Climate-Driven Topographic Asymmetry Enhanced by Glaciers: Implications for Drainage Reorganization in Glacial Landscapes

IF 4.6 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Geophysical Research Letters Pub Date : 2024-07-04 DOI:10.1029/2024GL109087
Jingtao Lai, Kimberly Huppert
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Abstract

Climate contrasts across drainage divides, such as orographic precipitation, are ubiquitous in mountain ranges, and as a result, mountain topography is often asymmetric. During glacial periods, these climate gradients can generate asymmetric glaciation, which may modify topographic asymmetry and drive divide migration during glacial-interglacial cycles. Here we quantify topographic asymmetry caused by asymmetric glaciation and its sensitivity to different climate scenarios. Using an analytical model of a steady-state glacial profile, we find that the degree of topographic asymmetry is primarily controlled by differences in the equilibrium line altitude across the divide. Our results show that glacial erosion can respond to the same climate asymmetry differently than fluvial erosion. When there are precipitation differences across the divide, glacial erosion produces greater topographic asymmetry than fluvial erosion, all else equal. These findings suggest that glaciations may promote drainage reorganization and landscape transience in intermittently glaciated mountain ranges.

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气候驱动的地形不对称因冰川而增强:冰川地貌对排水系统重组的影响
横跨排水分界线的气候反差(如地形降水)在山脉中无处不在,因此,山脉地形通常是不对称的。在冰川期,这些气候梯度会产生非对称冰川作用,从而改变地形的非对称性,并推动冰川-间冰期周期中的分水岭迁移。在这里,我们量化了非对称冰川作用造成的地形不对称及其对不同气候情景的敏感性。利用稳态冰川剖面的分析模型,我们发现地形不对称的程度主要受控于分水岭上平衡线海拔高度的差异。我们的研究结果表明,冰川侵蚀对同一气候不对称的反应与河川侵蚀不同。当分水岭上的降水量存在差异时,在其他条件相同的情况下,冰川侵蚀产生的地形不对称性要大于河流侵蚀。这些发现表明,冰川可能会促进间歇性冰川山脉的排水重组和地貌瞬变。
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来源期刊
Geophysical Research Letters
Geophysical Research Letters 地学-地球科学综合
CiteScore
9.00
自引率
9.60%
发文量
1588
审稿时长
2.2 months
期刊介绍: Geophysical Research Letters (GRL) publishes high-impact, innovative, and timely research on major scientific advances in all the major geoscience disciplines. Papers are communications-length articles and should have broad and immediate implications in their discipline or across the geosciences. GRLmaintains the fastest turn-around of all high-impact publications in the geosciences and works closely with authors to ensure broad visibility of top papers.
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