Optimizing Finite Element Models for Concrete Bridge Assessment With Proof Load Testing

被引:5
作者
Lantsoght, Eva O. L. [1 ,2 ]
de Boer, Ane [3 ]
van der Veen, Cor [2 ]
Hordijk, Dick A. [2 ]
机构
[1] Univ San Francisco Quito, Politecn, Quito, Ecuador
[2] Delft Univ Technol, Dept Engn Struct Civil Engn & Geosci, Concrete Struct, Delft, Netherlands
[3] Ane De Boer Consultancy, Arnhem, Netherlands
关键词
assessment; bridge evaluation; concrete bridges; field testing; finite element modeling; load testing; optimization; proof load testing;
D O I
10.3389/fbuil.2019.00099
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Proof load testing of existing reinforced concrete bridges is becoming increasingly important as the current bridge stock is aging. In a proof load test, a load that corresponds to the factored live load is applied to a bridge structure, to directly demonstrate that a bridge fulfills the code requirements. To optimize the procedures used in proof load tests, it can be interesting to combine field testing and finite element modeling. Finite element models can for example be used to assess a tested structure after the test when the critical position could not be loaded. In this paper, the case of viaduct De Beek, a four-span reinforced concrete slab bridge, is studied. Upon assessment, it was found that the requirements for bending moment are not fulfilled for this structure. This viaduct was proof load tested in the end span. However, the middle spans are the critical spans of this structure. The initial assessment of this viaduct was carried out with increasingly refined linear finite element models. To further study the behavior of this bridge, a non-linear finite element model is used. The data from the field test (measured strains on the bottom of the concrete cross-section, as well as measured deflection profiles) are used to update the non-linear finite element model for the end span, and to improve the modeling and assessment of the critical middle spans of the structure. Similarly, an improved assessment based on a linear finite element model is carried out. The approaches shown for viaduct De Beek should be applied for other case studies before recommendations for practice can be formulated. Eventually, an optimized combination of field testing and finite element modeling will result in an approach that potentially reduces the cost of field testing.
引用
收藏
页数:18
相关论文
共 48 条
[31]   Finite element analysis of the pre-stressed concrete box-girder bridge with corrugated steel webs [J].
Li, Shuqin .
PROCEEDINGS OF THE 5TH INTERNATIONAL CONFERENCE ON MECHANICAL ENGINEERING, MATERIALS AND ENERGY (5TH ICMEME2016), 2016, 90 :1-5
[32]   Structural Performance Assessment of Bridge's Girder Using Image Measurement System and Finite Element Analysis [J].
Prayoonwet, Wanakorn ;
Jirawattanasomkul, Tidarut ;
Sato, Yasuhiko .
HIGH TECH CONCRETE: WHERE TECHNOLOGY AND ENGINEERING MEET, 2018, :1699-1706
[33]   Finite Element Analysis of Reinforced Concrete Bridge Piers Under Sequential Vehicle Impact and Seismic Loads: Case Study [J].
Jiang, Jinghui ;
Sorensen, Andrew D. .
TRANSPORTATION RESEARCH RECORD, 2025,
[34]   Macro-indentation testing of soft biological materials and assessment of hyper-elastic material models from inverse finite element analysis [J].
Ayyalasomayajula, Venkat ;
Ervik, Oyvind ;
Sorger, Hanne ;
Skallerud, Bjorn .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2024, 151
[35]   Influence of Wall Openings on Nonlinear Lateral Load Response of Reinforced Concrete Frames with Masonry Infills: A Finite Element Study [J].
Borah, Bonisha ;
Naik, Sanil ;
Abhishek, V. ;
Kaushik, Hemant B. ;
Singhal, Vaibhav .
INTERNATIONAL JOURNAL OF CIVIL ENGINEERING, 2024, 22 (04) :619-637
[36]   Influence of Wall Openings on Nonlinear Lateral Load Response of Reinforced Concrete Frames with Masonry Infills: A Finite Element Study [J].
Bonisha Borah ;
Sanil Naik ;
V. Abhishek ;
Hemant B. Kaushik ;
Vaibhav Singhal .
International Journal of Civil Engineering, 2024, 22 :619-637
[37]   Penetration resistance of reinforced concrete slab subjected to rigid projectile impact based on finite element and analytical models [J].
Ali, Irfan ;
Long, Xu .
CONSTRUCTION AND BUILDING MATERIALS, 2025, 473
[38]   Probabilistic structural analysis of a real-life corroding concrete bridge girder incorporating stochastic material and damage variables in a finite element approach [J].
Vrijdaghs, Rutger ;
Verstrynge, Els .
ENGINEERING STRUCTURES, 2022, 254
[39]   Effects of densitometry, material mapping and load estimation uncertainties on the accuracy of patient-specific finite-element models of the scapula [J].
Campoli, Gianni ;
Bolsterlee, Bart ;
van der Helm, Frans ;
Weinans, Harrie ;
Zadpoor, Amir A. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2014, 11 (93)
[40]   Structural health assessment of concrete half-joint bridges: from load testing to FEM simulation accounting for material uncertainties [J].
De Domenico, Dario ;
Mazzeo, Matteo ;
Messina, Davide ;
Santoro, Roberta ;
Recupero, Antonino .
STRUCTURE AND INFRASTRUCTURE ENGINEERING, 2025,