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스트레치 센서를 이용한 스쿼트 시 발목 가동범위 체크 센서 양말에 관하여 -20대 후반 남성을 중심으로-

Using a Stretch Sensor About of Squat Ankle Range of Motion Check Socks -Focusing on Men in Their Late 20s-

  • 송관우 (숭실대학교, 스마트웨어러블공학과) ;
  • 박진희 (숭실대학교, 유기신소재파이버공학과) ;
  • 김주용 (숭실대학교, 유기신소재파이버공학과)
  • Song, Kwanwoo (Dept. of Smart Wearable Engineering, Soongsil University) ;
  • Park, Jinhee (Dept. of Organic Materials and Fiber Engineering, Soongsil University) ;
  • Kim, Jooyong (Dept. of Organic Materials and Fiber Engineering, Soongsil University)
  • 투고 : 2022.03.17
  • 심사 : 2022.05.19
  • 발행 : 2022.05.30

초록

The purpose of this study is to develop socks to check the range of ankle movement during squats for men in their late 20s. Sensors of 6, 8, and 12 mm were selected, and each sample was impregnated 1 to 3 times. It was prepared using a CNT dispersion, and the GF value was measured using UTM. Among them, the sample with 2 impregnation showed the best GF value. As a result of applying each sample to the socks, the 12 mm sensor was wider than the area of the Achilles tendon, resulting in noise, and the 8 mm sensor was higher than the tensile strength of the socks, resulting in a decrease in the graph. Therefore, testing was performed using a 6 mm sensor. In order to determine the effectiveness of the sensor, the normal operating range was checked through squats, and significant changes were confirmed when the operating range was checked again through squats by performing operations that can increase the operating range through Gastrocnemius, Soleus stretching, and low lunge. Using the results of this study, it is expected that the average value of the ankle movement range of the user is checked prevent injury, to be provided as basic data for the production of shoe products and the promotion of physical health.

키워드

과제정보

이 (성과물)은 산업통상자원부 '산업혁신인재성장지원사업'의 재원으로 한국산업기술진흥원(KIAT)의 지원을 받아 수행된 연구임(2022년 산업 융합형 웨어러블 스마트 디바이스 전문인력 양성사업, 과제번호 : P0002397)

참고문헌

  1. Athos (Smart clothing that allows personal training through body movement). (2016). [Photograph]. Econovill. Retrieved February 5, 2022, from http://www.econovill.com/news/articleView.html?idxno=303381
  2. Athos Core(A product that can monitor the amount of exercise through sensors). (2015). [Photograph]. Livehome. Retrieved February 5, 2022, from https://livehome.me/564
  3. Beak, H. J., Kim, S., Kang, S. H., & Kim, J. (2021). Comparison of the effect of instrument assisted soft tissue mobilization (IASTM) and proprioceptive neuromuscular facilitation (PNF) on ankle strength, range of motion, and dynamic stability. The Korean Society of Culture and Convergence, 43(5), 831-846. doi:10.33645/cnc.2021.05.43.5.831
  4. Calf muscles. (2019). [Photograph]. Tistory. Retrieved February 5, 2022, from https://breadhome.tistory.com/33
  5. Difference between single, double and multi carbon nanotubes. (2022). [Photograph]. Google. Retrieved February 5, 2022, from https://www.google.com/search?q=swcnt+mwcnt+dwcnt&tbm=isch&ved=2ahUKEwjI6NK9-932AhU6xIsBHdPJA_kQ2-cCegQIABAA&oq=swcnt+mwcnt+dwcnt&gs_lcp=CgNpbWcQAzIHCCMQ7wMQJ1AAWABgxwNoAHAAeACAAXuIAXuSAQMwLjGYAQCqAQtnd3Mtd2l6LWltZ8ABAQ&sclient=img&ei=zfo7YojOKLqIr7wP05OPyA8&bih=830&biw=1527
  6. Exorihab Rehabilitation Exercise Wearable. (n.d.). [Photograph]. Exosystems. Retrieved February 5, 2022, from https://ko.exosystems.io/solution
  7. Heo, J., Jo, J., & Park, S. (2015). Technology trends, development and international standardization prospects of wearable smart devices. The Institute of Electronics and Information Engineers, 42(6), 23-29. http://www.dbpia.co.kr/journal/articleDetail?nodeId=NODE06367090
  8. Jang, J., Park, J., & Kim, J. (2021). Development of stretch sensors to measure thigh motor capacity. Journal of Fashion Business, 25(5), 99-113. doi:10.12940/jfb.2021.25.5.99
  9. Jung, B. Y . (2018). 웨어러블 디바이스 시장 현황과 전망 [Wearable Device Market Status and Prospect]. ICT & Media Policy, 30(20), 1-7. Retrieved from https://kiss-kstudy-com-ssl.openlink.ssu.ac.kr:8443/thesis/thesis-view.asp?key=3915717
  10. Kim, J. S., Park, J., & Kim, J. (2020). Development of smart soccer socks using a textile stretch sensor : Focused on middle school girls between the ages of 14 and 15. Journal of Fashion Business, 24(3), 17-29. doi:10.12940/jfb.2020.24.3.17
  11. Lee, J. E. (2020). Development of smart graduated compression leggings based on strain sensor (Unpublished doctoral dissertation). Chonnam National University, Gwangju, Korea.
  12. Lee, J. I., & Jung, H. T. (2008). Technical status of carbon nanotubes composites. Korean Chemical Engineering Research, 46(1), 7-14.
  13. Lee, J., Park, J., Lim, Y., & Kwon, M. S. (2020). Analysis of correlation between passive ankle movement range and knee joint kinetic variables during squat movement. Journal of the Korean Applied Science and Technology, 37(3), 509-515. doi:10.12925/jkocs.2020.37.3.509
  14. Nam, S. W. (2020). Post COVID-19 Society, Sport, and Sociology of Sport. Korean Journal of Sociology of Sport, 33(4), 1-18. doi:10.22173/ksss.2020.33.4.1
  15. Moreira-Neto, A., Martins, B., Miliatto, A., Nucci, M. P., & Silva-Batista, C. (2021). Can remotely supervised exercise positively affect self-reported depressive symptoms and physical activity levels during social distancing?. Psychiatry Research, 301, 113969. https://doi.org/10.1016/j.psychres.2021.113969
  16. Roh, J. S. (2016). Wearable textile strain sensors. Fashion & Text. Res. J, 18(6), 733-745. doi:10.5805/SFTI.2016.18.6.733
  17. Wearables and Healthcare. (2019). [Photograph]. Hkn24. Retrieved February 5, 2022, from https://www.hkn24.com/news/articleView.html?idxno=307877
  18. Yoo, H., Beak, H., & Kim, J. (2021). Effects of online home-training program on stress, depression, and self-efficacy in male and female adults during the COVID-19 pandemic. The Korean Society of Culture and Convergence, 43(11), 987-1000. doi:10.33645/cnc.2021.11.43.11.987
  19. Yun, H. Y., Kim, S. U., & Kim, J. Y. (2021). Carbon-nanotube-based spacer fabric pressure sensors for biological signal monitoring and the evaluation of sensing capabilities. Korean Society for Emotion and Sensibility, 24(2), 65-74. doi:10.14695/KJSOS.2021.24.2.65