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首页> 外文期刊>Mathematics and mechanics of solids: MMS >Effective spring stiffness for non-interacting penny-shaped cracks at an interface between two dissimilar, isotropic, linearly elastic materials
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Effective spring stiffness for non-interacting penny-shaped cracks at an interface between two dissimilar, isotropic, linearly elastic materials

机译:有效的弹簧刚度,用于两种互不相同的各向同性线性弹性材料之间的界面处的非相互作用的一字形裂缝

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摘要

A quasi-static approximation has been widely used to model ultrasonic wave interactions at imperfect interfaces between two linearly elastic materials. To simulate the reduction of static stiffness of the overall structure due to compromised interfaces (micro-cracks or micro-disbonds), the compliance of an imperfect interface to a loading is represented by continuous, uniform distributions of linearly elastic interfacial springs. In this work, a representation by normal and transverse effective spring stiffnesses of an array of non-interacting penny-shaped cracks at the interface between two dissimilar, isotropic, linearly elastic materials is obtained based on classical fracture mechanics. The results obtained are useful in estimating the disbonded area, which is critical in assessing the bond integrity and estimating the remaining life. Special care is taken to avoid crack surface interpenetration for transverse loading, and the valid loading range is obtained to assure negligibility of crack surface interpenetration for all possible ranges of isotropic, linearly elastic material combinations. For linear ultrasound applications, it is shown that the expression obtained for transverse springs can be used for most isotropic, linearly elastic material combinations, if the initial maximum crack opening displacement is more than 10~(-5) of the crack radius. The obtained expressions are applied to estimate the accuracy of existing approximate models based on the analysis of penny-shaped cracks in a homogeneous material, rules of mixture, and Hertzian-based effective moduli. It is shown that for most practical material combinations the error is below 5%.
机译:准静态近似已广泛用于模拟两种线性弹性材料之间不完美界面处的超声波相互作用。为了模拟由于界面受损(微裂纹或微剥离)而导致的整体结构静态刚度的降低,不完全界面对载荷的顺应性由线性弹性界面弹簧的连续,均匀分布表示。在这项工作中,基于经典的断裂力学,获得了在两种不同的,各向同性的,线性弹性材料之间的界面处,非相互作用的便士形裂纹阵列的法向和横向有效弹簧刚度表示。获得的结果可用于估计剥离面积,这对于评估粘结完整性和估计剩余寿命至关重要。要特别注意避免在横向载荷下裂纹表面互穿,并且要获得有效载荷范围,以确保对于各向同性,线性弹性材料组合的所有可能范围,裂纹面互穿都可以忽略不计。对于线性超声应用,已表明,如果初始最大裂纹开口位移大于裂纹半径的10〜(-5),则对于大多数各向同性的线性弹性材料组合,可以使用横向弹簧获得的表达式。基于对均质材料中的便士形裂纹,混合规则和基于赫兹的有效模量的分析,所获得的表达式可用于估计现有近似模型的准确性。结果表明,对于大多数实际的材料组合,误差低于5%。

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