Existence of three distinct scaling regimes in self-propelled rigid pitching airfoil

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Joshi, Rakshita, Arakeri, Jaywant
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866912427085398016
author Joshi, Rakshita
Arakeri, Jaywant
author_facet Joshi, Rakshita
Arakeri, Jaywant
contents We investigate the effect of imposed kinematics on the self-propulsion of the NACA0015 symmetric airfoil section subject to sinusoidal pitching. We employ a rotary apparatus capable of achieving self-propulsion. A power-spring-based crank-rocker mechanism actuates the airfoil. Three distinct scaling relations emerge, which relate the self-propulsion Reynolds number $Re_s$ to the frequency Reynolds number $Re_f$, the amplitude of pitching $θ_0$, and the location of the pitching point, $p$. When pitched near the center, a \textit{linear} scaling emerges with $Re_s \sim Re_f θ_0$. When pitched near the leading edge, a \textit{power} scaling emerges with $Re_s \sim (1-2p)(Re_f θ_0)^{3/2}$ for low amplitude pitching and a \textit{separable} scaling emerges with $Re_s \sim (1-2p)^{1/2}Re_fθ_0^{1/2}$ for moderate to high amplitude pitching. These relations are consistent with the scaling relations derived from balancing inviscid thrust with viscous drag, pressure drag, and enhanced pressure drag for the \textit{power}, \textit{separable}, and \textit{linear} regimes, respectively. We find that different vortical patterns in the wake are directly correlated to the airfoil's self-propulsion speed which essentially determines the spatial separation between the shed vortices. Our findings provide a comprehensive framework for understanding the self-propulsion of rigid pitching airfoils across a wide range of parameters validated experimentally.
format Preprint
id arxiv_https___arxiv_org_abs_2401_12518
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Existence of three distinct scaling regimes in self-propelled rigid pitching airfoil
Joshi, Rakshita
Arakeri, Jaywant
Fluid Dynamics
Biological Physics
We investigate the effect of imposed kinematics on the self-propulsion of the NACA0015 symmetric airfoil section subject to sinusoidal pitching. We employ a rotary apparatus capable of achieving self-propulsion. A power-spring-based crank-rocker mechanism actuates the airfoil. Three distinct scaling relations emerge, which relate the self-propulsion Reynolds number $Re_s$ to the frequency Reynolds number $Re_f$, the amplitude of pitching $θ_0$, and the location of the pitching point, $p$. When pitched near the center, a \textit{linear} scaling emerges with $Re_s \sim Re_f θ_0$. When pitched near the leading edge, a \textit{power} scaling emerges with $Re_s \sim (1-2p)(Re_f θ_0)^{3/2}$ for low amplitude pitching and a \textit{separable} scaling emerges with $Re_s \sim (1-2p)^{1/2}Re_fθ_0^{1/2}$ for moderate to high amplitude pitching. These relations are consistent with the scaling relations derived from balancing inviscid thrust with viscous drag, pressure drag, and enhanced pressure drag for the \textit{power}, \textit{separable}, and \textit{linear} regimes, respectively. We find that different vortical patterns in the wake are directly correlated to the airfoil's self-propulsion speed which essentially determines the spatial separation between the shed vortices. Our findings provide a comprehensive framework for understanding the self-propulsion of rigid pitching airfoils across a wide range of parameters validated experimentally.
title Existence of three distinct scaling regimes in self-propelled rigid pitching airfoil
topic Fluid Dynamics
Biological Physics
url https://arxiv.org/abs/2401.12518