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플라잉 상태에서 바지형태의 하네스에 대한 하중압력 분포 측정 및 가상착의 적용

Investigation of the body distribution of load pressure and virtual wear design of short pants harnesses in flying condition

  • 권미연 (한국생산기술연구원, 소재부품융합연구부문)
  • Kwon, MiYeon (Material & Component Convergence R&D Department, Korea Institute of Industrial Technology)
  • 투고 : 2021.08.28
  • 심사 : 2021.09.06
  • 발행 : 2021.09.30

초록

Virtual reality is currently mainly used in games, but is starting to be applied as a variety of media fields, such as broadcasting and film. Virtual reality provides more fun than reality, and can provide new experiences in areas that cannot be experienced in reality due to the constraints of time, space, and environment. In particular, as the social non-contact arena has increased due to COVID-19, it is being applied to education, health, and medical industries. The contents are further expanding into design and military fields. Therefore, the purpose of this study was to observe the change in distribution of load and pressure felt by the body in the flying state while wearing a short pants harness, which are mainly used in the game and entertainment industry. In the experiment, the average pressure in the flying state was measured by attaching a pressure sensor to the back and front of a human mannequin. As a result, it was confirmed that the load concentrated on the waist in the flying state was 44 N, with a pressure of 1353 kPa. The pressure distribution was concentrated in front of the center of gravity, and was measured was at 98% by the pressure sensors, with an average pressure value of approximately 15 kPa, and a pressure value of approximately 12 kPa at the back, which was measured at 67% by the pressure sensor. The results of the load and pressure distribution measurement are presented as fundamental data to improve the wearability and comfort of harnesses in the future, and are compared to actual measured pressure values by analyzing the clothing pressure in flight through virtual wear of harnesses through the CLO 3D program.

키워드

과제정보

본 논문은 한국생산기술연구원 기관주요사업과 경기도기술개발사업 "지능형 전자섬유 기반 스마트 텍스트로닉스 개발(kitech JA-21-0001/kitech IZ-21-0001)"의 지원으로 수행한 연구입니다.

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