Multi-curvature viscous streaming: flow topology and particle manipulation
Yashraj Bhosale, Giridar Vishwanathan, Tejaswin Parthasarathy, Gabriel, Juarez, and Mattia Gazzola

TL;DR
This paper introduces a multi-curvature approach to viscous streaming, expanding flow topologies and enhancing particle manipulation capabilities for microfluidic applications.
Contribution
It demonstrates that multi-curvature geometries significantly broaden the flow regimes in viscous streaming, enabling new particle control techniques.
Findings
Numerically predicted flow topologies are experimentally validated.
Multi-curvature geometries improve particle filtering and separation.
Enhanced control over particle manipulation in microfluidic devices.
Abstract
Viscous streaming refers to the rectified, steady flows that emerge when a liquid oscillates around an immersed microfeature, typically a solid body or a bubble. The ability of such features to locally concentrate stresses produces strong inertial effects to which both fluid and immersed particles respond within short length (O(100) microns) and time (milliseconds) scales, rendering viscous streaming arguably the most efficient mechanism to exploit inertia at the microscale. Despite this potential, viscous streaming has been investigated in rather narrow conditions, mostly making use of bodies of uniform curvature (cylinders, spheres) for which induced flow topologies are constrained to only two regimes, classically referred to as single and double layer regimes. This severely limits the scope of potential applications, and sits in stark contrast to inertial focusing (the approach that…
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Taxonomy
TopicsMicrofluidic and Bio-sensing Technologies · Particle Dynamics in Fluid Flows · Micro and Nano Robotics
