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January 25, 2026Small2 citations

Synergistic Morphology‐Material Design in a Hierarchical Composite Surface for High‐Efficiency Drag Reduction

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XCXianxian CuiXLXiaolin LiuDCDengke Chen

Key Points

  • The aim is to explore the synergistic effects of a hierarchical composite surface in reducing drag during turbulent flow.
  • Developed a biomimetic hierarchical composite surface (BHCS) using multi-material 3D printing and spray-coating.
  • Integrated denticle arrays, a flexible substrate, and interfacial chemistry in design.
  • Conducted systematic experiments and numerical simulations to assess performance.
  • The optimized BHCS achieved a maximum drag reduction rate of 18.65% in underwater flow.
  • Stable longitudinal vortices induced by denticles reorganized near-wall turbulence.
  • Flexible substrate enhanced reverse pore flow, creating localized pressure zones that contribute to forward thrust.

Abstract

ABSTRACT While the riblet structures on shark skin are known to reduce frictional drag in turbulent flow, the synergistic contributions from the underlying cavity region and the flexible dermis remain inadequately explored, limiting the performance of existing biomimetic surfaces. To move beyond single‐mechanism imitation, we present a biomimetic hierarchical composite surface (BHCS) featuring a normal elastic gradient that integrates denticle arrays, a flexible substrate, and interfacial chemistry. This integrated design is achieved through a multi‐material 3D printing and spray‐coating process. The optimized BHCS achieves a maximum drag reduction (DR) rate of 18.65% in underwater flow. Systematic experiments and numerical simulations reveal that this superior performance stems from a synergistic mechanism: the denticles induce stable longitudinal vortices that reorganize near‐wall turbulence, while the flexible substrate enhances a unique reverse pore flow within the inter‐denticle cavities through deformation and directs it against upstream structures. This impingement creates localized zones of elevated pressure, resulting in a net forward thrust that reduces the overall drag. Meanwhile, the surface‐grafted PDMS molecular brush forms a liquid‐like interfacial layer and increases surface hydrophobicity, thereby reducing interfacial shear. This research demonstrates a novel biomimetic design concept in which the synergy of multiple mechanisms leads to optimized DR.

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Cite This Study

Cui et al. (2026) studied this question.

synapsesocial.com/papers/6975b38dfeba4585c2d6f057https://doi.org/10.1002/smll.202514852
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Fabrication and Drag Reduction Performance of Bionic Surfaces Featuring Staggered Shield Scale Structures2026 · 1 citations
  2. 2Denticle-inspired biomimetic non-smooth surfaces: Advances in drag reduction and antifouling applications2026
  3. 3Improved drag reduction properties of biomimetic surface with cross-scale arrayed structures based on a comparative simulation study2026 · 1 citations
  4. 4Effective Underwater Drag Reduction: A Butterfly Wing Scale-Inspired Superhydrophobic Surface2024 · 25 citations
  5. 5Drag reduction capacity of multi‐scale and multi‐level riblet in turbulent flow2024 · 3 citations