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首页> 外文期刊>Journal of materials in civil engineering >Multiple Cracking and Fiber Bridging Characteristics of Engineered Cementitious Composites under Fatigue Flexure
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Multiple Cracking and Fiber Bridging Characteristics of Engineered Cementitious Composites under Fatigue Flexure

机译:工程水泥基复合材料在疲劳挠曲下的多次开裂和纤维桥接特性

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摘要

The flexural fatigue characteristics of two different shotcreted engineered cementitious composites (ECCs) containing poly-vinyl alcohol (PVA) and polyethylene (PE) fibers respectively were tested under four-point bending. The failure mechanisms and characteristics were investigated in comparison with a shotcreted steel fiber reinforced cement. The results showed that both ECCs exhibited a unique fatigue stress-life relationship that is represented by a bilinear function on a semilogarithmic scale. The failure mechanism of ECCs involved the development of multiple cracks, and the number of cracks was higher when the fatigue stress level was higher. The difference in crack opening displacement results from their different fiber bridging characteristics. PVA fibers tended to break under fatigue, while PE fibers tended to pullout. Although PE-ECC provided more cracks at the same fatigue stress, level, PVA-ECC showed larger deformation than PE-ECC because each crack width of PE-ECC was smaller than that of PVA-ECC. The deformation is shown to be governed by the number of cracks as well as the crack width, where the fiber bridging characteristics are related to either fiber rupture or fiber pullout.
机译:在四点弯曲下测试了两种分别包含聚乙烯醇(PVA)和聚乙烯(PE)纤维的喷射混凝土工程胶结复合材料(ECCs)的弯曲疲劳特性。与喷射混凝土钢纤维增强水泥比较,研究了破坏机理和特性。结果表明,两种ECC均表现出独特的疲劳应力-寿命关系,该关系由半对数尺度上的双线性函数表示。 ECC的失效机制涉及多个裂纹的发展,疲劳应力水平越高,裂纹的数量越多。裂纹开口位移的差异是由于它们不同的纤维桥接特性造成的。 PVA纤维在疲劳下趋于断裂,而PE纤维趋于拔出。尽管在相同的疲劳应力水平下,PE-ECC会提供更多的裂纹,但是PVA-ECC的变形要比PE-ECC更大,这是因为PE-ECC的每个裂纹宽度都小于PVA-ECC。变形由裂纹数量和裂纹宽度决定,其中纤维桥接特性与纤维断裂或纤维拔出有关。

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