Divergent drainage-scale responses to lithological heterogeneity

Despite widespread recognition that lithological heterogeneity helps shape river networks, a widely applicable topographic diagnostic for whether and where lithological contrasts drive drainage reorganization is still lacking. Here, we introduce a drainage-network metric, the rock proportion-contributing area order (RP-CAO) relationship, and further show that responses diverge with drainage scale: small, low-discharge channels divert around resistant rocks, whereas large, high-discharge rivers largely maintain their course and incise through them. We capture this divergence by tracking rock-type enrichment along the network as a function of contributing area. Across landscape evolution simulations and natural river networks, the enrichment-scale relation forms a robust V-shaped pattern that quantifies these end members. Applied to networks along the eastern Tibetan Plateau, it isolates where lithology most strongly localizes rerouting and divide mobility despite strong spatial variability in tectonic and climatic influences. Requiring only topography and lithological maps, the framework enables comparable tests of drainage reorganization driven by spatially discrete lithological contrasts across mountain belts worldwide.

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Publication Details

Journal
Science Advances
Published
2026-09-18
DOI
https://doi.org/10.1126/sciadv.aeg4913
Primary Topic
Groundwater and Watershed Analysis
Type
article
Field-Weighted Citation Impact
0.00

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article

Divergent drainage-scale responses to lithological heterogeneity

Simon M. Mudd, Mikaël Attal, Huiping Zhang, Yifei Li et al.
Science Advances
Groundwater and Watershed Analysis
article

Divergent drainage-scale responses to lithological heterogeneity

Simon M. Mudd, Mikaël Attal, Huiping Zhang, Yifei Li, Peizhen Zhang, Xudong Zhao
article en

Abstract

Despite widespread recognition that lithological heterogeneity helps shape river networks, a widely applicable topographic diagnostic for whether and where lithological contrasts drive drainage reorganization is still lacking. Here, we introduce a drainage-network metric, the rock proportion-contributing area order (RP-CAO) relationship, and further show that responses diverge with drainage scale: small, low-discharge channels divert around resistant rocks, whereas large, high-discharge rivers largely maintain their course and incise through them. We capture this divergence by tracking rock-type enrichment along the network as a function of contributing area. Across landscape evolution simulations and natural river networks, the enrichment-scale relation forms a robust V-shaped pattern that quantifies these end members. Applied to networks along the eastern Tibetan Plateau, it isolates where lithology most strongly localizes rerouting and divide mobility despite strong spatial variability in tectonic and climatic influences. Requiring only topography and lithological maps, the framework enables comparable tests of drainage reorganization driven by spatially discrete lithological contrasts across mountain belts worldwide.

Science AdvancesVol. 12(38)
Sun Yat-sen University (CN), China Earthquake Administration (CN), University of Edinburgh (GB)
National Natural Science Foundation of China
Openalex Percentile: Top 18%
Groundwater and Watershed Analysis
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Divergent drainage-scale responses to lithological heterogeneity — Simon M. Mudd, Mikaël Attal, et al. · Science Advances (2026) | TGRS Research Map | TGRS