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Carbon fabric reinforced propargyl ether/phthalonitrile composites produced by vacuum infusion

Boris A. Bulgakov 1, 2
Boris A. Bulgakov
Kirill Sergeyevich Belsky 1
Kirill Sergeyevich Belsky
Ekaterina Sergeevna Afanaseva 1, 2
Ekaterina Sergeevna Afanaseva
Alexander Victorovich Babkin 1, 2
Alexander Victorovich Babkin
Alexey Valer'evich Kepman 1, 2
Alexey Valer'evich Kepman
Viktor Vasilyvich Avdeev 1, 2
Viktor Vasilyvich Avdeev
2 Institute of New Carbon Materials and Technologies (INCMaT), Moscow, Russian Federation
Published 2017-12-22
CommunicationVolume 28, Issue 1, 44-46
28
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Bulgakov B. A. et al. Carbon fabric reinforced propargyl ether/phthalonitrile composites produced by vacuum infusion // Mendeleev Communications. 2017. Vol. 28. No. 1. pp. 44-46.
GOST all authors (up to 50) Copy
Bulgakov B. A., Belsky K. S., Nechausov S. S., Afanaseva E. S., Babkin A. V., Kepman A. V., Avdeev V. V. Carbon fabric reinforced propargyl ether/phthalonitrile composites produced by vacuum infusion // Mendeleev Communications. 2017. Vol. 28. No. 1. pp. 44-46.
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TY - JOUR
DO - 10.1016/j.mencom.2018.01.014
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.01.014
TI - Carbon fabric reinforced propargyl ether/phthalonitrile composites produced by vacuum infusion
T2 - Mendeleev Communications
AU - Bulgakov, Boris A.
AU - Belsky, Kirill Sergeyevich
AU - Nechausov, Sergey Sergeyevich
AU - Afanaseva, Ekaterina Sergeevna
AU - Babkin, Alexander Victorovich
AU - Kepman, Alexey Valer'evich
AU - Avdeev, Viktor Vasilyvich
PY - 2017
DA - 2017/12/22
PB - Mendeleev Communications
SP - 44-46
IS - 1
VL - 28
ER -
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@article{2017_Bulgakov,
author = {Boris A. Bulgakov and Kirill Sergeyevich Belsky and Sergey Sergeyevich Nechausov and Ekaterina Sergeevna Afanaseva and Alexander Victorovich Babkin and Alexey Valer'evich Kepman and Viktor Vasilyvich Avdeev},
title = {Carbon fabric reinforced propargyl ether/phthalonitrile composites produced by vacuum infusion},
journal = {Mendeleev Communications},
year = {2017},
volume = {28},
publisher = {Mendeleev Communications},
month = {Dec},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.01.014},
number = {1},
pages = {44--46},
doi = {10.1016/j.mencom.2018.01.014}
}
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MLA Copy
Bulgakov, Boris A., et al. “Carbon fabric reinforced propargyl ether/phthalonitrile composites produced by vacuum infusion.” Mendeleev Communications, vol. 28, no. 1, Dec. 2017, pp. 44-46. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.01.014.

Abstract

Heat-resistant polymer composites were obtained from 4-[3-(prop-2-yn-1-yloxy)phenoxy]benzene-1,2-dicarbonitrile and carbon fabric by a vacuum infusion molding process. The composite materials demonstrated the retention of mechanical properties down to 80% at 350°C and low inflammability (limiting oxygen index, 75%).

References

1.
m-Xylylene bismaleimide: a versatile building block for high-performance thermosets
Evsyukov S.E., Pohlmann T., Stenzenberger H.D.
Polymers for Advanced Technologies, 2015
2.
Mechanical and thermal properties of modified bismaleimide matrices toughened by polyetherimides and polyimide
Babkin A.V., Erdni-Goryaev E.M., Solopchenko A.V., Kepman A.V., Avdeev V.V.
Polymers for Advanced Technologies, 2015
3.
Optimization and preparation of an allyl phenoxy-modified bismaleimide resin
Jiang H., Wang R., Farhan S., Wang M., Zheng S.
High Performance Polymers, 2016
4.
H. R. Lubowitz and C. H. Sheppard, Patent US 5116935 A, 1992.
6.
10.1016/j.mencom.2018.01.014_bib0030
Stenzenberger
1994
7.
Phthalonitrile-carbon fiber composites
Sastri S.B., Armistead J.P., Keller T.M.
Polymer Composites, 1996
10.
Low-melting siloxane-bridged phthalonitriles for heat-resistant matrices
Babkin A.V., Zodbinov E.B., Bulgakov B.A., Kepman A.V., Avdeev V.V.
European Polymer Journal, 2015
11.
Dzhevakov P.B., Korotkov R.F., Bulgakov B.A., Babkin A.V., Kepman A.V., Avdeev V.V.
Mendeleev Communications, 2016
12.
Low-melting phthalonitrile thermosetting monomers with siloxane- and phosphate bridges
Bulgakov B.A., Babkin A.V., Dzhevakov P.B., Bogolyubov A.A., Sulimov A.V., Kepman A.V., Kolyagin Y.G., Guseva D.V., Rudyak V.Y., Chertovich A.V.
European Polymer Journal, 2016
13.
Improved Synthesis of Oligomeric Sulfone-Based Phthalonitriles
Laskoski M., Keller T.M., Ricks-Laskoski H.L., Giller C.B., Hervey J.
Macromolecular Chemistry and Physics, 2015
14.
Oligomeric bisphenol A-based PEEK-like phthalonitrile-cure and polymer properties
Keller T.M., Dominguez D.D., Laskoski M.
Journal of Polymer Science, Part A: Polymer Chemistry, 2016
15.
Improved synthesis of oligomeric phthalonitriles and studies designed for low temperature cure
Laskoski M., Neal A., Keller T.M., Dominguez D., Klug C.A., Saab A.P.
Journal of Polymer Science, Part A: Polymer Chemistry, 2014
16.
Self-catalyzed silicon-containing phthalonitrile resins with low melting point, excellent solubility and thermal stability
Zhang Z., Li Z., Zhou H., Lin X., Zhao T., Zhang M., Xu C.
Journal of Applied Polymer Science, 2014
17.
Mechanical and physicochemical properties of matrices for fiber reinforced plastics based on low-melting phthalonitrile monomers
Bulgakov B.A., Babkin A.V., Bogolyubov A.A., Afanas’eva E.S., Kepman A.V.
Russian Chemical Bulletin, 2016
18.
10.1016/j.mencom.2018.01.014_bib0090
Bulgakov
J. Compos. Mater., 2017
19.
Bulgakov B.A., Sulimov A.V., Babkin A.V., Afanasiev D.V., Solopchenko A.V., Afanaseva E.S., Kepmana A.V., Avdeeva V.V.
Mendeleev Communications, 2017
20.
Dual-curing thermosetting monomer containing both propargyl ether and phthalonitrile groups
Bulgakov B.A., Sulimov A.V., Babkin A.V., Kepman A.V., Malakho A.P., Avdeev V.V.
Journal of Applied Polymer Science, 2017
21.
One component propargyl phthalonitrile novolac: Synthesis and characterization
Augustine D., Mathew D., Reghunadhan Nair C.P.
European Polymer Journal, 2015
23.
10.1016/j.mencom.2018.01.014_bib0115
Babkin
SAMPE Conference Proceedings, Society for the Advancement of Material and Process Engineering, 2017
24.
Effect of DOP-based compounds on fire retardancy, thermal stability, and mechanical properties of DGEBA cured with 4,4′-DDS
Perez R.M., Sandler J.K., Altstädt V., Hoffmann T., Pospiech D., Ciesielski M., Döring M.
Journal of Materials Science, 2006
27.
Effect of PTMEG on the mechanical and flame retardance behaviour of novolac phenolic based CFRP
Sham Aan M.P., Krishna M., Narasimha Murthy H.N., Rai S.K.
Fibers and Polymers, 2010