Fluid-driven Origami-inspired Artificial Muscles
Overview
Affiliations
Artificial muscles hold promise for safe and powerful actuation for myriad common machines and robots. However, the design, fabrication, and implementation of artificial muscles are often limited by their material costs, operating principle, scalability, and single-degree-of-freedom contractile actuation motions. Here we propose an architecture for fluid-driven origami-inspired artificial muscles. This concept requires only a compressible skeleton, a flexible skin, and a fluid medium. A mechanical model is developed to explain the interaction of the three components. A fabrication method is introduced to rapidly manufacture low-cost artificial muscles using various materials and at multiple scales. The artificial muscles can be programed to achieve multiaxial motions including contraction, bending, and torsion. These motions can be aggregated into systems with multiple degrees of freedom, which are able to produce controllable motions at different rates. Our artificial muscles can be driven by fluids at negative pressures (relative to ambient). This feature makes actuation safer than most other fluidic artificial muscles that operate with positive pressures. Experiments reveal that these muscles can contract over 90% of their initial lengths, generate stresses of ∼600 kPa, and produce peak power densities over 2 kW/kg-all equal to, or in excess of, natural muscle. This architecture for artificial muscles opens the door to rapid design and low-cost fabrication of actuation systems for numerous applications at multiple scales, ranging from miniature medical devices to wearable robotic exoskeletons to large deployable structures for space exploration.
Soft robotic hand with tactile palm-finger coordination.
Zhang N, Ren J, Dong Y, Yang X, Bian R, Li J Nat Commun. 2025; 16(1):2395.
PMID: 40064944 PMC: 11894155. DOI: 10.1038/s41467-025-57741-6.
Twomey P, Varma V, Bush L, Trkov M Front Robot AI. 2024; 11:1450177.
PMID: 39677980 PMC: 11638533. DOI: 10.3389/frobt.2024.1450177.
Biomimetic Origami: A Biological Influence in Design.
Ebrahimi Fakhari H, Rosario Barboza J, Mardanpour P Biomimetics (Basel). 2024; 9(10).
PMID: 39451806 PMC: 11505286. DOI: 10.3390/biomimetics9100600.
A fabrication strategy for millimeter-scale, self-sensing soft-rigid hybrid robots.
Lee H, Elder N, Leal M, Stantial S, Vergara Martinez E, Jos S Nat Commun. 2024; 15(1):8456.
PMID: 39349426 PMC: 11442515. DOI: 10.1038/s41467-024-51137-8.
Fast, variable stiffness-induced braided coiled artificial muscles.
Hu X, Wang X, Wang J, Zhang G, Fang S, Zhang F Proc Natl Acad Sci U S A. 2024; 121(41):e2412288121.
PMID: 39348536 PMC: 11474079. DOI: 10.1073/pnas.2412288121.