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Origami-structures in nature: lessons in designing “smart” materials

Published online by Cambridge University Press:  23 March 2012

Biruta Kresling*
Affiliation:
Experimental Design & Bionics, 170, rue Saint Charles F-75015 Paris / France UFG University of Art and Design, Linz, Department of Industrial Design, Hauptplatz 8 A – 4010 Linz / Austria
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Abstract

Origami – the Japanese term for “paper-folding” – in natural structures such as leaves of trees, fructifications and insect organs, has fascinated scientists and designers for over two decades. Technical origami, at the other hand, that focuses on the mechanical and functional properties of deployable lightweight structures, finds its way into the fields of biology, biomechanics and biomimetic engineering.

Type
Research Article
Copyright
Copyright © Materials Research Society 2012

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References

REFERENCES

1. Miura, K. “Method of packaging and deployment of large membranes in space”, Proc. 31st Congr. Int. Astronaut. Federation, IAF- 80-A 31, Tokyo, pp. 110 (1980).Google Scholar
2. Miura, K. Zeta-Core sandwich – its Concept and Realization”, ISAS report 37 (6), pp. 137164, 1972-5, Japan Aerospace Exploration Agency (1972).Google Scholar
3. Mahadevan, L. and Rica, S.Self-organized OrigamiScience, 5716 p.1740 (2005).Google Scholar
4. Cerda, E., Chaieb, S., Melo, F. and Mahadevan, L.Conical dislocations in crumpling”, Nature, 401, pp. 4649 (1999).Google Scholar
5. Dawson, C., Vincent, J. F.V. and Rocca, A.-M.How pine cones open”. Nature 390, p. 668 (1997).Google Scholar
6. Kresling, B. “Hommage à Miura”, Origami 1, Symmetry, Culture and Science, Quaterly Int. Soc. Interdisc. Study of Symmetry, Budapest (eds. Darvas, G. and Nagy, D.) 5,1 (1994), pp. 2326.Google Scholar
7. Kresling, B.Plant ‘Design’: Mechanical Simulations of Growth Patterns and Bionics”, Biomimetics 3, pp. 105120 (1995).Google Scholar
8. Kresling, B. “Folded and Unfolded Nature”, Origami Science and Art: Proc. 2nd International Meeting of Origami Science and Scientific Origami, Otsu, Shiga (ed. Miura, K.), pp. 93108 (1997).Google Scholar
9. Kresling, B. “Coupled Mechanisms in Biological Deployable Structures”, IUTAM-IASS Symposium on Deployable Structures: Theory and Applications (Pellegrino, S., Guest, S.D., eds.) Kluwer, The Netherlands, pp. 229238 (2000).Google Scholar
10. Kuribayashi, K. “A Novel Foldable Stent Graft”, PhD. dissertation, University of Oxford, Oxford, UK.172 p. (2004).Google Scholar
11. Kuribayashi, K., You, Z.Deployable Stent”, Pat. Appl. US 2004/0098101A1 (May 20, 2004).Google Scholar
12. Kuribayashi, K., Tsuchiya, K., You, Z., Tomus, D., Umemoto, M., Ito, T. and Sasaki, M.Selfdeployable origami stent grafts as a biomedical application of Ni-rich TiNi shape memory alloy foil," Mat. Sc. and Eng. A, 419, pp.131137 (2006).Google Scholar
13. Wasserthal, L.T. “The open haemolymph system of Holometabola and its relation to the tracheal space”. Microscopic Anatomy of Invertebrates, Insecta. Eds. Harrison, FM and Locke, M., Wiley, 11B, pp.583620 (1998).Google Scholar
14. Hunt, G.W. and Ario, I.Twist buckling and the foldable cylinder: an exercise in origami”. Int. Journal of Non-Linear Mechanics, 40, pp.833843 (2004).Google Scholar
15. Kresling, B. “Natural twist buckling in shells: from the hawkmoth’s bellows to the deployable Kresling-pattern and cylindrical Miura-ori. Proc. 6th Int. Conf. on Computation of Shell and Spatial Structures IASS-IACM 2008 Cornell University, Ithaca, NY, USA. Edited by Abel, J. F. and Cooke, J. R., 4pp. (2008).Google Scholar