Fabricación y propiedades físicas de aglomerados de Pennisetum purpureum schum, Philodendron longirrhizum y Musa acuminata
Main Article Content
Abstract
Article Details
Those authors that have publications with this journal accept the following terms:
1. They will retain their copyright and guarantee the journal the right of first publication of their work, which will be simultaneously subject to the License Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NC 4.0) that allows third parties to share the work whenever its author is indicated and its first publication this journal. Under this license the author will be free of:
• Share — copy and redistribute the material in any medium or format
• Adapt — remix, transform, and build upon the material
• The licensor cannot revoke these freedoms as long as you follow the license terms.
Under the following terms:
• Attribution — You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use.
• NonCommercial — You may not use the material for commercial purposes.
• No additional restrictions — You may not apply legal terms or technological measures that legally restrict others from doing anything the license permits.
2. The authors may adopt other non-exclusive license agreements to distribute the published version of the work (e.g., deposit it in an institutional telematics file or publish it in a monographic volume) whenever the initial publication is indicated in this journal.
3. The authors are allowed and recommended disseminating their work through the Internet (e.g. in institutional telematics archives or on their website) before and during the submission process, which can produce interesting exchanges and increase the citations of the published work. (See the Effect of open access).
References
ABDUL, K. H.P.S., H. BHAT; M. JAWAID; A. ZAIDON; D. HERMAWAN; S. HADI: “Bamboo fibre reinforced biocomposites: A review”, Materials and Design, ISSN: 0261-3069, 42: 353–368, 2012.
ÁLVAREZ, C.; P. GAÑAN; C. ARBOLEDA y MEJÍA A.: “Desarrollo de materiales compuestos a partir de fibras de plátano modificadas con enzimas ligninolíticas”. Scientia et Technica, ISSN: 0122-1701, 36: 725-730, 2007.
ASTM: Standard terminology relating to wood-base fiber and particle panel materials. American society for testing and materials ASTM-D1554-86, USA, 1986.
ASTM: “Standard Test Method for Slow Rate Penetration Resistance of Flexible Barrier Films and Laminates”. American Society for Testing and Materials ASTM F 1306-90, USA, 1990.
ASTM: “Standard Test Methods for Evaluating Properties of Wood-Based Fiber and Particle Panel Materials”. American Society for Testing and Materials ASTM-D 1037-91, USA, 1992.
ASTM: “Standard Test Method for Nonvolatile Content of Urea-Formaldehyde Resin Solutions” ASTM D1490 – 01, USA, 2013.
BEDOYA, C.: “Optimización de propiedades mecánicas y térmicas de un aglomerado sintético por el Método de Taguchi”. Ingeniería y Ciencia,ISSN: 5(10) 155-170, 2009.
BEGUM, K. & A. ISLAM: “Natural Fiber as a substitute to Synthetic Fiber in Polymer Composites: A Review”, Research Journal of Engineering Sciences, ISSN: 2(3), 46-53, 2013.
BESEDNJAK, A.: “Materiales compuestos” Ediciones UPC. ISBN: España, 2005.
BETANCOURT, P. S.: “Transformación de residuos lignocelulósicos en tableros aglomerados de alta densidad”. Evento: IUFROLAT 2013, San José de Costa Rica, 2013.
CADENA, C. y J. BUKLA: “Estudio de la variación en la conductividad térmica de la cascarilla de arroz aglomerada con fibras vegetales”. Ingeniería y Desarrollo, Universidad del Norte, ISSN: 0122-3461, 12: 8-9., 2002.
CANCHÉ, G.: “Aprovechamiento de los residuos fibrosos del bagazo de Agave para la obtención de elementos en la industria de la construcción” Informe técnico CICY–Unidad de materiales, Colombia, 2010.
CONTRERAS, W, M.; M. OWENS; D. GARAY y Y. CONTRERAS: 1999: “Elaboración de tableros aglomerados de partículas de caña brava (Gynerium sagittatum) y adhesivo urea–formaldehído” Revista. Forestal. Venezolana. ISSN: 0556-6606, 43: 129-135.
CUESTA, H. J. F.: “Efecto de la temperatura de procesado sobre las propiedades mecánicas de tableros aglomerados sin resina sintética”.Universidad Pontificia Bolivariana, Prospect, ISSN: 0033-1538, 9(2) 06 -12, 2011.
CHANDRAMOHAN, D. & K. MARIMUTHU: “A review on natural fibers”, International Journal of Research and Reviews in Applied Sciences, ISSN: 8(2), 194, 206, 2011.
FARUK, O., BLEDZKI, A. K., FINK, H-P., SAIN, M. “Biocomposites reinforced with natural fibers: 2000–2010”, Progress in Polymer Science, ISSN; 0079-6700, 37: 1552– 1596, 2012.
FLORES, M. N. y GONZÁLEZ, O.: Efectos del tratamiento químico en las propiedades físicas y mecánicas de las fibras naturales como sustitutas de la fibra de vidrio en composites Tesis de Grado Escuela Superior Politécnica del Litoral, Ecuador, 2011.
GARCÍA, J. J.:Influencia de las Fibras Naturales en Composites Biodegradables, Congreso Cidemco-Tecnali, Madrid, 2009.
HERVÉ, CH., 2002: “Le 4 Pages des statistiques industrielles”, Revista del Ministère de l´economie des Francie, 158, 1 ISO/DIS 10878: Ensayos no destructivos - Termografía infrarroja ISO/DIS 10878, Vig. 2009.
KORONIS, G., A. SILVA & M. FONTUL: “Green composites: A review of adequate materials for automotive applications”, Composites: Part B: Engineering, ISSN: 1359-8368, 44: 120–127, 2013.
KU, H.; H.WANG; N. PATTARACHAIYAKOOP & M. TRADA: “A review on the tensile properties of natural fiber reinforced polymer composites”, Composites Part B: Engineering, ISSN: 1359-8368, 42(4) 856–873, 2011.
KUMAR, S.: “Study on Mechanical behaviour of Banana Fiber Reinforced Epoxy Composites” Thesis of Bachelor in Mechanical Engineering, National Institute of Technology, Rourkela, India, 2014.
LÓPEZ, M. L.: 2010: “Los composites son los materiales que más innovan” eMagazines Plástico [en línea] 2010, Disponible en: www.interempresas.net/Plastico/Articulos/40358-Luis-Lopez-Mateo-Los-composites-son-los-materiales-que-mas-innovan-en-todo-el-mundo.html [Consulta: 15 de enero de 2015].
MALONEY, T.: Modern particleboard & dry-process fiberboard manufacturing, Miller Freeman Publications. USA, 1977.
MEDINA, J. A.: Compuestos de PVC reforzados con fibras nativas naturales Universidad de los Andes. PVC Foro andino Cartagena de Indias, 02-08, 2008.
MINISTERIO DE AGRICULTURA Y DESARROLLO RURAL DE COLOMBIA: Cadena productiva forestal, tableros aglomerados y contrachapados, muebles y productos de madera, Informe proyecto transición de la agricultura. Giro Editores Ltda. ISBN: 978-958-97128-5-6. Colombia, 2007.
NGUONG, C. W.; LEE S. N. & SUJAN D.: “A Review on Natural Fibre Reinforced Polymer composites” International Journal of Chemical, Nuclear, Metallurgical and Materials Engineering, ISSN: 1542-6580, 1: 33-40, 2013.
OKUBO, K., T. FUJII & Y. YAMAMOTO: “Development of bamboo-based polymer composites and heir mechanical properties”, Composites Part A-Applied Science and Manufacturing, ISSN: 1359-835X, 35: 377–383., 2004.
PUGLIA D., BIAGIOTTI J. AND KENNY J. M., 2004: “A Review on Natural Fibre-Based Composites– Part II: Application of Natural Reinforcements in Composite Materials for Automotive Industry” Journal of Natural Fibers, ISSN: 1544-0478, 1(3), 23-65.
RIVAROLA, A.; L. ROJO; M. GARDEY Y P. ARENA: Materiales Alternativos para la fabricación de placas de aglomerado, Reciclado de residuos de construcción y demolición (RCD) y de residuos de procesos (RP) Universidad Tecnológica Nacional – Mendoza (Argentina) ISBN 950-42-0056-7., Mendoz, Argentina, 2006.
SAILESH, A. & C. SHANJEEVI: “Predicting the best hardness of Banana-Bamboo-Glass fiber reinforced Natural fiber composites using Taguchi method”, International Journal of Engineering Development and Research, ISSN: 2: 89-92, 2014.
SITI, S. S., S. ABDUL; O. WAN & M. JAWAID: Bamboo Based Biocomposites Material, Design and Applications, Chap 19 Materials Science - Advanced Topics ISBN 978-953-51-1140-5, 489-517, USA, 2013.