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Coupled Hygro-Mechanical Finite Element Method on Determination of the Interlaminar Shear Modulus of Glass Fiber-Reinforced Polymer Laminates in Bridge Decks under Hygrothermal Aging Effects

机译:湿热耦合效应的湿-机械耦合有限元法确定桥面玻璃纤维增​​强聚合物层合板的层间剪切模量

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摘要

To investigate the mechanical degradation of the shear properties of glass fiber-reinforced polymer (GFRP) laminates in bridge decks under hygrothermal aging effects, short-beam shear tests were performed following the ASTM test standard (ASTM D790-10A). Based on the coupled hygro-mechanical finite element (FE) analysis method, an inverse parameter identification approach based on short-beam shear tests was developed and then employed to determine the environment-dependent interlaminar shear modulus of GFRP laminates. Subsequently, the shear strength and modulus of dry (0% Mt/M∞), moisture unsaturated (30% Mt/M∞ and 50% Mt/M∞), and moisture saturated (100% Mt/M∞) specimens at test temperatures of both 20 °C and 40 °C were compared. One cycle of the moisture absorption–desorption process was also investigated to address how the moisture-induced residual damage degrades the shear properties of GFRP laminates. The results revealed that the shear strength and modulus of moisture-saturated GFRP laminates decreased significantly, and the elevated testing temperature (40 °C) aggravated moisture-induced mechanical degradation. Moreover, an unrecoverable loss of shear properties for the GFRP laminates enduring one cycle of the moisture absorption–desorption process was evident.
机译:为了研究在湿热老化作用下桥面板中的玻璃纤维增​​强聚合物(GFRP)层压板的剪切性能的机械降解,按照ASTM测试标准(ASTM D790-10A)进行了短梁剪切测试。基于耦合湿力学有限元(FE)分析方法,开发了一种基于短梁剪切试验的逆参数识别方法,然后用于确定环境相关的GFRP层板的层间剪切模量。随后,测试了干燥(0%Mt /M∞),水分不饱和(30%Mt /M∞和50%Mt /M∞)和水分饱和(100%Mt /M∞)试样的剪切强度和模量比较了20°C和40°C的温度。还研究了水分吸收-解吸过程的一个周期,以解决水分引起的残余损伤如何降低GFRP层压板的剪切性能。结果表明,水分饱和的GFRP层压板的剪切强度和模量显着降低,并且升高的测试温度(40°C)加剧了水分引起的机械降解。此外,很明显,GFRP层压板的剪切性能无法恢复,并且经历了一个吸湿-解吸过程的周期。

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