Effect of lateral stresses on fiber debonding/pull-out

Christopher K.Y. Leung, Yiping Geng
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引用次数: 24

Abstract

The performance of fiber reinforced composites is strongly dependent on the behavior of the fiber/matrix interface. The fiber pull-out test has been widely used to determine interfacial properties, from which fiber debonding/pull-out behavior in the composite can be deduced. Pull-out test results reported in the literature are almost always obtained under the condition of zero far-field lateral stresses. However, in many practical applications, crack bridging fibers can be under significant lateral compression (e.g. splitting cracks, shear cracks) or tension (cracks at the bottom of plates under biaxial bending). In this investigation, a novel experimental set-up is developed to study the effect of lateral stresses on fiber debonding and pull-out. Steel fiber reinforced mortar specimens were tested to provide an example. With lateral compression, both the initial interfacial friction and the effective interfacial shear strength are found to increase. A higher lateral compression, however, also results in a more rapid decrease in the interfacial friction during fiber pull-out. Therefore, while lateral compression can significantly increase the peak pull-out load, the energy absorption capacity (denoted by the area under the pull-out curve) does not increase to the same degree. Qualitatively, lateral tension imposes opposite effects to lateral compression. Quantitatively, a small lateral tension can result in changes in interfacial properties comparable in magnitude to those caused by a much higher lateral compression. Therefore, although the lateral tension that can act on a fiber is limited by the low tensile strength of the matrix, it may still impose a noticeable effect on the fiber debonding/pull-out behavior.

横向应力对纤维脱粘/拉出的影响
纤维增强复合材料的性能在很大程度上取决于纤维/基体界面的行为。纤维拉拔试验被广泛用于测定复合材料的界面性能,由此可以推断复合材料中纤维的脱粘/拉拔行为。文献中报道的拔出试验结果几乎总是在零远场侧向应力条件下获得的。然而,在许多实际应用中,裂缝桥接纤维可能受到显著的侧向压缩(例如劈裂裂缝、剪切裂缝)或拉伸(在双轴弯曲下板底部的裂缝)。在这项研究中,建立了一个新的实验装置来研究侧向应力对纤维脱粘和拉出的影响。以钢纤维砂浆为例进行了试验。侧向压缩时,初始界面摩擦力和有效界面抗剪强度均增大。然而,较高的侧压也会导致纤维拔出过程中界面摩擦更快地减少。因此,侧向压缩虽然可以显著增加峰值拉拔载荷,但其吸能能力(以拉拔曲线下面积表示)的增加程度并不相同。定性地说,侧向张力对侧向压缩施加相反的影响。从数量上讲,较小的侧向张力可能导致界面性质的变化,其幅度与较高的侧向压缩所引起的变化相当。因此,尽管可以作用于纤维的侧向张力受到基体低抗拉强度的限制,但它仍然可能对纤维的脱粘/拉出行为产生显著影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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