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Evaluation of the stiffness modulus of a 0/14 bituminous concrete as a function of temperature

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  • Evaluation of The Stiffness Modulus of a 0/14 Bituminous Concrete As a Function of Temperature
  • Evaluation of the stiffness modulus of a 0/14 bituminous concrete as a function of temperature

Hermann Durand OHOUO *, Séraphin Agré DJOMO and Ulrich Raoul Blé KOUASSI

Laboratory of Environmental Sciences and Technologies, Jean Lorougnon Guédé University of Daloa, BP 150 Daloa. CÔTE D’IVOIRE

 

Research Article
GSC Advanced Research and Reviews, 2025, 25(03), 366-373.
Article DOI: 10.30574/gscarr.2025.25.3.0397
DOI url: https://doi.org/10.30574/gscarr.2025.25.3.0397
Received on 12 November 2025; revised on 29 December 2025; accepted on 31 December 2025
 
In Côte d’Ivoire, the development of the road network represents a major challenge for the national economy, with more than 80% of interurban transport carried out by road. However, bituminous pavements are subjected to mechanical and climatic stresses that accelerate their degradation. Among the factors influencing their durability, temperature plays a decisive role in the mechanical properties of asphalt mixtures, particularly the stiffness modulus. This study addresses this issue by evaluating the evolution of the stiffness modulus of a 0/14 bituminous concrete as a function of temperature.
The study was conducted at the Laboratory of Building and Public Works (LBTP) using aggregates from massive rocks and a 60/70 grade bitumen. Experimental methods included aggregate characterization tests (particle size distribution, sand equivalent, Los Angeles, Micro-Deval), bitumen tests (penetration, softening point), as well as mechanical tests (Marshall, Duriez, rutting, stiffness modulus according to NF EN 12697-26).
The results show that the stiffness modulus decreases significantly with increasing temperature: above 5000 MPa at 10°C, it drops to less than 1000 MPa at 40°C. This variation reflects a loss of rigidity and mechanical performance, making the asphalt more vulnerable to deformation. These findings highlight the need to adapt asphalt formulations to local climatic conditions to ensure pavement durability.
 
Bituminous Concrete; Stiffness Modulus; Temperature; 0/14 Asphalt; Mechanical Performance
 
https://gscarr.gsconlinepress.com/sites/default/files/fulltext_pdf/GSCARR-2025-…

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Hermann Durand OHOUO, Séraphin Agré DJOMO and Ulrich Raoul Blé KOUASSI. Evaluation of the stiffness modulus of a 0/14 bituminous concrete as a function of temperature. GSC Advanced Research and Reviews, 2025, 25(3), 366-373. Article DOI: https://doi.org/10.30574/gscarr.2025.25.3.0397

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