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Development of biomimetic squid-inspired suckers

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Abstract

Biomechanical properties of squid suckers were studied to provide inspiration for the development of sucker artefacts for a robotic octopus. Mechanical support of the rings found inside squid suckers was studied by bending tests. Tensile tests were carried out to study the maximum possible sucking force produced by squid suckers based on the strength of sucker stalks, normalized by the sucking areas. The squid suckers were also directly tested to obtain sucking forces by a special testing arrangement. Inspired by the squid suckers, three types of sucker artefacts were developed for the arm skin of an octopus inspired robot. The first sucker artefact made of knitted nylon sheet reinforced silicone rubber has the same shape as the squid suckers. Like real squid suckers, this type of artefact also has a stalk that is connected to the arm skin and a ring to give radial support. The second design is a straight cylindrical structure with uniform wall thickness made of silicone rubber. One end of the cylinder is directly connected to the arm skin and the other end is open. The final design of the sucker has a cylindrical base and a concave meniscus top. The meniscus was formed naturally using the surface tension of silicone gel, which leads to a higher level of the liquid around the edge of a container. The wall thickness decreases towards the tip of the sucker opening. Sucking forces of all three types of sucker artefacts were measured. Advantages and disadvantages of each sucker type were discussed. The final design of suckers has been implemented to the arm skin prototypes.

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References

  1. Kier W M, Stellas M P. The arrangement and function of octopus arm musculature and connective tissue. Journal of Morphology, 2007, 268, 831–843.

    Article  Google Scholar 

  2. Young J Z. The Anatomy of the Nervous System of Octopus Vulgaris, Clarendon Press, Oxford, UK, 1971.

    Google Scholar 

  3. Smith K K, Kier W M. Trunks, tongues, and tentacles: Moving with skeletons of muscle. American Scientist, 1989, 77, 28–35.

    Google Scholar 

  4. Gutfreund Y, Flash T, Yarom Y, Fiorito G, Segev I, Hochner B. Organization of octopus arm movements: A model system for studying the control of flexible arms. The Journal of Neuroscience, 1996, 16, 7297–7307.

    Google Scholar 

  5. Sumbre G, Gutfreund Y, Fiorito G, Flash T, Hochner B. Control of octopus arm extension by a peripheral motor program. Science, 2001, 293, 1845–1848.

    Article  Google Scholar 

  6. Kier W M, Smith A M. The structure and adhesive mechanism of octopus suckers. Integrative and Comparative Biology, 2002, 42, 1146–1153.

    Article  Google Scholar 

  7. Yekutieli Y, Sumbre G, Flash T, Hochner B. How to move with no rigid skeleton? The octopus has the answers. Biologist, 2002, 49, 250–254.

    Google Scholar 

  8. Sumbre G, Fiorito G, Flash T, Hochner B. Neurobiology motor control of flexible octopus arms. Nature, 2005, 433, 595–596.

    Article  Google Scholar 

  9. Gravagne I A, Walker I D. Uniform regulation for a multi-section continuum manipulator. Proceedings of the IEEE International Conference on Robotics & Automation, Lausanne, Switzerland, 2002, 2, 1519–1524.

    Google Scholar 

  10. McMahan W, Jones B, Walker I, Chitrakaran V, Seshadri A, Dawson D. Robotic manipulators inspired by cephalopod limbs. Proceedings of Inaugural CDEN Design Conference, Montreal, Canada, 2004, 1–10.

    Google Scholar 

  11. Packard A. The skin of cephalopods (coleoids): General and special adaptations. In Trueman E R, Clarke M R eds, The Mollusca: Form and Function, Academic Press, San Diego, USA, 1988, 11, 37–67.

    Google Scholar 

  12. Marks P. Robot octopus will go where no sub has gone before. The New Scientist, 2009, 201, 18.

    Google Scholar 

  13. Hou J P, Bonser R H C, Jeronimidis G. Design of a biomimetic skin for an octopus-inspired robot — Part I: Characterising octopus skin. Journal of Bionic Engineering, 2011, 8, 288–296.

    Article  Google Scholar 

  14. Hou J P, Bonser H C R, Jeronimidis G. Design of a biomimetic skin for an octopus-inspired robot — Part II: Development of the skin artefact. Journal of Bionic Engineering, 2011, 8, 297–304.

    Article  Google Scholar 

  15. Cianchetti M, Arienti A, Follador M, Mazzolai B, Dario P, Laschi C. Design concept and validation of a robotic arm inspired by the octopus. Material Science and Engineering C, 2011, 31, 1230–1239.

    Article  Google Scholar 

  16. Smith A M. Negative pressure generated by octopus suckers: A study of the tensile strength of water in nature. Journal of Experimental Biology, 1991, 157, 257–271.

    Google Scholar 

  17. Kier W M, Smith A M. The morphology and mechanics of octopus suckers. The Biological Bulletin, 1990, 178, 126–136.

    Article  Google Scholar 

  18. Nachtigall W. Biological Mechanisms of Attachment: The Comparative Morphology and Bioengineering of Organs for Linkage, Suction, and Adhesion, Springer-Verlag, New York, USA, 1974.

    Book  Google Scholar 

  19. Smith A M. Cephalopod sucker design and the physical limits to negative pressure. Journal of Experimental Biology, 1996, 199, 949–958.

    Google Scholar 

  20. Delgadillo J O V, Delorme, S, El-Ayoubi R, DiRaddo R, Hatzikiriakos S G. Effect of freezing on the passive mechanical properties of arterial samples. Journal of Biomedical Science and Engineering, 2010, 3, 645–652.

    Article  Google Scholar 

  21. Jung H J, Vangipuram G, Fisher M B, Yang G, Hsu S, Bianchi J, Ronholdt C, Woo, S L Y. The effects of multiple freeze-thaw cycles on the biomechanical properties of the human bone-patellar tendon-bone allograft. Journal of Orthopaedic Research, 2011, 29, 1193–1198.

    Article  Google Scholar 

  22. Foutz T L, Stone E A, Abrams C F. Effects of freezing on mechanical properties of rat skin. American Journal of Veterinary Research, 1992, 53, 788–792.

    Google Scholar 

  23. Snedecor G W. Statistical Methods, The Iowa State University Press, USA, 1956.

    Google Scholar 

  24. Su Y W, Ji B H, Huang Y G, Hwang K. Concave biological surfaces for strong wet adhesion. Acta Mechanica Solida Sinica, 2009, 22, 593–604.

    Article  Google Scholar 

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Correspondence to Jinping Hou.

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Hou, J., Wright, E., Bonser, R.H.C. et al. Development of biomimetic squid-inspired suckers. J Bionic Eng 9, 484–493 (2012). https://doi.org/10.1016/S1672-6529(11)60144-3

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