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Design of 800 m Hillside-anchored Pedestrian Suspension Bridge with Univalent Hyperboloid Space Cable Net |
XU Wen-ping1, LI Bing2, PING Peng-xin1, WU Yi1, KANG Zi-xia1 |
1. College of Civil Engineering, Southeast University, Nanjing Jiangsu 210096, China; 2. Jiangsu traffic engineering consulting and Supervision Co., Ltd, Nanjing Jiangsu 211800, China |
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Abstract According to the demand of 800m super long-span pedestrian suspension bridge in Mountain Scenic Spot, a hillside-anchored univalent hyperboloid spatial suspension network pedestrian suspension bridge is proposed. The univalent hyperboloid tube-network space cables are dispersed and anchored on the both sides of the hillside, and the bridge tower structure is cancelled to save the cost; The univalent hyperboloid tube-network space cable system provides horizontal component, greatly improves the lateral stiffness and torsional stiffness of pedestrian suspension bridge, and has good space structure stiffness. Combined with a 800m super long-span pedestrian suspension bridge project in Mountain Scenic Spot, the static and dynamic stress characteristics of MIDAS finite element are carried out to verify the rationality of the pedestrian suspension bridge with hillside-anchored spatial cable system and its good wind stability.
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Received: 18 January 2022
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[1] ZHAO Lei, YI Shao-ping, WANG Fei, et al. Overall Analysis of Tianmeng Pedestrian Suspension Bridge[J]. Highway, 2016, 61(7):170-172. (in Chinese) [2] WANG Zhong-bin. Design of Cable Systems of Zhangjiajie Grand Canyon Glass Floor Bridge[J]. Bridge construction, 2017, 47(3):83-87. (in Chinese) [3] ASTIZ M A. Flutter Stability of Very Long Suspension Bridges[J]. Journal of Bridge Engineering, 1998, 3(3):132-139. [4] GE Yao-jun, XIA Qing, ZHAO Lin. Evaluation on Wind Resistance Robustness and Flutter Stability of Long-span Bridges[J]. China Civil Engineering Journal, 2019, 52(11):66-70, 119. (in Chinese) [5] TANG H, LI Y, SHUM K M. Flutter Performance of Long-span Suspension Bridges under Non-uniform Inflow[J]. Advances in Structural Engineering, 2018, 21(2):201-213. [6] HE Kai, GUO Kun, MA Liang. Effects of Measures to Improve Wind Resistance of Long-Span Pedestrian Suspension Bridge[J]. World Bridges, 2017, 45(3):69-74. (in Chinese) [7] ZHANG Xin-jun. Study of the Wind Stability of Long-span Suspension Bridges with Spatial Cable Systems[J]. China Civil Engineering Journal, 2011, 44(6):80-86. (in Chinese) [8] ABBAS T, KAVRAKOV I, MORGENTHAL G. Methods for Flutter Stability Analysis of Long-span Bridges:A Review[J]. Bridge Engineering, 2017, 170(4):271-310. |
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