Affiliation:
1. School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Ave, Singapore 639798, Singapore
2. Schaeffler Hub for Advanced Research at NTU, Nanyang Technological University, 50 Nanyang Ave, Singapore 639798, Singapore
Abstract
Our study presents a novel design for a cable-driven robotic arm, emphasizing low cost, low inertia movement, and long-term cable durability. The robotic arm shares similar specifications with the UR5 robotic arm, featuring a total of six degrees of freedom (DOF) distributed in a 1:1:1:3 ratio at the arm base, shoulder, elbow, and wrist, respectively. The three DOF at the wrist joints are driven by a cable system, with heavy motors relocated from the end-effector to the shoulder base. This repositioning results in a lighter cable-actuated wrist (weighing 0.8 kg), which enhances safety during human interaction and reduces the torque requirements for the elbow and shoulder motors. Consequently, the overall cost and weight of the robotic arm are reduced, achieving a payload-to-body weight ratio of 5:8.4 kg. To ensure good positional repeatability, the shoulder and elbow joints, which influence longer moment arms, are designed with a direct-drive structure. To evaluate the design’s performance, tests were conducted on loading capability, cable durability, position repeatability, and manipulation. The tests demonstrated that the arm could manipulate a 5 kg payload with a positional repeatability error of less than 0.1 mm. Additionally, a novel cable tightener design was introduced, which served dual functions: conveniently tightening the cable and reducing the high-stress concentration near the cable locking end to minimize cable loosening. When subjected to an initial cable tension of 100 kg, this design retained approximately 80% of the load after 10 years at a room temperature of 24 °C.
Funder
Agency for Science, Technology and Research
Schaeffler Hub for Advanced Research at NTU
Reference54 articles.
1. Soft robotic grippers: A review on technologies, materials, and applications;AboZaid;Sens. Actuators A Phys.,2024
2. Nguyen, V.P., Dhyan, S.B., Mai, V., Han, B.S., and Chow, W.T. (2023). Bioinspiration and Biomimetic Art in Robotic Grippers. Micromachines, 14.
3. Advanced Technologies and Applications of Robotic Soft Grippers;Qu;Adv. Mater. Technol.,2024
4. A 3D Printing-Enabled Artificially Innervated Smart Soft Gripper with Variable Joint Stiffness;Goh;Adv. Mater. Technol.,2023
5. Dynamic Modeling and Control of Deformable Linear Objects for Single-Arm and Dual-Arm Robot Manipulations;Lv;IEEE Trans. Robot.,2022