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2024 | OriginalPaper | Buchkapitel

Finite Element-Based Dynamic Analysis of a T-Beam Bridge with Skew Supports

verfasst von : Fahad Tariq, Saad Shamim Ansari, Syed Muhammad Ibrahim

Erschienen in: Recent Advances in Structural Engineering

Verlag: Springer Nature Singapore

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Abstract

Skew bridge footings are an important aspect of bridge construction, especially when dealing with bridges that cross over rivers, valleys, or other obstructions at an angle. The importance of skew bridge footings lies in their ability to provide stability and ensure the structural integrity of the bridge. When a bridge is constructed at an angle, the distribution of weight and load is different than that of a straight bridge. Skew pier bridges present unique challenges in modeling their fundamental frequency dynamics due to their asymmetric geometry and varying load distribution. Skew pier bridges have an asymmetric geometry that makes it difficult to model the fundamental frequency dynamics using traditional methods. Another factor that can affect the fundamental frequency dynamics of a skew pier bridge is the presence of irregularities in the structure, such as cracks, joints, or other defects. Factors such as irregularities in the structure, changes in the cross-section, or other local effects can also significantly affect the fundamental frequency of the deck and may require more advanced analysis techniques to accurately predict. Herein, a brief review is presented on the empirical and semi-empirical formulas for determining the fundamental frequency of footings and deck of skew bridges. Then, finite element analysis has been employed to examine how the skewness affects the bridge with T-beam deck slab’s fundamental frequency. A validation study has been carried out and a good comparison was observed. In order to determine the skewness effect, numerical studies have been conducted on T-bridge with support skewness ranging from 0° to 30°. Results show that the change in the skewness of supports results in the significant change of the fundamental vibration frequency.

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Literatur
1.
Zurück zum Zitat Shamsabadi A, Law L, Martin G (2006) Comparison of direct method versus substructure method for seismic analysis of a skewed bridge. In Proceedings, 5th National seismic conference for bridges and highways Shamsabadi A, Law L, Martin G (2006) Comparison of direct method versus substructure method for seismic analysis of a skewed bridge. In Proceedings, 5th National seismic conference for bridges and highways
2.
Zurück zum Zitat Pottatheere P, Renault P (2008) Seismic vulnerability assessment of skew bridges. In: 14th World conference on earthquake engineering. Beijing Pottatheere P, Renault P (2008) Seismic vulnerability assessment of skew bridges. In: 14th World conference on earthquake engineering. Beijing
3.
Zurück zum Zitat Zanini MA, Morbin R, Pellegrino C, Modena C (2014) Influence of relevant parameters on seismic vulnerability assessment of bridges. In: 7th International conference on bridge maintenance, safety and management IABMAS2014, Shanghai, China, pp 7–11 Zanini MA, Morbin R, Pellegrino C, Modena C (2014) Influence of relevant parameters on seismic vulnerability assessment of bridges. In: 7th International conference on bridge maintenance, safety and management IABMAS2014, Shanghai, China, pp 7–11
4.
Zurück zum Zitat Mohseni I, Cho YK, Kang J (2018) Live load distribution factors for skew stringer bridges with high-performance-steel girders under truck loads. Appl Sci 8(10):1717CrossRef Mohseni I, Cho YK, Kang J (2018) Live load distribution factors for skew stringer bridges with high-performance-steel girders under truck loads. Appl Sci 8(10):1717CrossRef
5.
Zurück zum Zitat Kim SW, Yun DW, Park DU, Chang SJ, Park JB (2021) Estimation of live load distribution factor for a PSC I girder bridge in an ambient vibration test. Appl Sci 11(22):11010CrossRef Kim SW, Yun DW, Park DU, Chang SJ, Park JB (2021) Estimation of live load distribution factor for a PSC I girder bridge in an ambient vibration test. Appl Sci 11(22):11010CrossRef
6.
Zurück zum Zitat Poulos HG, Davis EH (1974) Elastic solutions for soil and rock mechanics. Textbook. Figs, Tables, Refs: John Wiley and Sons Inc. 1974, 411P. In International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts 1974 Aug 1 (Vol. 11, No. 8, p. A159). Pergamon Poulos HG, Davis EH (1974) Elastic solutions for soil and rock mechanics. Textbook. Figs, Tables, Refs: John Wiley and Sons Inc. 1974, 411P. In International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts 1974 Aug 1 (Vol. 11, No. 8, p. A159). Pergamon
7.
Zurück zum Zitat Burdette NJ, Elnashai AS, Lupoi A, Sextos AG (2008) Effect of asynchronous earthquake motion on complex bridges. I: methodology and input motion. J Bridge Eng 13(2):158–165 Burdette NJ, Elnashai AS, Lupoi A, Sextos AG (2008) Effect of asynchronous earthquake motion on complex bridges. I: methodology and input motion. J Bridge Eng 13(2):158–165
8.
Zurück zum Zitat Maragakis EA, Siddharthan R (1989) Estimation of inelastic longitudinal abutment stiffness of bridges. ASCE J Struct Eng 115(9):2382–2398CrossRef Maragakis EA, Siddharthan R (1989) Estimation of inelastic longitudinal abutment stiffness of bridges. ASCE J Struct Eng 115(9):2382–2398CrossRef
9.
Zurück zum Zitat Maleki S (2001) Free vibration of skewed bridges. J Vib Control 7(7):935–952CrossRef Maleki S (2001) Free vibration of skewed bridges. J Vib Control 7(7):935–952CrossRef
10.
Zurück zum Zitat Whelan MJ, Janoyan KD (2012) Assessment of simplified linear dynamic analysis of a multispan skew bridge on steel-reinforced elastomeric bearings. ASCE J Bridge Eng 17(1):151–160CrossRef Whelan MJ, Janoyan KD (2012) Assessment of simplified linear dynamic analysis of a multispan skew bridge on steel-reinforced elastomeric bearings. ASCE J Bridge Eng 17(1):151–160CrossRef
11.
Zurück zum Zitat Cheung MS, Lau DT, Li WC (2000) Recent developments on computer bridge analysis and design. Prog Struct Mat Eng 2(3):376–385CrossRef Cheung MS, Lau DT, Li WC (2000) Recent developments on computer bridge analysis and design. Prog Struct Mat Eng 2(3):376–385CrossRef
12.
Zurück zum Zitat Xia GY, Li CX, Zhang JR (2011) Analysis of vibrating characteristics of multi-span continuous skew bridges. Chongqing Daxue Xuebao (Ziran Kexue Ban) 34(8):121–127 Xia GY, Li CX, Zhang JR (2011) Analysis of vibrating characteristics of multi-span continuous skew bridges. Chongqing Daxue Xuebao (Ziran Kexue Ban) 34(8):121–127
13.
Zurück zum Zitat Wang Y, Xu Y, Luo Z, Wu H, Yan L (2016) Spatial finite element analysis for dynamic response of curved thin-walled box girder bridges. Math Probl Eng 2016 Wang Y, Xu Y, Luo Z, Wu H, Yan L (2016) Spatial finite element analysis for dynamic response of curved thin-walled box girder bridges. Math Probl Eng 2016
14.
Zurück zum Zitat Li ZX, Zheng Q, Wu K, Shi Y (2022) Seismic analysis and test facilities of deep-water bridges considering water–structure interaction: a state-of-the-art review. Earthq Eng Resilience 1(1):21–39CrossRef Li ZX, Zheng Q, Wu K, Shi Y (2022) Seismic analysis and test facilities of deep-water bridges considering water–structure interaction: a state-of-the-art review. Earthq Eng Resilience 1(1):21–39CrossRef
Metadaten
Titel
Finite Element-Based Dynamic Analysis of a T-Beam Bridge with Skew Supports
verfasst von
Fahad Tariq
Saad Shamim Ansari
Syed Muhammad Ibrahim
Copyright-Jahr
2024
Verlag
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-99-9502-8_6