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Acoustic Emissions of Cathode Carbon Block from Aluminum Electrolytic Cell Under Deformation

机译:铝电解槽阴极炭块变形时的声发射

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In order to understand the propagation mechanism of microcrack developing into destructive penetrating cracks and the evolution process of that in cathode carbon block, the acoustic emission (AE) characteristics of cathode carbon block in the process of failure were studied under uniaxial compression loads. The experiment results show that the failure process of cathode carbon block can be divided into four stages. Based on the characteristic parameters of AE signal and its macroscopic fracture state, the causes and corresponding fracture modes of AE signals in each stage are analyzed. In addition, AE signals in the failure process of cathode carbon block can be divided into four types according to k-means clustering analysis. According to the parameter characteristics, waveform characteristics, and time distribution of all types of signals, it can be concluded that class A signals correspond to tensile failure caused by the interaction of macro crack and the friction between aggregate particles in post-peaking stage. Class B signals are considered as the noise generated by the friction between the testing machine and the end face of the cathode carbon block. It is considered that class C signals correspond to the shear slip cracking before the macro cracking as well as the crack propagation and penetrating large-scale shear failure at the peak stress that affects the overall stability of the cathode carbon block. Class D signals are generated by the fracture of the connection between aggregate particles and the compaction of pores between aggregate particles during the early stage of loading. The results provide basic data and experimental basis for the detection of electrolytic cell damage in electrolytic aluminum industry.
机译:为了了解微裂纹发展为破坏性穿透裂纹的扩展机理和阴极炭块中微裂纹的演化过程,研究了阴极炭块在单轴压缩载荷下的声发射特性。实验结果表明,阴极炭块的失效过程可分为四个阶段。根据声发射信号的特征参数及其宏观断裂状态,分析了各阶段声发射信号的成因及相应的断裂模式。此外,根据k-均值聚类分析,阴极炭块失效过程中的声发射信号可分为四种类型。根据各类信号的参数特征、波形特征和时间分布,可以得出A类信号对应于峰值后阶段宏观裂纹和骨料颗粒间摩擦相互作用引起的拉伸破坏。B类信号被认为是试验机和阴极炭块端面之间摩擦产生的噪声。认为C类信号对应于宏观开裂前的剪切滑移开裂,以及影响阴极碳块整体稳定性的峰值应力下的裂纹扩展和穿透大规模剪切破坏。D类信号是由骨料颗粒之间的连接断裂和骨料颗粒之间的孔隙在加载早期压实产生的。研究结果为电解铝行业电解槽破损检测提供了基础数据和实验依据。

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