Publicado

2019-07-01

Characterization a polyurethane-based reactive hot melt adhesive for applications in materials

Caracterización de un adhesivo termofusible reactivo de base poliuretano para aplicaciones en materiales

DOI:

https://doi.org/10.15446/dyna.v86n210.78244

Palabras clave:

hot melt adhesive, characterization, composite material, reagent, adhesive bonding, wettability (en)
adhesivo termofusible, caracterización, material compuesto, reactivo, unión adhesiva, mojabilidad (es)

Autores/as

In the present study, we used tensile shear tests, Shore hardness tests, differential scanning calorimetry (DSC), and thermogravimetry (TGA) to characterize a reactive polyurethane-based hot melt adhesive. We also measured contact angles at various temperatures to evaluate the wettability of the adhesive and to determine the optimum temperature range for applications. The adhesive was tested following curing for various times, and the bonding of the adhesive with several materials was investigated to determine whether it has the potential for greater versatility of application. Therefore, we explored new uses of the adhesive, such as in the matrix of a composite with fiberglass. Reactive hot melt adhesives are useful because they provide a certain degree of flexibility to joints, and have high processing speeds, high initial rigidity, and high working temperatures.

En el presente estudio, se caracterizó un adhesivo termofusible reactivo de base poliuretano mediante ensayos de cizalladura a tracción, dureza Shore, calorimetría de barrido diferencial (DSC) y termogravimetría (TGA). También se midieron los ángulos de contacto a diferentes temperaturas para evaluar la mojabilidad del adhesivo y seleccionar el mejor rango de temperatura de aplicación del adhesivo. Se caracterizó el adhesivo a diferentes tiempos de curación y se evaluó la unión del adhesivo con diferentes materiales adherentes, para proporcionar una mayor versatilidad de aplicaciones, con el fin de explorar nuevos campos de utilización de estos adhesivos como matriz en materiales compuesto con fibra de vidrio. La importancia de utilizar adhesivos termofusibles reactivos se debe a sus uniones con cierta flexibilidad, altas velocidades de procesamiento, elevada rigidez inicial y soportan altas temperaturas de trabajo.

Referencias

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Cómo citar

IEEE

[1]
J. L. MARULANDA AREVALO, M. A. Martinez Casanova, J. A. BUENDIA, y A. P. PEREZ, «Characterization a polyurethane-based reactive hot melt adhesive for applications in materials», DYNA, vol. 86, n.º 210, pp. 247–253, jul. 2019.

ACM

[1]
MARULANDA AREVALO, J.L., Martinez Casanova, M.A., BUENDIA, J.A. y PEREZ, A.P. 2019. Characterization a polyurethane-based reactive hot melt adhesive for applications in materials. DYNA. 86, 210 (jul. 2019), 247–253. DOI:https://doi.org/10.15446/dyna.v86n210.78244.

ACS

(1)
MARULANDA AREVALO, J. L.; Martinez Casanova, M. A.; BUENDIA, J. A.; PEREZ, A. P. Characterization a polyurethane-based reactive hot melt adhesive for applications in materials. DYNA 2019, 86, 247-253.

APA

MARULANDA AREVALO, J. L., Martinez Casanova, M. A., BUENDIA, J. A. & PEREZ, A. P. (2019). Characterization a polyurethane-based reactive hot melt adhesive for applications in materials. DYNA, 86(210), 247–253. https://doi.org/10.15446/dyna.v86n210.78244

ABNT

MARULANDA AREVALO, J. L.; MARTINEZ CASANOVA, M. A.; BUENDIA, J. A.; PEREZ, A. P. Characterization a polyurethane-based reactive hot melt adhesive for applications in materials. DYNA, [S. l.], v. 86, n. 210, p. 247–253, 2019. DOI: 10.15446/dyna.v86n210.78244. Disponível em: https://revistas.unal.edu.co/index.php/dyna/article/view/78244. Acesso em: 7 mar. 2026.

Chicago

MARULANDA AREVALO, JOSE LUDDEY, Miguel Angel Martinez Casanova, JUANA ABEJONAR BUENDIA, y ANTONIO PIQUERAS PEREZ. 2019. «Characterization a polyurethane-based reactive hot melt adhesive for applications in materials». DYNA 86 (210):247-53. https://doi.org/10.15446/dyna.v86n210.78244.

Harvard

MARULANDA AREVALO, J. L., Martinez Casanova, M. A., BUENDIA, J. A. y PEREZ, A. P. (2019) «Characterization a polyurethane-based reactive hot melt adhesive for applications in materials», DYNA, 86(210), pp. 247–253. doi: 10.15446/dyna.v86n210.78244.

MLA

MARULANDA AREVALO, J. L., M. A. Martinez Casanova, J. A. BUENDIA, y A. P. PEREZ. «Characterization a polyurethane-based reactive hot melt adhesive for applications in materials». DYNA, vol. 86, n.º 210, julio de 2019, pp. 247-53, doi:10.15446/dyna.v86n210.78244.

Turabian

MARULANDA AREVALO, JOSE LUDDEY, Miguel Angel Martinez Casanova, JUANA ABEJONAR BUENDIA, y ANTONIO PIQUERAS PEREZ. «Characterization a polyurethane-based reactive hot melt adhesive for applications in materials». DYNA 86, no. 210 (julio 1, 2019): 247–253. Accedido marzo 7, 2026. https://revistas.unal.edu.co/index.php/dyna/article/view/78244.

Vancouver

1.
MARULANDA AREVALO JL, Martinez Casanova MA, BUENDIA JA, PEREZ AP. Characterization a polyurethane-based reactive hot melt adhesive for applications in materials. DYNA [Internet]. 1 de julio de 2019 [citado 7 de marzo de 2026];86(210):247-53. Disponible en: https://revistas.unal.edu.co/index.php/dyna/article/view/78244

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CrossRef Cited-by

CrossRef citations3

1. Shiran Perera, Janaka R. Gamage. (2025). Multi-Objective Parameter Optimization of Fabric Adhesive Bonding. 2025 Moratuwa Engineering Research Conference (MERCon). , p.37. https://doi.org/10.1109/MERCon67903.2025.11217098.

2. Vasco C. M. B. Rodrigues, Ana T. F. Venâncio, Eduardo A. S. Marques, Ricardo J. C. Carbas, Armina Klein, Ejiri Kazuhiro, Björn Nelson, Lucas F. M. da Silva. (2025). Mechanical Characterization of a Novel Cyclic Olefin-Based Hot-Melt Adhesive. Materials, 18(4), p.855. https://doi.org/10.3390/ma18040855.

3. Weidi Xie, Qiming Yan, Heqing Fu. (2021). Study on novel rosin‐based polyurethane reactive hot melt adhesive. Polymers for Advanced Technologies, 32(11), p.4415. https://doi.org/10.1002/pat.5443.

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