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Trường DCGiá trị Ngôn ngữ
dc.contributor.authorLi, Hai-long-
dc.contributor.authorXu, Ying-
dc.contributor.authorChen, Pei-yuan-
dc.contributor.authorGe, Jin-jin-
dc.contributor.authorWu, Fan-
dc.date.accessioned2020-06-01T02:15:30Z-
dc.date.available2020-06-01T02:15:30Z-
dc.date.issued2019-
dc.identifier.issn1687-8086-
dc.identifier.issn1687-8094 (eISSN)-
dc.identifier.otherBBKH1287-
dc.identifier.urihttp://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/18613-
dc.descriptionHindawi Advances in Civil Engineering Volume 2019, Article ID 1728762, 11 pages https://doi.org/10.1155/2019/1728762vi
dc.description.abstractAdding rubber to concrete aims to solve the environmental pollution problem caused by waste rubber and to improve the energy absorption and impact resistance of concrete. In this paper, recycled rubber particles were used to replace fine aggregates in Portland cement concrete to combine the elasticity of rubber with the compression resistance of concrete. Fine aggregates in the concrete mixes were partially replaced with 0%, 20%, 40%, and 60% rubber by volume, and the cement in the concrete mixes was replaced with 0%, 5%, and 10% of silica fume by mass. The properties of the concrete specimens were examined through compressive strength, splitting tensile strength, flexural loading, and rebound tests. Results show that the compressive strength of concrete and the splitting tensile strength decreased to 11.81 and 1.31 MPa after adding silica fume to enhance the strength 37.8% and 23.7%, respectively, and the dosage of rubber was 60%. With the addition of rubber, the impact energy of rubberized concrete was 2.39 times higher than that of ordinary concrete, while its energy absorption capacity was 9.46% higher. The addition of silica fume increased its impact energy by 3.06 times, but the energy absorption capacity did not change significantly. In summary, the RC60SF10 can be used on non-load-bearing structures with high impact resistance requirements. A scanning electron microscope was used to examine and analyze the microstructural properties of rubberized concrete.vi
dc.language.isoenvi
dc.publisherHindawi Limitedvi
dc.subjectMechanical propertiesvi
dc.subjectRubbervi
dc.subjectImpact testsvi
dc.subjectSplittingvi
dc.subjectConcretesvi
dc.subjectAggregatesvi
dc.subjectPolyvinyl alcoholvi
dc.subjectEnergyvi
dc.subjectLoad bearing elementsvi
dc.subjectImpact strengthvi
dc.subjectSilica fumevi
dc.subjectConcrete mixingvi
dc.subjectConstructionvi
dc.subjectTensile strengthvi
dc.subjectMasonryvi
dc.subjectEnergy absorptionvi
dc.subjectCivil engineeringvi
dc.subjectSilicon dioxidevi
dc.subjectElasticityvi
dc.subjectBond strengthvi
dc.subjectImpact resistancevi
dc.subjectReinforced concretevi
dc.subjectCementvi
dc.subjectEnergy consumptionvi
dc.subjectPortland cementsvi
dc.subjectCompressive strengthvi
dc.titleImpact Energy Consumption of High-Volume Rubber Concrete with Silica Fumevi
dc.typeOthervi
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