Title :
Resonance-driven dynamic manipulation: Dribbling and juggling with elastic beam
Author :
Pekarovskiy, Alexander ; Saluja, Kunal ; Sarkar, Rituparna ; Buss, Martin
Author_Institution :
Inst. of Autom. Control Eng., Tech. Univ. Munchen, Munich, Germany
fDate :
May 31 2014-June 7 2014
Abstract :
This paper presents a new device and a method for dynamic manipulation. The device consists of a planar robotic arm and an elastic beam as an end-effector. Using it the elastic end-effector will tend to increase performance and energy efficiency while executing dynamic and repetitive tasks. Through the control of the beam vibration and resonant modes, we modify the state of manipulated objects. For lightweight objects the control is provided through the intermittent contacts without changing dynamics of the beam. However, we show that by using proper synchronization technique continuous-phase contacts are also possible. Juggling and dribbling of a ball are considered to be an alternating non-prehensile catching and throwing task. Such alternating decelerating and accelerating impacts on the ball and the curvature of the beam at the time of impact will stabilize the cyclic orbit of the ball. By proper analysis of continuous-time contact and dynamics of the beam we establish a rhythmic movement of the system. With the variation of frequency and amplitude of the beam it is possible to switch between different dynamic actions such as juggling, dribbling, throwing, catching and balancing.
Keywords :
beams (structures); continuous time systems; elasticity; end effectors; manipulator dynamics; mechanical contact; stability; vibration control; alternating decelerating-accelerating impact; balancing; ball cyclic orbit stabilization; ball dribbling; ball juggling; beam amplitude; beam curvature; beam frequency; beam vibration control; continuous-phase contacts; continuous-time contact; dynamic actions; dynamic tasks; elastic beam; elastic end-effector; energy efficiency; intermittent contact; nonprehensile catching task; object manipulation; planar robotic arm; repetitive tasks; resonance-driven dynamic manipulation; resonant mode; synchronization technique; system rhythmic movement; throwing task; Acceleration; Educational robots; Robot kinematics; Robot sensing systems; Trajectory; Vibrations;
Conference_Titel :
Robotics and Automation (ICRA), 2014 IEEE International Conference on
Conference_Location :
Hong Kong
DOI :
10.1109/ICRA.2014.6906967