A simplified glass fiber/epoxy composite was exposed to artificial ageing conditions (UV and Hygrothermal) and natural ageing (humid tropical climate). A wide range of physicochemical, mechanical and observation techniques (SEM, AFM) were used to clearly identify the structure, morphology and the main properties of the epoxy-amine network of the resin alone and composite in the initial state. A gradient in structure and properties was shown up in the first 200 microns of resin and composite plates surfaces thanks to the systematic characterization of sample layers of 20 microns thickness. It is attributed to an amine deficit during the sample elaboration process. In composite plates, DMA and AFM measurements have highlighted the existence of an interphase area around the fibers with a higher molecular mobility and a lower stiffness than the epoxy-amine network in the bulk resinThe same methodology was used to follow the materials evolution during artificial and natural ageing.The effects of UV and hygrothermal ageing were analyzed independently on the resin and on the composite in order to identify the chemical and physicochemical alterations of the matrix on one hand and of fiber/matrix interphases on the other hand. Photochemical ageing effects are mainly localized on materials surfaces, while the hygrothermal ageing affects mainly fiber/matrix interfaces in composite. In both cases simplified degradation mechanisms of epoxy-amine network are proposed.Finally, the characterization results after natural exposure allow us to establish correlations with artificial ageing. Predominant effects are identified and an acceleration factor is proposed.