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    Full-Scale AASHTO Type II Girders Prestressed with Stainless Steel Strands

    Source: Journal of Bridge Engineering:;2021:;Volume ( 026 ):;issue: 009::page 04021065-1
    Author:
    Anwer Al-Kaimakchi
    ,
    Michelle Rambo-Roddenberry
    DOI: 10.1061/(ASCE)BE.1943-5592.0001765
    Publisher: ASCE
    Abstract: Stainless steel strands are a new technology and option available for the bridge industry. They have high corrosion resistance, which will result in more durable and low-maintenance concrete bridges. However, stainless steel strands have lower ductility and different stress–strain behavior than carbon steel strands, affecting the design criteria for prestressed concrete girders. Stainless steel strands have already been deployed in substructure components (piles) in many projects around the United States. However, due to their low ductility and lack of full-scale research studies and structural design approaches, they have not yet been deployed in flexural members. This study investigates the flexural behavior of stainless steel strand prestressed concrete girders. Five full-scale 12.8-m (42-ft)-long AASHTO Type II girders prestressed with 15.2-mm (0.6-in.)-diameter duplex high-strength stainless steel (HSSS) strands were designed, fabricated, and tested in flexure. The prestressing reinforcement ratio was varied in this experimental program. The transfer length and prestress losses of 15.2-mm (0.6-in.)-diameter HSSS strands were measured. The flexural behavior of the girders was assessed by the evaluation of cracking load, ultimate load-carrying capacity, load-deflection response, and failure mode. As designed, all girders failed due to rupture of the HSSS strands. Experimental results showed that, although the HSSS strand has low ductility and it may control the capacity of the girders, adequate warning (noticeable deflection and many cracks before failure) can be achieved in HSSS strand prestressed concrete girders. The predicted analytical and numerical moment strengths of the five girders were in close agreement with those measured experimentally. Although the analytical model gave better predictions, the numerical approach is easier to use for design. A flexural design approach for HSSS strand prestressed concrete I-girders is proposed where rupture of strands is an acceptable failure mode. The findings from this experimental program will be useful for the development of new design specifications for concrete girders prestressed with stainless steel strands.
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      Full-Scale AASHTO Type II Girders Prestressed with Stainless Steel Strands

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4272560
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    contributor authorAnwer Al-Kaimakchi
    contributor authorMichelle Rambo-Roddenberry
    date accessioned2022-02-01T22:04:27Z
    date available2022-02-01T22:04:27Z
    date issued9/1/2021
    identifier other%28ASCE%29BE.1943-5592.0001765.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4272560
    description abstractStainless steel strands are a new technology and option available for the bridge industry. They have high corrosion resistance, which will result in more durable and low-maintenance concrete bridges. However, stainless steel strands have lower ductility and different stress–strain behavior than carbon steel strands, affecting the design criteria for prestressed concrete girders. Stainless steel strands have already been deployed in substructure components (piles) in many projects around the United States. However, due to their low ductility and lack of full-scale research studies and structural design approaches, they have not yet been deployed in flexural members. This study investigates the flexural behavior of stainless steel strand prestressed concrete girders. Five full-scale 12.8-m (42-ft)-long AASHTO Type II girders prestressed with 15.2-mm (0.6-in.)-diameter duplex high-strength stainless steel (HSSS) strands were designed, fabricated, and tested in flexure. The prestressing reinforcement ratio was varied in this experimental program. The transfer length and prestress losses of 15.2-mm (0.6-in.)-diameter HSSS strands were measured. The flexural behavior of the girders was assessed by the evaluation of cracking load, ultimate load-carrying capacity, load-deflection response, and failure mode. As designed, all girders failed due to rupture of the HSSS strands. Experimental results showed that, although the HSSS strand has low ductility and it may control the capacity of the girders, adequate warning (noticeable deflection and many cracks before failure) can be achieved in HSSS strand prestressed concrete girders. The predicted analytical and numerical moment strengths of the five girders were in close agreement with those measured experimentally. Although the analytical model gave better predictions, the numerical approach is easier to use for design. A flexural design approach for HSSS strand prestressed concrete I-girders is proposed where rupture of strands is an acceptable failure mode. The findings from this experimental program will be useful for the development of new design specifications for concrete girders prestressed with stainless steel strands.
    publisherASCE
    titleFull-Scale AASHTO Type II Girders Prestressed with Stainless Steel Strands
    typeJournal Paper
    journal volume26
    journal issue9
    journal titleJournal of Bridge Engineering
    identifier doi10.1061/(ASCE)BE.1943-5592.0001765
    journal fristpage04021065-1
    journal lastpage04021065-14
    page14
    treeJournal of Bridge Engineering:;2021:;Volume ( 026 ):;issue: 009
    contenttypeFulltext
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