Insights from a Nine-Segment Biomechanical Model and Its Simulation for Anthropometrical Influence on Individualized Planche Learning and Training in Gymnastics

Author:

Wang Xiuping1,Shan Gongbing2ORCID

Affiliation:

1. Department of Physical Education, Xinzhou Teachers’ University, Xinzhou 034000, China

2. Biomechanics Lab, Faculty of Arts & Science, University of Lethbridge, Lethbridge, AB T1K 3M4, Canada

Abstract

The Planche is a challenging, the most required, and a highly valued gymnastic skill. Yet, it is understudied biomechanically. This article aims to explore the anthropometric variations that could affect the quality of balancing control in the Planche and to identify the body types that have an advantage in learning and training. To achieve this goal, a 9-segment rigid-body model is designed to simulate the skill performance by using 80 different body types. The results demonstrate that body type is a critical factor in determining an individual’s innate ability to perform the Planche. The innate ability is affected by body mass, height, gender, and race. The findings reveal that a personalized training plan based on an individual’s body type is necessary for optimal learning and training. A one-size-fits-all approach may not be effective since each individual’s body type varies. Additionally, this study emphasizes the importance of considering segmental and/or limb characteristics in designing effective training plans. This study concludes that, for a given height, individuals with relatively longer legs and a shorter trunk (the characteristics of Europeans in comparison to Asians) could be better suited to perform the Planche. This suggests that European body types are naturally more advanced than Asian body types when it comes to performing the Planche. The practical implications of the current study are that practitioners can use biomechanical modeling and simulation techniques to identify body types that are most suited for the Planche and design training programs that are tailored to individual body types for optimizing their learning and training.

Funder

Funding for Innovations in Shanxi Higher Education

Publisher

MDPI AG

Subject

Bioengineering

Reference32 articles.

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3. Hay, J. (1978). The Biomechanics of Sports Techniques, Prentice-Hall. [2nd ed.].

4. Ballreich, R., and Baumann, W. (1996). Grundlagen der Biomechanik des Sports (The Basics of Biomechanics in Sports), Enke Verlag.

5. How can dynamic rigid-body modeling be helpful in motor learning? Learning performance through dynamic modeling;Shan;Kinesiology,2004

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