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首页> 外文期刊>Composites. B, Engineering >Interlaminar and intralaminar durability characterization of wet layup carbon/epoxy used in external strengthening
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Interlaminar and intralaminar durability characterization of wet layup carbon/epoxy used in external strengthening

机译:外部加强中使用的湿法铺层碳/环氧树脂的层间和层内耐久性表征

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Carbon fibers in unidirectional fabric form are increasingly being used as a means of strengthening deteriorating and understrength concrete components and systems through application as externally bonded reinforcement. The use of wet layup process under ambient conditions makes these composites susceptible to moisture and environment-related deterioration. In addition since the composite is formed in the field, often in overhead or vertical configurations, by sequential placement of fabric layers, it is critical, for the assessment of materials integrity, to characterize damage mechanisms and durability of interlaminar and intralaminar performance characteristics. It is shown that aqueous exposure, as well as freeze-thaw, results in significant fiber-matrix debonding, and this causes deterioration in short-beam-shear and in-plane shear characteristics. Changes in interlaminar properties are seen to be correlated with moisture uptake. It is also seen that fracture toughness, in the short-term, is enhanced by some of these exposures due to plasticization and flexibilizing of the matrix, which assists in the blunting of crack front progression. However, when accompanied by chemical degradation, such as with immersion in alkali solution, and embrittlement caused by low temperature exposure, G_(IC) values are seen to deteriorate as well. The data provides a crucial set of material characteristics for consideration side-by-side with fiber dominated characteristics (such as tensile strength and modulus, which are the only ones considered conventionally in rehabilitation design), since the matrix dominated properties will often be the critical links in determining service life.
机译:单向织物形式的碳纤维正越来越多地被用作通过外部粘结增强材料来增强劣化和强度不足的混凝土组件和系统的手段。在环境条件下使用湿法铺网工艺会使这些复合材料易于受潮和与环境相关的劣化。另外,由于复合材料是在现场,通常是在头顶或垂直构型中通过依次放置织物层而形成的,因此,对于评估材料的完整性,表征层间和层内性能特征的损伤机理和耐久性至关重要。结果表明,暴露于水以及冻融会导致纤维基质明显剥离,这会导致短光束剪切和面内剪切特性下降。层间性质的变化被认为与水分吸收有关。还可以看到,由于基体的增塑和增韧,这些暴露中的一些会在短期内提高断裂韧性,这有助于钝化裂纹前沿。然而,当伴随化学降解,例如浸入碱溶液中,以及由于低温暴露引起的脆化时,也观察到G_(IC)值也变差。数据提供了一组关键的材料特性,以与纤维主导的特性(例如抗拉强度和模量)并列考虑,这是在康复设计中常规考虑的唯一因素,因为基体主导的特性通常是至关重要的决定使用寿命的重要环节。

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