College of Information Science and Engineering, Shenyang University of Technology, Shenyang 110870, China.
Sensors (Basel). 2022 Feb 2;22(3):1128. doi: 10.3390/s22031128.
Local stress concentrations pose a significant hazard to the safe operation of pipelines. However, the classical analytical model of the magnetic flux leakage (MFL) signal is still unable to effectively quantitatively analyze and accurately evaluate the local stress concentration zone of a pipeline. In this paper, based on the Jiles-Atherton model of the magnetomechanical effect, the mathematical relationship between stress and the magnetization of ferromagnetic material under hysteresis conditions is introduced, and an improved analytical model of the MFL signal based on the magnetomechanical model is established. The influence law of stress intensity on the MFL signal in the local stress concentration zone of the pipeline is calculated and analyzed, and the theoretical calculation results are verified through experiments. Simulation and experimental results show that, considering the hysteresis condition, the stress causes a change in the hysteresis loop of the ferromagnetic material, and the magnetization strength of the material decreases with increasing stress; the effect of stress on the magnetization strength of ferromagnetic materials is most obvious when the external magnetic field is approximately 5 KA/m. The MFL signal on the surface of the local stress concentration zone of the pipe changes abruptly, and the amount of change in the axial amplitude and radial peak-to-peak value of the leakage signal of the pipe tends to increase with the increase in the stress intensity of the local stress concentration zone. A comparison of the analysis with the classical analytical model of the MFL signal shows that the improved analytical model of the MFL signal is more suitable for the quantification study of the local stress concentration zone of the pipeline.
局部应力集中对管道的安全运行构成重大威胁。然而,传统的漏磁(MFL)信号解析模型仍无法有效进行定量分析和准确评估管道的局部应力集中区域。本文基于磁机械效应的 Jiles-Atherton 模型,引入了在磁滞条件下应力与铁磁材料磁化之间的数学关系,建立了基于磁机械模型的改进 MFL 信号解析模型。计算和分析了应力强度对管道局部应力集中区 MFL 信号的影响规律,并通过实验对理论计算结果进行了验证。仿真和实验结果表明,考虑磁滞条件时,应力会导致铁磁材料的磁滞回线发生变化,材料的磁化强度随应力的增加而减小;当外磁场约为 5KA/m 时,应力对铁磁材料磁化强度的影响最明显。管道局部应力集中区表面的 MFL 信号会发生急剧变化,且管道漏磁信号的轴向幅值和径向峰峰值的变化量随局部应力集中区的应力强度增加而趋于增大。与 MFL 信号的经典解析模型的分析结果进行比较,表明改进的 MFL 信号解析模型更适合于管道局部应力集中区的定量研究。