Estudo das propriedades mecânicas em embalagens de papel à base de poliacrilamida e fibras naturais

Autores

  • Danielle Ferreira dos Santos UFRJ/Pós doc
  • A J Vasconcelos Centro de Ciências e Tecnologia (CCT) - UNIFESO

Palavras-chave:

Natural fibers; Sustainable packaging; Mechanical properties

Resumo

Natural fibers have been extensively studied as a reinforcement filler in obtaining composites, replacing partially synthetic fibers. The vast majority of these materials originate from agro-industrial waste with a high content of lignin and cellulose making it a very interesting material with low cost and good mechanical properties. The purpose of the study was to obtain a composite based on alkyl ketene dimer resin, for the manufacture of sustainable packaging, made of paper by adding a 10% (w/w) con-tent of green coconut fiber and sugarcane bagasse fiber, and evaluated the impact of the filler on the mechanical behavior of the systems. The studied material was characterized from mechanical tests, such as Ring Crush Test (RCT) and Concora Medium Test (CMT) evaluating the maximum resistance supported by centimeter in the pre-pared composites, through the specimens. It was observed that the composite prepared with the sugarcane bagasse fiber presented the most satisfactory results, thus converging on the material with better mechanical properties, when compared to the compo-site obtained with green coconut fiber. Therefore, the study was funneled with sugar cane fiber, varying the content by 20 and 30 % (w/w), evaluating the impact on the dispersion of this filler in the polymeric matrix and, consequently, the mechanical response of the composite with these compositions.

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Referências

Agrawal, R.; Saxena, N. S.; Sharma, K. B.; Thomas, S.; Sreekala, M. S. Activation energy and crystallization kinetics of untreated and treat oil palm fibre reinforced phenol formaldehyde composites. Mat. Sci, & Eng., 2000, 277, 77-82. https://doi.org/10.1016/S0921-5093(99)00556-0

Anjos, O.; Santos, A.; Simões, R. Efeito do teor de xilanas na qualidade do papel produzido com fibra de Eucalipto Congresso florestal nacional. Viseu: Lisboa, 2005.

Annergren, G.; Rydholm, S.; Vardheim, S. Influence of raw material and pulping process on the chemical composition and physical properties of paper pulps. Svensk Papperstidning, 1962, 66, 196-210. http://npprj.spci.se/spcihtml/storage/2002-17-01-p014-019-Molin.pdf

Battistel, E., Morra, M., Marinetti, M. Enzymatic surface modification of acrylonitrile fibers. Appl. Surface Sci., 2001, 177, 32-41. https://doi.org/10.1016/S0169-4332(01)00193-3

Callister Jr, W. D. Fundamentos da Ciência e Engenharia de Materiais: Uma Abordagem Integrada (2.ªed.). Rio de Janeiro: LTC - Livros Técnicos e Científicos Editora S.A, 2006.

Campos, E.S. (2009). Curso básico de fabricação de papel (1.ª ed.). São Paulo: ABTCP.

Carrijo, O. A.; Liz, R. S.; Makishima, N. Fibra de casca de coco verde como substrato agrícola. Horticultura Brasileira, 2002, 20, 533-535. https://doi.org/10.1590/S0102-05362002000400003

Cuéllar, A.; Muñoz,I. Bamboo fiber reinforcement for polymer matrix. Dyna rev.fac.nac.minas, 2009, 77, 137-142. http://www.scielo.org.co/scielo.php?script=sci_arttext&pid=S0012-73532010000200015

Danielsson, S.; Lindström, M. E. Influence of birch xylan adsorption during kraft cooking on softwood pulp strength, Nordic Pulp & Paper Res. Journal, 2005, 20, 436-441. https://doi.org/10.3183/npprj-2005-20-04-p436-441

Garcez, E. O. Análise Teórico-Experimental do comportamento de concretos reforçados com fibras de aço submetidos a cargas de impacto. Dissertação de Mestrado, Porto Alegre: Universidade Federal do Rio Grande do Sul, 2005.

Köhnke, T. & Gatenholm, P. The effect of controlled glucouronoxylan adsorption on dryinginduced strength loss of bleached softwood pulp. Nordic Pulp & Paper Res. Journal, 2007, 22, 508-515. https://doi.org/10.3183/npprj-2007-22-04-p508-515

Köhnke, T.; Pujolrà s, C.; Roubroeks, J. P.; Gatenholm, P. The effect of barley husk arabinoxylan adsorption on the properties of cellulose fibres. Cellulose, 2008, 15, 537-546. https://link.springer.com/article/10.1007/s10570-008-9209-5

Luz, S. M.; Delto Tio, J.; Rcha, G. J. R.; Gonçalves, A. R.; Del’Arco, A. P. Cellulose and cellulignin from sugarcane bagasse reinforced polypropylene composites:Effect of acetylation on mechanical and thermal properties. Composites: Part A, 2008, 39, 1362-1369. https://doi.org/10.1016/j.compositesa.2008.04.014

Mohanty, A. K.; Misra, M.; Hinrinchsen, G. Biofibers.. Biodegradable polymers and biocomposites: An overview. Macromolecular Materials and Engineering, 2002, 276, 1-24. https://doi.org/10.1002/(SICI)1439-2054(20000301)276:1<1::AID-MAME1>3.0.CO;2-W

Molin, U. & Teder, A. Importance of cellulose/ hemicellulose ratio for pulp strength. Nordic Pulp, 2002.

Molina, E. M. A.; Mogollón, G.; COlodette, J. L. Efecto de las xilanas en la refinabilidad y propiedades físico-mecánicas de pulpa kraft de eucalyptus: Congreso iberoamericano de investigación em celulosa y papel. Guadalajara: Ciadicyp, 2008.

Pejic, B.M., Kostic, M.M., Skundric, P.D., Praskalo, J.Z. The effects of hemicelluloses and lignin removal on water uptake behavior of hemp fibers. Bioresource Tech., 2008, 99, 7152-7159. https://doi.org/10.1016/j.biortech.2007.12.073

Rosa, M., F.; Bezerra, F., C.; Correia, D.; Santo, S., F., J., S.; Abreu, F., A., P.; Furtado, A., A., L.; Brígido, A., K., L.; Norões, E., R., V. Utilização da casca de coco como substrato agrícola, Embrapa Agroindústria Tropical: Fortaleza, 2002.

Santchurn, D.; Ramdoyal, K.; Badaloo, M. G. H.; Labuschagne, M. From sugar industry to cane industry: investigations on multivariate data analysis techniques in the identification of different high biomass sugarcane varieties. Euphytica, 2012, 185, 543-558. https://link.springer.com/article/10.1007%2Fs10681-012-0682-4

Santos, M. S. M.; Madalena, J. A.; Soares, L.; Ferreira, P. V.; Barbosa, G. V. S. Repetibilidade de características agroindustriais em cana-de-açúcar. Pesquisa agropecuária brasileira, 2004, 39, 301-306. http://dx.doi.org/10.1590/S0100-204X2004000400001

Schönberg, C.; Oksanen, T.; Suurnäkki, A.; Kettunen, H.; Buchert, J. (2001). The Importance of Xylan for the Strength Properties of Spruce Kraft Pulp Fibres. Holzforschung, 2001, 55, 639-644. https://doi.org/10.1515/HF.2001.104

Shin, N. & Stromberg, B. Xylan’s impact on eucalyptus pulp yield and strength ”“ Myth or reality? Workshop on chemical pulping process. Karlstand. Proceedings: Karlstand, 2006.

Sihtola, H. & Blomberg, L. Hemicelluloses precipitated from steeping liquor in the viscose process as additives in papermaking, Cellulose Chem. and Technology, 1975, 9, 555-560. https://agris.fao.org/agris-search/search.do?recordID=US201303007559

Silva, R. P. Argamassas com adição de fibras de polipropileno ”“ estudo do comportamento reológico e mecânico. Dissertação de Mestrado, São Paulo: Universidade de São Paulo, 2006.

Sjöberg, J.; Kleen, M.; Dahlman, O.; Agnemo, R.; Sundvall, H. Analysis of carbohydrate and lignin in the surface and inner layers of softwood pulp fibers obtained employing various alkaline cooking process. Nordic Pulp and Paper Res. Journal, 2002, 17, 295-301. https://doi.org/10.3183/npprj-2002-17-03-p295-301

Sun, R.C., Tomkinson, J., Wang,S., Zhu, W. Characterization of lignins from wheat straw by alkaline peroxide treatment. Poly. Degradation and Stability, 2000, 67, 101-109. https://doi.org/10.1016/S0141-3910(99)00099-3

Van de Weyenberg, I., Ivens, J., De Coster, A., Kino, B., Baetens, E., Verpoest, I. Influence of processing and chemical treatment of flax fibres on their composites. Comp. Sci. and Technology, 2003, 63, 1241-1246. https://doi.org/10.1016/S0266-3538(03)00093-9

Yang, Q., Zhan, H., WAng, S., Fu, S., Li, K. Modification of eucalyptus CTMP fibres with white¬rot fungus Trametes hirsute ”“ Effects on fibre morphology and paper physical strengths, Bio. Technology, 2008, 99, 8188-8124. https://doi.org/10.1016/j.biortech.2008.03.029

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Publicado

2022-08-07

Como Citar

Ferreira dos Santos, D., & Vasconcelos, A. J. (2022). Estudo das propriedades mecânicas em embalagens de papel à base de poliacrilamida e fibras naturais. Revista Interdisciplinar De Pesquisa Em Engenharia, 8(1), 13–20. Recuperado de https://periodicos.unb.br/index.php/ripe/article/view/35494