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Influence of Fabric Architecture on Damage Progression Evidenced by Acoustic Emission Measurements

机译:织物结构对声发射测量表明损伤进展的影响

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摘要

Previous experimental results have studied the effect of fabric architecture on the static and fatigue response of glass reinforced polymer composites. Additional studies have analyzed the acoustic emission (AE) signatures of glass/epoxy composites which are monotonically loaded to failure [1-3]. These studies have identified systematic testing methodologies, and general relationships between measured acoustic properties and specific internal damage modes. The primary acoustic emission property utilized within this work is the peak frequency of each acoustic event. A plot of this peak frequency as a function of the applied strain show distinct levels, or bands, often attributed to specific damage modes, e.g., matrix cracking, interphase failure etc. Common fiberglass fabrics utilized within wind turbine blades have heavy unidirectional fibers held in place with stitching, a layer of random mat, or a combination of both. Results presented within this paper include the acoustic emission results for unidirectional composites monotonically loaded in both longitudinal and transverse directions, and biaxial composites from the same fabric. These results are compared with acoustic emission frequencies from glass/epoxy pre-preg materials with no stitching or additional backing material. It is shown that the addition of plies at different orientations and the removal of stitching effect the number of acoustic events and the strain to failure.
机译:先前的实验结果已经研究了织物结构对玻璃增强聚合物复合材料的静态和疲劳响应的影响。其他研究分析了单调加载至失效的玻璃/环氧树脂复合材料的声发射(AE)特征[1-3]。这些研究已经确定了系统的测试方法,以及测得的声学特性与特定内部损坏模式之间的一般关系。在这项工作中利用的主要声发射特性是每个声事件的峰值频率。该峰值频率与所施加应变的函数关系图显示出不同的水平或谱带,通常归因于特定的破坏模式,例如基体开裂,相间破坏等。风力涡轮机叶片中使用的常见玻璃纤维织物中固定有较重的单向纤维带缝线,无序毡层或两者结合的位置。本文介绍的结果包括沿纵向和横向单调加载的单向复合材料的声发射结果,以及同一织物的双轴复合材料的声发射结果。将这些结果与没有缝线或没有其他衬料的玻璃/环氧树脂预浸料的声发射频率进行比较。结果表明,在不同方向上增加帘布层和去除缝合效果会影响声波事件的数量和破坏应变。

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  • 来源
    《34th Wind energy symposium 2016》|2016年|224-236|共13页
  • 会议地点 San Diego CA(US)
  • 作者单位

    Department of Mechanical and Industrial Engineering Montana State University, Bozeman, MT 59717, USA;

    Department of Mechanical and Industrial Engineering Montana State University, Bozeman, MT 59717, USA;

    Department of Mechanical and Industrial Engineering Montana State University, Bozeman, MT 59717, USA;

    Department of Mechanical and Industrial Engineering Montana State University, Bozeman, MT 59717, USA;

    Department of Mechanical and Industrial Engineering Montana State University, Bozeman, MT 59717, USA;

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  • 正文语种 eng
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