An Adjoint-Based Approach to Study a Flexible Flapping Wing in Pitching-Rolling Motion

ORAL

Abstract

Flapping-wing aerodynamics, with advantages in agility, efficiency, and hovering capability, has been the choice of many flyers in nature. However, the study of bio-inspired flapping-wing propulsion is often hindered by the problem’s large control space with different wing kinematics and deformation. The adjoint-based approach reduces largely the computational cost to a feasible level by solving an inverse problem. Facing the complication from moving boundaries, non-cylindrical calculus provides an easy extension of traditional adjoint-based approach to handle the optimization involving moving boundaries. The improved adjoint method with non-cylindrical calculus for boundary treatment is first applied on a rigid pitching-rolling plate, then extended to a flexible one with active deformation to further increase its propulsion efficiency. The comparison of flow dynamics with the initial and optimal kinematics and deformation provides a unique opportunity to understand the flapping-wing mechanism.

*Supported by AFOSR and ARL

Authors

  • Kun Jia

    • Kansas State University
  • Mingjun Wei

    • Kansas State University
  • Min Xu

    • New Mexico State University
  • Chengyu Li

    • University of Virginia
  • Haibo Dong

    • University of Virginia