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Enhancing the Mechanical Properties of Historical Masonry Using Fiber-Reinforced Geopolymers.
Dollente, Ithan Jessemar R; Valerio, Daniel Nichol R; Quiatchon, Pauline Rose J; Abulencia, Anabel B; Villoria, Ma Beatrice D; Garciano, Lessandro Estelito O; Promentilla, Michael Angelo B; Guades, Ernesto J; Ongpeng, Jason Maximino C.
Afiliación
  • Dollente IJR; Center for Engineering and Sustainable Development Research, De La Salle University, Manila 1004, Philippines.
  • Valerio DNR; Department of Civil Engineering, De La Salle University, Manila 0922, Philippines.
  • Quiatchon PRJ; Center for Engineering and Sustainable Development Research, De La Salle University, Manila 1004, Philippines.
  • Abulencia AB; Center for Engineering and Sustainable Development Research, De La Salle University, Manila 1004, Philippines.
  • Villoria MBD; Center for Engineering and Sustainable Development Research, De La Salle University, Manila 1004, Philippines.
  • Garciano LEO; Department of Civil Engineering, De La Salle University, Manila 0922, Philippines.
  • Promentilla MAB; Department of Chemical Engineering, De La Salle University, Manila 0922, Philippines.
  • Guades EJ; Department of Civil Engineering, University of Guam, Mangilao 96923, Guam.
  • Ongpeng JMC; Department of Civil Engineering, De La Salle University, Manila 0922, Philippines.
Polymers (Basel) ; 15(4)2023 Feb 17.
Article en En | MEDLINE | ID: mdl-36850300
ABSTRACT
Current research into the production of sustainable construction materials for retrofitting and strengthening historic structures has been rising, with geopolymer technology being seen as an advantageous alternative to traditional concrete. Fiber reinforcement using this novel cementitious material involves a low embodied carbon footprint while ensuring cohesiveness with local materials. This study aims to develop fly ash-based geopolymers reinforced with six different types of fibers polyvinyl alcohol, polypropylene, chopped basalt, carbon fiber, and copper-coated stainless steel. The samples are produced by mixing the geopolymer mortar in random distribution and content. Twenty-eight geopolymer mixes are evaluated through compressive strength, split-tensile strength, and modulus of elasticity to determine the fiber mix with the best performance compared with pure geopolymer mortar as a control. Polyvinyl alcohol and copper-coated stainless-steel fiber samples had considerably high mechanical properties and fracture toughness under applied tensile loads. However, the polypropylene fiber source did not perform well and had lower mechanical properties. One-way ANOVA verifies these results. Based on these findings, polyvinyl alcohol and stainless-steel fibers are viable options for fiber reinforcement in historical structures, and further optimization and testing are recommended before application as a reinforcement material in historic structures.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Polymers (Basel) Año: 2023 Tipo del documento: Article País de afiliación: Filipinas

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Polymers (Basel) Año: 2023 Tipo del documento: Article País de afiliación: Filipinas
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