Coiled Polymer Artificial Muscles Having Dual-Mode Actuation with Large Stress Generation
-
Published:2023-02-15
Issue:4
Volume:20
Page:1626-1634
-
ISSN:1672-6529
-
Container-title:Journal of Bionic Engineering
-
language:en
-
Short-container-title:J Bionic Eng
Author:
Hu XinghaoORCID, Liu Runmin, Zhao Kai, Wang Yilun, Bao Xianfu, Xu Lin, Cheng Guanggui, Ding Jianning
Abstract
AbstractCoiled polymer artificial muscles with both large tensile stroke and giant force generation are needed for practical applications in robotics, soft exosuits, and prosthesis. However, most polymer yarn artificial muscles cannot generate a large force or stress. Here, we report an inexpensive Twisted and Coiled Polymer artificial muscle (TCP) that performs both large isobaric and isometric contractions. This TCP can generate a tensile stroke of 20.1% and a specific work capacity of up to 1.3 kJ kg−1 during temperature changes from 20 to 180 °C. Moreover, the nylon yarn artificial muscle produced a reversible output stress of 28.4 MPa, which is 100 times larger than human skeletal muscle. A robot arm and a simple gripper were made to demonstrate the isobaric actuation and isometric actuation of our TCP muscle, repectivley. Thus, the polymer artificial muscles with dual-mode actuation show potential applications in the field of robotics, grippers, and exoskeletons and so on.
Funder
National Natural Science Foundation of China Natural Science Foundation of Jiangsu Province Postdoctoral Research Foundation of China Postdoctoral Science Foundation of Jiangsu Province Senior Talent Foundation of Jiangsu University
Publisher
Springer Science and Business Media LLC
Subject
Bioengineering,Biophysics,Biotechnology
Reference32 articles.
1. Mirvakili, S. M., & Hunter, I. W. (2018). Artificial muscles: Mechanisms, applications, and challenges. Advanced Materials, 30, 1704407. 2. Xiao, W., Hu, D., Chen, W. X., Yang, G., & Han, X. (2021). Design, characterization, and optimization of multi-directional bending pneumatic artificial muscles. Journal of Bionic Engineering, 18, 1358–1368. 3. Hu, X. H., Jia, J. J., Wang, Y. M., Tang, X. T., Fang, S. L., Wang, Y. L., Baughman, R. H., & Ding, J. N. (2022). Fast large-stroke sheath-driven electrothermal artificial muscles with high power densities. Advanced Functional Materials, 32, 2200591. 4. Dai, S. P., Zhou, X. S., Hu, X. H., Dong, X., Jiang, Y. Y., Cheng, G. G., Yuan, N. Y., & Ding, J. N. (2021). Carbon nanotube hybrid yarn with mechanically strong healable silicone elastomers for artificial muscle. ACS Applied Nano Materials, 4, 5123–5130. 5. Chu, H. T., Hu, X. H., Wang, Z., Mu, J. K., Li, N., Zhou, X. S., Fang, S. L., Haines, C. S., Park, J. W., Qin, S., Yuan, N. Y., Xu, J., Tawfick, S., Kim, H. J., Conlin, P., Cho, M., Cho, K., Oh, J. Y., Nielsen, S., … Baughman, R. H. (2021). Unipolar stroke, electroosmotic pump carbon nanotube yarn muscles. Science, 371, 494–498.
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|