An Influence-Line Analysis for Suspension Bridges

1956 ◽  
Vol 121 (1) ◽  
pp. 463-480
Author(s):  
David J. Peery
1956 ◽  
Vol 121 (1) ◽  
pp. 481-500
Author(s):  
Nan-sze Sih ◽  
Jacob Karol ◽  
Harry M. Palmbaum ◽  
Vincenzo Franciosi

2021 ◽  
Author(s):  
Amphon Jarasjarungkiat ◽  
Chaisiri Okoun ◽  
Praphaporn Silarach

1980 ◽  
Vol 1980 (299) ◽  
pp. 49-58
Author(s):  
Yukio MAEDA ◽  
Masa HAYASHI
Keyword(s):  

2010 ◽  
Vol 163-167 ◽  
pp. 1466-1473
Author(s):  
Peng Liang ◽  
Xiang Nan Wu ◽  
Wan Heng Li ◽  
Yue Xu

Mechanical behaviours of three-tower suspension bridges from perspective of influence line help insight into mechanical behaviour nature, and grasp the differences between two-tower and three-tower suspension bridges in Static and dynamic behaviours. Based on the Taizhou Yangtze River Bridge, three dimensional space finite element models of two-tower, three-tower with floating system and three-tower with elastic cables between mid-tower and the girder were constructed. Through analysis of influence lines characteristics of different key effects and effect envelop under vehicular load, main conclusions are got as follows: Some factors such as deflection-to-span ratio of girder, anti-slipping safety factor between the main cable and saddle of the mid-tower and force in the mid-tower, horizontal displacement at the end of girder, which are not important in two-tower design, become controlling ones in three-tower suspension bridges and effects under vehicular load is the most important. When live load acts on all or part of one main span, the four control factors reach the worst case, but in very low probability. Code restriction on deflection-to-span ratio of girder can be flexible to relax restriction to 1/220, and riding comfort is still guaranteed. Stresses of mid-tower under vehicular load plus dead load are in a state of compressive stress in the majority of operating conditions and fatigue problem is not obvious.


2016 ◽  
Vol 16 (04) ◽  
pp. 1640023 ◽  
Author(s):  
Zhi Wei Chen ◽  
Qin Lin Cai ◽  
Jun Li

Numerous long-span suspension bridges have been built worldwide over the past few decades. To ensure the safety of such bridges and their users during the bridge service life, several bridges have been equipped with Structural Health Monitoring Systems (SHMSs), which measure dynamic bridge responses and various loading types on-site. Integrating SHMS and damage detection technology for condition assessment of these bridges has become a new development trend. Recent studies have proven that stress influence line (SIL)-based damage indices achieve excellent damage detection performance for a long suspension bridge. However, an accurate and prompt manner of identifying the SIL of a long suspension bridge is important to facilitate the development of the SIL for an effective damage index. Identifying the SIL from field measurement data under in-service conditions has several advantages over the traditional static loading test. This study proposes and develops a new SIL identification method by integrating the least squares solution and Weighted Moving Average (WMA) based on the measured train information and the corresponding train-induced stress time history. The efficacy of the proposed method is validated through its application to Tsing Ma Bridge (TMB). The good agreement between the identified and baseline SILs for a typical diagonal truss member verifies the effectiveness of the proposed method. Furthermore, robustness testing is performed by identifying SIL on the basis of information on different trains and train-induced stress responses and by identifying the SIL of different types of bridge components. Results indicate the feasibility of the application of the proposed approach to SIL identification for long-span bridges.


2012 ◽  
Vol 166-169 ◽  
pp. 927-930
Author(s):  
Ming Bo Zhao

The purpose of this paper is to investigate the application of Excel software in the constructing and plotting of influence lines in plane trusses. Obtaining the influence coefficient of the plane trusses with Excel, the influence lines in the plane trusses were constructed and plotted via VBA Functions in Excel. The research outcome of this paper is expected to be helpful to engineering practice, teaching and research work. Key words: EXCEL;plane trusses;influence line;VBA


Sign in / Sign up

Export Citation Format

Share Document