DocumentCode
2680558
Title
Micro artificial muscle fiber using NiTi spring for soft robotics
Author
Kim, Sangbae ; Hawkes, Elliot ; Cho, Kyujin ; Jolda, Matthew ; Foley, Joe ; Wood, Robert
Author_Institution
Harvard Microrobotics Lab., Harvard Univ., Cambridge, MA, USA
fYear
2009
fDate
10-15 Oct. 2009
Firstpage
2228
Lastpage
2234
Abstract
For a new class of soft robotic platforms, development of flexible and robust actuators is quintessential. Remarkable resilience, shape memory effect, high energy density, and scalability are attributed to nickel titanium (NiTi) making it an excellent actuator candidate for meso-scale applications. This paper presents a micro-muscle fiber crafted from shape memory alloy (NiTi) coiled springs. An enhanced spring NiTi model describes the combination of martensite deformation and spring effect due to its geometry. This paper also describes a manufacturing process and characterization for micro-scale NiTi coil actuators in various annealing temperatures. The presented fiber is 400¿m in diameter and 0.5m in length exhibiting 50% contraction and 1226J/kg of energy density with 40g of force. By changing the geometry of the spring, force-displacement characteristics can be tuned. An enhanced-performance inverted-spring manufacturing method is also described and characterized. A method of discrete displacement control is presented. Taking advantage of the flexibility of micro-coil spring, we present a novel mesh-worm prototype that utilizes bio-inspired antagonistic actuation for its body deformation and locomotion.
Keywords
annealing; microactuators; microrobots; nickel compounds; shape memory effects; springs (mechanical); NiTi spring; annealing temperatures; bioinspired antagonistic actuation; coil actuators; discrete displacement control; enhanced-performance inverted-spring manufacturing method; flexible actuator; force-displacement characteristics; high energy density; manufacturing process; martensite deformation; mesh-worm prototype; mesoscale applications; micro artificial muscle fiber; microcoil spring; micromuscle fiber; nickel titanium; robust actuators; scalability; shape memory alloy coiled springs; shape memory effect; soft robotic platforms; Actuators; Geometry; Muscles; Nickel; Resilience; Robots; Robustness; Scalability; Shape memory alloys; Springs;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems, 2009. IROS 2009. IEEE/RSJ International Conference on
Conference_Location
St. Louis, MO
Print_ISBN
978-1-4244-3803-7
Electronic_ISBN
978-1-4244-3804-4
Type
conf
DOI
10.1109/IROS.2009.5354178
Filename
5354178
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