Nurul Farah Adilla Zaidi, Nur Najahatul Huda Saris, Muhammad Yusof Mohd Noor, Sumiaty Ambran, Mohd Rashidi Salim and Mohd Haniff Ibrahim
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Additionally, this study provides an analysis of the influence of different diameters and lengths of NCF on the sensor’s sensitivity. The HRI sensing performance of the sensor was evaluated both numerically and experimentally by observing power spectrum changes due to leaky modes interference in response to varying transformer oil RI values from 1.4600 RIU to 1.5500 RIU. The NCF, with a geometry of 1 cm in length and 100 μm in diameter, demonstrated remarkable sensitivity, achieving up to 88.285 dBm/RIU for HRI values within the specified range. The sensor effectively discerned various aging levels of transformer oil in power transformer applications. Additionally, since the NCF structure is entirely composed of silica-based materials, it exhibited significant temperature resistance. 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引用次数: 0
摘要
变压器油在高压变压器的绝缘和冷却方面起着至关重要的作用,但它会随着时间的推移而退化。本研究提出了一种耐用的传感器,当变压器油的折射率(RI)超过传感器结构的折射率(RI)时,它就能检测到,这就是所谓的高折射率(HRI)传感。这项研究利用无芯光纤(NCF)来监测变压器油的质量。在该装置中,单模光纤(SMF)被用作 NCF 的输入和输出,形成了 SMF-NCF-SMF (SNS) 传感器。迄今为止,还没有关于在 SMF-NCF-SMF 方案中使用 NCF 进行高 RI 光纤传感和变压器油降解检测的报道。此外,本研究还分析了不同直径和长度的 NCF 对传感器灵敏度的影响。传感器的 HRI 传感性能通过数值和实验进行了评估,在变压器油 RI 值从 1.4600 RIU 到 1.5500 RIU 不等的情况下,观察泄漏模式干扰引起的功率谱变化。长度为 1 厘米、直径为 100 μm 的 NCF 显示出卓越的灵敏度,在指定范围内的 HRI 值最高可达 88.285 dBm/RIU。该传感器能有效辨别电力变压器应用中变压器油的各种老化程度。此外,由于 NCF 结构完全由硅基材料组成,因此具有显著的耐温性。这些特性使 SNS 结构非常适合在具有挑战性的热环境中可靠部署。
Investigation of transformer oil aging using no-core optical fiber (NCF) sensor
Transformer oil plays a crucial role in insulation and cooling within high-voltage transformers, but it degrades over time. This research proposes a durable sensor capable of detecting the refractive index (RI) of transformer oil when it exceeds the RI of the sensor structure, known as high refractive index (HRI) sensing. The study utilizes a no-core optical fiber (NCF) to monitor the quality of transformer oil. In this setup, single mode fiber (SMF) is employed as both the input and output of the NCF, forming an SMF-NCF-SMF (SNS) sensor. To date, to the use of an NCF in the SMF-NCF-SMF scheme has not been reported for high RI fiber sensing and transformer oil degradation detection. Additionally, this study provides an analysis of the influence of different diameters and lengths of NCF on the sensor’s sensitivity. The HRI sensing performance of the sensor was evaluated both numerically and experimentally by observing power spectrum changes due to leaky modes interference in response to varying transformer oil RI values from 1.4600 RIU to 1.5500 RIU. The NCF, with a geometry of 1 cm in length and 100 μm in diameter, demonstrated remarkable sensitivity, achieving up to 88.285 dBm/RIU for HRI values within the specified range. The sensor effectively discerned various aging levels of transformer oil in power transformer applications. Additionally, since the NCF structure is entirely composed of silica-based materials, it exhibited significant temperature resistance. These characteristics make the SNS structure well-suited for reliable deployment in challenging thermal environments.
期刊介绍:
Physica Scripta is an international journal for original research in any branch of experimental and theoretical physics. Articles will be considered in any of the following topics, and interdisciplinary topics involving physics are also welcomed:
-Atomic, molecular and optical physics-
Plasma physics-
Condensed matter physics-
Mathematical physics-
Astrophysics-
High energy physics-
Nuclear physics-
Nonlinear physics.
The journal aims to increase the visibility and accessibility of research to the wider physical sciences community. Articles on topics of broad interest are encouraged and submissions in more specialist fields should endeavour to include reference to the wider context of their research in the introduction.