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Equivalent Roughness Height for Nondensely Distributed Submerged Obstacles in Open Channel Flows

Cheng, Nian-Sheng ; Zheng, Keqi; Lu, Yesheng 1
1 Institut für Wasser und Umwelt (IWU), Karlsruher Institut für Technologie (KIT)

Abstract:

The estimation of equivalent sand-grain roughness height (𝑘$_𝑠$) for open channel flows is well-established for densely packed roughness but remains ambiguous for nondensely distributed submerged obstacles. This study presents a practical model to predict 𝑘𝑠 for such configurations. The flow physics around these obstacles is governed by complex separation phenomena and vortex dynamics; however, direct simulation of these details is impractical for routine engineering prediction. Instead, we adopt a pragmatic bulk-resistance approach: a validated friction law, originally derived for densely packed gravel beds, is extended to characterize total resistance in flows over nondensely distributed obstacles. Starting from this extended friction law, we inversely derive 𝑘𝑠 from experimental data encompassing three representative roughness elements, namely, cylindrical rods, cubes, and triangular prisms, which were selected to span slender vegetation models and engineered stocky bodies with distinct geometric and flow-separation behaviors. Analysis revealed that 𝑘$_𝑠$ is proportional to obstacle height (𝑘) and dependent on the frontal roughness density (𝜆$_𝑓$), yielding a generalized empirical scaling relation: 𝑘$_𝑠$=4⁢𝜆$\frac{1/3}{𝑓}$⁢𝑘. ... mehr


Originalveröffentlichung
DOI: 10.1061/JHEND8.HYENG-15008
Zugehörige Institution(en) am KIT Institut für Wasser und Umwelt (IWU)
Publikationstyp Zeitschriftenaufsatz
Publikationsdatum 01.11.2026
Sprache Englisch
Identifikator ISSN: 0733-9429, 0044-796X, 1943-7900, 2690-2524
KITopen-ID: 1000197074
Erschienen in Journal of Hydraulic Engineering
Verlag American Society of Civil Engineers (ASCE)
Band 152
Heft 6
Seiten 1
Vorab online veröffentlicht am 03.09.2026
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