DocumentCode
2428288
Title
Tools and methods for experimental in-vivo measurement and biomechanical characterization of an octopus vulgaris arm
Author
Margheri, Laura ; Mazzolai, Barbara ; Cianchetti, Matteo ; Dario, Paolo ; Laschi, Cecilia
Author_Institution
CRIM Labs., Scuola Superiore Sant´´ Anna, Pisa, Italy
fYear
2009
fDate
3-6 Sept. 2009
Firstpage
7196
Lastpage
7199
Abstract
This work illustrates new tools and methods for an in vivo and direct, but non-invasive, measurement of an octopus arm mechanical properties. The active elongation (longitudinal stretch) and the pulling force capability are measured on a specimen of Octopus vulgaris in order to quantitatively characterize the parameters describing the arm mechanics, for biomimetic design purposes. The novel approach consists of observing and measuring a living octopus with minimally invasive methods, which allow the animal to move with its complete ability. All tools are conceived in order to create a collaborative interaction with the animal for the acquisition of active measures. The data analysis is executed taking into account the presence of an intrinsic error due to the mobility of the subject and the aquatic environment. Using a system of two synchronized high-speed high-resolution cameras and purpose-made instruments, the maximum elongation of an arm and its rest length (when all muscles fibres are relaxed during propulsion movement) are measured and compared to define the longitudinal stretch, with the impressive average result of 194%. With a similar setup integrated with a force sensor, the pulling force capability is measured as a function of grasp point position along the arm. The measured parameters are used as real specifications for the design of an octopus-like arm with a biomimetic approach.
Keywords
biology computing; biomechanics; biomimetics; elongation; force sensors; muscle; video signal processing; active elongation; biomechanical characterization; biomimetic design; force sensor; high-speed high-resolution cameras; in-vivo measurement; longitudinal stretch); mobility; muscles fibres; octopus vulgaris arm; propulsion; pulling force capability; Animals; Biomechanics; Biomedical Engineering; Biomimetics; Isometric Contraction; Octopodiformes; Robotics;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2009. EMBC 2009. Annual International Conference of the IEEE
Conference_Location
Minneapolis, MN
ISSN
1557-170X
Print_ISBN
978-1-4244-3296-7
Electronic_ISBN
1557-170X
Type
conf
DOI
10.1109/IEMBS.2009.5335304
Filename
5335304
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