首页> 外文会议>SAMPE Conference and Exhibition >( SE18--1144) MICROMECHANICAL INVESTIGATIONS ON THE DAMAGE PROCESS IN CONTINUOUS FIBER REINFORCED PLASTICS (FRP) UNDER CYCLICAL LOADING
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( SE18--1144) MICROMECHANICAL INVESTIGATIONS ON THE DAMAGE PROCESS IN CONTINUOUS FIBER REINFORCED PLASTICS (FRP) UNDER CYCLICAL LOADING

机译:(SE18--1144)循环载荷下连续纤维增强塑料(FRP)损伤过程的微机械研究

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High-performance components made of continuous fiber-reinforced plastics (FRP) are generally subjected to stochastic cyclic stress during their service life. Therefore it is essential to understand the damage mechanisms of FRP under cyclic loading so that a reliable prediction of the fatigue life can be made.Due to the inhomogeneous structure of FRP, the damage behavior of a lamina is characterized by diffuse damage mechanisms, such as filament break, micro crack at the fiber/matrix interface and in the matrix. Previous investigations have revealed that the fatigue of unidirectional FRP under transverse loading is influenced by the stress redistributions in the matrix due to the creep and relaxation processes of matrix.In this paper, the results of numerical and experimental investigations will be discussed, which include the modelling of matrix creep and the subsequent simulations of the stress redistribution and interface damage possibilities on a micromechanical scale. Experimental investigations were carried out on specimens with cyclic loading transverse to the fiber direction. The simulation results correspond well with the creep phenomena and damage investigation in experiments. The comparison between simulation and fatigue tests indicates a correlation between the stress redistribution in the matrix and the damage phenomena of FRP.
机译:由连续纤维增强塑料(FRP)制成的高性能部件通常在其使用寿命期间进行随机循环应力。因此,必须了解循环加载下FRP的损伤机制,以便可以制造对疲劳寿命的可靠预测。为FRP的不均匀结构,薄层的损伤行为的特征是弥漫损伤机构,例如灯丝断裂,纤维/矩阵界面的微裂纹和矩阵。先前的研究表明,由于基质的蠕变和放松过程,在横向负载下的横向载荷下的单向FRP的疲劳受到基质中的应力再分布的影响。本文将讨论数值和实验研究的结果,包括数值和实验研究的结果包括矩阵蠕变的建模与后续模拟微机械尺度的应力再分布和界面损坏的可能性。在具有横向于纤维方向的循环载荷的标本上进行实验研究。模拟结果与实验中的蠕变现象和损伤调查相处不同。仿真和疲劳试验之间的比较表明了矩阵中的应力再分布与FRP的损伤现象之间的相关性。

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