Uticaj strukturnih i konstrukcijskih parametara pletenina na termička svojstva muške čarape Naučni rad

Glavni sadržaj članka

Predrag Tasić
https://orcid.org/0000-0002-8023-9585
Dušan Trajković
Jelka Geršak
https://orcid.org/0000-0001-8693-3247

Apstrakt

Istraživanje je fokusirano na utvrđivanje uticaja strukturnih i konstrukcijskih parametara rebrastih pletenina na termička svojstva muških čarapa. Muške čarape izrađene su u tri različita prepletaja (1:1, 3:1, 7:1) od tri vrste osnovnih pređa: bambus, pamuk i mešavine pamuk/poliester sa dodatnom filamentnom poliamid­nom pređom obmotanom gumenom niti za tzv. render čarape. Za sve analizirane uzorke čarapa u desno-desnom prepletaju, određeni su strukturni parametri pređa i konstrukcijski parametri pletenina. Uticaj pojedinih parametara na toplotna svojstva čarapa proveren je na temelju istrazivanja toplo-hladnog osećaja (toplota opipa), koeficijenta toplotne provodljivosti, koeficijenta sposobnosti zadržavanja toplote i toplotne otpornosti, određene pomoću mernih uređaja “Thermo Labo” i “Thermal Mannequin”. Utvrđeno je da strukturni i konstrukcijski parametri pletenina utiču na toplotna svojstva čarapa, čineći ih manje ili više izolatorima, odnosno provodnicima toplote. Vrednosti parametra toplota opipa, kao i toplotna provodljivost variraju zavisno od prepletaja, pokazujući pad u nizu, R1:1 > R3:1 > R7:1. Sposobnost zadržavanja toplote opada u nizu, R7:1 > R3:1 > R1:1. Najveće vrednosti toplotne otpornosti određene pomoću oba primenjena metoda registrovane su kod čarapa rebrastog prepletaja oznake R7:1. Primenjena je regresiona analiza pri čemu su kao nezavisne promenljive izabrane deblјina, dužina petlјe, površinska masa i poroznost, dok je zavisna promenljiva toplotna otpornost određena primenom “Thermo Labo” uređaja. Pokazano je da nezavisne promenljive, dužina petlјe i površinska masa značajno doprinose modelu.

Detalji članka

Broj časopisa

Rubrika

Transport properties and permeability of textile materials

Kako citirati

[1]
P. Tasić, D. . Trajković, and J. . Geršak, “Uticaj strukturnih i konstrukcijskih parametara pletenina na termička svojstva muške čarape: Naučni rad”, Hem Ind, vol. 77, no. 3, pp. 181–190, Mar. 2023, doi: 10.2298/HEMIND220724004T.

Reference

Abd El-Hady RAM. Investigation of the Thermal Properties and Anti-microbial Behavior of Socks Knitted from Conductive Yarns, Asian J Text. 2014; 4: 1-17. https://dx.doi.org/10.3923/ajt.2014.1.17

Akaydin M, Can Y. A Research of Strength Properties of Socks Knitted from New Cellulose-Based Fibers, Electron J Text Technol. 2012; 6: 28-36. http://acikerisim.pau.edu.tr:8080/xmlui/handle/11499/6490

Kandi I, Nath Das K, Mahish SS. Thermo-Physiological Comfort Properties of P/B Blended Suiting Fabrics, Int J Innov Res Technol Sci Eng. 2013; 2: 7620-7629. https://www.ijirset.com/upload/2013/december/68_Thermo.pdf.

Onofrei Е, Rocha АМ, Catarino А. The Influence of Knitted Fabrics’ Structure on the Thermal and Moisture Management Properties, J Eng Fibers Fabr. 2011; 6: 10-22. https://doi.org/10.1177/155892501100600403

Tesinova P, Atalie D. Thermal Comfort Properties of Sport Fabrics with Dependency on Structure Parameters and Maintenance, Fibers Polym. 2022; 23: 1150-1160. https://doi.10.1007/s12221-022-4160-x

Mishra R, Jamshaid H, Yosfani SHS, Hussain U, Nadeem M, Petru M, Tichy M, Muller M. Thermo physiological comfort of single jersey knitted fabric derivatives, Fashion Text. 2021; 40: 1-22. https://doi.org/10.1186/s40691-021-00266-5

Mansoor T, Hes L, Bajzik V. A new approach for thermal resistance prediction of different composition plain socks in wet state (part 2), Autex Res J. 2021; 21: 238-247. https://dx.doi.org/10.2478/aut-2019-0070

Bivainyte A, Mikucioniene D, Kerpauskas P. Investigation on Thermal Properties of Double-Layered Weft Knitted Fabrics, Mater Sci. 2012; 18: 167-171. https://dx.doi.org/10.5755/j01.ms.18.2.1921

Pavlović Ž, Vrljičak Z. Comparing double jersey knitted fabrics made of Tencel and modal yarns spun by different spinning methods, J Eng Fibers Fabr. 2020; 15: 1–15. https://dx.doi.org/10.1177/1558925020919854

Trajković SD, Tasić SP, Stepanović MJ, Šarac IT, Radmanovac MN. Physiological characteristics of the socks made from bamboo and conventional fibers, Adv Technol. 2014; 3: 59-65. https://dx.doi.org/10.5937/savteh1401059T

Pan N., Gibson P., Thermal and Moisture Transport in Fibrous Materials, 1st Edition, The Textile Institute, 2006 https://doi.org/10.1201/9781439824351

Kulacki F.A., Handbook of Thermal Science and Engineering, Publisher Springer Cham, 2020 https://doi.org/10.1007/978-3-319-32003-8

Angelova, R.A., Textiles and Human Thermophysiological Comfort in the Indoor Environment, 1st Edition, CRC Press, 2017 https://doi.org/10.1201/b19118

Aboalasaad ARR, Sirkova BK, Tesinova P, Khali A. Guidelines for measuring thermal resistance on thermal Foot Manikin, Mater Today: Proc. 2020; 31: S232–S235. https://dx.doi.org/10.1016/j.matpr.2019.11.068

Mansoor T, Hes L, Bajzik V, Noman MT. Novel method on thermal resistance prediction and thermo-physiological comfort of socks in a wet state, Text Res J. 2020; 90: 1987–2006. https://dx.doi.org/10.1177/0040517520902540

Cimilli S, Nergis BU, Candan C, Ozdemir M. A Comparative Study of Some Comfort-related Properties of Socks of Different Fiber Types, Text Res J. 2010; 80: 948–957. https://dx.doi.org/10.1177/0040517509349782

Similar Articles

You may also start an advanced similarity search for this article.