智能电力电缆分布式温度监测使能技术

G. Coletta, G. Persiano, A. Vaccaro, D. Villacci
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引用次数: 4

摘要

随着可再生能源发电机在整个输电系统中的日益普及,以及新建输电资产的困难,导致电力系统组件的工作接近其设计极限,增加了拥堵的风险,降低了其运行的可靠性和安全性。考虑到导体热交换过程的实际边界条件,需要充分利用可再生能源的优势,减轻系统拥塞的影响,这促使电力系统运营商采用基于动态热额定的先进负荷政策。在电力电缆加载中应用这些技术的可能性是一个非常具有战略意义的问题,因为它可以减少关键市场区域之间的拥堵。尽管这些技术在实际操作场景中的应用仍处于起步阶段,并且仅限于几个原型实现,但在科学文献中,提出了大量用于动态线路温度监测的技术。解决这一问题的一个非常有趣的方法是基于光纤的分布式温度传感方法,它可以通过提供可靠的时空温度分布,并且不受任何类型的电磁干扰,在电缆热监测中发挥关键作用。基于这一设想,本文详细介绍并讨论了一种先进的光纤传感器在实际电力电缆不同运行和敷设条件下的温度监测实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enabling technologies for distributed temperature monitoring of smart power cables
The increasing diffusion of renewable energy generators throughout the power transmission systems, and the difficulties in building new transmission assets are leading the power system components to work closest to their design limits, increasing the risk of congestion and reducing their operation reliability and safety. The need for fully exploiting the advantages of renewable energy sources, mitigating the effects of system congestions, is pushing power system operators to apply advanced loading policies based on Dynamic Thermal Rating, considering the actual boundary conditions for conductors heat exchange processes. The possibility to apply these techniques in power cables loading is a very strategic issue, since it could reduce the congestion among critical market zones. Although the application of these techniques in real operating scenario is still at its infancy, and limited to several prototype implementations, in the scientific literature a large range of techniques are proposed for dynamic line temperature monitoring. A very interesting methodology to afford this problem lies in fiber optic-based distributed temperature sensing methodologies, which can play a key role in cables thermal monitoring by providing reliable time-spatial temperature profiles, and being immune to any kind of electromagnetic disturb. Armed with such a vision in this paper detailed experimental results obtained by applying an advanced fiber optic-based sensor for temperature monitoring of a real power cable under different operation and laying conditions are presented and discussed.
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