dc.contributorMesa Rueda, Fabio Augusto
dc.contributorCuellar Burgos, Alneira
dc.contributorPolímeros y Materiales Compuestos
dc.creatorLuna Cortés, Alexander
dc.date.accessioned2020-03-16T17:11:41Z
dc.date.accessioned2022-09-21T16:38:55Z
dc.date.available2020-03-16T17:11:41Z
dc.date.available2022-09-21T16:38:55Z
dc.date.created2020-03-16T17:11:41Z
dc.date.issued2019
dc.identifierhttps://repositorio.unal.edu.co/handle/unal/76098
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/3394481
dc.description.abstractThe importance of composite materials is massive when the properties and benefits of the constituent materials are combined when the composite material is designed and manufactured correctly. Numerous efforts have been carried out during the latest decades with the purpose to configurate new materials able to fulfill the needs in different industrial fields and to go to the forefront with the constant changes and developments of humanity. The materials based on epoxy resins, offer good integral properties such as high rigidity and mechanical strength, high chemical resistance and thermal stability, ease of processing and high adhesive strength. However, these materials show mechanical brittleness which limits their possibility to expand to other fields. A type-modifier polyether and nanoclays of montmorillonite are incorporated into an epoxy DGEBA matrix, in order to improve the mechanical and thermal properties of neat material and thus reduce its brittleness. By thermogravimetric analysis TGA and differential scanning calorimetry DSC, it is obtained that nanoclays and polyethyleneglycol slightly deteriorate the thermal stability while at the same time improving the tensile properties of the neat epoxy. The X-raydiffraction (XRD) was used as analytical techniques in nanocomposites synthesized by polymerization in situ with and without polyethyleneglycol. The nanocomposites, the pristine clay and the neat thermosetting polymer cross-linking reaction were characterized by Fourier transform infrared spectroscopy FTIR. The morphology of the modified materials is observed by scanning electron microscopy SEM, the influence of the clays and the polyethyleneglycol on the cure kinetic parameters are obtained through a derivation of the Kamal and Sorour model with diffusional control by DSC analysis.
dc.description.abstractLa importancia ingenieril de los materiales compuestos es alta ya que se combinan las propiedades y beneficios de los materiales constituyentes cuando se diseña y se fabrica correctamente el material compuesto. Numerosos esfuerzos científicos son llevados a cabo durante las últimas décadas con el fin de configurar nuevos materiales capaces de suplir necesidades en diferentes campos industriales e ir a la vanguardia con los constantes cambios y desarrollos de la humanidad. Los materiales a base de resinas epóxicas, ofrecen buenas propiedades integrales como rigidez alta y resistencia mecánica, resistencia química alta y estabilidad térmica, facilidad de procesamiento y resistencia adhesiva alta. Sin embargo, estos materiales presentan fragilidad cuando son sometidos a esfuerzos altos lo que limita su campo de aplicación. En esta investigación se incorpora un modificante tipo poliéter y nanocargas laminares de arcillas tipo montmorillonita a una matriz epóxica tipo DGEBA con el fin de mejorar las propiedades mecánicas y térmicas de material convencional y así reducir su fragilidad. A través de análisis termogravimétrico TGA y por calorimetría diferencial de barrido DSC se obtiene que las arcillas y poliéter deterioran levemente la estabilidad térmica mientras a su vez mejoran las propiedades de tracción del material. La difracción de rayos X (XRD) se usa como técnica de análisis en nanocompuestos preparados por polimerización in situ con y sin poliétilenglicol. Los nanocompuestos, las arcillas puras y la reacción de entrecruzamiento del polímero convencional fueron caracterizadas por espectroscopia de infrarrojo por transformada de Fourier (FTIR). La morfología de los materiales modificados se observa por microscopia electrónica de barrido (SEM), la influencia de las arcillas y el poliéter en los parámetros cinéticos de curado se obtiene a través de una derivación del modelo de Kamal y Sorour con control difusional a través de un análisis por DSC.
dc.languagespa
dc.publisherDepartamento de Ingeniería Química
dc.publisherUniversidad Nacional de Colombia - Sede Manizales
dc.relation[1] Yang X, Huang W, Yu Y. J Appl Polym Sci. 2012; 123 (4): 1913-1921. [2] Dearborn EC, Fuoss RM, MacKenzie AK, Shepherd RG. Ind Eng Chem. 1953; 45 (12): 2715-2721. [3] Ellis B. Epoxy Resins, Chemistry and Technology. London, New York: Blackie Academic & Professional, 1993. [4] Jin FL, Li X, Park SJ. J Ind Eng Chem. 2015; 29: 1-11. [5] Jin FL, Ma CJ, Park SJ. Mater Sci Eng A. 2011; 528 (29-30): 8517-8522. [6] Jin FL, Park SJ. J Polym Sci Part B Polym Phys. 2006; 44 (23): 3348-3356. [7] Yang C, Yang ZG. J Appl Polym Sci. 2013; 129 (1): 187-192. [8] Mija A, Cascaval CN, Stoica G, Rosu D, Simionescu BC. Eur Polym J. 1996; 32 (6): 779-783. [9] Czub P. Polym Adv Technol. 2009; 20 (3): 194-208. [10] Abliz D, Duan Y, Steuernagel L, Xie L, Li D, Ziegmann G. Polym Polym Compos. 2013; 21 (6): 341-348. [11] Akiba M, Hashim AS. Prog Polym Sci. 1997; 22 (3): 475-521. [12] Cole KC. Macromolecules. 1991; 24 (11): 3093-3097. [13] Xu HJ, Jin FL, Park SJ. Bull Korean Chem Soc. 2009; 30 (11): 2643-2646. [14] Karak N. Vegetable oil-based polymers: properties, processing and applications. Cambridge: Woodhead Publishing, 2012. [15] Carrozzino S, Levita G, Rolla P, Tombari E. Polym Eng Sci. 1990; 30 (6): 366-373. [16] Laza JM, Julian CA, Larrauri E, Rodriguez M, Leon LM. Polymer. 1999; 40 (1): 35-45 [17] Riccardi CC, Adabbo HE, Williams RJJ. J Appl Polym Sci. 1984; 29 (8): 2481-2492. [18] Vyazovkin S. Macromolecules. 1996; 29 (6): 1867–1873. [19] Paz-abuin S, Pellin MP, Paz-pazos M, Corura L, Lopez-quintela A. Polymer. 1997; 38 (15): 3795-3804. [20] Saeb MR, Bakhshandeh E, Khonakdar HA, Mäder E, Scheffler C, Heinrich G. Sci World J. 2013; 2013. [21] Shechter L, Wynstra J, Kurkjy RP. Ind Eng Chem. 1956; 48 (1): 94-97. [22] Dusek K, Bleha M. J Polym Sci Polym Chem Ed. 1977; 15 (10): 2393-2400 [23] Ehlers JE, Rondan NG, Huynh LK, Pham H, Marks M, Truong TN. Macromolecules. 2007; 40 (12): 4370-4377. [24] Applied Poleramic Inc. Amine Cured-Epoxy Matrices. Applied Poleramic Inc. [25] Domínguez JC, Grivel JC, Madsen B. Thermochim Acta. 2012; 529: 29-35. [26] Adroja PP, Ghumara RY, Parsania PH. J Appl Polym Sci. 2013; 130 (1): 572-578. [27] Hardis R, Jessop JLP, Peters FE, Kessler MR. Compos Part A Appl Sci Manuf. 2013; 49: 100-108. [28] Shigue CY, Santos RGS, Baldan CA, Ruppert-filho E. IEEE Trans Appl Supercond. 2004; 14 (2):1173-1176. [29] Shigue CY, Santos RGS, Abreu MMSP De, Baldan CA, Robin ALM, Ruppert-filho E. IEEE Trans Appl Supercond. 2006; 16 (2): 1786-1789. [30] Cuellar A, Mesa Rueda FA. Rev NOOS. 2017; 13 (1): 6-13. [31] Merad L, Cochez M, Margueron S, et al. names.edpsciences.org. 2018; Noviembre: 155-158. [32] Fu Y, Sun D, Liu X, An X, Zhang X. Adv Eng Res. 2015: 286-290. [33] Mustata F, Tudorachi N. Appl Therm Eng. 2017; 125: 285-296. [34] Thanki JD, Parsania PH. J Therm Anal Calorim. 2017; 130 (3): 2145-2156. [35] Macan J, Brnardić I, Ivanković M, Mencer HJ. J Therm Anal Calorim. 2005;81 (2): 369-373. [36] Ramis X, Salla JM, Mas C, Manteco A, Serra A. J Appl Polym Sci. 2004; 92 (1): 381- 393. [37] Kamal M, Sourour S. Thermochim Acta. 1976; 14 (1-2): 41-59. [38] Hedreul C, Galy J, Dupuy J, Delmotte M, More C. J Appl Polym Sci. 1998; 68: 543- 552. [39] Lahlali D, Naffakh M, Dumon M. Polym Eng Sci. 2005; 45 (12): 1581-1589. [40] Williams RJJ, Rozenberg BA, Pascault JP. Adv Polym Sci. 1997; 128: 95-156. [41] Bonnaud L, Pascault JP, Sautereau H. Eur Polym J. 2000; 36 (7): 1313-1321. [42] Mesa FA, Cuellar A, Vargas-Hernández C, Perilla Perilla JE. DYNA. 2010; 77 (162): 21-29. [43] ISO 11357-2: Plastics – Differential scanning calorimetry – Part 2: Determination of glass transition temperature (1999). [44] González F, Galego N. Polímeros. 2000; 10 (4): 218-223. [45] Gillham JK. Polym Eng Sci. 1986; 26 (20): 1429-1433. [46] Fournier J, Williams G, Duch C, Aldridge GA. Macromolecules. 1996; 29 (22): 7097- 7107. [47] Rabearison N, Jochum C, Grandidier J-C. Cure Optimization of High Performance Resins for Marine Vehicles. [48] Zavareh S, Samandari G. Polym Eng Sci. 2013; 54 (8): 1833-1838. [49] Yu S, Lee W, Seo B, Lim C-S. Polymers. 2018; 10 (7): 782. [50] Mahnam N, Beheshty MH, Barmar M, Shervin M. High Perform Polym. 2013; 25 (6): 705-713. [51] Liu F, Guo K, Yuan J. High Perform Polym. 2014; 26 (3): 326-334. [52] Thomas R, Abraham J, Thomas P S, Thomas S. Polym. Sci. B: Polym. Phys. 2004; 42 (13): 2531-2544. [53] Tripathi G, Srivastava D. Mater Sci Eng A. 2007; 443 (1-2): 262-269. [54] Kar S, Banthia AK. J Appl Polym Sci. 2004; 92 (6): 3814-3821. [55] Kong J, Ning R, Tang Y. J Mater Sci. 2006; 41 (5): 1639-1641. [56] Jyotishkumar P, Pionteck J, Hässler R, George SM, Cvelbar U, Thomas S. Ind Eng Chem Res. 2011; 50 (8): 4432-4440. [57] Bucknall C, Partridge I. Br Polym J. 1983; 15 (1): 71-75. [58] Raghava RS. Polym. Sci. B: Polym. Phys. 1987; 25 (5): 1017-1031. [59] Bucknall CB, Gilbert AH. Polymer. 1989; 30 (2): 213-217. [60] Anand Babu T, Navashree VR, Sanjaykumar J, Nafilkhan S. Int J ChemTech Res. 2017; 10 (8): 725-731. [61] Zhang W, Lu W, Wang S, Zhou H. Polym J. 2003; 35 (6): 470-475. [62] Feng Q, Yang J, Liu Y, Xiao H, Fu S. J Mater Sci Technol. 2014; 30 (1): 90-96. [63] Zhang R, Zhang L. Polym Bull. 2008; 61 (6): 671-677. [64] Wang F, Ma CM, Wu W. J Appl Polym Sci. 2001; 80 (2) :188-196. [65] Motawie AM, Sherif MH, Badr MM, Amer AA, Shehat AS. Aust J Basic Appl Sci. 2010; 4 (6): 1376-1382. [66] Sinha Ray S, Okamoto M. Prog Polym Sci. 2003; 28 (11): 1539-1641. [67] Manias E, Touny A, Wu L, Strawhecker K, Lu B, Chung TC. Chem Mater. 2001;13(10): 3516-3523. [68] Cui Y, Kumar S, Rao Kona B, Van Houcke D. RSC Adv. 2015; 5 (78): 63669-63690. [69] Cervantes-Uc JM, Cauich-Rodríguez J V, Vázquez-Torres H, Garfias-Mesías LF, Paul DR. Thermochim Acta. 2007; 457 (1-2): 92-102. [70] Hanley HJM, Muzny CD, Ho DL, Glinka CJ, Manias E. Int J Thermophys. 2001; 22 (5): 1435-1448. [71] Alexandre M, Dubois P. Mater Sci Eng R Reports. 2000; 28 (1): 1-63. [72] Zapata P, Quijada R, Retuer J, Moncada E. J Chil Chem Soc. 2008; 5 (1): 1369-1371. [73] Xu Q, Wang C, Wang B, Chen Y, Wang H. RSC Adv. 2017; 7 (53): 33477-33485. [74] Kherroub DE, Belbachir M, Lamouri S, Bouhadjar L, Chikh K. Orient J Chem. 2013; 29 (4): 1429-1436. [75] Huang P, Ye L. J Thermoplast Compos Mater. 2016; 29 (1): 58-73. [76] Asensio M, Herrero M, Núñez K, Pastor J, Merino J. Rev la Asoc española Mater compuestos. 2017; 2 (1): 135-140. [77] Park C, Ounaies Z, A WK, et al. Chem Phys Lett. 2002; 364 (3-4): 4-6. [78] Wang S, Hu Y, Zhongkai Q, Wang Z, Chen Z, Fan W. Mater Lett. 2003; 57 (18): 2675- 2678. [79] Bhiwankar NN, Weiss RA. Polymer. 2006; 47 (19): 6684-6691. [80] Liang Z, Yin J. J Appl Polym Sci. 2003; 90 (7): 857-1863. [81] Erceg M, Jozić D, Banovac I, Perinović S, Bernstorff S. Thermochim Acta. 2014 ;579 :86-92. [82] Nassar N, Utracki LA, Kamal MR. Int Polym Process. 2005; 20 (4): 423-431. [83] Tomić M, Dunjić B, Nikolić MS, et al. Appl Clay Sci. 2018; 154 (2018): 52-63. [84] Wiyantoko B, Lail J, Kurniawati P, Purbaningtias TE, Nurrohmah A, Kurniandari S. AIP Conf Proc. 2017; 1823 (1). [85] Ahmad M Bin, Gharayebi Y, Salit MS, Hussein MZ, Shameli K. Int J Mol Sci. 2011; 12 (9): 6040-6050. [86] Edwards G, Halley P, Kerven G, Martin D. Thermochim Acta. 2005; 429 (1): 13-18. [87] Fang Y, Kang H, Wang W, Liu H, Gao X. Energy Convers Manag. 2010; 51 (12): 2757-2761. [88] ASTM E1131-08 Standard Test Method for Compositional Analysis by Thermogravimetry, West Conshohocken, PA (EE.UU.): American Society for Testing and Materials, 2008. [89] ASTM D638-10, Standard Test Methods for Tensile Properties of Plastics, West Conshohocken, PA (EE.UU.): American Society for Testing and Materials, 2010. [90] ASTM D790-17 Standard Test Methods for Flexural Properties of Unreinforced and Reinforced Plastics and Electrical Insulating Materials, 2010. [91] Mehta R, Kumari R, Das P, Bhowmick AK. J Mater Chem B. 2014; 2 (37): 6236-6248. [92] Zhou J, Zhang D, Li T, Zhang A. Polym Plast Technol Eng. 2012; 51 (11): 1149-1154. [93] Cervantes-Uc JM, Cauich-Rodríguez JV, Vázquez-Torres H, Garfias-Mesías LF, Paul DR. Thermochim Acta. 2007; 457 (1-2): 92-102. [94] Kim Y, White JL. J Appl Polym Sci. 2005; 96 (5): 1888-1896. [95] Xie W, Gao Z, Pan WP, Hunter D, Singh A, Vaia R. Chem Mater. 2001; 13 (9): 2979- 2990. [96] Calderon JU, Lennox B, Kamal MR. Appl Clay Sci. 2008; 40 (1-4): 90-98. [97] Jagtap SB, Rao VS, Ratna D. J Reinf Plast Compos. 2013; 32 (3): 183-196. [98] Peprnicek T, Kalendova A, Pavlova E, Simonik J, Duchet J, Gerard JF. Polym Degrad Stab. 2006; 91 (12): 3322-3329. [99] Aulagner P, Ainser A, Carrot C, Guillet J. J Polym Eng. 2000; 20 (5): 381-401. [100] Smedberg A, Hjertberg T, Gustafsson B. Polymer. 2003; 44 (11): 3395-3405. [101] Li Y, Ma Q, Huang C, Liu G. 2013; 19 (2): ISSN 1392–1320. [102] Pielichowski K, Flejtuch K. Polym Adv Technol. 2003; 13 (10-12): 690-696. [103] Feng L, Tong J, Wang C. Adv Mater Res. 2013; 773: 534-537. [104] Troev, KD. Polyphosphoesters: Chemistry and Application; Elsevier: Oxford, UK, (Ed.). ; 2012: 38-39. [105] González MG, Cabanelas JC, Baselga J. Applications of FTIR on Epoxy Resins - Identification , Monitoring the Curing Process , Phase Separation and Water Uptake. In: Theophanides Theophile, (Ed.).; 2012: 261-284. [106] Caccamo MT, Magazù S. Appl Spectrosc. 2017; 71 (3): 401-409. [107] Bora M, Ganguli JN, Dutta DK. Thermochim Acta. 2000; 346 (1-2): 169-175. [108] Franchini E, Galy J, Gérard JF, Tabuani D, Medici A. Polym Degrad Stab. 2009; 94 (10): 1728-1736. [109] Nguyen TKL, Livi S, Soares BG, Benes H, Gérard JF, Duchet-rumeau J. ACS Sustain Chem Eng. 2017; 5 (1): 1153-1164. [110] Horowitz HH, Metzger G. Anal. Chem. 1963; 35 (10): 1464–1468. [111] Cheng X, Chen Y, Du Z, Zhu P, Wu D. J Appl Polym Sci. 2010; 119 (6): 3504-3510. [112] Bakar M, Duk R, PrzybyÅek M, Kostrzewa M. J Reinf Plast Compos. 2009; 28 (17): 2107-2118. [113] Yang G, Fu SY, Yang JP. Polymer. 2007; 48 (1) :302-310. [114] Liu F, Guo K, Yuan J. High Perform Polym. 2014; 26 (3): 326-334. [115] Xin D, Han Q. Mol Simul. 2015; 41 (13): 1081-1085. [116] Chipara M, Iacomi F, Zaleski JM, et al. J Optoelectron Adv Mater. 2006; 8 (2): 820- 824. [117] Kimoto H, Tanaka C, Yaginuma MY, Shinohara E, Asano A. Anal Sci. 2008; 24: 915- 920. [118] Guo F, Aryana S, Han Y, Jiao Y. Appl Sci. 2018; 8 (9): 1696. [119] Huang P, Ye L. J Thermoplast Compos Mater. 2016; 29 (1): 58-73. [120] Cuellar A, Mesa Rueda FA, Vargas-Hernández C, Perilla Perilla JE. DYNA. 2010; (164): 39-44. [121] Daud YM, Hussin K, Osman AF, Ghazali CMR, Abdullah MMAB. AIP Conf Proc. 2017; 1885: 1-5. [122] Ashok N, Balachandran M, Lawrence F. J Compos Mater. 2018; 52 (23): 3219-3231. [123] Prakalathan K, Mohanty S, Nayak SK. J Reinf Plast Compos. 2012; 31 (19): 1300- 1310. [124] Chen C, Khobaib M, Curliss D. Prog Org Coatings. 2003; 47 (3-4): 376-383. [125] Zhang Y, Evans JRG. Appl Surf Sci. 2012; 258 (6): 2098-2102. [126] Ramos JA, Pagani N, Riccardi CC, Borrajo J, Goyanes SN, Mondragon I. Polymer. 2005;46 (10): 3323-3328. [127] Fournier [Fournier J, Williams G, Duch C, Aldridge GA. Macromolecules. 1996; 29 (22): 7097-7107.] [128] Cai H, Li P, Sui G, Yu Y, Li G. Thermochim Acta 473. 2008; 473 (1-2): 101-105. [129] Cuella A, Mesa Rueda FA. Rev NOOS. 2017; 13 (1): 6-13. [130] Zvetkov VL, Calado V. Comparative DSC kinetics of the reaction of DGEBA with aromatic diamines. III. Thermochim Acta. 2013; 560:95-103.
dc.rightsAtribución-NoComercial-SinDerivadas 4.0 Internacional
dc.rightsAcceso abierto
dc.rightshttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.rightsinfo:eu-repo/semantics/openAccess
dc.rightsDerechos reservados - Universidad Nacional de Colombia
dc.titleEfecto de la Incorporación de Nanocargas Laminares de Montmorillonita Sobre la Cinética, Propiedades Mecánicas y Degradación Térmica de un Sistema Epoxi Amina Mezclado con Poliétilenglicol (PEG)
dc.typeOtros


Este ítem pertenece a la siguiente institución