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Composites Based on Polypropylene Modified with Natural Fillers to Increase Stiffness


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[1] Saba N., Jawaid M., Alothman O.Y., Paridah M.T., A review on dynamic mechanical properties of natural fibre reinforced polymer composites, Construction and Building Materials, vol. 106/2016, 149–159.10.1016/j.conbuildmat.2015.12.075Search in Google Scholar

[2] Yatigala N.S., Bajwa D.S., Bajwa S.G., Compatibilization improves physico-mechanical properties of biodegradable biobased polymer composites, Composites Part A: Applied Science and Manufacturing, vol. 107/2018, 315–325.10.1016/j.compositesa.2018.01.011Search in Google Scholar

[3] Righetti B., Mello R., Benedetto D., Hirayama D., De Andrade O., Manufacturing and Characterization of Jute / PP Thermoplastic Commingled Composite 2. Experimental Procedures, Materials Research vol. 20/2017, 458–465.10.1590/1980-5373-mr-2017-0104Search in Google Scholar

[4] Vilaseca F., Valadez-Gonzalez A., Herrera-Franco P.J., Pèlach M.À., López J.P., Mutjé P., Biocomposites from abaca strands and polypropylene. Part I: Evaluation of the tensile properties, Bioresource Technology, vol. 101/2010, 387–395.10.1016/j.biortech.2009.07.06619700312Search in Google Scholar

[5] Zago D.M., Jikan S.S., Badarulzaman N.A., Nuhu A.H., Effect of Additives on Polypropylene / Kaolin Composite Prepared via In-situ Process, Journal of Science and Technology, vol. 9/2017, 19–23.Search in Google Scholar

[6] Qiu F., Wang M., Hao Y., Guo S., The effect of talc orientation and transcrystallization on mechanical properties and thermal stability of the polypropylene/talc composites, Composites Part A: Applied Science and Manufacturing, vol. 58/2014, 7–15.10.1016/j.compositesa.2013.11.011Search in Google Scholar

[7] Kuciel S., Kuźniar S., Mikuła J., Tuf – nowy mineralny kompatybilizator recyklatów PHED przeznaczonych do wytwarzania wyrobów metodą rozdmuchiwania, Przetwórstwo Tworzyw, 2013, 250–258.Search in Google Scholar

[8] Żmudka S., Budniak I., Kuciel S., Mikuła J., Ocena możliwości zastosowań wulkanicznego tufu jako napełniacza polimerów termoplastycznych, Czasopismo Techniczne, 1-M/2009, 421–428.Search in Google Scholar

[9] Tarverdi P. K., Madoyan Z., Preparation and properties of polypropylene and pa 6 composites reinforced with armenian tuff stone, European Scientific Journal, vol. 2/2014, 161–166.Search in Google Scholar

[10] García-García D., Carbonell A., Samper M.D., García-Sanoguera D., Balart R., Green composites based on polypropylene matrix and hydrophobized spend coffee ground (SCG) powder, Composites Part B: Engineering, vol. 78/2015, 256–265.10.1016/j.compositesb.2015.03.080Search in Google Scholar

[11] Nikmatin S., Syafiuddin A., Hong Kueh A.B., Maddu A., Physical, thermal, and mechanical properties of polypropylene composites filled with rattan nanoparticles, Journal of Applied Research and Technology., vol. 15/2017,386–395.10.1016/j.jart.2017.03.008Search in Google Scholar

[12] Chun K.S., Husseinsyah S., Osman H., Utilization of cocoa pod husk as filler in polypropylene biocomposites: Effect of maleated polypropylene, Journal of Thermoplastic Composite Materials, vol. 28(11)/2015, 1507–1521.10.1177/0892705713513291Search in Google Scholar

[13] Essabir H., Raji M., Laaziz S.A., Rodrique D., Bouhfid R., el kacem Qaiss A., Thermo-mechanical performances of polypropylene biocomposites based on untreated, treated and compatibilized spent coffee grounds, Composites Part B: Engineering, vol. 149/2018, 1–11.10.1016/j.compositesb.2018.05.020Search in Google Scholar

[14] Sobczak L., Lang R.W., Haider A., Polypropylene composites with natural fibers and wood – General mechanical property profiles, Composites Science and Technology, vol. 72(5)/2012, 550–557.10.1016/j.compscitech.2011.12.013Search in Google Scholar