Authors :
Nie Noumsi Thierry Constant; Kayimbo Kamga Cyrille; Guimezap Kenou Willy Chance; Tatchum Defo Ulrich Giresse; Bakam Stela; Madja Doumbaye Jeremie
Volume/Issue :
Volume 11 - 2026, Issue 8 - August
Google Scholar :
https://tinyurl.com/5n8yscn8
DOI :
https://doi.org/10.38124/ijisrt/26aug585
Note : A published paper may take 4-5
working days from the publication date to appear in PlumX Metrics, Semantic Scholar, and
ResearchGate.
Abstract :
Assessing the performance of multi-span prestressed concrete bridges requires the combined consideration of
traffic-induced actions, prestressing, the mechanical properties of materials, and the time-dependent effects of concrete. This
study investigates the structural behavior of the deck of the Bantoum River Bridge, located along National Road RN4 in
Cameroon. The bridge consists of five 30-m spans, four prestressed concrete main girders, and a reinforced concrete deck
slab. A three-dimensional numerical model was developed using MIDAS Civil 2022 based on the actual geometry of the
structure, the mechanical properties of the materials, the support conditions, and the prescribed design actions. The LM1
and LM3 road traffic load models, wind actions, and time-dependent effects associated with concrete creep and shrinkage
were considered. The results show that the most highly loaded main girder reaches a maximum bending moment of 8.9423
MN.m and a maximum shear force of 1.3176 MN at the ultimate limit state (ULS). The design leads to the adoption of four
12T15 prestressing tendons and a minimum required prestressing force of 7.07 MN. The verification results show that the
maximum stresses in the concrete, prestressing steel, and passive reinforcement remain below the adopted limits. The
analysis of time-dependent effects further indicates a final creep coefficient of 1.8549 and a shrinkage strain of −2.7539 ×
10⁻⁴. These results show that the combined consideration of traffic actions, prestressing, and time-dependent phenomena
provides a more comprehensive characterization of the structural behavior of the bridge deck under the considered design
conditions.
Keywords :
Multi-Span Bridge; Prestressed Concrete; Numerical Analysis; Road Traffic Loads; Structural Behavior.
References :
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Assessing the performance of multi-span prestressed concrete bridges requires the combined consideration of
traffic-induced actions, prestressing, the mechanical properties of materials, and the time-dependent effects of concrete. This
study investigates the structural behavior of the deck of the Bantoum River Bridge, located along National Road RN4 in
Cameroon. The bridge consists of five 30-m spans, four prestressed concrete main girders, and a reinforced concrete deck
slab. A three-dimensional numerical model was developed using MIDAS Civil 2022 based on the actual geometry of the
structure, the mechanical properties of the materials, the support conditions, and the prescribed design actions. The LM1
and LM3 road traffic load models, wind actions, and time-dependent effects associated with concrete creep and shrinkage
were considered. The results show that the most highly loaded main girder reaches a maximum bending moment of 8.9423
MN.m and a maximum shear force of 1.3176 MN at the ultimate limit state (ULS). The design leads to the adoption of four
12T15 prestressing tendons and a minimum required prestressing force of 7.07 MN. The verification results show that the
maximum stresses in the concrete, prestressing steel, and passive reinforcement remain below the adopted limits. The
analysis of time-dependent effects further indicates a final creep coefficient of 1.8549 and a shrinkage strain of −2.7539 ×
10⁻⁴. These results show that the combined consideration of traffic actions, prestressing, and time-dependent phenomena
provides a more comprehensive characterization of the structural behavior of the bridge deck under the considered design
conditions.
Keywords :
Multi-Span Bridge; Prestressed Concrete; Numerical Analysis; Road Traffic Loads; Structural Behavior.