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Formulation of 3D shoe sizes using scanning camera and CAD modelling

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
PL
Abstrakty
EN
Purpose: This paper purposes to formulate 3D shoe size by using scanning camera and link to CAD modeling. Design/methodology/approach: The research design is divided into four groups with different ages and sex. The first group is boys and girls with 6-10 years old. The second group is teenagers with 11 - 20 years old. The third group is university students and working people with 21-30 year olds. The last group is professional working people group with 31 - 48 years old. The sample populations are selected and measured their feet both left and right sides. Each group contains ten to eighteen people except the child group which contains three to five children. The sampling sizes are 97 people. The 3D scanning camera is used in order to obtain the all sides of the feet. The process contains five steps in five foot positions; the middle foot, the 45° left foot, the 90° left foot, the 45° right foot, 90° right foot. The foot data image of all the sampling populations are classified in the same and similar sizes. Eight groups are determined that is formulated by eight sizes of the Thai shoe size. The size is started from the 19 W7.4 H6.7 to 27 W10.8 H9.1 which represents 3D shoe size. Findings: The research result has investigated the new standard size model based on Thai local populations in 3D models. This study shows precisely the customized shoe sizes for individual people as well as the grouping shoe sizes for Thai people. Practical implications: It can make benefits for shoe designers, customers and manufacturers. Originality/value: This study shows precisely the customized shoe sizes for individual people as well as the grouping shoe sizes for Thai people.
Słowa kluczowe
Rocznik
Strony
449--455
Opis fizyczny
Bibliogr. 13 poz., wykr.
Twórcy
autor
  • Integrated Manufacturing System Research Center (IMSRC), Department of Production Engineering, Faculty of Engineering, King Mongkut's Institute of Technology North Bangkok, 1518 Piboonsongkram Rd. Bangsue, Bangkok, Thailand, stb@kmitnb.ac.th
Bibliografia
  • [1] Nanua Singh Systems Approach to Computer Integrated Design and Manufacturing, John Wiley and Sons, Inc., 1996.
  • [2] T. J. Hwang, K. Lee, H. Y. Oh, J. H. Jeong, Derivation of template shoe lasts for efficient fabrication of customordered shoe lasts, The International Journal of Computer Aided Design 37 (2005) 1241-1250.
  • [3] M. Y. Lai, L. L. Wang, Automatic Shoe-Pattern Boundary Extraction by Image-Processing Techniques, International Journal of Robotics and Computer-Integrated Manufacturing 24 (2008) 217-227.
  • [4] S. H. Kim, K. H. Shin, W. Chung, A Method for Modifying a Surface Model with Non-uniformly Scattered Displacement Constraints for Shoe Sole Design, International Journal of Advanced in Engineering Software 39 (2008) 713-724.
  • [5] S. Butdee, Hybrid Feature Modeling for Sport Shoe Sole Design, International Journal of Computer and Industrial Engineering 42 (2002) 271-279.
  • [6] M. G. McPoil, Athletic Footwear: Design, Performance and Selection Issues, Journal of Science and Medicine in Sport 3(3) (2000) 260-267.
  • [7] Z. Nakhaee, A. Rahimi, M. Abaee, A. Rezasoltani, Kalantari, The Relationship between the Height of the Medical Longitudinal Arch (MLA) and the Ankle and Knee Injuries in Professional Runners, The Journal of the Foot 1020 (2008) 1-7.
  • [8] Q. Tu, M. A. Vonderembse, T. S. R. Nathan, The Impact of Time-Based Manufacturing Practice on Mass Customization and Value to Customer, Journal of Operation Management 19 (2001) 201-217.
  • [9] G. D. Silveira, D. Borenstein, F. S. Fogliatto, Mass Customization: Literature Review ans Research Directions, International Journal of Production Economics 72 (2001) 1-13.
  • [10] F. Docchio, G. Sansoni, Three-dimensional Optical Measurments and Reverse Engineering for Automotive Applications, Journal of Robotics and Computer-Integrated Manufacturing 20 (2004) 359-367.
  • [11] Y. Zhongwei, Direct Integration of Reverse Engineering and Rapid Prototyping based on the Properties of NURBS or Bspline, Journal of Robotics and Computer-Integrated Manufacturing 28 (2004) 293-301.
  • [12] Y. Zhongwei, Reverse Engineering of a NURBS Surface from Digitized Points Subject to Boundary Conditions, Journal of Computers & Graphics, 28 (2004) 207-212.
  • [13] International Shoe Size Conversion Charts, (2008)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BWAW-0002-0041
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