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Analysis and processing of mechanically stimulated electrical signals for the identification of deformation in brittle materials

机译:分析和处理机械刺激的电信号,以识别脆性材料的变形

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摘要

The fracture of brittle materials is of utmost importance for civil engineering and seismology applications. A different approach towards the aim of early identification of fracture and the prediction of failure before it occurs is attempted in this work. Laboratory experiments were conducted in a variety of rock and cement based material specimens of various shapes and sizes. The applied loading schemes were cyclic or increasing and the specimens were tested to compression and bending type loading of various levels. The techniques of Pressure Stimulated Current and Bending Stimulated Current were used for the detection of electric signal emissions during the various deformation stages of the specimens. The detected signals were analysed macroscopically and microscopically so as to find suitable criteria for fracture prediction and correlation between the electrical and mechanical parameters. The macroscopic proportionality of the mechanically stimulated electric signal and the strain was experimentally verified, the macroscopic trends of the PSC and BSC electric signals were modelled and the effects of material memory to the electric signals were examined. The current of a time-varying RLC electric circuit was tested against experimental data with satisfactory results and it was proposed as an electrical equivalent model. Wavelet based analysis of the signal revealed the correlation between the frequency components of the electric signal and the deformation stages of the material samples. Especially the increase of the high frequency component of the electric signal seems to be a good precursor of macrocracking initiation point. The additional electric stimulus of a dc voltage application seems to boost the frequency content of the signal and reveals better the stages of cracking process. The microscopic analysis method is scale-free and thus it can confront with the problems of size effects and material properties effects. The AC conductivity time series of fractured and pristine specimens were also analysed by means of wavelet transform and the spectral analysis was used to differentiate between the specimens. A non-destructive technique may be based on these results. Analysis has shown that the electric signal perturbation is an indicator of the forthcoming fracture, as well as of the fracture that has already occurred in specimens.
机译:脆性材料的断裂对于土木工程和地震学应用至关重要。在这项工作中,尝试了一种不同的方法,旨在尽早发现骨折并在破裂发生之前进行预测。在各种形状和大小的各种岩石和水泥基材料样本中进行了实验室实验。施加的加载方案是循环的或递增的,并且对样品进行了各种水平的压缩和弯曲型加载测试。压力激励电流和弯曲激励电流的技术被用于检测样品不同变形阶段的电信号发射。对检测到的信号进行了宏观和微观分析,以找到合适的断裂预测标准以及电气和机械参数之间的相关性。实验验证了机械刺激的电信号和应变的宏观比例,模拟了PSC和BSC电信号的宏观趋势,并研究了材料记忆对电信号的影响。针对实验数据对时变RLC电路的电流进行了测试,结果令人满意,并提出了等效电路模型。基于小波的信号分析揭示了电信号的频率分量与材料样本的变形阶段之间的相关性。尤其是电信号高频分量的增加似乎是宏裂纹起始点的良好先兆。直流电压施加的额外电刺激似乎可以提高信号的频率含量,并更好地揭示裂化过程的各个阶段。显微分析方法是无标度的,因此可以解决尺寸效应和材料特性效应的问题。还通过小波变换分析了断裂和原始样品的交流电导率时间序列,并使用光谱分析来区分样品。非破坏性技术可以基于这些结果。分析表明,电信号的扰动是即将发生的断裂以及标本中已经发生的断裂的指标。

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