Home /Research /A surgical parallel continuum manipulator with a cable-driven grasper
SURGICAL

A surgical parallel continuum manipulator with a cable-driven grasper

Andrew L. Orekhov, Caroline E. Bryson, John Till, Scotty Chung, D. Caleb Rucker

Year
2015
Citations
15

Abstract

In this paper, we present the design, construction, and control of a six-degree-of-freedom (DOF), 12 mm diameter, parallel continuum manipulator with a 2-DOF, cable-driven grasper. This work is a proof-of-concept first step towards miniaturization of this type of manipulator design to provide increased dexterity and stability in confined-space surgical applications, particularly for endoscopic procedures. Our robotic system consists of six superelastic NiTi (Nitinol) tubes in a standard Stewart-Gough configuration and an end effector with 180 degree motion of its two jaws. Two Kevlar cables pass through the centers of the tube legs to actuate the end effector. A computationally efficient inverse kinematics model provides low-level control inputs to ten independent linear actuators, which drive the Stewart-Gough platform and end-effector actuation cables. We demonstrate the performance and feasibility of this design by conducting open-loop range-of-motion tests for our system.

Keywords

Parallel manipulatorRobot end effectorActuatorKinematicsStewart platformInverse kinematicsControl theory (sociology)MiniaturizationComputer scienceEngineering

Related papers

Browse all SURGICAL papers