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Guided Wave Propagation Based Analysis of Non-linear Debonding Effects in a Composite Structure

机译:基于导波传播的复合结构非线性剥离效应分析

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Carbon-fibre reinforced composite structures are extensively used as a specialized lightweight construction material in the aerospace, aeronautics, automobile, construction, marine and wind-turbine industries, due to their high energy-absorption potential, construction flexibilities and high strength-to-weight ratios. In several specialized applications and construction requirements, stiffeners with variable shapes (e.g. T-section, L- section, I- section) are used in such composite structure. Such stiffened composite structures are often prone to the various linear and non-linear type of damage (such as- debonding, breathing crack, kissing-disbonds) due to ageing, cyclic loading, fatigue, impact, improper handling, and environmental impacts (temperature-fluctuations.moisture, turbulence). The ultrasonic guided wave (such as- Lamb wave) propagation based inspection strategies have the potential to effectively detect defects and/or structural changes in composites/metallic structures. The guided wave based inspection techniques have long-distance propagation capacity, penetration capability into several hidden layers, and in these techniques, effective identification of different wave modes plays a vital role and the wave propagation is dependent on the structural material properties, dimensions, the frequency of excitation, loading and operating conditions. Therefore, it is important to study the influences of those hidden damages on the propagating guided wave signals, in order to effectively identify and characterize them for avoiding anomalies during the structural health monitoring of such real-life stiffened composite structures. In the study, a guided wave propagation based non-linear debonding response analysis is experimentally and numerically carried out for a stiffened composite panel. Towards this, a series of finite element method based numerical simulations are carried out in ABAQUS for a stiffened composite structure in presence of a plate-stiffener debonding region and the obtained simulation results are verified by conducting laboratory experiments. Significant influences on the propagating guided wave signals are observed due to the presence of non-linearity at the debonding region in terms of the generation of higher harmonics. Based on the identified differential changes in selected higher-harmonics magnitudes it is possible to effectively identify debonding regions.
机译:碳纤维增强复合材料结构具有高的能量吸收潜力,结构灵活性和高强度重量比,因此广泛用作航空航天,航空,汽车,建筑,船舶和风力涡轮机行业中的一种特殊的轻质建筑材料。比率。在一些专门的应用和构造要求中,在这种复合结构中使用具有可变形状的加劲肋(例如,T形截面,L形截面,I形截面)。由于老化,循环载荷,疲劳,冲击,处理不当和环境影响(温度),此类加劲的复合结构通常易于遭受各种线性和非线性类型的损坏(例如,脱胶,呼吸裂纹,接吻脱胶)。 -波动,湿气,湍流)。基于超声波导波(例如兰姆波)传播的检查策略具有有效检测复合材料/金属结构中的缺陷和/或结构变化的潜力。基于导波的检查技术具有远距离传播能力,可穿透多个隐蔽层的能力,在这些技术中,有效识别不同的波模式起着至关重要的作用,并且波的传播取决于结构材料的特性,尺寸,励磁频率,负载和运行条件。因此,重要的是研究这些隐藏损伤对传播的导波信号的影响,以便有效地识别和表征它们,从而避免在这种现实生活中的刚性复合结构进行结构健康监测时避免出现异常。在这项研究中,对加硬的复合板进行了基于导波传播的非线性去粘响应分析实验和数值模拟。为此,在ABAQUS中对存在板加劲肋剥离区域的加劲复合结构进行了一系列基于有限元方法的数值模拟,并通过进行实验室实验验证了所获得的模拟结果。由于在产生高次谐波方面在分离区域处存在非线性,因此观察到了对传播的导波信号的显着影响。基于选定的较高谐波幅度的已识别差异变化,可以有效识别脱胶区域。

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