Differences in Game Dynamics between High-Level Volleyball and Beach Volleyball Matches
Abstract
:1. Introduction
2. Materials and Methods
2.1. Participants
2.2. Variables and Equipment
2.3. Protocol of Investigation
2.4. Statistical Analysis
3. Results
4. Discussion
Limitations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Reeser, J.C. Introduction: A brief history of the sport of volleyball. In Handbook of Sports Medicine and Science: Volleyball; Reeser, J.C., Bahr, R., Eds.; Blackwell Publishing: Malden, MA, USA, 2003; pp. 1–7. [Google Scholar]
- Fédération Internationale de Volleyball. Official Volleyball Rules 2021–2024. Approved by the 37th FIVB Congress 2021. Available online: https://www.fivb.com/en/volleyball/thegame_glossary/officialrulesofthegames (accessed on 28 March 2023).
- Fédération Internationale de Volleyball. Official Beach Volleyball Rules 2021–2024. Approved by the 37th FIVB Congress 2021. Available online: https://www.fivb.com/en/beachvolleyball/thegame_bvb_glossary/officialrulesofthegames (accessed on 28 March 2023).
- Zamparo, P.; Perini, P.; Orizio, C.; Sacher, M.; Ferretti, G. The energy cost of walking or running on sand. Eur. J. Appl. Physiol. 1992, 65, 183–187. [Google Scholar] [CrossRef]
- Lejeune, T.M.; Willems, P.A.; Heglund, N.C. Mechanics and energetics of human locomotion on sand. J. Exp. Biol. 1998, 201, 2071–2080. [Google Scholar] [CrossRef]
- Pinnington, H.C.; Dawson, B. The energy cost of running on grass compared to soft dry beach sand. J. Sci. Med. Sport 2001, 4, 416–430. [Google Scholar] [CrossRef] [PubMed]
- Davies, S.E.H.; Mackinnon, S.N. The energetics of walking on sand and grass at various speeds. Ergonomics 2006, 49, 651–660. [Google Scholar] [CrossRef] [PubMed]
- Muramatsu, S.; Fukudome, A.; Miyama, M.; Arimoto, M.; Kijima, A. Energy expenditure in maximal jumps on sand. J. Physiol. Anthropol. 2006, 25, 59–61. [Google Scholar] [CrossRef]
- Miyama, M.; Nosaka, K. Influence of surface on muscle damage and soreness induced by consecutive drop jumps. Adv. Exerc. Sport Physiol. 2004, 10, 63–69. [Google Scholar]
- Kountouris, P. Time characteristics of volleyball matches in two consecutive Olympic competitions after the implementation of the new regulations. Coach. Volleyb. 2005, 22, 18–22. [Google Scholar]
- Van Heest, J.L. Energy demands in the sport of volleyball. In Handbook of Sports Medicine and Science: Volleyball; Reeser, J.C., Bahr, R., Eds.; Blackwell Publishing: Malden, MA, USA, 2003; pp. 11–17. [Google Scholar]
- Palao, J.M.; Valades, D.; Ortega, E. Match Duration and Number of Rallies in Men’s and Women’s 2000–2010 FIVB World Tour Beach Volleyball. J. Hum. Kinet. 2012, 34, 99–104. [Google Scholar] [CrossRef]
- Fédération Internationale de Volleyball. Beach Volleyball—Picture of the Game. 2015. Available online: https://www.fivb.com/-/media/fivb/beachvolleyball/pdfs/2015_picture_of_the_game_report_beach_volleyball.pdf?la=en (accessed on 28 March 2023).
- Fédération Internationale de Volleyball. 2022 Volleyball Nations League Picture of the Game—Annual Report. Available online: https://www.fivb.com/en/volleyball/thegame_glossary (accessed on 24 January 2024).
- Alcaraz, A.G.; Valadés, D.; Palao, J.M. Evolution of game demands from young to elite players in men’s volleyball. Int. J. Sports Physiol. Perform. 2016, 12, 788–795. [Google Scholar] [CrossRef] [PubMed]
- Puhl, J.; Case, S.; Fleck, S.; Van Handel, P. Physical and physiological characteristics of elite volleyball players. Res. Q. Exerc. Sport. 1982, 53, 257–262. [Google Scholar] [CrossRef]
- Joussellin, E.; Handschuh, R.; Barrault, D.; Rieu, M. Maximal aerobic power of French top-level competitors. J. Sports Med. Phys. Fitness. 1984, 24, 175–182. [Google Scholar] [PubMed]
- Viitasalo, J.; Rusko, H.; Pajalo, O.; Rahkila, P.; Ahila, M.; Montonen, H. Endurance requirements in volleyball. Can. J. Sports Sci. 1987, 12, 194–201. [Google Scholar]
- MacLaren, D. Court Games: Volleyball and basketball. In Physiology of Sports; Reilly, T., Secher, N., Snell, P., Williams, C., Eds.; E. & F.N. Spon: London, UK, 1993; pp. 427–464. [Google Scholar]
- Bredeweg, S. The elite volleyball athlete. In Handbook of Sports Medicine and Science: Volleyball; Reeser, J.C., Bahr, R., Eds.; Blackwell Publishing: Malden, MA, USA, 2003; pp. 183–191. [Google Scholar]
- Manna, I.; Lal Khanna, G.; Chandra Dhara, P. Effect of training on anthropometric, physiological and biochemical variables of U-19 volleyball players. J. Hum. Sport Exerc. 2012, 7, 263–274. [Google Scholar] [CrossRef]
- Đurković, T.; Marelić, N.; Rešetar, T. Differences in aerobic capacity indicators between the Croatian national team and club level volleyball players. Kinesiology 2014, 46, 59–65. [Google Scholar]
- Vescovi, J.D. Effect of rally scoring on timing characteristics for NCAA Division I female volleyball games. Int. J. Volleyb. Res. 2002, 5, 2–5. [Google Scholar]
- Gómez-Carramiñana, M.A. Requerimientos y fuentes energéticas para el trabajo muscular en Voleibol. Rev. Entren. Deport. 2003, 17, 31–36. [Google Scholar]
- Marinović, M.; Radanović, S. Ratio of active and passive phase of the game during the finals of the croatian men’s volleyball cup in the 2020/21 season—Should we train differently than top athletes?—Pilot research. In Proceedings of the 30th Summer school of Kinesiologists of the Republic of Croatia, Kinesiology in Europe Challenges of Changes, Zadar, Croatia, 29 June–2 July 2022. [Google Scholar]
- Sánchez-Moreno, J.; Afonso, J.; Mesquita, I.; Ureña, A. Dynamics between playing activities and rest time in high-level men’s volleyball. Int. J. Perform. Anal. Sport 2016, 16, 317–331. [Google Scholar] [CrossRef]
- Palao, J.M.; Valades, D.; Manzanares, P.; Ortega, E. Physical actions and work-rest time in men’s beach volleyball. Motriz Rev. Educ. Fis. 2014, 20, 257–261. [Google Scholar] [CrossRef]
- Tabachnick, B.; Fidell, L. Using Multivariate Statistics, 6th ed.; Allyn and Bacon: Boston, MA, USA, 2013. [Google Scholar]
- Fleiss, J.L.; Levin, B.A.; Paik, M.C. Statistical Methods for Rates and Proportions, 3rd ed.; John Wiley and Sons: Hoboken, NJ, USA, 2003. [Google Scholar]
- Sánchez-Moreno, J.; Marcelino, R.; Mesquita, I.; Ureña, A. Analysis of the rally length as a critical incident of the game in elite male volleyball. Int. J. Perform. Anal. Sport 2016, 16, 620–631. [Google Scholar] [CrossRef]
- Ainsworth, B.E.; Haskell, W.L.; Herrmann, S.D.; Meckes, N.; Bassett, D.R., Jr.; Tudor-Locke, C.; Greer, J.L.; Vezina, J.; Whitt-Glover, M.C.; Leon, A.S. 2011 Compendium of Physical Activities: A second update of codes and MET values. Med. Sci. Sports Exerc. 2011, 43, 1575–1581. [Google Scholar] [CrossRef]
- Jimenez-Olmedo, J.M.; Pueo, B.; Penichet-Tomás, A.; Chinchilla-Mira, J.J.; Perez-Turpin, J.A. Physiological work areas in professional beach volleyball: A case study. Retos 2017, 31, 94–97. [Google Scholar]
- Giatsis, G.; Pérez-Turpin, J.A.; Hatzimanouil, D. Analysis of time characteristics, jump patter sand technical-tactical skills of beach volley men’s final in Rio Olympics 2016. J. Hum. Sport Exerc. 2020, 15, 1013–1019. [Google Scholar]
- Ureña, A.; Palao, J.M.; Saenz, B. Fatigue in Volleyball. Lecturas en Educación Física y Deportes. Rev. Digital, 30, 1–6. Available online: http://www.efdeportes.com/efd30/voley.htm (accessed on 22 March 2022).
Volleyball | Beach Volleyball | |
---|---|---|
Number of players on court | 6 | 2 |
Dimensions of the court | 18 m × 9 m | 16 m × 8 m |
To win | 3 sets | 2 sets |
Set/points | 25 | 21 |
Tie break | 15 points to win | 15 points to win |
Surface (FIVB competitions) | Wooden or synthetic | Sand |
Minimum temperature | 16 °C | Not defined: The weather must not present any danger of injury to the players |
Maximum temperature | 26 °C | Not defined: The weather must not present any danger of injury to the players |
Coaching during game | Yes | No/Forbidden to receive external assistance or coaching during a match |
Playing—serve receive | Underhand and overhand passing | Underhand passing |
Playing—attacking | Player can attack with overhand pass | It is forbidden to attack with overhand pass |
Ball/material | Made of a flexible material (leather, synthetic leather, or similar) | Made of a flexible material (leather, synthetic leather, or similar) which does not absorb moisture, i.e., more suitable to outdoor conditions since matches can be played when it is raining |
Ball/dimensions/circumference | 65–67 cm | 66–68 cm |
Ball/dimensions/weight | 260–280 g | 260–280 g |
Ball/dimensions/inside pressure | 0.3–0.325 kg/cm2 | 0.175–0.225 kg/cm2 |
Average match duration | 100 min | 51 min |
Average rally duration | 5.54 s | 5.82 s |
Average rally duration without pseudo-rallies | 7.11 s | 6.62 s |
“Flying ball” * (excluding set intervals) | 15.62% | 19.50% |
Portion of “Pseudo-rallies” ** (ace or service fault, about 1 s) | 25.63% | 14.65% |
Average amount of ball contacts during one rally | 6.76 | 5.81 |
Variable | n | Min | Max | Mean ± SD | “Flying Ball” | Work-to-Rest Ratio |
---|---|---|---|---|---|---|
ACPH_VOLLEY | 727 | 0.75 | 30.19 | 5.55 ± 4.38 | 15.7% | 1:6.35 |
PASPH_VOLLEY | 711 | 14.46 | 385.69 | 35.27 ± 25.96 | ||
ACPH_BEACH | 484 | 0.66 | 34.33 | 6.00 ± 3.44 | 17.7% | 1:5.63 |
PASPH_BEACH | 470 | 13.83 | 259.28 | 33.82 ± 22.98 |
Active Phase | Passive Phase | |
---|---|---|
MWU | 140,770.00 | 160,773.00 |
WW | 405,398.00 | 271,458.00 |
Z | −5.90 | −1.10 |
p | 0.00 * | 0.27 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Đurković, T.; Babok, D.; Rešetar, T. Differences in Game Dynamics between High-Level Volleyball and Beach Volleyball Matches. J. Funct. Morphol. Kinesiol. 2024, 9, 28. https://doi.org/10.3390/jfmk9010028
Đurković T, Babok D, Rešetar T. Differences in Game Dynamics between High-Level Volleyball and Beach Volleyball Matches. Journal of Functional Morphology and Kinesiology. 2024; 9(1):28. https://doi.org/10.3390/jfmk9010028
Chicago/Turabian StyleĐurković, Tomislav, Domagoj Babok, and Tomica Rešetar. 2024. "Differences in Game Dynamics between High-Level Volleyball and Beach Volleyball Matches" Journal of Functional Morphology and Kinesiology 9, no. 1: 28. https://doi.org/10.3390/jfmk9010028
APA StyleĐurković, T., Babok, D., & Rešetar, T. (2024). Differences in Game Dynamics between High-Level Volleyball and Beach Volleyball Matches. Journal of Functional Morphology and Kinesiology, 9(1), 28. https://doi.org/10.3390/jfmk9010028