Title :
Mechanically programmable bend radius for fiber-reinforced soft actuators
Author :
Galloway, Kevin C. ; Polygerinos, Panagiotis ; Walsh, Conor J. ; Wood, Robert J.
Author_Institution :
Wyss Inst. at Harvard Univ., Cambridge, MA, USA
Abstract :
Established design and fabrication guidelines exist for achieving a variety of motions with soft actuators such as bending, contraction, extension, and twisting. These guidelines typically involve multi-step molding of composite materials (elastomers, paper, fiber, etc.) along with specially designed geometry. In this paper we present the design and fabrication of a robust, fiber-reinforced soft bending actuator where its bend radius and bending axis can be mechanically-programed with a flexible, selectively-placed conformal covering that acts to mechanically constrain motion. Several soft actuators were fabricated and their displacement and force capabilities were measured experimentally and compared to demonstrate the utility of this approach. Finally, a prototype two-digit end-effector was designed and programmed with the conformal covering to shape match a rectangular object. We demonstrated improved gripping force compared to a pure bending actuator. We envision this approach enabling rapid customization of soft actuator function for grasping applications where the geometry of the task is known a priori.
Keywords :
actuators; composite materials; control system synthesis; end effectors; moulding; bending axis; composite materials; conformal covering; constrain motion; design guideline; displacement capability; fabrication guideline; fiber-reinforced soft actuators; fiber-reinforced soft bending actuator; force capability; gripping force; mechanically programmable bend radius; multistep molding; rectangular object matching; two-digit end-effector design; Actuators; Fabrication; Force; Laminates; Rubber; Strain;
Conference_Titel :
Advanced Robotics (ICAR), 2013 16th International Conference on
Conference_Location :
Montevideo
DOI :
10.1109/ICAR.2013.6766586