Using an environmentally benign and degradable elastomer in soft robotics

被引:26
作者
Walker S. [1 ,3 ]
Rueben J. [2 ]
Volkenburg T.V. [2 ]
Hemleben S. [3 ]
Grimm C. [3 ]
Simonsen J. [4 ]
Mengüç Y. [3 ]
机构
[1] Materials Science, Oregon State University, 204 Rogers Hall, Corvallis, 97331, OR
[2] Chemical Engineering, Oregon State University, 116 Johnson Hall, Corvallis, 97331, OR
[3] Robotics, Oregon State University, 204 Rogers Hall, Corvallis, 97331, OR
[4] Wood Science and Engineering, Oregon State University, 120 Richardson Hall, Corvallis, 97333, OR
关键词
Actuator; Degradable; Elastomer; Green chemistry; Soft robotics;
D O I
10.1007/s41315-017-0016-8
中图分类号
学科分类号
摘要
This work introduces an environmentally benign and degradable elastomer, poly(glycerol sebacate) with calcium carbonate (PGS-CaCO3), for use in soft robotics. Development of greener materials like PGS-CaCO3 contributes to robot designs that do not require retrieval and can safely degrade in the natural environment. A simplified synthesis method of PGS was used to create elastomer sheets, which were laser cut/rastered then laminated with cyanoacrylate glue into pneumatic soft actuators. The modified polymer synthesis method is accessible for roboticists and the three chemicals used are non-hazardous and inexpensive. Three accordion-style pneumatic actuators (3, 4 and 5 chambers) were characterized for free displacement and blocked force in both linear extension and curling motions, and an additional four 3-chambered actuators were also tested to leakage and failure. Material characterization of PGS-CaCO3 samples of all ages gave: ultimate tensile strength (UTS) from 48 to 160 kPa, elongation percent at UTS from 157 to 242%, moduli from 45 to 154 kPa, average resilience of 88% at 100 cycles, and maximum compressive force of 246 N at 50% strain. After being in an approximately 50–55 ∘C compost pile for 7 days, the polymer visibly degraded and had an average mass loss of 20% across 12 samples. PGS’s strength, elasticity, biodegradability and chemical safety make it a desirable option for roboticists looking to leverage sustainable materials. PGS may also prove a potential green alternative for robotics applications in ubiquitous environmental and infrastructure sensing. © 2017, Springer Singapore.
引用
收藏
页码:124 / 142
页数:18
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