].
Baker, PA ;
Seltzer, GO ;
Fritz, SC ;
Dunbar, RB ;
Grove, MJ ;
Tapia, PM ;
Cross, SL ;
Rowe, HD ;
Broda, JP .
SCIENCE, 2001, 291 (5504) :640-643
[8]   Regional beryllium-10 production rate calibration for late-glacial northeastern North America [J].
Balco, Greg ;
Briner, Jason ;
Finkel, Robert C. ;
Rayburn, John A. ;
Ridge, John C. ;
Schaefer, Joerg M. .
QUATERNARY GEOCHRONOLOGY, 2009, 4 (02) :93-107
[9]   Himalayan tectonics explained by extrusion of a low-viscosity crustal channel coupled to focused surface denudation [J].
Beaumont, C ;
Jamieson, RA ;
Nguyen, MH ;
Lee, B .
NATURE, 2001, 414 (6865) :738-742
[10]  
Bierman P, 1996, EARTH SURF PROC LAND, V21, P125, DOI 10.1002/(SICI)1096-9837(199602)21:2<125::AID-ESP511>3.0.CO