Autors: T. G. Vlakova., Dineff, P. D., Gospodinova, D. N. Title: Wood flour: A New Filler for the Rubber Processing Industry. II Cure Characteristic and Mechanical Properties of NBR Compounds Filled with Corona-Treated Wood Flour Keywords: corona‐treated wood, flour filled NBR compounds, cure charac Abstract: Corona‐treated wood flour was evaluated as a filler for NBR (nitrile butadiene rubber) compounds by studying its influence on their cure characteristics and mechanical properties. The different operating conditions of the corona treatment, such as voltage and duration, which led to different degrees of surface etching, were observed by means of electron microscopy. Accumulation of different oxygen‐containing groups on the wood flour particles' surface was confirmed by means of ESCA. Wood flour–filled materials were thus obtained with varying final properties. The cure characteristics, mechanical parameters, and water adsorption of the composites were estimated to determine an optimum level of the wood flour surface modification. The corona treatment of the wood flour renders it into a semiactive filler. References Issue
Copyright Wiley Periodicals, Inc. Full text of the publication |
Цитирания (Citation/s):
1. F. Gouanve, M. Meyer, J. Grenet, S. Marais, F. Poncin-Epaillard, J.-M. Saiter. Unsaturated polyester resin (UPR) reinforced with flax fibers, untreated and cold He plasma-treated: Thermal, mechanical and DMA studies. Instrumentation Science & Technology 13(4):355-364, January 2006, IF = 0.54, SJR = 0.25, DOI: 10.1163/156855406777408548. - 2006 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
2. F. Gouanvé, S. Marais, A. Bessadok, D. Langevin, C. Morvan, M. Métayer. Study of water sorption in modified flax fibers. Journal of Applied Polymer Science 101(6):4281 – 4289, September 2006, IF = 1.77, SJR = 0,783, DOI: 10.1002/app.23661. - 2006 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
3. Miren Nekane Ichazo, Marianela Hernández, Carmen Albano, Jeanette González. Curing and Physical Properties of Natural Rubber/Wood Flour Composites. Macromolecular Symposia 239(1):192 – 200, June 2006, Central University of Venezuela, Caracas, Capital, Venezuela, SJR = 0.567, DOI: 10.1002/masy.200690096. - 2006 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
4. Ildikó Mohammed-Ziegler, Zoltán Hórvölgyi, András Tóth, Willis Forsling, Allan Holmgren. Wettability and spectroscopic characterization of silylated wood samples. Polymers for Advanced Technologies 17(11‐12):932 – 939, November 2006, IF = 1.76, SJR = 0.697, DOI: 10.1002/pat.778 - 2006 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
5. K. Johansson. Plasma modification of natural cellulosic fibres. February 2007, DOI: 10.1533/9781845692575.2.247, In book: Plasma Technologies for Textiles, pp. 247-281 - 2007 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
6. Miren N Ichazo, Carmen Albano, Marianella Hernández, Jeanette González, Jenny Peña. Characterization Of Natural Rubber/ /Cassava Starch/Maleated Natural Rubber Formulations. Revista Latinoamericana de Metalurgia y Materiales 31(1):71-84 - 2011 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
7. Károly Renner, János Móczó, Béla Pukánszky. Polymer/Wood Composites. DOI: 10.1002/9781118097298.weoc180, In book: Wiley Encyclopedia of Composites - 2012 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
8. Omar Faruk, Andrzej K. Bledzki. Wood Plastic Composite: Present and Future DOI: 10.1002/9781118097298.weoc264, In book: Wiley Encyclopedia of Composites, Publisher: (John Wiley & Sons, Inc., Editors: Luigi Nicolais, Assunta Borzacchiello, Stuart M. Lee, pp.3212-3231 - 2012 - в издания, индексирани в Scopus или Web of Science
9. Ahmad Mousa, Gert Heinrich, Bernd Kretzschmar, Udo Wagenknecht, Amit Das. Utilization of Agrowaste Polymers in PVC/NBR Alloys: Tensile, Thermal, and Morphological Properties. International Journal of Chemical Engineering 2012 (1687-806X) • November 2013, DOI: 10.1155/2012/121496. - 2012 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
10. Yonghui Zhou, Mizi Fan, Lihui Chen, Jiandong Zhuang. Lignocellulosic fibre mediated rubber composites: An overview. Composites Part B Engineering Vol. 76, pp. 180-191, July 2015, Elsivier, DOI: 10.1016/j.compositesb.2015.02.028. - 2015 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
11. Dongwei Shao, Min Xu, Liping Cai, Sheldon Q Shi. Fabrication of Wood-Rubber Composites Using Rubber Compound as a Bonding Agent Instead of Adhesives. Materials 9(6):469, June 2016. - 2016 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
12. R.C.R. Nunes. Chapter in book: Progress in Rubber Nanocomposites, pp.463-494 Rubber nanocomposites with nanocellulose. DOI: 10.1016/B978-0-08-100409-8.00013-9, Elsevier Ltd - 2017 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
13. Emilio Delgado, Anny Espitia, William Aperador. Comparative evaluation of Clusia multiflora wood flour, against mineral fillers, as reinforcement in SBR rubber composites, 14 November 2019 Iranian Polymer Journal, Springer, DOI: 10.1007/s13726-019-00768-6 - 2019 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
14. Yonghui Zhou, Mizi Fan, Lihui Chen. Interface and bonding mechanisms of plant fibre composites: An overview. Composites Part B Engineering 101, June 2016, DOI: 10.1016/j.compositesb.2016.06.055 - 2016 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
15. Yonghui Zhou, Mizi Fan, Lihui Chen. Interface and bonding mechanisms of plant fibre composites: An overview. Composites Part B Engineering 101, June 2016, Volume 101, 15 September 2016, Pages 31-45, DOI: 10.1016/j.compositesb.2016.06.055 - 2016 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
16. H Mohit, V Arul Mozhi Selvan. A comprehensive review on surface modification, structure interface and bonding mechanism of plant cellulose fiber reinforced polymer based composites. Composite Interfaces, 2018, Volume 25, 2018 - Issue 5-7: 25th Anniversary Issue, Taylor & Francis, https://doi.org/10.1080/09276440.2018.1444832 - 2018 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
17. Delgado, E., Espitia, A. & Aperador, W. Comparative evaluation of Clusia multiflora wood flour, against mineral fillers, as reinforcement in SBR rubber composites. Iran Polym J 29, 13–23 (2020). https://doi.org/10.1007/s13726-019-00768-6 - 2020 - от чужди автори в чужди издания, неиндексирани в Scopus или Web of Science
18. Sienkiewicz, N.; Dominic, M.; Parameswaranpillai, J. Natural Fillers as Potential Modifying Agents for Epoxy Composition: A Review. Polym. 2022, Vol. 14, Page 265 2022, 14 (2), 265. https://doi.org/10.3390/POLYM14020265. - 2022 - в издания, индексирани в Scopus или Web of Science
19. M. Mohammed et al., “Interfacial bonding mechanisms of natural fibre-matrix composites: An overview,” Bioresources, vol. 17, no. 4, Aug. 2022, doi: 10.15376/BIORES.17.4.MOHAMMED. - 2022 - в издания, индексирани в Scopus или Web of Science
20. M. Mohammed et al., “Interfacial bonding mechanisms of natural fibre-matrix composites: An overview,” Bioresources, vol. 17, no. 4, Aug. 2022, doi: 10.15376/BIORES.17.4.MOHAMMED. - 2022 - в издания, индексирани в Scopus или Web of Science
21. M. Rezvani, S. Sepahvand, M. Ghofrani, L. Fathi, and Ebrahimi, “Development of Laminated Flooring Using Wood and Waste Tire Rubber Composites: A Study on Physical-Mechanical Properties,” vol. 75, no. 1, pp. 107–119, 2024, doi: 10.5552/drvind.2024.0129. - 2024 - в издания, индексирани в Scopus или Web of Science
Вид: статия в списание, публикация в издание с импакт фактор, публикация в реферирано издание