4.7 Article

Optimal thrust efficiency for a tandem wing in forward flight using varied hindwing kinematics of a damselfly

Journal

PHYSICS OF FLUIDS
Volume 34, Issue 6, Pages -

Publisher

AIP Publishing
DOI: 10.1063/5.0093208

Keywords

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Funding

  1. National Taiwan University [NTU-CC-110L891401]
  2. Taiwan Ministry of Science and Technology [MOST 109-2221-E-002-201-MY2]

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The optimal hindwing kinematics of a damselfly have been revealed, providing important insights for the design of bio-inspired micro-aerial vehicles.
We reveal the hindwing kinematics of a damselfly that are optimal for the thrust efficiency, which is a major concern of a bio-inspired micro-aerial vehicle. The parameters of the hindwing kinematics include stroke-plane angle, rotational duration, and wing phase. We developed a numerical self-propulsion model to investigate the thrust efficiency. The correlation analysis and optimal analysis were used to investigate the relation between varied hindwing kinematics and thrust efficiency. The results show that the optimal wing kinematics of the hindwing occur at a large stroke-plane angle and a small rotational duration in which the thrust efficiency might increase up to 22% compared with the original motion of the hindwing. The stroke-plane angle is highly positively correlated with thrust efficiency, whereas the rotational duration is moderately negatively correlated; the wing phase has the least correlation. The flow-field analysis indicates that a large stroke-plane angle combined with a small rotational duration has a weak forewing-hindwing interaction, generating a small resulting force on the hindwing, but the force comprises a small negative horizontal force, which hence increases the thrust efficiency. In a flight strategy for a micro-aerial vehicle, a large stroke-plane angle combined with a small rotational duration yields an optimal thrust efficiency, which is suitable for a flight of long duration. A small stroke-plane angle combined with a large rotation is suitable for hovering flight because it leads to a large negative horizontal force and a small vertical force. This work hence provides insight into the design of a tandem-wing micro-aerial vehicle. Published under an exclusive license by AIP Publishing.

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