Lithospheric Flexure Controls on Geomorphology, Hydrology, and River Chemistry in the Andean Foreland Basin

IF 8.3 Q1 GEOSCIENCES, MULTIDISCIPLINARY
AGU Advances Pub Date : 2023-10-11 DOI:10.1029/2023AV000924
Marisa Repasch, Joel S. Scheingross, Kristen L. Cook, Dirk Sachse, Sophia Dosch, Oscar Orfeo, Niels Hovius
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Abstract

Tectonics exerts a strong control over the morphology of Earth's surface that is apparent in active mountain belts. In lowland areas, subtle processes like lithospheric flexure and isostatic rebound can impact Earth surface dynamics, hydrologic connectivity, and topography, suggesting that geomorphic and hydrologic analyses can shed light on underlying lithospheric properties. Here we examine the effect of lithospheric flexure on the geomorphology, hydrology, and river water chemistry of the Rio Bermejo fluvial system in the east Andean foreland basin of northern Argentina. Results show that proximal to the mountain front, foredeep basin subsidence causes sedimentation along a braided channel belt that is superelevated relative to the surrounding flood basin. During floods, water flows from the superelevated channel into the groundwater reservoir, causing a net loss of discharge with distance downstream. Further downstream, forebulge uplift forces channel narrowing, high lateral migration rates, and incision up to 13 m into older river deposits. This incision locally allows groundwater flow into the river, causing a ∼20% increase in river solute load. Groundwater emerges from the forebulge into the backbulge, predominantly as spring-fed channels. Here, channel migration rates decrease, suggesting a switch from net uplift to subsidence that reduces the depth to the groundwater table. This analysis shows that subtle lithospheric flexure can have significant effects on river channel morphology that determine hydrologic flow paths, and ultimately influence geochemical and ecological patterns. We suggest that these effects may elucidate lithospheric properties that are otherwise inferred from bulk geophysical observations.

Abstract Image

安第斯前陆盆地岩石圈弯曲对地貌、水文和河流化学的控制
构造学对地球表面的形态施加了强有力的控制,这在活跃的山脉带中是显而易见的。在低地地区,岩石圈弯曲和均衡反弹等微妙过程会影响地球表面动力学、水文连通性和地形,这表明地貌和水文分析可以揭示潜在的岩石圈特性。在这里,我们研究了岩石圈弯曲对阿根廷北部东安第斯前陆盆地Rio Bermejo河系的地貌、水文和河水化学的影响。结果表明,在山前附近,前深盆地沉降导致沿辫状河道带沉积,该辫状河道相对于周围的洪泛盆地来说是超高的。在洪水期间,水从高架渠道流入地下水库,造成下游净流量损失。更下游,前池隆起迫使河道变窄,侧向迁移率高,并向较老的河流沉积物切割长达13米。该切口局部允许地下水流入河流,导致河流溶质负荷增加~20%。地下水从前隆起处流入后隆起,主要以泉水补给通道的形式出现。在这里,河道迁移率降低,这表明从净抬升到沉降的转变,从而降低了地下水位的深度。这一分析表明,微妙的岩石圈弯曲会对河道形态产生重大影响,从而决定水文流动路径,并最终影响地球化学和生态模式。我们认为,这些效应可能阐明了岩石圈的性质,而这些性质是从整体地球物理观测中推断出来的。
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CiteScore
2.90
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