3.6 Summary of Outcomes
The proposed final construction fulfils additional
framework conditions, such as weight and design
specifications, which will be necessary for a
commercially viable product, but are too expensive
for a prototype. Therefore, the design was optimized
in order to provide more safety and stability for
significantly lower costs. The testing setup is opted to
provide analysis possibilities for sport-specific and
general flexibility tests, as well as for the device
training analysis. Furthermore, to comprehensively
analyse the physical strain during the training, a
mathematical model for joint moment analysis was
used, based on the Vicon® model and the force sensor
data.
3.7 Limitations
The calculation model does currently solely comprise
the leg spreading motion because at the leg closing
motion the participant is estimated to reduce the
gravitational force by supporting his body weight on
the holding device. Therefore, to analyse the closing
moment, an additional sensor measuring Fg would be
needed, or the result would be given as a function
from 0-100% of body weight reduction. Furthermore,
marker position changes due to skin shifts might add
large error to the results of the separated moments.
Usability and effect sizes are not available yet.
4 CONCLUSIONS
The Flexibility Trainer prototype is expected to have
the potential to enhance the training of active and
passive flexibility, even more than with CRAC-PNF
methods, due to cumulated effects of combined
methodical approaches (isokinetic, full-ROM
strength training with CRAC), which might also last
longer. Furthermore, based on the tests and
component data sheets, the device should resist all
expected loads without damages and meet the
requirements. However, future studies are needed to
proof short- and long-term functionality.
REFERENCES
Alter, M. J. (2004). Science of flexibility: Human Kinetics.
Brown, L. E. (2000). Isokinetics in human performance:
Human Kinetics.
Csapo, R., Alegre, L. M., & Baron, R. (2011). Time kinetics
of acute changes in muscle architecture in response to
resistance exercise. Journal of Science and Medicine in
Sport, 14(3), 270-274. doi:10.1016/j.jsams.2011.
02.003
Franchi, M. V., Atherton, P. J., Reeves, N. D., Fluck, M.,
Williams, J., Mitchell, W. K., . . . Narici, M. V. (2014).
Architectural, functional and molecular responses to
concentric and eccentric loading in human skeletal
muscle. Acta Physiologica, 210(3), 642-654.
doi:10.1111/apha.12225\r10.1111/apha.12225.
Hölbling, D. (2016). EP000003269429A1. U. WIEN.
Hölbling, D., Preuschl, E., Hassmann, M., & Baca, A.
(2017). Kinematic analysis of the double side kick in
pointfighting , kickboxing. Journal of Sports Sciences,
35(4), 317-324. doi:10.1080/02640414.2016.1164333
Kent, M. (2006). The Oxford dictionary of sports science
and medicine: Oxford University Press, USA.
Klein, B. (2012). FEM: Grundlagen und Anwendungen der
Finite-Element-Methode im Maschinen-und
Fahrzeugbau: Springer-Verlag.
Moreira, P. V. S., & Gonzaga, A. C. d. O. (2012). The effect
of stretching on the health and performance: new
perspectives. Terapia Manual., 10(50), 148-157.
Pahl, G., & Beitz, W. (2013). Engineering design: a
systematic approach: Springer Science & Business
Media.
Roaas, A., & Andersson, G. B. (1982). Normal range of
motion of the hip, knee and ankle joints in male
subjects, 30–40 years of age. Acta Orthopaedica
Scandinavica, 53(2), 205-208.
Rowlands, A. V., Marginson, V. F., & Lee, J. (2003).
Chronic flexibility gains: Effect of isometric
contraction duration during proprioceptive
neuromuscular facilitation stretching techniques.
Research Quarterly for Exercise and Sport, 74(1), 47-
51. doi:10.1080/02701367.2003.10609063
Shan, G. (2005). Comparison of repetitive movements
between ballet dancers and martial artists: Risk
assessment of muscle overuse injuries and prevention
strategies. Research in Sports Medicine, 13(1), 63-76.
doi:10.1080/15438620590922103
Sharman, M. J., Cresswell, A. G., & Riek, S. (2006).
Proprioceptive neuromuscular facilitation stretching :
Mechanisms and clinical implications. Sports
Medicine, 36(11), 929-939.
Stummer, M. (2016). Beweglichkeitstrainer:
Weiterentwicklung des bestehenden Systems und
Konstruktion eines Prototyps. (Bachelor Thesis), TU
Wien
VDI2221. (2019). Design of technical products and systems
(Vol. Part 1): VDI-Gesellschaft Produkt- und
Prozessgestaltung
Vicon®. (2016). Plug-in Gait Reference Guide. In (pp. 95).
Retrieved from https://docs.vicon.com/display/Nexus
25/PDF+downloads+for+Vicon+Nexus?preview=/508
88706/50889377/Plug-in%20Gait%20Reference%20
Guide.pdf
Weber, A. E., Bedi, A., Tibor, L. M., Zaltz, I., & Larson, C.
M. (2015). The hyperflexible hip: managing hip pain in
the dancer and gymnast. Sports Health, 7(4), 346-358.