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110 kV整体预制式电缆中间接头界面压力的超声非线性表征

Ultrasonic nonlinear characterization of interfacial pressure in 110 kV integral prefabricated cable intermediate joints

  • 摘要: 位于电缆附件和电缆绝缘体之间的界面压力对附件绝缘特性、电缆长期可靠运行起决定性作用,文章提出了一种基于超声非线性效应的接头界面压力的无损检测方法。考虑电缆本体与中间接头之间的实际粗糙接触界面,利用服从高斯分布的点构建应力场-声场耦合的有限元仿真粗糙接触模型;基于该模型,首先分析电缆附件不同位置处回波信号时域、频域差异,以及同一位置不同界面压力下回波信号时域、频域差异;其次,拟合界面压力与非线性参数之间的函数关系;最后,通过搭建非线性超声试验平台完成电缆中间接头不同位置处界面压力测量,试验结果与仿真结果表明,回波信号的时域、频域的变化规律一致,且非线性参数随着界面压力增大呈增大趋势。试验结果表明,检测非线性参数值约为7.46×10−3(误差范围在5.80%以内)时,对应界面压力为0.21 MPa;检测非线性参数值约为6.38×10−3(误差范围在7.60%以内)时,对应界面压力为0.16 MPa,非线性参数可以表征不同位置处界面压力大小,验证了仿真拟合函数关系的有效性,为量测电缆附件界面压力提供了新思路。

     

    Abstract: The interface pressure between the cable accessories and the cable insulators plays a decisive role in the insulation characteristics of the accessories and the long-term reliable operation of the cable. A non-destructive testing method for joint interface pressure based on ultrasonic nonlinear effects is proposed in this paper. Considering the rough contact interface between the cable body and the accessories, a finite element simulation rough contact model of stress field-sound field coupling is constructed by using points with Gaussian probability distribution. Based on this model, first, the differences in echo signals in the time domain and frequency domain at different positions of the cable accessories, as well as the differences in time domain and frequency domain under different interface pressures at the same position, are analyzed. Second, the functional relationship between interface pressure and nonlinear parameters is fitted. Finally, a nonlinear ultrasonic test platform is built to measure the interface pressure at different positions of the cable intermediate joint. The test and simulation results show the same regularity in the time domain and frequency domain of the echo signal, and the nonlinear parameters increase with increasing interface pressure. The test results show that the detected nonlinear parameter is around 7.46×10−3 (with an error range within 5.80%), corresponding to an interfacial pressure of 0.21 MPa; and around 6.38×10−3 (with an error range within 7.60%), corresponding to an interfacial pressure of 0.16 MPa. The nonlinear parameter can characterize the magnitude of the interfacial pressure at different locations, thus verifying the validity of the simulation fitting function relationship and providing a new approach for measuring the interfacial pressure of cable accessories.

     

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