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Development of V-Shaped Compression Socks on Conventional Socks Knitting Machine

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The aim of this study was to develop V-shape compression socks that should exert graduated lateral compression around the leg. For the development of socks, three types of yarns: main yarn (MY), plaiting yarn (PY) and inlaid yarn (IY) were used. Each yarn contained spandex yarn as the core. Machine adjustments were optimized to achieve the special V-shaped compression socks according to size of the wooden leg. Eighteen socks samples were developed and quantified for pressure exertion at ankle and calf portions using the MST MKIV, Salzmann pressure measuring device. Consequently, only two socks samples were accepted, which had the pressure exertion values of 21 mmHg and 23 mmHg with graduation percentage of 73% and 80%, respectively.
Rocznik
Strony
377--384
Opis fizyczny
Bibliogr. 22 poz.
Twórcy
  • Technical University of Liberec, Clothing Technology, Liberec
autor
  • Technical University of Liberec, Clothing Technology, Liberec
autor
  • Technical University of Liberec, Clothing Technology, Liberec
autor
  • Technical University of Liberec, Clothing Technology, Liberec
autor
  • Technical University of Liberec, Material Engineering, Liberec
autor
  • Technical University of Liberec, Clothing Technology, Liberec
Bibliografia
  • [1] Flaud, P., Bassez, P. and Counord, J.L. (2010). Comparative in vitro study of three inter-face pressure sensors used to evaluate medical compression hosiery. Dermatologic Surgery, 12, 1930–1940.
  • [2] Harpa, R., Piroi, C. and Radu. C.D. (2010). A new approach for testing medical stockings. Textile Research Journal, 80, 683–695.
  • [3] Smith, M.W.L. and Dalbey, J.C. (2011). Gradient compression hosiery knitted using corespun yarns. U.S. patent 7895863-B2.
  • [4] Wang, Y., Zhang, P. and Zhang, Y. (2014). Experimental investigation the dynamic pressure attenuation of elastic fabric for compression garment. Textile Research Journal, 84, 572–582.
  • [5] Macintyre, L. and Baird, M. (2005). Pressure garments for use in the treatment of hyper-trophic scars – an evaluation of current construction techniques in NHS hospitals. Burns, 31, 11–14.
  • [6] Partsch, H. (2005). The use of pressure change on standing as a surrogate measure of the stiffness of a compression bandage. European Journal of Vascular and Endovascular Surgery, 30, 415–421.
  • [7] Liu, R., Kwok, Y.L., Li, Y., Lao, T.T., Zhang, X., Dia, X.Q., et al. (2005). Objective evaluation of skin pressure distribution of graduated elastic compression stockings. Dermatologic Surgery, 31, 615–624.
  • [8] Partsch, H., Partsch, B., Braun, W. (2006). Interface pressure and stiffness of ready made compression stockings: comparison of in vivo and in vitro measurements. Journal of Vascular Surgery, 44, 809–814.
  • [9] Bera, M., Chattopadhay, R., Gupta, D. (2014). The effect of fibre blend on comfort characteristics of elastic knitted fabrics used for pressure garments. Journal of The Institution of Engineers, 95, 41–47.
  • [10] Oğlakcioğlu, N., Sari, B., Bedez, T., Marmarali, A., et al. (2016). A novel medical bandage with enhanced clothing comfort. Materials Science and Engineering, 141,120-21.
  • [11] Liu, R., Kwok, Y.L., Li, Y., Lao, T. (2010). Fabric mechanical-surface properties of compression hosiery and their effects on skin pressure magnitudes when worn. Fibres and Textiles in Eastern Europe, 79, 91-97.
  • [12] Chimeh, M.Y., Tehran, M.A., Latifi, M., Mojtahedi, M.R.M., et al. (2005). Characterizing bulkiness and hairiness of air-jet textured yarn using imaging techniques. Journal of Textile Institute, 96, 251–255.
  • [13] Capurro, S., (2004). “Sheathed elastic surgical thread”, U.S. patent 10/543333.
  • [14] Chattopadhyay, R., Gupta, D., Bera, M. (2012). Effect of input tension of inlay yarn on the characteristics of knitted circular stretch fabrics and pressure generation. Journal of Textile Institute, 103, 636-642.
  • [15] RAL-GZ 387/2 (2008) Medical Compression Armsleeves
  • [16] Ng S. F., Hui C. L. (2001). Effect of aspect ratio on pressure change of a tubular elastic fabric. Textile Research Journal, 71, 381–383.
  • [17] DeVasconcelos, F.B., Casaca, F., DeVasconcelos F.G. (2013). Design of elastic garments for sports in circular knitting. International Journal of Textile Fashion and Technology, 3, 39–48.
  • [18] Tsujisaka, T., Azuma, Y., Matsumoto, Y.I., Morooka, H., et al. (2004). Comfort pressure of the top part of men’s socks. Textile Research Journal, 74, 598–602.
  • [19] Troynikov O., Ashayeri E., Burton M., Subic A., Alam F., Marteau S., et al. (2010). Factors influencing the effectiveness of compression garments used in sports. APCST Procedia Engineering, 2, 2823–2829.
  • [20] Gaied I., Drapier S., Lun B. (2006). Experimental assessment and analytical 2d predictions of the stocking pressures induced on a model leg by medical compressive stockings. Journal of Biomechanics, 39, 3017–25.
  • [21] Troynikova O., Wardiningsiha W., Koptugb A., Watsona C., Oggiano L., et al. (2013). Influence of material properties and garment composition on pressure generated by sport compression garments. APCST Procedia Engineering, 157-162.
  • [22] Tezel S., Kavusturan Y. (2008). Experimental investigation of effects of spandex brand and tightness factor on dimensional and physical properties of cotton/spandex single jersey fabrics. Textile Research Journal, 71, 966–976.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-acff3934-2da9-4740-9c32-2cbb252d81fd
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