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Publishing Language: Chinese | Open Access

Infrared spectroscopic analysis of ablative gases in the buffer layer of high-voltage cables

Yekun MEN1Zhigang REN1Wei GUO1Ping CHEN1Xiaojun TANG2,3Shihang WANG2
State Grid Beijing Electric Power Company Research Institute, Beijing 100075, China
Xi'an Jiaotong University (State Key Laboratory of Electrical Insulation and Power Equipment), Xi'an 710049, China
School of Instrument Science and Technology, Xi'an Jiaotong University, Xi'an 710049, China
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Abstract

Ablative defects in the buffer layer of high-voltage cables are important causes of power cable failures. Buffer layer ablation releases gases, and some components of these gases and their concentrations can characterize the degree of buffer layer ablation defects. Fourier transform infrared spectroscopy for buffer layer ablation gas analysis has the unique advantages of speed, sensitivity, and non-destructiveness. To address the challenges in the detection of gases from high-voltage cable buffer layer ablation, namely noise interference, baseline drift and cross-interference, a buffer layer ablation gas Fourier transform infrared spectroscopy analysis method is proposed. The proposed method is validated by standard concentration gas analysis and ablation characteristic gas analysis experiments, using CH4, C2H6 and C2H4 as characteristic gases. The experimental results show that the three characteristic gas concentrations are related to the buffer layer ablation defects, and the proposed method can accurately analyze the concentration of the characteristic gases from infrared spectra, with relative errors of 8.90%, 17.60% and 4.32% for CH4, C2H6 and C2H4 in mixed gas, and the detection period is less than 15 s. This method can provide critical technical support for rapid, high-precision diagnosis of buffer layer ablation defects in high-voltage cables.

CLC number: TM75 Document code: A

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Electric Power Engineering Technology
Pages 93-100

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Cite this article:
MEN Y, REN Z, GUO W, et al. Infrared spectroscopic analysis of ablative gases in the buffer layer of high-voltage cables. Electric Power Engineering Technology, 2026, 45(2): 93-100. https://doi.org/10.12158/j.2096-3203.2026.02.010

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Received: 27 July 2025
Revised: 10 September 2025
Published: 28 February 2026
© After publication of the article, the authors shall own the right of signature. 2026.

The authors can use or share the published article under the Attribution-Non Commercial 4.0 International (CC BY-NC 4.0) license.