Design of a flexible high performance quadcopter platform breaking the MAV endurance record with laser power beaming

Проектирование гибкой высокоэффективной платформы квадрокоптера, побившей рекорд продолжительности полёта MAV благодаря передаче энергии лазерным лучом
Michael Achtelik, Jan Stumpf, Daniel Gurdan, Klaus-Michael Doth
2011-09-01

assistive exercise controlcontinuous-state coupled elastic actuationelbow rehabilitation exoskeletonhuman-robot interactionvariable stiffness actuator
Focusing on the physical interaction between people and machines within safety constraints in versatile situations, this paper proposes a new, efficient actuation approach, continuous-state coupled elastic actuation (CCEA), to provide oncoming human-machine systems with an intrinsic programmable stiffness capacity to shape output force corresponding to the deviation between human motions and set positions of the system. As one of all the possible CCEA systems, a prototype of a 2-DOF coupled elastic actuator is designed to provide a compromise between performance and safety. Using a pair of antagonistic four-bar linkages, the inherent stiffness of the system can be adjusted dynamically. Compared to the state-of-the-art variable stiffness actuators, the CCEA system is unique in that it can achieve near zero mechanical stiffness in an efficient way. In addition, a human-robot interaction model is built to investigate the controlled bandwidth and safety of the CCEA system. For the application of assistive exercises, this study also proposes two kinds of controls for assistive exercises. Finally, a CCEA exoskeleton is built for elbow rehabilitation. Both simulations and experiments are conducted to show some desired properties of the proposed CCEA system.
1
A human–robot interaction model analyzes CCEA’s controlled bandwidth and safety, and two control strategies are proposed for assistive exercises.
2
A prototype 2-DOF coupled elastic actuator uses antagonistic four-bar linkages to dynamically adjust inherent stiffness while balancing performance and safety.
3
An elbow-rehabilitation exoskeleton based on CCEA was built, with simulations and experiments demonstrating desired system properties.
4
Compared with state-of-the-art variable-stiffness actuators, CCEA can achieve near-zero mechanical stiffness efficiently.
5
The abstract describes continuous-state coupled elastic actuation (CCEA), an actuation approach providing programmable stiffness that shapes output force according to human-position deviations.

continuous-state coupled elastic actuation (CCEA) system, including a 2-DOF coupled elastic actuator and elbow-rehabilitation exoskeleton

programmable dynamic stiffness, controlled bandwidth, safety, and assistive-exercise control of the CCEA system in human–robot interaction

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2011-09-01
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Authors
Michael Achtelik
Jan Stumpf
Daniel Gurdan
Klaus-Michael Doth
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