Research
Bird-Inspired Spatial Flapping Wing Mechanism via Coupled Linkages with Single Actuator
arXiv:2604.07677v1 Announce Type: new Abstract: Spatial single-loop mechanisms such as Bennett linkages offer a unique combination of one-degree-of-freedom actuation and nontrivial spatial trajectorie
arXiv:2604.07677v1 Announce Type: new Abstract: Spatial single-loop mechanisms such as Bennett linkages offer a unique combination of one-degree-of-freedom actuation and nontrivial spatial trajectories, making them attractive for lightweight bio-inspired robotic design. However, although they appear simple and elegant, the geometric task-based synthesis is rather complicated and often avoided in engineering tasks due to the mathematical complexity involved. This paper presents a bird-inspired flapping-wing mechanism built from two coupled spatial four-bars, driven by a single motor. One linkage is actuated to generate the desired spatial sweeping stroke, while the serially coupled linkage remains unactuated and passively switches between extended and folded wing configurations over the stroke cycle. We introduce a simplified kinematic methodology for constructing Bennett linkages from quadrilaterals that contain a desired surface area and further leverage mechanically induced passive state switching. This architecture realizes a coordinated sweep-and-fold wing motion with a single actuation input, reducing weight and control complexity. A 3D-printed prototype is assembled and tested, demonstrating the intended spatial stroke and passive folding behavior.
Related
- Iteratively Learning Muscle Memory for Legged Robots to Master Adaptive and High Precision Locomotion
- Informed Hybrid Zonotope-based Motion Planning Algorithm
- 'Don't Do That!': Guiding Embodied Systems through Large Language Model-based Constraint Generation
- Complementary Filtering on SO(3) for Attitude Estimation with Scalar Measurements
Source: arXiv cs.RO | 2026-04-10