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Article

Novel Motion Sequences in Plant-Inspired Robotics: Combining Inspirations from Snap-Trapping in Two Plant Species into an Artificial Venus Flytrap Demonstrator

1
Plant Biomechanics Group, Botanic Garden, University of Freiburg, 79110 Freiburg, Germany
2
Cluster of Excellence livMatS @ FIT-Freiburg Center for Interactive Materials and Bioinspired Technologies, University of Freiburg, 79110 Freiburg, Germany
3
Laboratory for Chemistry and Physics of Interfaces CPI, Department of Microsystems Engineering-IMTEK, University of Freiburg, 79110 Freiburg, Germany
4
Freiburg Materials Research Center (FMF), University of Freiburg, 79110 Freiburg, Germany
*
Author to whom correspondence should be addressed.
These authors contributed equally to this work.
Biomimetics 2022, 7(3), 99; https://doi.org/10.3390/biomimetics7030099
Submission received: 15 June 2022 / Revised: 11 July 2022 / Accepted: 15 July 2022 / Published: 22 July 2022

Abstract

The field of plant-inspired robotics is based on principles underlying the movements and attachment and adaptability strategies of plants, which together with their materials systems serve as concept generators. The transference of the functions and underlying structural principles of plants thus enables the development of novel life-like technical materials systems. For example, principles involved in the hinge-less movements of carnivorous snap-trap plants and climbing plants can be used in technical applications. A combination of the snap-trap motion of two plant species (Aldrovanda vesiculosa and Dionaea muscipula) has led to the creation of a novel motion sequence for plant-inspired robotics in an artificial Venus flytrap system, the Venus Flyflap. The novel motion pattern of Venus Flyflap lobes has been characterized by using four state-of-the-art actuation systems. A kinematic analysis of the individual phases of the new motion cycle has been performed by utilizing precise pneumatic actuation. Contactless magnetic actuation augments lobe motion into energy-efficient resonance-like oscillatory motion. The use of environmentally driven actuator materials has allowed autonomous motion generation via changes in environmental conditions. Measurement of the energy required for the differently actuated movements has shown that the Venus Flyflap is not only faster than the biological models in its closing movement, but also requires less energy in certain cases for the execution of this movement.
Keywords: plant-inspired robotics; artificial Venus flytrap; motion sequence; biomimetics; bioinspiration plant-inspired robotics; artificial Venus flytrap; motion sequence; biomimetics; bioinspiration
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MDPI and ACS Style

Tauber, F.J.; Auth, P.; Teichmann, J.; Scherag, F.D.; Speck, T. Novel Motion Sequences in Plant-Inspired Robotics: Combining Inspirations from Snap-Trapping in Two Plant Species into an Artificial Venus Flytrap Demonstrator. Biomimetics 2022, 7, 99. https://doi.org/10.3390/biomimetics7030099

AMA Style

Tauber FJ, Auth P, Teichmann J, Scherag FD, Speck T. Novel Motion Sequences in Plant-Inspired Robotics: Combining Inspirations from Snap-Trapping in Two Plant Species into an Artificial Venus Flytrap Demonstrator. Biomimetics. 2022; 7(3):99. https://doi.org/10.3390/biomimetics7030099

Chicago/Turabian Style

Tauber, Falk J., Philipp Auth, Joscha Teichmann, Frank D. Scherag, and Thomas Speck. 2022. "Novel Motion Sequences in Plant-Inspired Robotics: Combining Inspirations from Snap-Trapping in Two Plant Species into an Artificial Venus Flytrap Demonstrator" Biomimetics 7, no. 3: 99. https://doi.org/10.3390/biomimetics7030099

APA Style

Tauber, F. J., Auth, P., Teichmann, J., Scherag, F. D., & Speck, T. (2022). Novel Motion Sequences in Plant-Inspired Robotics: Combining Inspirations from Snap-Trapping in Two Plant Species into an Artificial Venus Flytrap Demonstrator. Biomimetics, 7(3), 99. https://doi.org/10.3390/biomimetics7030099

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