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Inteligentne tekstylia o właściwościach termoregulacyjnych. Część Ib. Materiały przemiany fazowej

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PL
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Rocznik
Tom
Strony
25--27
Opis fizyczny
Bibliogr. 31 poz., tab.
Twórcy
Bibliografia
  • 1. Bryant Y. G., Colvin D. P., Fibre with reversible enhanced thermal storage properties and fabrics made there from, US Patent 4 756 958, (1988).
  • 2. Colvin D. P., Bryant Y. G., Thermally enhanced foam insulation, US Patent 5 637 389, 1996.
  • 3. Bryant Y. G., Colvin D. P., Fabric with reversible enhanced thermal properties, US Patent 5 366 807, 1994.
  • 4. Vigo T. L., Frost C. M., Temperature-sensitive hollow fibres containing phase change salts, Tex. Res. J., 52 (10), 633-637, (1982).
  • 5. Vigo, T. L. et al., Temperature-Adaptable Hollow Fibers Containing Polyethylene Glycols, J. Coated Fabrics, vol. 12, 243-254, (1983).
  • 6. Vigo T. L., Bruno J. S., Temperature-adaptable textiles containing durably bound polyethylene glycols, Textile Res. J., 1987, 57 (7). 427-429.
  • 7. Vigo T. L., Temperature adaptable textile fibers and method preparing same, US Patent 4 908 238, (1990).
  • 8. Abhat A., Low temperature latent heat thermal energy storage: heat storage materials, Solar Energy, vol. 30, 313-332 (1983).
  • 9. Lane G. A., Low temperature heat storage with phase change materials. International Journal Energy Res., 5, 155-160, (1980).
  • 10. Zalba B., Marin J. M., Cabeza L. F., Mehling H., Review on thermal energy storage with phase change materials, heat transfer analysis and applications. Applied Thermal Engineering, 23, 251-283, (2003).
  • 11. Farid M. M., Khudhair A. M., Razack S. A. K., Al-Hallaj S., A review on phase change energy storage: materials and applications, Energy Conversion and Management, 45, 1597-1615, (2004).
  • 12. Mondal S., Phase change materials for smart textiles -An overview. Applied Thermal Engineering, 28, 1536-1550, (2008).
  • 13. Hasnain S. M., Review on sustainable thermal energy storage technologies. Part I: Heat storage materials and techniques, Energy Conversion and Management, 39 (11), 1127-1138, (1998).
  • 14. Feldman D., Shapiro M. M., Banu D., Organic phase change materials for thermal energy storage, Solar Energy Materials, 13 (1), l-, (1986).
  • 15. Hadjieva, M., Kanev, S., Argirov, J., Thermophysical properties of some paraffins applicable to thermal energy storage. Solar Energy Materials and Solar Cells, 27, 181-187.(1992).
  • 16. Himran S., Suwono A., Mansoori A. G., Characterization of alkanes and paraffin waxes for application as phase change energy storage medium, Energy Sources. 16 (1), 117-128, (1994).
  • 17. Pielichowski K., Flejtuch K., Differential scanning calorimetry studies on poly(ethylene glycol) with different molecular weights for thermal energy storage material, Polymers for Advanced Technologies, 13 (10-12), 690-696, (2002).
  • 18. Craig D. Q. M., Newton J. M., Characterization of polyethylene glycols using differential scanning calorimetry. International Journal of Pharmaceutics, 74(1/2), 33-41 (1991).
  • 19. Suppes G. J., Go M. J., Lopes S., Latent heat characteristics of fatty acid derivatives pursuant phase change material applications, Chemical Engineering Science, 58, 1751-1763, (2003).
  • 20. Feldman D., Shapiro M. M., Fatty acids and their mixtures as phase change material for thermal energy storage. Solar Energy mater., 18, 201-216(1989).
  • 21. Hasan A., Sayigh A. A., Some fatty acids as phase-change thermal energy storage materials, Renewable Energy, 4 (1), 69-76 (1994).
  • 22. Rozanna D., Salmiah A., Chuah T. G., Medyan R., Thomas Choong, S. Y., Sa'ari M., A study on thermal characteristics of phase change material (PCM) in gypsum board for building application, Journal of Oil Palm Research, 17 (6), 41-46 (2005).
  • 23. Sari A., Kaygusz K., Thermal Energy Storage Characteristics of Myristic and Stearic Acids Eutectic Mixture for Low Temperature Heating Applications, Chinese Journal of Chemical Engineering, Vol. 14 (2), 270-275, (2006).
  • 24. Sari, A; Sari, H and Onal, A , Thermal properties and thermal reliability of eutectic mixtures of some fatty acids as latent heat storage materials, Energy Conversion and Management, 45: 365-376, (2004).
  • 25. Timmermans, J., Plastic Crystals: A Historical Review, Journal of Physics, Chemistry and Solids, 18(1), 1-18,(1961).
  • 26. Chandra D., Ding W., Lynch R. A., Tomilinson J. J., Phase transitions in "plastic crystals", Journal of the Less Common Metals, 168 (1), 159-167, (1991).
  • 27. Benson D. K., Burrows R. W., Shinton Y. D., Composite materials for thermal energy storage, US Patent 457 28 64, (1985).
  • 28. Benson D. K., Burrows R. W., Webb J. D., Solid state phase transitions in pentaerythritol and related polyhydric alcohols. Solar Energy Materials, 13 (2), 133-152, (1986).
  • 29. Feng H., Liu X., He S., Wu K., Zhang J., Studies on solid-solid phase transitions of polyols by infrared spectroscopy, Thermochimica Acta, 348 (1-2), 175-179, (2000).
  • 30. Font, J., Muntasell, J., Navarro, J., Tamarit, J., Mélanges pentaglycerine / neopentyl glycol: Mélanges pentaglycerine / neopentvl glycol, formation d'une solution solid, Thermochimica Acta, 136, 55-71, (1988).
  • 31. Akbulut S., Ocak Y., Kes-liog-lu K., Maras-li N., Thermal conductivities of solid and liquid phases for neopentylglycol, aminomethyl-propanediol and their binary alloy. Journal of Physics and Chemistry of Solids, 70, 72-78, (2009).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPS2-0057-0057
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