572 resultados para Mécanique quantique


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Les mesures satellitaires de réflectance de télédétection (Rrs) associée à la fluorescence de la chlorophylle-a induite par le soleil (FCIS), notées Rrs,f , sont largement utilisées dans le domaine de l’océanographie converties sous la forme de rendement quantique de la fluorescence (QYF). Le QYF permet de déterminer l’impact de l’environnement sur la croissance du phytoplancton. Tout comme les autres mesures qui reposent sur la luminance montante, le QYF, et donc la Rrs,f , sont influencés par les effets de bidirectionnalité. Ainsi, sachant que la variabilité naturelle du QYF est faible, les biais engendrés par une normalisation inadéquate de la Rrs,f peuvent avoir des impacts importants sur l’interprétation des mesures de QYF à l’échelle planétaire. La méthode actuelle utilisée pour corriger la dépendance angulaire du signal observé dans la bande de fluorescence par le spectroradiomètre imageur à résolution moyenne (MODIS), embarqué à bord du satellite Aqua, repose sur l’application d’une table de correspondance (LUT) développée par Morel et al. (2002). Toutefois, l’approche de Morel et al. (2002) ne tient pas compte du caractère isotrope de la FCIS ce qui induit des biais systématiques sur les mesures de Rrs,f selon la latitude, par exemple. Dans ce mémoire, une nouvelle méthode de calcul de la LUT ayant pour but de réduire ces biais est introduite. Tout d’abord, celle-ci intègre une mise à jour des propriétés optiques inhérentes (IOPs) dans le modèle de transfert radiatif sur la base de publications plus récentes. Ensuite, la gamme spectrale de son application est élargie à la bande de fluorescence contrairement à la méthode actuelle qui se limite à la longueur d’onde de 660 nm. Finalement, la LUT révisée tient compte des trois composantes principales de la réflectance de télédétection que sont (1) la rétrodiffusion élastique de la lumière par les molécules d’eau et par les particules en suspension, (2) la diffusion Raman (inélastique) par les molécules d’eau et (3) la FCIS. Les résultats de Rrs,f normalisées avec la nouvelle méthode présentent une différence de dispersion moyenne par rapport à celle obtenue par l’application de la méthode de Morel et al. (2002) de l’ordre de -15 %. Des différences significatives, de l’ordre de -22 %, sont observées à de grands angles d’observation et d’éclairement (> 55 %).

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Abstract : Recently, there is a great interest to study the flow characteristics of suspensions in different environmental and industrial applications, such as snow avalanches, debris flows, hydrotransport systems, and material casting processes. Regarding rheological aspects, the majority of these suspensions, such as fresh concrete, behave mostly as non-Newtonian fluids. Concrete is the most widely used construction material in the world. Due to the limitations that exist in terms of workability and formwork filling abilities of normal concrete, a new class of concrete that is able to flow under its own weight, especially through narrow gaps in the congested areas of the formwork was developed. Accordingly, self-consolidating concrete (SCC) is a novel construction material that is gaining market acceptance in various applications. Higher fluidity characteristics of SCC enable it to be used in a number of special applications, such as densely reinforced sections. However, higher flowability of SCC makes it more sensitive to segregation of coarse particles during flow (i.e., dynamic segregation) and thereafter at rest (i.e., static segregation). Dynamic segregation can increase when SCC flows over a long distance or in the presence of obstacles. Therefore, there is always a need to establish a trade-off between the flowability, passing ability, and stability properties of SCC suspensions. This should be taken into consideration to design the casting process and the mixture proportioning of SCC. This is called “workability design” of SCC. An efficient and non-expensive workability design approach consists of the prediction and optimization of the workability of the concrete mixtures for the selected construction processes, such as transportation, pumping, casting, compaction, and finishing. Indeed, the mixture proportioning of SCC should ensure the construction quality demands, such as demanded levels of flowability, passing ability, filling ability, and stability (dynamic and static). This is necessary to develop some theoretical tools to assess under what conditions the construction quality demands are satisfied. Accordingly, this thesis is dedicated to carry out analytical and numerical simulations to predict flow performance of SCC under different casting processes, such as pumping and tremie applications, or casting using buckets. The L-Box and T-Box set-ups can evaluate flow performance properties of SCC (e.g., flowability, passing ability, filling ability, shear-induced and gravitational dynamic segregation) in casting process of wall and beam elements. The specific objective of the study consists of relating numerical results of flow simulation of SCC in L-Box and T-Box test set-ups, reported in this thesis, to the flow performance properties of SCC during casting. Accordingly, the SCC is modeled as a heterogeneous material. Furthermore, an analytical model is proposed to predict flow performance of SCC in L-Box set-up using the Dam Break Theory. On the other hand, results of the numerical simulation of SCC casting in a reinforced beam are verified by experimental free surface profiles. The results of numerical simulations of SCC casting (modeled as a single homogeneous fluid), are used to determine the critical zones corresponding to the higher risks of segregation and blocking. The effects of rheological parameters, density, particle contents, distribution of reinforcing bars, and particle-bar interactions on flow performance of SCC are evaluated using CFD simulations of SCC flow in L-Box and T-box test set-ups (modeled as a heterogeneous material). Two new approaches are proposed to classify the SCC mixtures based on filling ability and performability properties, as a contribution of flowability, passing ability, and dynamic stability of SCC.