TY - JOUR
T1 - An experimental study of the sensorized strain wave gear RT1-T and its capabilities for torque control in robotic joints
AU - Schuller, Robert
AU - Reinecke, Jens
AU - Maurenbrecher, Henry
AU - Ott, Christian
AU - Albu-Schaeffer, Alin
AU - Deutschmann, Bastian
AU - Buettner, Fred
AU - Heim, Jens
AU - Benkert, Frank
AU - Glueck, Stefan
N1 - Publisher Copyright:
Copyright © 2024 Schuller, Reinecke, Maurenbrecher, Ott, Albu-Schaeffer, Deutschmann, Buettner, Heim, Benkert and Glueck.
PY - 2024
Y1 - 2024
N2 - The idea of sensorizing a strain wave gear to measure the transmitted torque has been reported since the 1980s. The strain in the elastic flex spline is typically measured by strain gages attached to it. The resulting voltages relate to the transmitted torque in the gear. However, periodic inaccuracies in the measured torque signal (sensing ripple), resulting from positioning inaccuracies of strain gages on the flex spline, prevented this technology from being used outside a lab environment. Regardless of these difficulties, measuring the torque directly in the strain wave gear would bring many advantages, especially in robotic applications, where design space is highly limited. Traditionally, robotic joints are equipped with link-sided torque sensors, which reduce the available design volume, lower the joint stiffness, and require complex cable routing. This paper presents an experimental study of a novel sensorized strain wave gear named RT1-T, which was developed by Schaeffler Technologies. The study was implemented on a joint testbed, including a high-resolution reference torque sensor at the link side. In addition to the measurement accuracy and linearity, a torque ripple analysis is performed. The joint torque control capabilities are determined along dynamic trajectories and compared to the performance achieved with a link-sided reference sensor. The sensor employed in the testbed has a static torque error of 0.42 Nm and an average closed-loop torque control error of 0.65 Nm above the reference sensor.
AB - The idea of sensorizing a strain wave gear to measure the transmitted torque has been reported since the 1980s. The strain in the elastic flex spline is typically measured by strain gages attached to it. The resulting voltages relate to the transmitted torque in the gear. However, periodic inaccuracies in the measured torque signal (sensing ripple), resulting from positioning inaccuracies of strain gages on the flex spline, prevented this technology from being used outside a lab environment. Regardless of these difficulties, measuring the torque directly in the strain wave gear would bring many advantages, especially in robotic applications, where design space is highly limited. Traditionally, robotic joints are equipped with link-sided torque sensors, which reduce the available design volume, lower the joint stiffness, and require complex cable routing. This paper presents an experimental study of a novel sensorized strain wave gear named RT1-T, which was developed by Schaeffler Technologies. The study was implemented on a joint testbed, including a high-resolution reference torque sensor at the link side. In addition to the measurement accuracy and linearity, a torque ripple analysis is performed. The joint torque control capabilities are determined along dynamic trajectories and compared to the performance achieved with a link-sided reference sensor. The sensor employed in the testbed has a static torque error of 0.42 Nm and an average closed-loop torque control error of 0.65 Nm above the reference sensor.
KW - collaborative robot
KW - experimental study
KW - joint torque sensing
KW - robotic joint
KW - sensorized strain wave gear
KW - torque control
UR - http://www.scopus.com/inward/record.url?scp=85201798576&partnerID=8YFLogxK
U2 - 10.3389/frobt.2024.1416360
DO - 10.3389/frobt.2024.1416360
M3 - Article
AN - SCOPUS:85201798576
SN - 2296-9144
VL - 11
JO - Frontiers Robotics AI
JF - Frontiers Robotics AI
M1 - 1416360
ER -