- Coupled effects of simultaneous autogenous self-healing and sustained flexural loading in cementitious materials. Dans: Journal of Building Engineering, v. 79 (novembre 2023). (2023):
- A dynamic hysteresis model of heat and mass transfer for hygrothermal bio-based materials. Dans: Journal of Building Engineering, v. 79 (novembre 2023). (2023):
- Creep analysis of cementitious materials in seawater using a poro-chemo-mechanical model. Dans: Marine Structures, v. 90 (juillet 2023). (2023):
- Mechanical regains due to self-healing in cementitious materials: Experimental measurements and micro-mechanical model. Dans: Cement and Concrete Research, v. 80 (février 2016). (2016):
- Numerical method to model the creep of recycled aggregate concrete by considering the old attached mortar. Dans: Cement and Concrete Research, v. 118 (avril 2019). (2019):
- Contribution of the capillary pressure second-order term on fast drying of cement-based materials. Dans: Construction and Building Materials, v. 296 (août 2021). (2021):
- Multi-criteria assessment of a high-performance glulam through numerical simulation. Dans: Engineering Structures, v. 256 (avril 2022). (2022):
- Experimental evaluation of the effect of cement type and seawater salinity on concrete offshore structures. Dans: Construction and Building Materials, v. 322 (mars 2022). (2022):
- Freeze–thaw field exposure and testing the reliability of performance test temperature cycle for concrete scaling in presence of de-icing salts. Dans: Materials and Structures, v. 55, n. 1 (18 décembre 2021). (2021):
- A numerical microscopically informed upscale approach for analyzing the reliability of testing method for concrete resistance to freeze-thaw. Dans: Construction and Building Materials, v. 317 (janvier 2022). (2022):
- Numerical investigation for the effect of deformation and dynamic pressure on the fast drainage of porous materials. Dans: European Journal of Environmental and Civil Engineering, v. 26, n. 13 (juillet 2021). (2021):
- Determination of the origin of the strength regain after self-healing of binary and ternary cementitious materials including slag and metakaolin. Dans: Journal of Building Engineering, v. 41 (septembre 2021). (2021):
- Concrete in a severe freezing environment: a meteorological characterization. Dans: Materials and Structures, v. 54, n. 1 (16 décembre 2020). (2020):
- A quantitative assessment of the parameters involved in the freeze–thaw damage of cement-based materials through numerical modelling. Dans: Construction and Building Materials, v. 272 (février 2021). (2021):
- Development of a micro-mechanical model for the determination of damage properties of cement pastes. Dans: Construction and Building Materials, v. 261 (novembre 2020). (2020):
- Multiscale modelling for the thermal creep analysis of PCM concrete. Dans: Energy and Buildings, v. 131 (novembre 2016). (2016):
- Numerical analysis of the failure of recycled aggregate concrete by considering the random composition of old attached mortar. Dans: Journal of Building Engineering, v. 28 (mars 2020). (2020):
- Approche multi-échelles au comportement thermo-hygro-mécanique des milieux poreux par simulation numérique dans Symphonie; application aux problèmes de gel-dégel dans les bétons. Dans: Revue française de Génie civil, v. 8, n. 1 (janvier 2004). (2004):
- Monitoring of autogenous crack healing in cementitious materials by the nonlinear modulation of ultrasonic coda waves, 3D microscopy and X-ray microtomography. Dans: Construction and Building Materials, v. 123 (octobre 2016). (2016):