

浏览全部资源
扫码关注微信
西安交通大学电力设备电气绝缘国家重点实验室,西安,710049
Online First:10 April 2014,
Published:2014
移动端阅览
Growth Characteristics of Electrical Trees in XLPE Cable Insulation under DC Voltage[J]. 2014, 48(4): 41-46+126.
Growth Characteristics of Electrical Trees in XLPE Cable Insulation under DC Voltage[J]. 2014, 48(4): 41-46+126. DOI: 10.7652/xjtuxb201404008.
为了研究交联聚乙烯电缆绝缘材料中直流电树枝的生长速率、形态特征及通道特性
利用树枝化试验及显微观察系统
在针尖半径为5 μm、针-板电极间距为2 mm、周期性施加的间断直流电压下
对试样进行了分组试验。试验结果显示:电树枝由细单枝逐渐发展为稀疏丛状结构
树枝通道为非导电型; 电树枝生长缓慢
生长速率不超过1.0 μm/min; 树枝长度主要取决于加压周期数及直流电压幅值
电压持续时间在高压下影响增大; 针极意外接地情况下
电树枝将瞬间引发或快速生长。理论分析表明
电树枝生长规律可以由文中所建立的非导电树枝模型及等效电路进行合理解释
而空间电荷效应是产生直流接地树现象的根本原因。
The growth
shape and channel characteristics of electrical trees in XLPE cable insulation under DC voltages are investigated by combination of treeing test with microscopic observation system. In the experiment
the tip radius of the needle electrode is taken as 5 μm
the pin-plane distance as 2 mm
and the intermittent DC voltages are applied on grouped samples periodically. The experiments show that the electrical trees develop gradually from a single slender branch to a sparse bush-like structure
and the tree channels are non-conductive. The trees grow very slowly
with a growth rate no more than 1.0 μm/min. The tree length increases with the increasing number of cycles and amplitude of DC voltage
and it is also proportional to the voltage duration in each cycle at 60 kV. Under the condition of an unexpected grounding of the needle electrode
a new tree initiates instantly from the needle tip
while an existing tree grow very rapidly. The tree growth pattern can be theoretically explained by the equivalent circuit according to a non-conductive tree model
and the space charge effect is the essential reason for grounded DC tree.
CIGRE WG B1.32. Recommendations for testing DC extruded cable systems for power transmission at a rated voltage up to 500 kV[R]. Paris, France: CIGRE, 2012.
ISHIBASHI A, KAWAI T, NAKAGAWA S, et al. A study of treeing phenomena in the development of insulation for 500 kV XLPE cables[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 1998, 5(5): 695-706.
DENSLEY J. Aging mechanisms and diagnostics for power cables-an overview[J]. IEEE Electrical Insulation Magazine, 2001, 17(1): 14-22.
STEPHANIE R, YOSHIMICHI O, TAKAHIRO I, et al. Tree initiation characteristics of epoxy resin and epoxy/clay nanocomposite[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2009, 16(5): 1473-1480.
ZHENG X Q, CHEN G. Propagation mechanism of electrical tree in XLPE cable insulation by investigation a double electrical tree structure[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2008, 15(3): 800-807.
CHEN X R, XU Y, CAO X L, et al. Effect of tree channel conductivity on electrical tree shape and breakdown in XLPE cable insulation samples[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2011, 18(3): 847-860.
DISSADO L A. Understanding electrical trees in solid: from experiment to theory[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2002, 9(4): 483-497.
NOTO F, YOSHIMURA N, OHTA T. Tree initiation in polyethylene by application of DC and impulse voltage[J]. IEEE Transactions on Electrical Insulation, 1977, 12(1): 26-30.
YASUO S, HIROSHI K, MITSUGU S, et al. DC tree and grounded DC tree in XLPE[C]∥Annual Report Conference on Electrical Insulation and Dielectric Phenomena. Nashville, Tennessee, USA: IEEE Dielectrics and Electrical Insulation Society, 2005: 523-526.
FU M, CHEN G, DISSADO L A, et al. Influence of thermal treatment and residues on space charge accumulation in XLPE for DC power cable application[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2007, 14(1): 53-64.
MILDRID S, ERLING I. Electrical treeing caused by rapid DC-voltage grounding of XLPE cable insulation[C]∥Conference Record of the 2006 IEEE International Symposium on Electrical Insulation. Piscataway, USA: IEEE, 2006: 502-505.
MASAHIRO F, MITSUMASA I. Study of the relationship between space charge field and electrical treeing in low density polyethylene under a needle-plane electrode system[J]. Japanese Journal of Applied Physics, 1998, 37(7): 4016-4020.
KITANI I, ARII K. DC tree associated with space charge in PMMA[J]. IEEE Transactions on Electrical Insulation, 1987, 22(3): 303-307.
FUJII M, WATANABE M, KITANI I, et al. Fractal character of DC trees in polymethylmethacrylate[J]. IEEE Transactions on Electrical Insulation, 1991, 26(6): 1159-1162.
VAUGHAN A S, HOSIER I L, DODD S J, et al. On the structure and chemistry of electrical trees in polyethylene[J]. J Phys: D Appl Phys, 2006, 39(5): 962-978.
陈向荣, 徐阳, 刘英, 等. 交联聚乙烯电缆绝缘材料中电树枝的导电特性研究[J]. 物理学报, 2012, 61(8): 087701.
CHEN Xiangrong, XU Yang, LIU Ying, et al. Study on conducting characteristics of electrical trees in cross-linked polyethylene cable insulation[J]. Acta Phys Sin, 2012, 61(8): 087701.
SHIMIZU N, LAURENT C. Electrical tree initiation[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 1998, 5(5): 651-659.
FUKAGAWA H, MIYAUCHI H, YAMADA Y, et al. Insulation properties of 250 kV DC XLPE cables[J]. IEEE Transactions on Power Apparatus and Systems, 1981, 100(7): 3175-3184.
KHALIL S M. The role of BaTiO3 in modifying the DC breakdown strength of LDPE[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2000, 7(2): 261-268.
ANDRIANJOHANINARIVO J, WERTHEIMER M R, YELON A. Nucleation of electrical trees in polyethylene[J]. IEEE Transactions on Electrical Insulation, 1987, 22(6): 709-714.
BAUMANN T H, HIBMA T, PFLUGER P, et al. Experimental evidence for charge injection. A pre-breakdown mechanism in polymers[C]∥Proc 2nd Int Conf on Conduction and Breakdown in Solid Dielectrics. Piscataway, USA: IEEE, 1986: 131-136.
JIANG G, KUANG J B, BOGGS S. Critical parameters for electrical tree formation in XLPE[J]. IEEE Transactions on Power Delivery, 1998, 13(2): 292-296.
ZHANG Yewen, LEWINER J, ALQUIÉ C, et al. Evidence of strong correlation between space-charge buildup and breakdown in cable insulation[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 1996, 3(6): 778-783.
郑飞虎, 张冶文, 肖春. 聚合物电介质的击穿与空间电荷的关系[J]. 材料科学与工程学报, 2006, 24: 316-320.
ZHENG Feihu, ZHANG Yewen, XIAO Chun. Relationship between breakdown in polymer dielectrics and space charge[J]. Journal of Materials Science Engineering, 2006, 24(2): 316-320.
0
Views
4
下载量
18
CSCD
Publicity Resources
Related Articles
Related Author
Related Institution
京公网安备11010802024621