Impact of conjugated material modified intelligent taekwondo equipment on the physical fitness of college students
Abstract
The cultivation of physical fitness among college students plays an important role in their comprehensive development and healthy growth process. Traditional training methods and equipment lack flexibility, making it difficult to effectively improve the athletic ability and physical fitness of college students. In order to improve the physical health level of college students and improve the quality and level of their sports training, this article conducted in-depth research on intelligent Taekwondo equipment modified with conjugated materials and its impact on the physical fitness of college students. This article first analyzed the requirements for intelligent Taekwondo equipment, and then based on this, graphene was used as the main material to prepare it using electrochemical stripping method, and modified by doping nitrogen atoms. Finally, the modified graphene was used in the design of intelligent Taekwondo equipment. To verify the application effect of modified graphene intelligent Taekwondo equipment, this article conducted testing and analysis on it. The results showed that compared to conventional training methods, students who applied modified graphene intelligent Taekwondo equipment for auxiliary training improved their final test scores in flexibility, endurance, and muscle strength indicators by 0.96 points, 1.02 points, and 0.65 points, respectively. The conclusion indicated that the intelligent Taekwondo equipment modified with graphene conjugated materials had a positive impact on the improvement of physical fitness of college students, which helped to improve their physical health level.
References
1. Huabin Zhao. “Analysis of the Changes in Physical Fitness of College Students during the 13th Five Year Plan Period - Taking Southwest Forestry University as an Example.” Education Science Development 4.1 (2022): 46-47. DOI: 10.12346/sde.v4i1.5704
2. Liras, Marta, and Mariam Barawi. “Hybrid materials based on conjugated polymers and inorganic semiconductors as photocatalysts: from environmental to energy applications.” Chemical Society Reviews 48.22 (2019): 5454-5487. DOI: 10.1039/C9CS00377K
3. Hu Xiaowen, Wang Haige, He Yan, Li Huixin, Li Huimin, Cheng Zhonghua, et al. “Research progress in the preparation and application of conjugated microporous polymers.” China Materials Progress 38.4 (2019): 365-374. DOI:CNKI:SUN:XJKB.0.2019-04-006
4. Kim, Kijin. “Sport Scientification of TAEKWONDO for the 4.0 Generation.” International Journal of Martial Arts 6.1 (2021): 1-7. DOI: 10.22471/martialarts.2021.6.1.01
5. Liu, Jiaojiao, Xiaoxiao Liu, and Qian Zhang. “A new training method for leg explosive power in taekwondo and its data-driven predictive models.” Isokinetics and Exercise Science 28.4 (2020): 351-363.
6. Chu, William Cheng-Chung, Chihhsiong Shih, Wen-Yi Chou, Sheikh Iqbal Ahamed, Pao-Ann Hsiung. “Artificial intelligence of things in sports science: weight training as an example.” Computer 52.11 (2019): 52-61. DOI: 10.1109/MC.2019.2933772
7. Qiu, Sen, Hongkai Zhao, Nan Jiang, Donghui Wu, Guangcai Song, Hongyu Zhao, et al. “Sensor network oriented human motion capture via wearable intelligent system.” International Journal of Intelligent Systems 37.2 (2022): 1646-1673. DOI: 10.1002/int.22689
8. Huang, Zhenjia, Gary Chi-Pong Tsui, Yu Deng, Chak-Yin Tang, Mo Yang, Miao Zhang, et al. “Bioinspired near-infrared light-induced ultrafast soft actuators with tunable deformation and motion based on conjugated polymers/liquid crystal elastomers.” Journal of Materials Chemistry C 10.35 (2022): 12731-12740. DOI: 10.1039/d2tc02594a
9. Shalaby, Mohammed Nader, and Mohamed M. Saad. “Advanced material engineering and nanotechnology for improving sports performance and equipment.” International Journal of Psychosocial Rehabilitation 24.10 (2020): 2314-2322. DOI: 10.37200/IJPR/V24I10/PR300246
10. Li, Jian, Ningjiang Bin, Fuqiang Guo, Xiang Gao, Renguo Chen, Xiang Gao, et al. “Analysis on the influence of sports equipment of fiber reinforced composite material on social sports development.” Advances in nano research 15.1 (2023): 49-57. DOI: 10.12989/anr.2023.15.1.049
11. Falaahudin, Ardhika, Ayub Tatya Admaja, and Dody Tri Iwandana. “Level of physical fitness taekwondo UKM students.” Quality in Sport 6.1 (2020): 7-12. DOI: 10.12775/QS.2020.001
12. Koshcheyev, Alexander, and Nina Dolbysheva. “Basics of planning a pre-competitive mesocycle during taekwondo training.” Journal of Physical Education and Sport 21.4 (2021): 1613-1621. DOI:10.7752/jpes.2021.04204
13. Grasdalsmoen, Michael, Hege Randi Eriksen, Kari Jussie Lonning & Borge Sivertsen. “Physical exercise and body-mass index in young adults: a national survey of Norwegian university students.” BMC public health 19.1 (2019): 1-9. DOI: 10.1186/s12888-020-02583-3
14. Xiaohong, Wang, and Lv Hui. “Research on Problems and Countermeasures in Taekwondo Teaching and Training in Colleges and Universities.” Journal of Frontiers in Sport Research 1.1 (2021): 76-80. DOI: 10.23977/jfsr.2021.010115
15. Norris, Emma, Tommy van Steen, Artur Direito, Emmanuel Stamatakis. “Physically active lessons in schools and their impact on physical activity, educational, health and cognition outcomes: a systematic review and meta-analysis.” British Journal of Sports Medicine 54.14 (2020): 826-838. DOI: 10.1136/bjsports-2018-100502
16. Lebaal, Nadhir, Abdelhakim Settar, Sebastien Roth & Samuel Gomes. “Conjugate heat transfer analysis within in lattice-filled heat exchanger for additive manufacturing.” Mechanics of Advanced Materials and Structures 29.10 (2022): 1361-1369. DOI: 10.1080/15376494.2020.1819489
17. Edagawa, Aya, Satoru Matsuda, Hirofumi Kawakubo, Hiroaki Imai, and Yuya Oaki. “Coatable 2D Conjugated Polymers Containing Bulky Macromolecular Guests for Thermal Imaging.” ACS Applied Materials & Interfaces 14.38 (2022): 43792-43801. DOI: 10.1021/acsami.2c12909
18. Ye Xinliang, Shao Dan, and Li Xiangfeng. “Research Progress in Conjugated Polymer Sensors.” Chemical New Materials 47.5 (2019): 55-58. DOI: CNKI:SUN:HGXC.0.2019-05-013
19. Farjadian, Fatemeh, Somayeh Abbaspour, Mohamad Amin Abdolahi Sadatlu. “Recent developments in graphene and graphene oxide: Properties, synthesis, and modifications: A review.” ChemistrySelect 5.33 (2020): 10200-10219. DOI:10.1002/slct.202002501
20. Yousefi, Nariman, Xinglin Lu, Menachem Elimelech & Nathalie Tufenkji. “Environmental performance of graphene-based 3D macrostructures.” Nature nanotechnology 14.2 (2019): 107-119. DOI: 10.1038/s41565-018-0325-6
21. Yu, Wang, Li Sisi, Yang Haiyan, Luo Jie. “Progress in the functional modification of graphene/graphene oxide: A review.” RSC advances 10.26 (2020): 15328-15345. DOI: 10.1039/D0RA01068E
22. Qu Muge, Zhang Sihang, Hu Fei, You Yaoyao, Chen Sheng, Gu Yingchun. “Research progress in conjugated conductive polymer/nanocellulose composite materials.” Chemical New Materials 47.9 (2019): 6-10. DOI: CNKI:SUN:HGXC.0.2019-09-002
23. Wang, Min, Paul Baek, Alireza Akbarinejad, David Barker and Jadranka Travas-Sejdic. “Conjugated polymers and composites for stretchable organic electronics.” Journal of Materials Chemistry C 7.19 (2019): 5534-5552. DOI: 10.1039/c9tc00709a
24. Varadwaj, Pradeep R., Arpita Varadwaj, Helder M. Marques and Koichi Yamashita. “The Nitrogen Bond, or the Nitrogen-Centered Pnictogen Bond: The Covalently Bound Nitrogen Atom in Molecular Entities and Crystals as a Pnictogen Bond Donor.” Compounds 2.1 (2022): 80-110. DOI: 10.3390/compounds2010007
25. Sahithi, A., and K. Sumithra. “Adsorption and sensing of CO and NH 3 on chemically modified graphene surfaces.” RSC advances 10.69 (2020): 42318-42326. DOI: 10.1039/D0RA06760A
26. Yang, Chenyuhu. “Review of graphene supercapacitors and different modified graphene electrodes.” Smart Grid and Renewable Energy 12.1 (2021): 1-15. DOI: 10.4236/sgre.2021.121001
27. da Silva, Debora AC, Antenor J. Paulista Neto, Aline M. Pascon, Eudes E. Fileti, Leonardo R. C. Fonsecac and Hudson G. Zanin . “Exploring doped or vacancy-modified graphene-based electrodes for applications in asymmetric supercapacitors.” Physical chemistry chemical physics 22.7 (2020): 3906-3913. DOI: 10.1039/C9CP06495H
28. Gallagher, Patrick, Chan-Shan Yang, Tairu Lyu, Fanglin Tian, Rai Kou, Hai Zhang, et al. “Quantum-critical conductivity of the Dirac fluid in graphene.” Science 364.6436 (2019): 158-162. DOI: 10.1126/science.aat8687
29. Luo, Weiwei, Alexey B. Kuzmenko, Jialin Qi, Ni Zhang, Wei Wu, Mengxin Ren, et al. “Nanoinfrared characterization of bilayer graphene conductivity under dual-gate tuning.” Nano Letters 21.12 (2021): 5151-5157. DOI: 10.1021/acs.nanolett.1c01167
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