以某500kV高压输电线路为研究对象,建立了三塔四线输电塔-线体系精细化有限元模型,在考虑跌落导地线与地面碰撞接触基础上,对其进行了不同断线位置以及不同断线根数的隐式非线性动力分析。结果表明:断线点位置对断线瞬间的冲击作用影响较小;断线后断线一侧张力衰减系数随着导线挂点位置增高而单调递减;未断线一侧张力衰减系数随着挂点位置增高先减小后增大;耐张塔张拉作用系数远大于直线塔;耐张塔的断线动力放大系数在1.1~1.5之间。在断多根线的最不利工况下研究了耐张塔的扭转破坏和弯曲破坏两种失效模式。
Abstract
Taking a 500 kV high-voltage transmission line as a study object,a fine finite element model of a transmission tower-line system was established.Considering collision and contact between a dropped wire and ground,nonlinear dynamic analyses of the system with different break points and different numbers of broken wires were performed.The results showed that the break point location has little effects on the impact action of broken wire; the tension decay coefficient of the broken wire decreases with increase in the height of the hanging point position,while that of the unbroken wire decreases first and then increases with increase in the height of the hanging point position; the tension coefficient of a strain tower is much larger than that of the tangent tower; the dynamic amplification coefficient of a strain tower is 1.1-1.5.Finally,the torsional failure mode and bending failure one of a strain tower were studied under the most unfavourable working conditions of multi-wire breakage.
关键词
输电塔 /
导线断线 /
非线性动力 /
破坏模式 /
有限元
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Key words
transmission tower /
wire broken /
nonlinear dynamic /
failure mode /
finite element method (FEM)
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参考文献
[1] A H Peyrot, R O Kluge, J W Lee. Longitudinal loads from broken conductors and broken insulators and their effect on transmission lines[J]. IEEE Transactions on Power Apparatus and Systems, 1980, 99(1): 222-234.
[2] J D Mozer, W A Wood, J A Hribar. Broken wire tests on a model transmission line system[J]. IEEE Transactions on Power Apparatus and Systems, 1981, PAS-100(3): 938-945.
[3] 刘春城,毛绪坤,刘法栋等. 大跨越输电塔-线体系覆冰断线模型试验研究[J]. 振动与冲击, 2012, 31(24): 41-47.
Liu Chuncheng, Mao Xukun, Liu Fadong, et al. Model test for icing line disconnection on a long- span transmission tower-line system [J]. Journal of Vibration and Shock, 2012, 31(24): 41-47.
[4] 默增禄,张子富,胡光亚. ±800 kV直流特高压直线塔模型的导线断线试验分析[J]. 电力建设, 2010, 31(1): 30-33.
Mo Zenglu, Zhang Zifu, Hu Guangya. Experimental research for broken conductor wire of ±800 kV DC EHV suspension tower model [J]. Electric Power Construction, 2010, 31(1): 30-33.
[5] Faruq M.A. Siddiqui, John F. Fleming. Broken wire analysis of transmission line systems[J]. Computer and Structures, 1984, 18(6): 1077-1085.
[6] McClure U, Tinawi R. Mathematical modeling of the transient response of electric trans- mission lines due to conductor breakage[J]. Computer and Structures,1987, 26(1/2): 45-56.
[7] McClure U, Lapointe M. Modeling the structural dynamic response of overhead transmission lines[J]. Computer and Structures, 2003, 81(8): 825-834.
[8] 沈国辉,默增禄,孙炳楠等. 突然断线对输电塔线体系的冲击作用研究[J].振动与冲击, 2009, 28(12): 4-8.
Shen Guohui, Mo Zenglu, Sun Bingnan, et al. Research of impact effect on transmission line system due to sudden breakage of conductor[J].Journal of Vibration and Shock, 2009, 28(12): 4-8.
[9] 夏正春,李黎, 梁政平等. 输电塔在线路断线作用下的动力响应[J].振动与冲击, 2007, 26(11): 45-49.
Xia Zhcngchum,Li Li, Liang Zhengping, et al. Dynamic response of transmission tower with ruptured wires[J].Journal of Vibration and Shock, 2007, 26(11): 45-49.
[10] 李黎,夏正春,江宜城等. 输电线断线振荡研究[J].工程力学, 2008, 25(6): 165-169.
Li Li,Xia Zhcngchum, Jiang Yicheng, et al. Study on wire breaking-induced vibrations of electric transmission line[J].Engineering Mechanics, 2008, 25(6): 165-169.
[11] 郭思顺.架空送电线路设计基础[M].北京:中国电力出版社,2009.
Guo Sishun. Design basis of transmission line overhead [M]. Beijing: China Electric Power Press, 2009.
[12] 王新敏.ANSYS工程结构数值分析[M].北京:人民交通出版社,2007.
Wang Xinmin. ANSYS numerical analysis of engineering structurure. Beijing: China communication Press, 2007.
[13] DL/T 5154-2012.架空输电线路杆塔结构设计技术规定[S]. 北京:中国计划出版社,2012.
DL/T 5154-2012.Technical code for the design of tower and pole structures of overhead transmission line[S]. Beijing: China Planning Press, 2012.
[14] U.S. Department of Defense.Design of buildings to Resist Progressive Collapse[S]. U.S. Unified Facilities Criteria,2005.
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