[1] |
王身丽, 严利雄, 陈典丽, 等. 输电线路杆塔受力分析研究现状 [J]. 科技创新与应用, 2018(35): 71-72. DOI: 10.3969/j.issn.2095-2945.2018.35.030.
WANG S L, YAN L X, CHEN D L, et al. Research status of transmission line tower stress analysis [J]. Technology Innovation and Application, 2018(35): 71-72. DOI: 10.3969/j.issn.2095-2945.2018.35.030. |
[2] |
杨风利, 牛华伟, 杨靖波, 等. 酒杯型输电铁塔曲臂风荷载风洞试验研究 [J]. 振动与冲击, 2017, 36(24): 170-176. DOI: 10.13465/j.cnki.jvs.2017.24.026.
YANG F L, NIU H W, YANG J B, et al. Wind tunnel tests for wind loads of crank arms of cup-type transmission towers [J]. Journal of Vibration and Shock, 2017, 36(24): 170-176. DOI: 10.13465/j.cnki.jvs.2017.24.026. |
[3] |
杨风利. 角钢输电铁塔横担角度风荷载系数取值研究 [J]. 工程力学, 2017, 34(4): 150-159. DOI: CNKI:SUN:GCLX.0.2017-04-019.
YANG F L. Study on skewed wind load factor on cross-arms of angle steel transmission towers under skewed wind [J]. Engineering Mechanics, 2017, 34(4): 150-159. DOI: CNKI:SUN:GCLX.0.2017-04-019. |
[4] |
熊铁华, 梁枢果, 吴海洋. 某输电线路铁塔覆冰条件下的失效模式分析 [J]. 计算力学学报, 2011, 28(3): 468-472. DOI: 10.7511/jslx201103027.
XIONG T H, LIANG S G, WU H Y. Failure modes analysis of a broken down transmission tower under ice loads [J]. Chinese Journal of Computational Mechanics, 2011, 28(3): 468-472. DOI: 10.7511/jslx201103027. |
[5] |
钟寅亥. 冰区输电铁塔设计的荷载组合 [J]. 广东输电与变电技术, 2010, 12(1): 65-66. DOI: 10.3969/j.issn.1672-6324.2010.01.022.
ZHONG Y H. Combination of load for transmission tower in ice-coating zone [J]. Guangdong Power Transmission Technology, 2010, 12(1): 65-66. DOI: 10.3969/j.issn.1672-6324.2010.01.022. |
[6] |
张文涛. 高强钢在输电线路铁塔材质选择上的应用 [J]. 吉林电力, 2014, 42(5): 10-11,34. DOI: 10.3969/j.issn.1009-5306.2014.05.004.
ZHANG W T. Application of high-strenth steel on material selection of transmission tower [J]. Jilin Electric Power, 2014, 42(5): 10-11,34. DOI: 10.3969/j.issn.1009-5306.2014.05.004. |
[7] |
胡浩莹, 张志强, 郑世明, 等. 复合材料横担在500kV双回路输电线路的应用 [J]. 电工技术, 2020(8): 75-76,78. DOI: 10.19768/j.cnki.dgjs.2020.08.031.
HU H Y, ZHANG Z Q, ZHENG S M, et al. Application of composite cross arm in 500 kV double circuit transmission lines [J]. Electric Engineering, 2020(8): 75-76,78. DOI: 10.19768/j.cnki.dgjs.2020.08.031. |
[8] |
蔡康毅, 方晴, 杜新喜, 等. 高压输电线路复合横担受力性能研究 [J]. 工业建筑, 2020, 50(4): 162-167,150. DOI: 10.13204/j.gyjz202004028.
CAI K Y, FANG Q, DU X X, et al. Research on mechanical properties of composite cross arms in high-voltage transmission lines [J]. Industrial Construction, 2020, 50(4): 162-167,150. DOI: 10.13204/j.gyjz202004028. |
[9] |
邹相国, 易黎明, 冯炎, 等. 负保护角羊头型输电杆塔塔头局部杆件布置优化 [J]. 建筑结构, 2018, 48(增刊2): 538-541. DOI: 10.19701/j.jzjg.2018.S2.108.
ZOU X G, YI L M, FENG Y, et al. Optimized layout of members in head of sheep-head type power-transmission tower with negative protecting angle [J]. Building Structure, 2018, 48(Supp. 2): 538-541. DOI: 10.19701/j.jzjg.2018.S2.108. |
[10] |
胡海瑞. 输电线路碳纤维复合芯导线杆塔塔头规划分析 [J]. 内蒙古电力技术, 2015, 33(3): 14-17,21. DOI: 10.3969/j.issn.1008-6218.2015.03.006.
HU H R. Planning and analysis of ACCC suitable for tower head in transmission line [J]. Inner Mongolia Electric Power, 2015, 33(3): 14-17,21. DOI: 10.3969/j.issn.1008-6218.2015.03.006. |
[11] |
贾国强, 武力. 断线工况对输电铁塔重量的影响 [J]. 电力勘测设计, 2014(3): 64-67. DOI: 10.3969/j.issn.1671-9913.2014.03.015.
JIA G Q, WU L. Effect of breaking line condition on weight of transmission line iron tower [J]. Electric Power Survey & Design, 2014(3): 64-67. DOI: 10.3969/j.issn.1671-9913.2014.03.015. |
[12] |
国家能源局. 架空输电线路杆塔结构设计技术规定: DL/T 5154—2012 [S]. 北京: 中国电力出版社, 2013.
National Energy Administration. Technical code for the design of tower and pole structures of overhead transmission line: DL/T 5154—2012 [S]. Beijing: China Electric Power Press, 2013. |