基于刚度折减的FRP复合材料层压系统疲劳损伤模型

Ying Zhao, M. Noori, Wael A. Altabey, Ramin Ghiasi, Zhishen Wu
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引用次数: 20

摘要

本文介绍了作者建立的基于刚度折减的模型,用于表征单向层和(0/θ/0)复合材料层合板的累积疲劳损伤。基于损伤演化机制建立了损伤检测模型,包括基体、基体-纤维界面和纤维的裂纹起裂和裂纹损伤过程。研究结果表明,单向复合材料层合板的刚度随加载循环次数的增加而减小。首先,对文献中常用的三种模型进行了比较。该模型将拉伸粘度、杨氏模量和极限拉应力作为关键因素,并根据温度进行修正。本文研究了碳纤维增强聚合物(CFRP)、芳纶纤维增强聚合物(AFRP)、玻璃纤维增强聚合物(GFRP)和玄武岩纤维增强聚合物(BFRP)四种FRP复合材料的性能参数,并采用控制变量法对不同偏角层数的FRP单向复合材料层板进行了参数比较研究。结果表明,刚度下降与循环次数的关系也呈现出三个不同的区域,即FRP复合材料的损伤机理,温度决定基体的主要因素,而纤维强度是决定复合材料可靠性的主要因素。
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A Fatigue Damage Model for FRP Composite Laminate Systems Based on Stiffness Reduction
This paper introduces a stiffness reduction based model developed by the authors to characterize accumulative fatigue damage in unidirectional plies and (0/θ/0) composite laminates in fiber reinforced polymer (FRP) composite laminates. The proposed damage detection model is developed based on a damage evolution mechanism, including crack initiation and crack damage progress in matrix, matrix-fiber interface and fibers. Research result demonstrates that the corresponding stiffness of unidirectional composite laminates is reduced as the number of loading cycles progresses. First, three common models in literatures are presented and compared. Tensile viscosity, Young’s modulus and ultimate tensile stress of composites are incorporated as key factors in this model and are modified in accordance with temperature. Four types of FRP composite property parameters, including Carbon Fiber Reinforced Polymer (CFRP), Aramid Fiber Reinforced Polymer (AFRP), Glass Fiber Reinforced Polymer (GFRP), and Basalt Fiber Reinforced Polymer (BFRP), are considered in this research, and a comparative parameter study of FRP unidirectional composite laminates with different off-angle plies using control variate method are discussed. It is concluded that the relationship between the drop in stiffness and the number of cycles also shows three different regions, following the mechanism of damage of FRP composites and the matrix is the dominant factor determined by temperature, while fiber strength is the dominant factor that determine the reliability of composite.
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来源期刊
SDHM Structural Durability and Health Monitoring
SDHM Structural Durability and Health Monitoring Engineering-Building and Construction
CiteScore
2.40
自引率
0.00%
发文量
29
期刊介绍: In order to maintain a reasonable cost for large scale structures such as airframes, offshore structures, nuclear plants etc., it is generally accepted that improved methods for structural integrity and durability assessment are required. Structural Health Monitoring (SHM) had emerged as an active area of research for fatigue life and damage accumulation prognostics. This is important for design and maintains of new and ageing structures.
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