Influencia de la adición de fibra de vidrio AR sobre la resistencia a la compresión del concreto f’c 210 kg/cm2. Una revisión sistemática: 2020 – 2024
Influence of the addition of a glass fiber on the compressive strength of concrete f'c 210 kg/cm2. A systematic review: 2020 – 2024
DOI:
https://doi.org/10.56712/latam.v5i2.1941Palabras clave:
fibras de vidrio, resistencia, compresión, concreto, durabilidadResumen
El presente estudio, ha buscado determinar la influencia de la adición de fibra de vidrio AR sobre la resistencia a la compresión del concreto f’c 210 kg/cm2, mediante una revisión sistemática 2020 – 2024. La metodología fue de tipo descriptiva, en donde se han recolectado datos por medio de la guía de análisis documental, considerando a un total de 40 artículos científicos de alta calidad y relacionados con la temática de estudio. Los resultados indicaron que la integración de fibras de vidrio AR en el concreto proporciona mejoras significativas en la resistencia. Se observó una reducción considerable en la porosidad y un aumento en la firmeza compresiva. Se ha concluido que las investigaciones recientes han revelado mejoras en propiedades estructurales y mecánicas, con aplicaciones prometedoras en la ingeniería civil. La viabilidad de las fibras de vidrio AR como refuerzo en el concreto se destaca por su capacidad para mejorar la resistencia y durabilidad del material, con potencial para aplicaciones sostenibles en la construcción.
Descargas
Citas
Ait, S.; Medjmadj, S. y Si, A. (2022) Modeling the nonlinear behavior of predamaged reinforced concrete beams retrofitted with bonded and jacketed frp sheets. Eurasia Proceedings of Science, Technology, Engineering and Mathematics, 21, (1), 288 - 294. DOI: 10.55549/epstem.1226273
Akramov, X.; Davlyatov, S.; Umarov, S. y Abobakirova, Z. (2023) Method of experimental research of concrete beams with fiberglass reinforcement for bending. E3S Web of Conferences, 365, (30), 1 - 12. DOI: 10.1051/e3sconf/202336502021
Al, L.; Abbas, Z.; Al, O. y Sarhan, M. (2022) Bending behavior of fiberglass textile-reinforced thin geopolymer mortar panels. Civil and Environmental Engineering, 18, (1), 280 - 291. DOI: 10.2478/cee-2022-0026
Alarcón, A., Regalado, O., Huaricallo, Y. y Romero, Y. (2023). Mejoramiento de la resistencia del concreto f'c= 210 kg/cm2adicionando viruta de acero y fibra de vidrio, Cajamarca 2022. Hybrid Event, 1(1), 1-9. https://www.researchgate.net/publication/374053916_Mejoramiento_de_la_resistencia_de_concreto_f_'c_210_kgcm2_adicionando_viruta_de_acero_y_fibra_de_vidrio_Cajamarca_2022
Alnahhal, A., Alengaram, U., Yusoff, S., Singh, R., Radwan, M. y Deboucha, W. (2021). Synthesis of sustainable lightweight foamed concrete using palm oil fuel ash as a cement replacement material. Journal of Building Engineering, 35(1), 1-9. https://doi.org/10.1016/j.jobe.2020.102047
Andreev, V. (2023) The stress state of the rock mass with spherical cavity. E3S Web of Conferences, 410, (1), 1 - 12. DOI: 10.1051/e3sconf/202341002051
Ayegba, B.; Egbe, K.; Nazar, A.; Huang, M. y Hairi, M. (2022) Resource Efficiency and Thermal Comfort of 3D Printable Concrete Building Envelopes Optimized by Performance Enhancing Insulation: A Numerical Study. Energies, 15, (3), 20 - 34. DOI: 10.3390/en15031069
Bibora, P. y Leber, P. (2023) Ultra-high performance fiber concrete for architectural purposes. Journal of Physics: Conference Series, 2568, (1), 19 - 37. DOI: 10.1088/1742-6596/2568/1/012012
Camargo, M.; Christoforo, A.; Barcarolo, L. y Moura, J. (2023) Experimental Analysis of the Performance of Doweled Connections Reinforced with Glass-Fiber-Reinforced Polymer (GFRP) in Wood Pinus spp.. Forests, 14, (5), 931 - 943. DOI: 10.3390/f14050931
Chepurnenko, A.; Yazev, B.; Meskhi, B.; Beskopylny, A.; Khashkhozhev, K. y Chepurnenko, V. (2021) Simplified 2D finite element model for calculation of the bearing capacity of eccentrically compressed concrete‐filled steel tubular columns. Applied Sciences (Switzerland), 11, (24), 11 - 64. DOI: 10.3390/app112411645
Cohen, N. y Gómez, G. (2019). Metodología de la investigación ¿Par qué? Editorial Teseo. https://biblioteca.clacso.edu.ar/clacso/se/20190823024606/Metodologia_para_que.pdf
Coronel, Y.; Altamirano, L. y Muñoz, S. (2022) Cenizas y fibras utilizadas en la elaboración de concreto ecológico: una revisión de la literatura. Rev. Inst. investig. Fac. minas metal. cienc. Geogr, 25, (49), 321 - 329. DOI: https://doi.org/10.15381/iigeo.v25i49.20814
El, T.; Shaheen, Y.; Mohamed, F. y Abdelnaby, R. (2023) Performance of ferrocement composites circular tanks as a new approach for RC tanks. Case Studies in Construction Materials, 19, (1), 2 - 28. DOI: 10.1016/j.cscm.2023.e02228
Escobar, J., Guerra, J. y Eguez, H. (2023). Tamaño máximo del agregado y su influencia en la porosidad de un hormigón elaborado con fibra de vidrio. Revista Científica ‘‘INGENIAR”: Ingeniería, Tecnología e Investigación, 6(11), 1-9. https://journalingeniar.org/index.php/ingeniar/article/view/122/183
Escobar, J.; Guerra, J. y Eguez, H. (2023) Tamaño máximo del agregado y su influencia en la porosidad de un hormigón elaborado con fibra de vidrio. Revista Científica ‘‘INGENIAR”, 6, (11), 1 - 16. DOI: https://doi.org/10.46296/ig.v6i11edespmayo.0095
Farias, C.; Pesso, S.; Wanderlind, A.; Piva, J. y Antunes, E. (2022) Flexural behavior of concrete beams reinforced with glass fiber reinforced polymer and steel bars. Revista de la Construccion, 21, (3), 506 - 522. DOI: 10.7764/RDLC.21.3.506
Finley, S.; Javan, G. y Green, R. (2022) Bridging Disciplines: Applications of Forensic Science and Industrial Hemp. Frontiers in Microbiology, 13, (11), 76 - 101. DOI: 10.3389/fmicb.2022.760374
García, K., Molina, J. y Ruiz, W. (2023). Vidrio molido reciclado como sustituto parcial del cemento en la elaboración de morteros. Polo del conocimiento, 8(12), 152-165. https://dialnet.unirioja.es/descarga/articulo/9254967.pdf
Gencel, O., Benli, A., Bayraktar, O., Kaplan, G., Sutcu, M. y Elabade, W. (2021). Effect of waste marble powder and rice husk ash on the microstructural, physico-mechanical and transport properties of foam concretes exposed to high temperatures and freeze–thaw cycles. Construction and Building Materials, 291(1), 1-23. https://doi.org/10.1016/j.conbuildmat.2021.123374
Gregor, P.; Mirzaghorbanali, A.; McDougall, K.; Aziz, N. y Jodeiri, B. (2023) Shear Behaviour of Fibreglass Rock Bolts for Various Pretension Loads. Rock Mechanics and Rock Engineering, 56, (11), 8083 - 8113. DOI: 10.1007/s00603-023-03474-1
Gumus, B.; Gumus, E. y Balaban, M. (2023) Image Analysis to Determine Length-Weight and Area-Weight Relationships, and Color Differences in Scaled Carp and Mirror Carp Grown in Fiberglass and Concrete Tanks. Turkish Journal of Fisheries and Aquatic Sciences, 23, (1), 21 - 60. DOI: 10.4194/TRJFAS21260
Isbai, B.; Burzhan, S. Y Yerlan, A. (2023) Strength Properties of Various Types of Fiber-Reinforced Concrete for Production of Driven Piles. Buildings, 13, (7), 17 - 33. DOI: 10.3390/buildings13071733
Jakubikova, K.; Hodul, J.; Hermann, R. y Drochytka, R. (2023) Development of a Hydrophobic Polymer Coating in Polyurethane Organic–Mineral Base Containing Waste from Fibreglass Production. Coatings, 13, (11), 19 - 34. DOI: 10.3390/coatings13111934
Kalmukov, V.; Zubkov, A.; Volñkov, P. y Komeev, S. (2022) Analysis and Generalization of Experience in the Application of Technologies for Supporting Mine Workings in Difficult Mining and Geological Conditions. IOP Conference Series: Earth and Environmental Science, 988, (2), 1 - 12. DOI: 10.1088/1755-1315/988/2/022024
Kassim, M.; Karash, E. y Sultan, J. (2023) A Mathematical Model for Non-Linear Structural Analysis Reinforced Beams of Composite Materials. Mathematical Modelling of Engineering Problems, 10, (1), 311 - 333. DOI: 10.18280/MMEP.100137
Khan, I.; Murdock, A.; Madmud, M.; Cloutier, M.; Benoit, T.; Bashar, S.; Patidar, R.; Mi, R.; Daneshfar, B.; Farenhorst, A. y Kumar, A. (2022) Quantitative Assessment of First Nations Drinking Water Distribution Systems for Detection and Prevalence of Thermophilic Campylobacter Species. International Journal of Environmental Research and Public Health, 19, (17), 10 - 46. DOI: 10.3390/ijerph191710466
Kiele, A.; Vaiciukyniene, D.; Bertasius, S.; Krivenko, P.; Bistrickaite, R.; Jocius, V. y Ramukevicius, D. (2023) Alkali-Activated Slag Coatings for Fire Protection of OPC Concrete. Materials, 16, (23), 74 - 77. DOI: 10.3390/ma16237477
Lisyatnikov, M.; Lukin, M.; Martinov, V. y Roshcina, S. (2023) Testing wood-composite reinforced specimens for shearing along fibers. E3S Web of Conferences, 401, (1), 1 - 26. DOI: 10.1051/e3sconf/202340103001
Mat, A.; Othuman, M.; Mohd, M.; Deraman, R.; Sari, M. y Abu, M. (2022) The Utilization of a Fiberglass Mesh–Reinforced Foamcrete Jacketing System to Enhance Mechanical Properties. Materials, 15, (17), 25 - 58. DOI: 10.3390/ma15175825
McRory, J.; Poozo, F.; Benson, Z.; Tawadrous, R. y Maguire, M. (2022) Behavior of Hybrid Reinforced Concrete Bridge Decks under Static and Fatigue Loading. Polymers, 14, (23), 51 - 63. DOI: 10.3390/polym14235153
Mirzababayeva, S. Abobakirova, Z. y Umarov, S. (2023) Crack resistance of bent concrete structures with fiberglass reinforcement. E3S Web of Conferences, 452, (1), 5 - 23. DOI: 10.1051/e3sconf/202345206023
Mydin, M. (2023) Engineering properties of lightweight foamed concrete strengthen with fibreglass netting. Jurnal Teknologi, 85, (3), 165 - 173. DOI: 10.11113/jurnalteknologi.v85.16756
Mydin, M.; Khalid, M.; Omar, R.; Najm, H.; Qaidi, S. y Awoyera, P. (2023) Influence of Crisscross Fiberglass Strip on Axial Compressive Strength of Lightweight Foamed Concrete. Journal of Advanced Research in Applied Sciences and Engineering Technology, 29, (2), 135 - 144. DOI: 10.37934/araset.29.2.135144
Nain, M. Z., & Kasilingam, S. (2023). Materials Today: Proceedings Influence of rice husk ash and bagasse ash on durability of concrete. Materials Today: Proceedings, 93(3), 71-78. https://www.sciencedirect.com/science/article/abs/pii/S2214785323038579?via%3Dihub
Nguyen, V. y Phan, V. (2023) Experimental Performance of Fiberglass Geogrid in Asphalt Pavements. Engineering, Technology and Applied Science Research, 13, (3), 10791 - 10796. DOI: 10.48084/etasr.5915
Osman, A.; El, M. y Galal, K. (2023) Strength design optimization of sandwich composite structures under heavy dynamic loads. Journal of Physics: Conference Series, 2616, (1), 20 - 34. DOI: 10.1088/1742-6596/2616/1/012053
Osman, A.; Farghali, M.; Dong, Y.; Kong, J.; Yousry, M.; Rashwan, A.; Chen, Z.; Al, A.; Rooney, D. y Yap, P. (2024) Reducing the carbon footprint of buildings using biochar-based bricks and insulating materials: a review. Environmental Chemistry Letters, 22, (1), 71 - 104. DOI: 10.1007/s10311-023-01662-7
Pírah, J.; Mydin, M.; Khalid, M. y Omar, r. (2022) Application of Alkali-Resistant Woven Fibre Mesh Confinement to Strengthen Lightweight Foamed Concrete. Journal of Advanced Research in Applied Sciences and Engineering Technology, 29, (1), 101 - 109. DOI: 10.37934/araset.29.1.101109
Pirah, J.; Mydin, M.; Nawi, M. y Omar, R. (2022) Efficacy of Foamed Concrete Jacketing using Innovative Fibreglass Fabric for Durability Properties Improvement. Journal of Advanced Research in Applied Sciences and Engineering Technology, 28, (3), 187 - 198. DOI: 10.37934/araset.28.3.187198
Pirah, J.; Mydin, M.; Nawi, M. y Omar, R. (2022) Innovative Application of Interwoven Fiberglass Mesh to Strengthen Lightweight Foamed Concrete. Journal of Advanced Research in Applied Sciences and Engineering Technology, 28, (3), 165 - 176. DOI: 10.37934/araset.28.3.165176
Priniotakis, G.; Marrot, L.; Stacjewicz, U.; Krstic, A.; Venturini, E. y Jonaitiene, V. (2022) Smart Textile for Building and Living. Autex Research Journal, 22, (4), 493 - 496. DOI: 10.2478/aut-2021-0041
Rama, R.; Ruben, N.; Srinivasa, R.; Rama, S.; Seshagiri, M.; Kadhim, S. y Sharma, M. (2023) Stress-strain behaviour of unconfined and confined hybrid glass/steel fibre self-compacting concrete. E3S Web of Conferences, 391, (5), 10 - 34. DOI: 10.1051/e3sconf/202339101214
Revilla, V.; Skaf, M.; Ortega, V. y Manso, J. (2023) Raw-crushed wind-turbine blade: Waste characterization and suitability for use in concrete production. Resources, Conservation and Recycling, 198, (1), 12 - 34. DOI: 10.1016/j.resconrec.2023.107160
Ribeiro, R.; Jaramillo, L. y Bernandin, A. (2023) Effect of fiberglass waste and fly ash addition on the mechanical performance of Portland cement paste. Cleaner Materials, 7, (1), 10 - 66. DOI: 10.1016/j.clema.2023.100176
Segura, L., Sigüenza, R., Solar, M. y Zamora, J. (2022). Efecto del uso de vidrio reciclado en el diseño de concreto. Revista Universidad y Sociedad, 14(1), 1-9. http://scielo.sld.cu/scielo.php?script=sci_arttext&pid=S2218-36202022000100179
Vahidpour, M.; Kheyroddin, A. y Kioumarsi, M. (2022) Experimental Investigation on Flexural Capacity of Reinforced Concrete Beams Strengthened with 3D-Fiberglass, CFRP and GFRP. International Journal of Concrete Structures and Materials, 16, (1), 18 - 34. DOI: 10.1186/s40069-022-00508-w
Vaseghi, A. y Capano, C. (2023) Comparative analysis of insulation strategies for improving thermal performance of wall to parkade suspended slab. Energy and Built Environment, 1, (1), 1 - 12. DOI: 10.1016/j.enbenv.2023.10.003
Viera, P., Morillo, D. y Parion, J. (2022). Influencia de fibras naturales y sintéticas en la permeabilidad de morteros de cemento - arena, y cemento, cal y arena. FIGEMPA: Investigación y Desarrollo, 13(1)59-71. https://revistadigital.uce.edu.ec/index.php/RevFIG/article/view/3410/4440
Villao, R., Barba, R., Mármol, X. (2023). Influencia del vidrio templado en las mezclas de concreto con cemento Portland. Revista Científica INGENIAR: Ingeniería, Tecnología E Investigación, 6(11), 1-14. https://journalingeniar.org/index.php/ingeniar/article/view/115/168
Wei, J.; Mao, X.; Xu, W.; Xi, C.; Yan, S.; Sun, T.; Hu, X.; Wang, Y. y Chi, F. (2022) Experimental Research on the Effect of Fiberglass on the Performance of Epoxy Asphalt Concrete. Sustainability (Switzerland), 14, (22), 14 - 72. DOI: 10.3390/su142214724
Zaid, O., Ahmad, J., Siddique, M. S., y Aslam, F. (2021). Effect of Incorporation of Rice Husk Ash Instead of Cement on the Performance of Steel Fibers Reinforced Concrete. Frontiers in Materials, 8(1), 1-14. https://doi.org/10.3389/fmats.2021.665625
Zósimo, A., Surichaqui, M., Huacho, M. y Ronceros, J. (2022). Diseño de mezcla de concreto f’c=210 kg/cm2, adicionando cenizas de Stipa Ichu para estructuras de edificación a compresión en Lircay. Revista Científica Ciencias Ingenieriles, 2(2), 53-63. https://revistas.unh.edu.pe/index.php/ricci/article/view/219/586