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Updated: Oct 7, 2026

Fabrication, Operation and Flow Visualization in Surface-acoustic-wave-driven Acoustic-counterflow Microfluidics
Published on: August 27, 2013
Programming flow anisotropy in hydrodynamic metamaterials via series-parallel equivalent fluidic networks
Haixiang Pang1, Yijia Ma2, Yu-Hong Dong1
1Shanghai Institute of Applied Mathematics and Mechanics, School of Mechanics and Engineering Science, Shanghai Key Laboratory of Mechanics in Energy Engineering, Shanghai University, Shanghai 200072, China. panghx@shu.edu.cn.
Abstract:
Precise microflow control underpins microfluidic technologies in precision medicine, yet conventional approaches rely on anisotropic materials or external fields, limiting fabrication simplicity and scalability. Unlike transformation-based or data-driven approaches, we demonstrate that flow anisotropy can be programmed through the layered organization of locally homogeneous, isotropic media via a series-parallel equivalent fluidic network (SPEFN) realized as single-medium metamaterials (SMMs). SPEFN provides an analytically invertible mapping from network topology to the macroscopic effective-viscosity tensor, from which a connectivity-controlled anisotropy law and an exact non-disturbance condition emerge as direct analytical consequences. We experimentally realize three monolithic SMM devices: a spiral-layered director, an annular cloak, and a fan-shaped concentrator. Particle-tracking velocimetry confirms the predicted responses across all devices, including ≈30° streamline reorientation and a concentrator velocity ratio of 1.37 versus a predicted value of 1.38. The cloak exhibits higher apparent suppression than predicted; tracer retention or adhesion visible in Movie S1 may partly explain this difference. The system further shows robust performance under strongly non-uniform inflow and sub-percent fabrication tolerances.
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