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Nils Tack

Publications and source records attributed to Nils Tack.

2 recordsLinked to original sources

Hydrodynamic modulation via cupping in a crustacean-inspired propulsor

Shrimp, like many invertebrates swimming at intermediate Reynolds numbers ($Re$), rely on the interplay between morphology and kinematics to generate thrust while producing sufficient lift to overcome their negative buoyancy. Shrimp pleopods branch into an endopodite and an exopodite, whose relative motion varies the projected surface area during the swimming cycle. For this mechanism to function, the exopodite must be cambered relative to the endopodite at a set cupping angle $\zeta$, which partially decouples the effective angle of attack of the exopodite from the overall leg kinematics. Here, we investigate the role of $\zeta$ in modulating thrust$-$lift balance during steady forward locomotion. Using a dynamically scaled (40$\times$) robotic pleopod, we systematically varied $\zeta$ from $0^\circ$ to $80^\circ$, measured hydrodynamic forces, and performed particle image velocimetry at $Re = 968$. Moderate cupping angles ($\zeta = 20^\circ-40^\circ$), consistent with biological observations, provide optimal thrust$-$lift balance. At these angles, the exopodite abducts rapidly during the power stroke, maximizing projected area at peak flow velocity, and adducts early during the return stroke, minimizing resistive drag. A reduced-order force model reveals that the exopodite contributes 52$-$62\% of total lift, particularly at intermediate $\zeta$, where a leading-edge vortex (LEV) forms and remains attached throughout the power stroke. At extreme cupping angles, LEV coherence degrades and force production weakens. These findings demonstrate that shrimp pleopods function as hybrid propulsors exploiting both drag- and lift-based forces, and that $\zeta$ serves as a geometric control parameter capable of tuning thrust$-$lift balance independently of stroke kinematics.

physics.flu-dyn

Pleobot: a modular robotic solution for metachronal swimming

Metachronal locomotion is a widespread swimming mode used by aquatic swarming organisms to achieve performance and maneuverability in the intermediate Reynolds number regime. Our understanding of the mechanisms driving these abilities is limited due to the challenges of studying live organisms. Designs inspired by nature present an approach for developing small and maneuverable underwater self-propelled robots. Here, we present the design, manufacture, and validation of the \emph{Pleobot} --a unique krill-inspired robotic swimming appendage constituting the first platform to study metachronal propulsion comprehensively. Our methods combine a multi-link 3D printed mechanism with active and passive actuation of the joints to generate natural kinematics. Using force and fluid flow measurements in parallel with biological data, we show the link between the flow produced by the appendage and thrust. Further, we provide the first account of a leading-edge suction effect that contributes to lift during the power stroke. The repeatability and modularity of the \emph{Pleobot} enable the independent manipulation of particular motions and traits to test hypotheses central to understanding the relationship between form and function. Lastly, we outline future directions for the \emph{Pleobot}, including adapting morphological features. We foresee a broad appeal to a wide array of scientific disciplines, from fundamental studies in ecology, biology, and engineering, to developing new platforms for studying oceans across the solar system.

physics.flu-dyn