The ability to regulate forward speed is an essential requirement for flying animals. Here, we use a dynamically-scaled robot to study how flapping insects adjust their wing kinematics to regulate and stabilize forward flight. The results suggest that the steady-state lift and thrust requirements at different speeds may be accomplished with quite subtle changes in hovering kinematics, and that these adjustments act primarily by altering the pitch moment. This finding is consistent with prior hypotheses regarding the relationship between body pitch and flight speed in fruit flies. Adjusting the mean stroke position of the wings is a likely mechanism for trimming the pitch moment at all speeds, whereas changes in the mean angle of attack may ...
Abstract — The sparse sensing and limited articulation that are characteristic of human-engineered r...
From tiny flies to huge dragonflies, aerial locomotion of insects requires sophisticated biological ...
Insects produce a variety of exquisitely controlled manoeuvres during natural flight behaviour. Here...
The ability to regulate forward speed is an essential requirement for flying animals. Here, we use a...
The ability to regulate forward speed is an essential capability for flying animals. Here, we use a ...
Flying insects have evolved sophisticated sensory -motor systems, and here we argue that such system...
Flapping wings of insects can follow various complex-motion waveforms, influencing the flow structur...
Flying animals with flapping wings exhibit extraordinary ability to control their flight, they demon...
Unlike birds, insects lack control surfaces at the tail and hence most insects modify their wing kin...
Flying insects exhibit a remarkable ability to fly in environments that are small, cluttered and hig...
The flight of insects is a beautiful example of an organism's complex interaction with its physical ...
Abstract: An experimental investigation of the effects of varying flapping kinematics on the mean li...
Most flying animals produce aerodynamic forces by flapping their wings back and forth with a complex...
From tiny flies to huge dragonflies, aerial locomotion of insects requires sophisticated biological ...
Most flying animals produce aerodynamic forces by flapping their wings back and forth with a complex...
Abstract — The sparse sensing and limited articulation that are characteristic of human-engineered r...
From tiny flies to huge dragonflies, aerial locomotion of insects requires sophisticated biological ...
Insects produce a variety of exquisitely controlled manoeuvres during natural flight behaviour. Here...
The ability to regulate forward speed is an essential requirement for flying animals. Here, we use a...
The ability to regulate forward speed is an essential capability for flying animals. Here, we use a ...
Flying insects have evolved sophisticated sensory -motor systems, and here we argue that such system...
Flapping wings of insects can follow various complex-motion waveforms, influencing the flow structur...
Flying animals with flapping wings exhibit extraordinary ability to control their flight, they demon...
Unlike birds, insects lack control surfaces at the tail and hence most insects modify their wing kin...
Flying insects exhibit a remarkable ability to fly in environments that are small, cluttered and hig...
The flight of insects is a beautiful example of an organism's complex interaction with its physical ...
Abstract: An experimental investigation of the effects of varying flapping kinematics on the mean li...
Most flying animals produce aerodynamic forces by flapping their wings back and forth with a complex...
From tiny flies to huge dragonflies, aerial locomotion of insects requires sophisticated biological ...
Most flying animals produce aerodynamic forces by flapping their wings back and forth with a complex...
Abstract — The sparse sensing and limited articulation that are characteristic of human-engineered r...
From tiny flies to huge dragonflies, aerial locomotion of insects requires sophisticated biological ...
Insects produce a variety of exquisitely controlled manoeuvres during natural flight behaviour. Here...