TY - GEN
T1 - Pneumatic flexible hollow shaft actuator with high speed and long stroke motion
AU - Wakana, Kazuhito
AU - Namari, Hiroaki
AU - Konyo, Masashi
AU - Tadokoro, Satoshi
PY - 2013
Y1 - 2013
N2 - A novel flexible pneumatic linear actuator is proposed in this paper. The proposed actuator realizes high-speed reciprocating motion by the moving part which has multiple rollers moves smoothly along the flexible hollow shaft. An effective application of this actuator is its use in endoscope robots and tether robots because cables of cameras or sensors can be passed inside the actuator by using the hollow structure. First, we discuss the physical model of the actuator pressurized in the resting state, and we provide an analysis of the generated force of the actuator. The model relates the generated force to the relevant design parameters such as the applied pressure, the material of the pressure chamber, the size of the moving part, etc. Second, we describe the measurement experiment of the generated force, and we show the validity of our model by comparing the experimental results with the analysis results. Third, we present the motion evaluation using a prototype of the actuator. We found that the maximum velocity of the moving parts is 9 m/s and that the moving parts can move smoothly even if the actuator is curved. Finally, we present the drive mechanism that uses the actuator, as an application example.
AB - A novel flexible pneumatic linear actuator is proposed in this paper. The proposed actuator realizes high-speed reciprocating motion by the moving part which has multiple rollers moves smoothly along the flexible hollow shaft. An effective application of this actuator is its use in endoscope robots and tether robots because cables of cameras or sensors can be passed inside the actuator by using the hollow structure. First, we discuss the physical model of the actuator pressurized in the resting state, and we provide an analysis of the generated force of the actuator. The model relates the generated force to the relevant design parameters such as the applied pressure, the material of the pressure chamber, the size of the moving part, etc. Second, we describe the measurement experiment of the generated force, and we show the validity of our model by comparing the experimental results with the analysis results. Third, we present the motion evaluation using a prototype of the actuator. We found that the maximum velocity of the moving parts is 9 m/s and that the moving parts can move smoothly even if the actuator is curved. Finally, we present the drive mechanism that uses the actuator, as an application example.
UR - http://www.scopus.com/inward/record.url?scp=84887275671&partnerID=8YFLogxK
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U2 - 10.1109/ICRA.2013.6630600
DO - 10.1109/ICRA.2013.6630600
M3 - Conference contribution
AN - SCOPUS:84887275671
SN - 9781467356411
T3 - Proceedings - IEEE International Conference on Robotics and Automation
SP - 357
EP - 363
BT - 2013 IEEE International Conference on Robotics and Automation, ICRA 2013
T2 - 2013 IEEE International Conference on Robotics and Automation, ICRA 2013
Y2 - 6 May 2013 through 10 May 2013
ER -