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A new jig for mode II interlaminar fracture testing of composite materials under quasi-static and moderately high rates of loading

机译:在准静态和中等高载荷率下用于复合材料II型层间断裂测试的新型夹具

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摘要

While it is still debated whether a pure mode II interlaminar fracture can physically exist in composites, several test methods have been proposed for its characterization. Lack of agreement between the results obtained with different test configurations has been attributed to the use of inconsistent data reduction schemes or inadequate correction factors used to correct for, e.g. the large deformations occurring with some tough modern materials. Aim of this work was to design a new jig that could provide an as pure as possible mode II crack initiation in unidirectional composites materials, that would allow a direct determination of fracture toughness, i.e. requiring almost no assumption for data reduction nor side effects correction and could be amenable to being used under impact as well as quasi-static loading conditions. The geometry of the system was designed in order to obtain great compactness, i.e. reduced masses and contained volume, making it usable with drop-weight testing machines, but at the same time enough stiffness to prevent flexural moments from closing or opening the crack faces, so granting the purity of the wanted mode, mode II, of loading. The compactness of the jig plus specimen system and the rigid confinement to which the composite specimen is subjected also grant that quite small displacements and overall deformations are reached at fracture. A static finite element analysis was conducted to optimize the jig geometry and is discussed here. Preliminary numerical and experimental results obtained with moderately high rate tests are also presented. The method employed for data reduction is based on the experimental calibration of the compliance and it is quite straightforward.
机译:尽管仍在争论复合材料中是否可以物理存在II型纯层间断裂,但已提出了几种表征方法。在使用不同测试配置获得的结果之间缺乏一致性的原因是由于使用了不一致的数据缩减方案或用于校正例如某些坚韧的现代材料会产生很大的变形。这项工作的目的是设计一种新夹具,该夹具可以在单向复合材料中提供尽可能纯的II型裂纹萌生,从而可以直接确定断裂韧性,即几乎不需要进行数据缩减或副作用校正的假设。可能适合在冲击以及准静态载荷条件下使用。设计系统的几何形状是为了获得极大的紧凑性,即减少质量和减小容纳体积,使其可用于落锤试验机,但同时要有足够的刚度以防止弯曲力矩闭合或打开裂纹面,因此,请授予所需的加载模式(模式II)的纯度。夹具加试样系统的紧凑性和复合试样所受的刚性约束还使得断裂时位移和整体变形都非常小。进行了静态有限元分析以优化夹具的几何形状,并在此处进行了讨论。还介绍了通过中等高速率测试获得的初步数值和实验结果。用于数据缩减的方法基于对一致性的实验校准,并且非常简单。

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