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Fatigue Behavior of FRP Composites and CNT-Embedded FRP Composites: A Review

机译:FRP复合材料和CNT嵌入式FRP复合材料的疲劳行为:综述

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Composite materials have emerged as an effective substitute for conventional materials in various fields of engineering and structural science. For replacement of regular metals, composites, especially fiber-reinforced polymer composites, have proved to be a suitable alternative. One of the important tests that conventional and composite materials have to undergo is fatigue test. It refers to the testing of materials for their cyclic behavior. In fatigue testing, depending on the choice of the researchers, materials are loaded till reaching their failure or till reaching a fraction of the total stiffness loss. Composite materials are different from metals and they show a distinct behavior under fatigue loading. In metals, failure occurs from the commencement of a single crack and then its propagation. In composite materials, conversely, it is a complex process as these materials possess crack-arresting properties. This review paper highlights various aspects of the cyclic or fatigue behavior in composite materials. Factors triggering such behavior in composite materials include reinforcing substance, matrix material, fiber orientation or stacking sequence, fiber content, testing environment and so on, together with the damage development process at the microscopic level. Loading condition parameters pertain to stress ratio, mean stress, loading condition, multiaxial stress, and testing frequency. This article also includes the effect of carbon nanotubes on the fatigue life of the polymer composites. (C) 2016 Society of Plastics Engineers
机译:复合材料已成为各种工程和结构科学领域的常规材料的有效替代品。为了更换常规金属,已证明复合材料,特别是纤维增强的聚合物复合材料是合适的替代品。常规和复合材料必须经历的重要测试之一是疲劳试验。它指的是对它们的循环行为的材料测试。在疲劳测试中,根据研究人员的选择,材料加载到达到其故障或达到总刚度损失的一小部分中。复合材料与金属不同,它们显示出疲劳负载下的明显行为。在金属中,发生故障从单个裂缝开始,然后发生它的传播。在复合材料中,相反,它是一种复杂的方法,因为这些材料具有抗裂殖性能。本综述纸张突出了复合材料中环状或疲劳行为的各个方面。触发复合材料中这种行为的因素包括增强物质,基质材料,纤维取向或堆叠序列,纤维含量,测试环境等,以及微观水平的损坏开发过程。加载条件参数涉及应力比,平均应力,负载条件,多轴应力和测试频率。本文还包括碳纳米管对聚合物复合材料的疲劳寿命的影响。 (c)2016年塑料工程师协会

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