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dc.contributor.authorPournasiri, E.
dc.contributor.authorPham, Thong
dc.contributor.authorHao, Hong
dc.date.accessioned2023-04-20T04:08:06Z
dc.date.available2023-04-20T04:08:06Z
dc.date.issued2022
dc.identifier.citationPournasiri, E. and Pham, T.M. and Hao, H. 2022. Behavior of Ultrahigh-Performance Concrete Bridge Decks with New Y-Shape FRP Stay-in-Place Formworks. Journal of Composites for Construction. 26 (3): ARTN 04022023.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/91624
dc.identifier.doi10.1061/(ASCE)CC.1943-5614.0001214
dc.description.abstract

This study proposes using glass fiber-reinforced polymer (GFRP) as a stay-in-place structural formwork for casting bridge decks with ultrahigh-performance concrete (UHPC). The GFRP stay-in-place formworks completely replace the bottom layer of rebars, and the top steel reinforcement is also replaced by a GFRP mesh to mitigate the corrosion damage. The formworks were either a flat GFRP plate with square hollow section (SHS) stiffeners or a flat GFRP plate with new Y-shape stiffeners. Concentric static tests on five 1:2.75 scale decks were performed to investigate the effect of stiffener's configuration and the influence of the concrete strength on the performance of bridge decks. Rotational fixity support was used to simulate a real bridge deck connection of supporting girders. All specimens with the stay-in-place formwork exhibited punching shear failure. It was found that the use of Y-shape stiffeners significantly improved the load-carrying capacity of the proposed deck. Replacing normal concrete with UHPC further improved the loading capacity of the deck. The decks demonstrated excellent performance, with the load-carrying capacity 3.8-9.5 times higher than the established equivalent service load depending on the concrete strength and configuration of the GFRP stay-in-place formwork. Deflection at service load was less than span/1,600 for all the decks. Compared with normal-strength concrete (34 MPa), UHPC improved the maximum load-carrying capacity of the deck from 91.4 to 149 kN.

dc.languageEnglish
dc.publisherASCE-AMER SOC CIVIL ENGINEERS
dc.relation.sponsoredbyhttp://purl.org/au-research/grants/arc/FL180100196
dc.subjectScience & Technology
dc.subjectTechnology
dc.subjectEngineering, Civil
dc.subjectMechanics
dc.subjectMaterials Science, Composites
dc.subjectEngineering
dc.subjectMaterials Science
dc.subjectStay-in-place formwork
dc.subjectBridge deck
dc.subjectUltrahigh-performance concrete
dc.subjectGlass fiber-reinforced polymer
dc.subjectPunching shear
dc.subjectMECHANICAL-PROPERTIES
dc.subjectFLEXURAL BEHAVIOR
dc.subjectSTRUCTURAL FORMS
dc.subjectSLABS
dc.subjectDURABILITY
dc.subjectBEAMS
dc.titleBehavior of Ultrahigh-Performance Concrete Bridge Decks with New Y-Shape FRP Stay-in-Place Formworks
dc.typeJournal Article
dcterms.source.volume26
dcterms.source.number3
dcterms.source.issn1090-0268
dcterms.source.titleJournal of Composites for Construction
dc.date.updated2023-04-20T04:08:06Z
curtin.departmentSchool of Civil and Mechanical Engineering
curtin.accessStatusOpen access
curtin.facultyFaculty of Science and Engineering
curtin.contributor.orcidHao, Hong [0000-0001-7509-8653]
curtin.contributor.orcidPham, Thong [0000-0003-4901-7113]
curtin.contributor.researcheridHao, Hong [D-6540-2013]
curtin.identifier.article-numberARTN 04022023
dcterms.source.eissn1943-5614
curtin.contributor.scopusauthoridHao, Hong [7101908489]
curtin.contributor.scopusauthoridPham, Thong [55315002100]
curtin.repositoryagreementV3


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