Scalable design of fluidic DEMUX/MUX

Fluidic logic circuits offer a foundation for decentralized onboard control in soft pneumatic robots, enabling their integration into actuator networks to generate complex movements. However, existing fluidic controllers in soft robots face scalability limitations, restricting their ability to handle growing degrees of freedom across sizes while preserving compliance. Here, we present a scalable fluidic control architecture that integrates high-radix demultiplexing with time multiplexing to achieve a high input-to-output ratio and reprogrammable actuation. We incorporate a design method based on dimensionless parameters to preserve comparable valve opening and closing pressure thresholds across different physical scales, thereby maintaining consistent addressing behavior of the demultiplexer after geometric scaling. In addition, structural stretchability enables seamless integration into soft bodies, maintaining reliable control under dynamic deformation without compromising compliance. This hybrid demultiplexer/multiplexer fluidic circuit overcomes key limitations, offering functional scalability, geometric scalability, and physical integrability in a single architecture. Our approach enables autonomous, adaptable soft robots capable of complex, multifunctional motions, functioning as self-contained systems.

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Publication Details

Journal
Science Advances
Published
2026-10-09
DOI
https://doi.org/10.1126/sciadv.aed4468
Primary Topic
Soft Robotics and Applications
Type
article
Field-Weighted Citation Impact
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article

Scalable design of fluidic DEMUX/MUX

Jamie Kyujin Paik, Hwayeong Jeong, Jung Won Kim
Science Advances
Soft Robotics and Applications
article

Scalable design of fluidic DEMUX/MUX

Jamie Kyujin Paik, Hwayeong Jeong, Jung Won Kim
article en

Abstract

Fluidic logic circuits offer a foundation for decentralized onboard control in soft pneumatic robots, enabling their integration into actuator networks to generate complex movements. However, existing fluidic controllers in soft robots face scalability limitations, restricting their ability to handle growing degrees of freedom across sizes while preserving compliance. Here, we present a scalable fluidic control architecture that integrates high-radix demultiplexing with time multiplexing to achieve a high input-to-output ratio and reprogrammable actuation. We incorporate a design method based on dimensionless parameters to preserve comparable valve opening and closing pressure thresholds across different physical scales, thereby maintaining consistent addressing behavior of the demultiplexer after geometric scaling. In addition, structural stretchability enables seamless integration into soft bodies, maintaining reliable control under dynamic deformation without compromising compliance. This hybrid demultiplexer/multiplexer fluidic circuit overcomes key limitations, offering functional scalability, geometric scalability, and physical integrability in a single architecture. Our approach enables autonomous, adaptable soft robots capable of complex, multifunctional motions, functioning as self-contained systems.

Science AdvancesVol. 12(41)
Korea Advanced Institute of Science and Technology (KR), École Polytechnique Fédérale de Lausanne (CH)
Openalex Percentile: Top 24%
Soft Robotics and Applications
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Scalable design of fluidic DEMUX/MUX — Jamie Kyujin Paik, Hwayeong Jeong, et al. · Science Advances (2026) | TGRS Research Map | TGRS