Биотенсегрити. Как работают Анатомические поезда, остеопатия и кинезиология и что может сделать эти техники максимально эффективными — Грэхам Скарр

Сейчас6. Неожиданные повороты, или чудеса на спиральных виражахСтраница 174 из 199
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Рисунок 6.4. Spectrin heterarchy. Reproduced with modifications fromJournal of Bodywork and Movement Therapies , 14(4), Scarr, G., Simple geometry in complex organisms, pp. 424–444, © 2010, with permission from Elsevier

Рисунок 6.5. Collagen heterarchy. Reproduced with modifications fromJournal of Bodywork and Movement Therapies , 14(4), Scarr, G., Simple geometry in complex organisms, pp. 424–444, © 2010, with permission from Elsevier

Рисунок 6.6. Tetrahelical core of tropocollagen. © Rory James, 2017. Dark-Light Photography

Рисунок 6.7. T-icosa chain. © Rory James, 2017. DarkLight Photography

Рисунок 6.8. Tube bending. © Rory James, 2013. DarkLight Photography

Рисунок 6.9. Crossed-helices. Reproduced with modifications fromJournal of Bodywork and Movement Therapies , 20(3), Scarr, G., Fascial hierarchies and the relevance of crossed-helical arrangements of collagen to changes in the shape of muscles, pp. 377–387, © 2016, with permission from Elsevier

Рисунок 6.10. Crossed-helical arrangements. Reproduced with modifications fromInternational Journal of Osteopathic Medicine , 16, Scarr, G., Palpatory phenomena in the limbs: a proposed mechanism, pp. 114–120, © 2013, with permission from Elsevier.

Рисунок 6.13B . Pangolin. Reproduced fromInternational Journal of Osteopathic Medicine , 16, Scarr, G., Palpatory phenomena in the limbs: a proposed mechanism, pp. 114–120, © 2013, with permission from Elsevier

Рисунок 7.1A . Human skeleton. Public domain; reproduced fromDe Humani Corpora Fabrica , Vesalius, A. 1543; U.S. National Library of Medicine, Bethesda, Maryland

Рисунок 7.1B . Lever drawings. Public domain; reproduced fromDe Motu Animalium , Borelli, G.A., 1680; U.S. National Library of Medicine, Bethesda, Maryland

Рисунок 7.6 . Closed kinematic chains in bicycle wheel. Reproduced with modifications fromJournal of Applied Biomedicine , 15, Scarr, G. and Harrison, H. Examining the temporomandibular joint from a biotensegrity perspective: a change in thinking, pp. 55–62, © 2017, with permission from Elsevier

Рисунок 7.7 . Trampoline Club du Dauphiné: Éleonore Lachaud and Clara Guinard performing in 2007. Reproduced from © Trampoline club Dauphine, Wikipedia; https://en.wikipedia. org/wiki/Gymnastics#/media/File: Acro-tcd. JPG. Licensed under the Creative Commons Attribution-Share Alike 3.0 Unported license

Рисунок 7.9 . Arthroscopic views of the knee. Reproduced with modifications from http:// www.biotensegrity.com/resources/in-vivo— obs-knee.pdf, courtesy of © Stephen M. Levin

Рисунок 8.1B . Wire tensegrity model of cranial vault. © G.Scarr, 2016, courtesy of Helen Harrison

Рисунок 8.2 . Geometric origin of cranial vault model. Reproduced with modifications fromInternational Journal of Osteopathic Medicine , 11, Scarr, G., A model of the cranial vault as a tensegrity structure, and its significance to normal and abnormal cranial development, pp. 80–89, © 2008, with permission from Elsevier

Рисунок 8.3 . Role of dural membrane tension. Reproduced with modifications fromInternational Journal of Osteopathic Medicine , 11, Scarr, G., A model of the cranial vault as a tensegrity structure, and its significance to normal and abnormal cranial development, pp. 80–89, © 2008, with permission from Elsevier

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