ArticleBiomimetics (Basel, Switzerland)2024
Design and Analysis of a Novel Bionic Tensegrity Robotic Fish with a Continuum Body.
Article in Biomimetics (Basel, Switzerland), 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed, 17 citations in OpenAlex.
- BAM-STR: A Bio-Inspired Soft Tensegrity Robot Driven by McKibben Pneumatic Artificial Muscles.Micromachines · 2026Article
- Variable Stiffness Structures in Biomimetic Robotic Fish: A Review of Mechanisms, Applications, and Challenges.Biomimetics (Basel, Switzerland) · 2026Review
- A bionic robotic trunk with tensegrity-enabled elephant-comparable stiffness variability for assisted daily living.Nature communications · 2026Article
- Reinforcement Learning-Enabled Control and Design of Rigid-Link Robotic Fish: A Comprehensive Review.Sensors (Basel, Switzerland) · 2026Review
- Adaptive multimodal swimming gaits in a reconfigurable modular soft robotic fish.Science advances · 2026Article
- Fluid-Structure Interaction Analysis of a Bionic Robotic Fish Based on a Macrofiber Composite Material.Biomimetics (Basel, Switzerland) · 2025Article
- Design, Modeling, and Experimental Validation of a Bio-Inspired Rigid-Flexible Continuum Robot Driven by Flexible Shaft Tension-Torsion Synergy.Biomimetics (Basel, Switzerland) · 2025Article
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Authors and funding
7 authors at 3 institutions in 1 country.
Funding
Abstract
Biological fish exhibit remarkable adaptability and exceptional swimming performance through their powerful and flexible bodies. Therefore, designing a continuum flexible body is significantly important for the development of a robotic fish. However, it is still challenging to replicate these functions of a biological body due to the limitations of actuation and material. In this paper, based on a tensegrity structure, we propose a bionic design scheme for a continuum robotic fish body with a property of stiffness variation. Its detailed structures and actuation principles are also presented. A mathematical model was established to analyze the bending characteristics of the tensegrity structure, which demonstrates the feasibility of mimicking the fish-like oscillation propulsion. Additionally, the stiffness variation mechanism is also exhibited experimentally to validate the effectiveness of the designed tensegrity fish body. Finally, a novel bionic robotic fish design scheme is proposed, integrating an electronic module-equipped fish head, a tensegrity body, and a flexible tail with a caudal fin. Subsequently, a prototype was developed. Extensive experiments were conducted to explore how control parameters and stiffness variation influence swimming velocity and turning performance. The obtained results reveal that the oscillation amplitude, frequency, and stiffness variation of the tensegrity robotic fish play crucial roles in swimming motions. With the stiffness variation, the developed tensegrity robotic fish achieves a maximum swimming velocity of 295 mm/s (0.84 body length per second, BL/s). Moreover, the bionic tensegrity robotic fish also performs a steering motion with a minimum turning radius of 230 mm (0.68 BL) and an angular velocity of 46.6°/s. The conducted studies will shed light on the novel design of a continuum robotic fish equipped with stiffness variation mechanisms.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.