Short-term durability of GFRP stirrups under wet-dry and freeze–thaw cycles

海水 耐久性 马镫 极限抗拉强度 材料科学 自来水 复合材料 条件作用 纤维增强塑料 碳化作用 环境科学 结构工程 工程类 环境工程 数学 地质学 海洋学 统计
作者
Milad Shakiba,Amirhossein Hajmoosa,Mussa Mahmoudi,Milad Bazli,Mohsen Ebrahimzadeh
出处
期刊:Construction and Building Materials [Elsevier BV]
卷期号:398: 132533-132533 被引量:9
标识
DOI:10.1016/j.conbuildmat.2023.132533
摘要

GFRP stirrups are a promising alternative to conventional steel stirrups due to their non-corrosive nature. However, their performance under cyclic exposure to wet-dry and freeze–thaw conditions in seawater needs to be evaluated to ensure their long-term durability and sustainability. This study investigates the tensile strength of glass fibre reinforced polymer (GFRP) stirrups under seawater wet-dry cycles and seawater and tap water freeze–thaw cycles. In total, 220 stirrups in two different shapes, i.e. U and L shapes, and two different diameters, i.e. 6 mm and 8 mm were manufactured, conditioned, and tested under stirrup tensile test. Conditioned stirrups were subjected to 9 months and 18 months wet-dry cycles in seawater at 25 ℃, 40 ℃, and 60 ℃, and 9 months and 18 months freeze–thaw cycles in seawater and tap water. At first, the samples underwent a fast deterioration rate, which then decreased as the conditioning period progressed from 9 months to 18 months. The strength retention values of L-shaped stirrups were found to be higher than those of U-shaped stirrups, regardless of the environmental conditions or diameter. The maximum tensile strength reductions of 31%, 28% and 16% were observed, respectively after exposure to 18 months conditioning in seawater wet-dry cycles at 60 ℃, freeze–thaw in seawater, and freeze–thaw in tap water.
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