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Characterization of a crack by the acoustic emission signal generated during propagation

机译:传播期间产生的声发射信号表征裂缝

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Acoustic Emission (AE) generates at different space and time scales ranging from the rupture of atomic bonds to seismic failure. Seismic and AE information are complementary concerning their application and their theoretical grounds. Following previous work we simulate the AE generated at a crack propagating in a bulk material by means of a model coming from Geophysics. The duration, the rise time and the relative amplitude of the AE burst are estimated with the model, and they are related to characteristics of the source. The crack length is estimated by means of the Fourier spectrum of the signal. The objective of the present paper was to apply the model to laboratory fragile samples in order to verify its validity at very different scales. The selected fragile material was methyl methacrylate because the length of fractures could be obtained with high precision. Different tests were performed varying the applied tensile stress. Experimental and modeled AE spectra due to fracture were quite similar. Modeled and measured crack length values were of the same order of magnitude.
机译:声发射(AE)在不同的空间和时间尺度上产生,从原子键的破裂到地震故障。地震和AE信息互补涉及其应用及其理论基础。在以前的工作之后,我们通过来自地球物理的模型模拟在散装材料中传播的裂缝产生的AE。使用该模型估计AE突发的持续时间,上升时间和相对幅度,并且它们与源的特征有关。借助于信号的傅里叶谱估计裂缝长度。本文的目的是将模型应用于实验室脆弱的样本,以验证其在非常不同的尺度上的有效性。所选择的脆性材料是甲基丙烯酸甲酯,因为可以高精度地获得裂缝的长度。进行不同的测试,改变施加的拉伸应力。由于骨折引起的实验和建模的AE光谱非常相似。建模和测量的裂缝长度值具有相同的数量级。

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