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首页> 外文期刊>Journal of materials in civil engineering >Investigation of Fatigue Behavior of Steel and GFRP Double-Strap Joints under Varied Cyclic Loading at Given Temperatures
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Investigation of Fatigue Behavior of Steel and GFRP Double-Strap Joints under Varied Cyclic Loading at Given Temperatures

机译:在给定温度下不同循环载荷下钢和GFRP双皮带接头的疲劳行为研究

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摘要

This paper examines the fatigue behavior of steel/glass fiber reinforced polymer (GFRP) double-strap joints under a variation of cyclic shear loading at different given temperatures. Initial experiments were performed at a constant amplitude force, which demonstrated a reduction in fatigue strength at increasing temperatures. The results were used for cumulative relative damage calculation purposes. Subsequent tests were then performed under two-stress level fatigue (TSLF) tests with a given temperature. The TSLF tests demonstrated the following: (1) relative to results at 20℃, the damage was retarded at lower temperatures (-10℃ and 0℃), and the damage accelerated at higher temperatures (40℃); and (2) linear damage accumulation models, such as the Palmgren-Miner model, are not appropriate and tend to overpredict fatigue life. By using the nonlinear strength wearout and linear cycle mix models for bonded joints, an improved prediction method is proposed, and the fatigue results of the TSLF tests were discussed in which it was found that the proposed method can accurately predict the fatigue lifetime.
机译:本文研究了在不同给定温度下,循环剪切载荷变化下的钢/玻璃纤维增​​强聚合物(GFRP)双带接头的疲劳行为。最初的实验是在恒定振幅的力下进行的,这表明在升高的温度下疲劳强度会降低。结果用于累积相对损伤计算目的。然后,在给定温度下的两应力水平疲劳(TSLF)测试下进行后续测试。 TSLF测试表明:(1)相对于20℃的结果,在较低温度(-10℃和0℃)时,损伤被延迟,而在较高温度(40℃)时,损伤加速; (2)线性损伤累积模型(例如Palmgren-Miner模型)不合适,并且往往会过度预测疲劳寿命。通过使用非线性强度磨损和线性循环混合模型的粘结接头,提出了一种改进的预测方法,并讨论了TSLF试验的疲劳结果,发现该方法可以准确地预测疲劳寿命。

著录项

  • 来源
    《Journal of materials in civil engineering》 |2020年第4期|04020035.1-04020035.9|共9页
  • 作者单位

    Key Laboratory of Concrete and Prestressed Concrete Structures Ministry of Education School of Civil Engineering Southeast Univ. Nanjing 210096 PR China;

    Key Laboratory of Concrete and Prestressed Concrete Structures Ministry of Education Southeast Univ. Nanjing 210096 PR China;

    Charles E. Via Jr. Dept. of Civil and Environmental Engineering Virginia Tech Blacksburg VA 24061;

    Key Laboratory of Urban Security and Disaster Engineering of Ministry of Education Beijing Univ. of Technology Beijing 100124 PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Steel/GFRP joint; Fatigue behavior; Two-stress level fatigue; Strength wearout; Cycle mix;

    机译:钢/玻璃钢接头;疲劳行为;二级压力疲劳;强度磨损;循环混合;

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