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基于GaN材料的特高壓輸電線路的驗電標識

Electrical inspection mark of UHV transmission line based on GaN material

  • 摘要: 研制了一種無機材料構成的驗電標識,放置在導線周圍,通過電場驅動電子的運動,促進載流子復合,進而使材料發光,從而判斷帶電情況,其作為驗電標識使用非常便捷.選取了氮化鎵GaN材料進行研究,以GaN、InGaN等材料為基礎,通過溶膠凝膠法、氣相外延等方法制備接觸層、基片層、材料層等結構,進而獲得了驗電標識,該驗電標識的發光層是具有多量子肼結構的納米棒陣列.然后對其進行了電學光學性能參數測試,獲得了有關特性曲線,通過Ansoft-maxwell有限元軟件進行仿真,分析材料在特高壓輸電線路周圍的電場分布,通過試驗分析驗電標識發光所需求的電磁環境.最后模擬導線現場進行測試.研究表明,該低場致發光特性的驗電標識具有發光功耗低,發光明顯等優點,其處于所在區域的電場強度達到1.2×106V·m-1以上時,可激發發光,此時所注入電流約為1.1 mA.通過仿真和試驗分析可知帶電特高壓輸電線路周圍的空間電場強度滿足驗電標識發光指示的要求,同時空間雜散電流和材料本身的電容效應提供注入電流.該驗電標識通過材料本身發光特性來指示帶電狀態,安裝在距離特高壓導線軸線13 cm及以內的范圍即可實現驗電,通過封裝具有較好的耐候性能,同時避免了復雜的電路裝置驗電存在易受電磁干擾,可靠性差等問題.

     

    Abstract: At present, the traditional insulated pole electroscope is used for electrical inspection in high-voltage transmission lines. However, when it is used in ultra-high voltage (UHV) transmission lines, the length of its insulated rod is large, and there are disadvantages such as large working intensity, inconvenience, and hazardous operation. In this study, an electroluminescent inorganic material was made to be used for inspection mark. The material was placed around the wire, so that it glowed during the electric fielddriven movement of electrons to promote carrier recombination, through which the charged situation could be determined. Therefore, the electrification of the line can be judged through the material luminescent properties, making it very convenient to be used for inspection mark. In this study, GaN materials were investigated. Based on the GaN, InGaN, and other materials, the contact layer, substrate layer, material layer and other structures were made by methods such as sol-gel method and gas phase epitaxy. Then the inspection mark was prepared. The light-emitting layer was a nanorod array with a multi-quantum hydrazine structure. The electrical and optical properties of the inspection mark were tested, and the relevant characteristic curve was obtained. Through a simulation of the Ansoft-maxwell finite element software, the electric field distribution of the inspection mark and surrounding transmission lines were analyzed. Through experiments, the electromagnetic environment needed for electroluminescence was tested in the high-voltage test hall of Wuhan University. Finally, the inspection mark was tested in a working environment simulated in the Feng-huang ultra-high voltage test site. The research shows that the low-field electroluminescent inspection mark has the advantages of low power consumption and obvious luminescence. When it is in an area where the electric field strength is above 1.2×106V·m-1, the light can be excited and the injected current is about 1.1 mA. Simulation and experimental analysis show that the electric field strength around the UHV transmission lines meets the requirements of the light-emitting indication of an electroscope. Meanwhile, the space stray current and capacitance effect of the material provide the injection current. The inspection mark indicates the charged state through the light-emitting properties. Its installation can be within a distance of 13 cm from the UHV conductor axis, and it has good weather resistance. Meanwhile, it avoids problems such as electromagnetic interference and poor reliability that occur in electroscope equipment with complex circuits.

     

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