Jinggang Yang;Qun Li;Jiabi Liang;Jian Shao;Peng Wu;Tonglei Wang;Yuncai Lu;Xiaohan Li
{"title":"用于电力变压器局部放电检测的高灵敏度光纤法布里-珀罗超声传感器","authors":"Jinggang Yang;Qun Li;Jiabi Liang;Jian Shao;Peng Wu;Tonglei Wang;Yuncai Lu;Xiaohan Li","doi":"10.1109/ACCESS.2025.3605613","DOIUrl":null,"url":null,"abstract":"Optical sensing has been widely applied in the condition monitoring of power equipment due to its advantages, such as high insulation, anti-interference capability, and high sensitivity. However, for partial discharge detection, the sensitivity and applicability of optical sensors still need to be further improved to ensure their practical application. This paper introduces a silicon-grooved diaphragm-based fiber-optic Fabry-Perot (F-P) ultrasonic sensor that was designed and fabricated for partial discharge detection in power equipment such as power transformers. The groove parameters of the sensing diaphragm were optimized using finite element software. Compared to traditional circular diaphragms, the static sensitivity of the silicon-grooved diaphragm was improved by 4.09 times, while the resonant frequency remained essentially unchanged. The influence of the F-P cavity length on the contrast of the sensor’s interference spectrum was investigated by coupling efficiency to modify the traditional dual-beam interference model, thereby enhancing the sensor’s acoustic pressure sensitivity. The silicon grooved diaphragm was fabricated using micro-electro-mechanical system (MEMS) technology, with a groove diameter of <inline-formula> <tex-math>$829.44~\\mu $ </tex-math></inline-formula>m, a thickness of <inline-formula> <tex-math>$2.09~\\mu $ </tex-math></inline-formula>m, and an F-P cavity length of <inline-formula> <tex-math>$163.600~\\mu $ </tex-math></inline-formula>m. At the resonant frequency of 61.5 kHz, the sensor achieved an acoustic pressure sensitivity of 357.78 mV/Pa. The performance of the sensor was validated by testing in a power transformer with three types of partial discharge defect models. Experimental results demonstrate that the fabricated fiber-optic F-P ultrasonic sensor offers high acoustic pressure sensitivity, good real-time performance, and capabilities in detecting ultrasonic signals. In addition, the developed sensor maintains structural integrity and can function after long-term usage in a transformer environment.","PeriodicalId":13079,"journal":{"name":"IEEE Access","volume":"13 ","pages":"154898-154907"},"PeriodicalIF":3.6000,"publicationDate":"2025-09-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=11149660","citationCount":"0","resultStr":"{\"title\":\"Highly Sensitive Optic Fabry-Perot Ultrasonic Sensor for Power Transformer Partial Discharge Detection\",\"authors\":\"Jinggang Yang;Qun Li;Jiabi Liang;Jian Shao;Peng Wu;Tonglei Wang;Yuncai Lu;Xiaohan Li\",\"doi\":\"10.1109/ACCESS.2025.3605613\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Optical sensing has been widely applied in the condition monitoring of power equipment due to its advantages, such as high insulation, anti-interference capability, and high sensitivity. However, for partial discharge detection, the sensitivity and applicability of optical sensors still need to be further improved to ensure their practical application. This paper introduces a silicon-grooved diaphragm-based fiber-optic Fabry-Perot (F-P) ultrasonic sensor that was designed and fabricated for partial discharge detection in power equipment such as power transformers. The groove parameters of the sensing diaphragm were optimized using finite element software. Compared to traditional circular diaphragms, the static sensitivity of the silicon-grooved diaphragm was improved by 4.09 times, while the resonant frequency remained essentially unchanged. The influence of the F-P cavity length on the contrast of the sensor’s interference spectrum was investigated by coupling efficiency to modify the traditional dual-beam interference model, thereby enhancing the sensor’s acoustic pressure sensitivity. The silicon grooved diaphragm was fabricated using micro-electro-mechanical system (MEMS) technology, with a groove diameter of <inline-formula> <tex-math>$829.44~\\\\mu $ </tex-math></inline-formula>m, a thickness of <inline-formula> <tex-math>$2.09~\\\\mu $ </tex-math></inline-formula>m, and an F-P cavity length of <inline-formula> <tex-math>$163.600~\\\\mu $ </tex-math></inline-formula>m. At the resonant frequency of 61.5 kHz, the sensor achieved an acoustic pressure sensitivity of 357.78 mV/Pa. The performance of the sensor was validated by testing in a power transformer with three types of partial discharge defect models. Experimental results demonstrate that the fabricated fiber-optic F-P ultrasonic sensor offers high acoustic pressure sensitivity, good real-time performance, and capabilities in detecting ultrasonic signals. 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Highly Sensitive Optic Fabry-Perot Ultrasonic Sensor for Power Transformer Partial Discharge Detection
Optical sensing has been widely applied in the condition monitoring of power equipment due to its advantages, such as high insulation, anti-interference capability, and high sensitivity. However, for partial discharge detection, the sensitivity and applicability of optical sensors still need to be further improved to ensure their practical application. This paper introduces a silicon-grooved diaphragm-based fiber-optic Fabry-Perot (F-P) ultrasonic sensor that was designed and fabricated for partial discharge detection in power equipment such as power transformers. The groove parameters of the sensing diaphragm were optimized using finite element software. Compared to traditional circular diaphragms, the static sensitivity of the silicon-grooved diaphragm was improved by 4.09 times, while the resonant frequency remained essentially unchanged. The influence of the F-P cavity length on the contrast of the sensor’s interference spectrum was investigated by coupling efficiency to modify the traditional dual-beam interference model, thereby enhancing the sensor’s acoustic pressure sensitivity. The silicon grooved diaphragm was fabricated using micro-electro-mechanical system (MEMS) technology, with a groove diameter of $829.44~\mu $ m, a thickness of $2.09~\mu $ m, and an F-P cavity length of $163.600~\mu $ m. At the resonant frequency of 61.5 kHz, the sensor achieved an acoustic pressure sensitivity of 357.78 mV/Pa. The performance of the sensor was validated by testing in a power transformer with three types of partial discharge defect models. Experimental results demonstrate that the fabricated fiber-optic F-P ultrasonic sensor offers high acoustic pressure sensitivity, good real-time performance, and capabilities in detecting ultrasonic signals. In addition, the developed sensor maintains structural integrity and can function after long-term usage in a transformer environment.
IEEE AccessCOMPUTER SCIENCE, INFORMATION SYSTEMSENGIN-ENGINEERING, ELECTRICAL & ELECTRONIC
CiteScore
9.80
自引率
7.70%
发文量
6673
审稿时长
6 weeks
期刊介绍:
IEEE Access® is a multidisciplinary, open access (OA), applications-oriented, all-electronic archival journal that continuously presents the results of original research or development across all of IEEE''s fields of interest.
IEEE Access will publish articles that are of high interest to readers, original, technically correct, and clearly presented. Supported by author publication charges (APC), its hallmarks are a rapid peer review and publication process with open access to all readers. Unlike IEEE''s traditional Transactions or Journals, reviews are "binary", in that reviewers will either Accept or Reject an article in the form it is submitted in order to achieve rapid turnaround. Especially encouraged are submissions on:
Multidisciplinary topics, or applications-oriented articles and negative results that do not fit within the scope of IEEE''s traditional journals.
Practical articles discussing new experiments or measurement techniques, interesting solutions to engineering.
Development of new or improved fabrication or manufacturing techniques.
Reviews or survey articles of new or evolving fields oriented to assist others in understanding the new area.