用户名: 密码: 验证码:
Curing kinetics of self-healing epoxy thermosets
详细信息    查看全文
  • 作者:Manorama Tripathi ; Devendra Kumar…
  • 关键词:Curing kinetics ; Autocatalytic reaction ; Non ; isothermal differential scanning calorimetry
  • 刊名:Journal of Thermal Analysis and Calorimetry
  • 出版年:2015
  • 出版时间:January 2015
  • 年:2015
  • 卷:119
  • 期:1
  • 页码:547-555
  • 全文大小:1,256 KB
  • 参考文献:1. Yang Y, Urban MW. Self-healing polymeric materials. Chem Soc Rev. 2013;42(17):7446-7. CrossRef
    2. Scheltjens G, Brancart J, Graeve I, Mele B, Terryn H, Assche G. Self-healing property characterization of reversible thermoset coatings. J Therm Anal Calorim. 2011;105(3):805-. CrossRef
    3. Sharma P, Shukla S, Lochab B, Kumar D, Roy PK. Microencapsulated cardanol derived benzoxazines for self-healing applications. Mater Lett. 2014;. doi:10.1016/j.matlet.2014.07.048 .
    4. White SR, Sottos NR, Geubelle PH, Moore JS, Kessler MR, Sriram SR, et al. Autonomic healing of polymer composites. Nature. 2001;409(6822):794-. CrossRef
    5. Kessler MR, Sottos NR, White SR. Self-healing structural composite materials. Compos A. 2003;34(8):743-3. CrossRef
    6. Brown EN, White SR, Sottos NR. Microcapsule induced toughening in a self-healing polymer composite. J Mater Sci. 2004;39(5):1703-0. CrossRef
    7. Yuan L. Preparation and characterization of poly(urea-formaldehyde) microcapsules filled with epoxy resins. Polym Degrad Stab. 2006;47:5338-9.
    8. Bleay SM, Loader CB, Hawyes VJ, Humberstone L, Curtis PT. A smart repair system for polymer matrix composites. Compos A Appl Sci Manuf. 2001;32(12):1767-6. CrossRef
    9. Pang JWC, Bond IP. A hollow fibre reinforced polymer composite encompassing self-healing and enhanced damage visibility. Compos Sci Technol. 2005;65(11-2):1791-. CrossRef
    10. Jin H, Mangun CL, Stradley DS, Moore JS, Sottos NR, White SR. Self-healing thermoset using encapsulated epoxy-amine healing chemistry. Polymer. 2012;53(2):581-. CrossRef
    11. Yin T, Rong M, Zhang LM. Self-healing epoxy composites—part I: curing kinetics and heat-resistant performance. Adv Mater Res. 2013;716:383-. CrossRef
    12. Hudson S, Magner E, Cooney J, Hodnett BK. Methodology for the immobilization of enzymes onto mesoporous materials. J Phys Chem B. 2005;109(41):19496-06. CrossRef
    13. Karimi B, Emadi S, Safari AA, Kermanian M. Immobilization, stability and enzymatic activity of albumin and trypsin adsorbed onto nanostructured mesoporous SBA-15 with compatible pore sizes. RSC Adv. 2014;4:4387-394.
    14. Yiu HHP, Wright PA, Botting NP. Enzyme immobilisation using SBA-15 mesoporous molecular sieves with functionalised surfaces. J Mol Catal B Enzym. 2001;15(1-):81-2. CrossRef
    15. Chaudhary S, Parthasarathy S, Kumar D, Rajagopal C, Roy PK. Graft-interpenetrating polymer networks of epoxy with polyurethanes derived from poly(ethyleneterephthalate) waste. J Appl Polym Sci. 2014;131:40490.
    16. Chaudhary S, Parthasarathy S, Kumar D, Rajagopal C, Roy PK. Poly(ethyleneterephthalate) glycolysates as effective toughening agents for epoxy resin. J Appl Polym Sci. 2014;131:39941.
    17. Ramírez C, Abad MJ, Barral L, Cano J, Díez FJ, López J, et al. Thermal behaviour of a polyhedral oligomeric silsesquioxane with epoxy resin cured by diamines. J Therm Anal Calorim. 2003;72(2):421-. CrossRef
    18. Tong XM, Zhang M, Yang MZ. Study on the curing kinetics of epoxy resin in self-healing microcapsules with different shell material. Adv Mater Res. 2011;306-07:658-2. CrossRef
    19. Ghaemy M, Yaghoob S, Karimi M. Curing kinetics of DGEBA/UF resin system used as laminates in impregnated decorative paper. Iran Polym J. 2010;19(9):661-.
    20. Rosso
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Sciences
    Polymer Sciences
    Physical Chemistry
    Inorganic Chemistry
    Measurement Science and Instrumentation
  • 出版者:Akad茅miai Kiad贸, co-published with Springer Science+Business Media B.V., Formerly Kluwer Academic
  • ISSN:1572-8943
文摘
The curing kinetics of self-healing epoxy compositions was investigated by non-isothermal differential scanning calorimetric (DSC) studies. Cycloaliphatic epoxy resin was encapsulated in urea–formaldehyde (UF) using emulsion polymerisation technique to prepare epoxy-loaded UF microcapsules. Triethylene tetramine (TETA) hardener was immobilised on a mesoporous siliceous substrate (SBA 15) and both these additives were dispersed into an epoxy resin, which was subsequently cured using TETA. DSC studies revealed the autocatalytic nature of epoxy curing, which remained unaltered due to addition of the above-mentioned fillers, responsible for introducing self-healing functionality. The kinetic parameters of the curing process were determined using both Friedman and Kissinger–Akahira–Sunose (KAS) method. The activation energy at different degrees of conversion (E α ) was found to decrease with increasing degree of cure (α). Although UF resins possess secondary amine functionalities, which have the potential to react with the epoxy groups, no significant differences in the curing kinetics of the base resin were observed. Kinetic parameters were used to predict the curing behaviour of compositions at higher heating rates using KAS method. As expected, the onset curing temperature (T onset) and peak exotherm temperature (T p) of epoxy shifted towards higher temperatures with increased heating rate; however, introduction of fillers does not affect these characteristic temperatures significantly. Also, the overall order of reaction does not vary significantly which supports the autocatalytic nature of curing reaction. The results suggests that although 2° amino groups are available with the UF resin, these do not directly participate in the curing reaction, as the primary amino groups in TETA are more easily accessible.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700