127 resultados para IND-CPA


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The velocity and mixing field of two turbulent jets configurations have been experimentally characterized by means of cold- and hot-wire anemometry in order to investigate the effects of the initial conditions on the flow development. In particular, experiments have been focused on the effect of the separation wall between the two streams on the flow field. The results of the experiments have pointed out that the wake behind a thick wall separating wall has a strong influence on the flow field evolution. For instance, for nearly unitary velocity ratios, a clear vortex shedding from the wall is observable. This phenomenon enhances the mixing between the inner and outer shear layer. This enhancement in the fluctuating activity is a consequence of a local absolute instability of the flow which, for a small range of velocity ratios, behaves as an hydrodynamic oscillator with no sensibility to external perturbations. It has been suggested indeed that this absolute instability can be used as a passive method to control the flow evolution. Finally, acoustic excitation has been applied to the near field in order to verify whether or not the observed vortex shedding behind the separating wall is due to a global oscillating mode as predicted by the theory. A new scaling relationship has been also proposed to determine the preferred frequency for nearly unitary velocity ratios. The proposed law takes into account both the Reynolds number and the velocity ratio dependence of this frequency and, therefore, improves all the previously proposed relationships.

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In this thesis, the field of study related to the stability analysis of fluid saturated porous media is investigated. In particular the contribution of the viscous heating to the onset of convective instability in the flow through ducts is analysed. In order to evaluate the contribution of the viscous dissipation, different geometries, different models describing the balance equations and different boundary conditions are used. Moreover, the local thermal non-equilibrium model is used to study the evolution of the temperature differences between the fluid and the solid matrix in a thermal boundary layer problem. On studying the onset of instability, different techniques for eigenvalue problems has been used. Analytical solutions, asymptotic analyses and numerical solutions by means of original and commercial codes are carried out.

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Il progetto prevede l’applicazione dell’analisi del ciclo di vita al sistema integrato di raccolta, riciclaggio e smaltimento dei rifiuti urbani e assimilati. La struttura di una LCA (Life Cycle Assessment) è determinata dalla serie di norme UNI EN ISO 14040 e si può considerare come “un procedimento oggettivo di valutazione dei carichi energetici e ambientali relativi a un processo o un’attività, effettuato attraverso l’identificazione dell’energia e dei materiali usati e dei rifiuti rilasciati nell’ambiente. La valutazione include l’intero ciclo di vita del processo o attività, comprendendo l’estrazione e il trattamento delle materie prime, la fabbricazione, il trasporto, la distribuzione, l’uso, il riuso, il riciclo e lo smaltimento finale”. Questa definizione si riassume nella frase “ from cradle to grave” (dalla culla alla tomba). Lo scopo dello studio è l’applicazione di una LCA alla gestione complessiva dei rifiuti valutata in tre territori diversi individuati presso tre gestori italiani. Due di questi si contraddistinguono per modelli di raccolta con elevati livelli di raccolta differenziata e con preminenza del sistema di raccolta domiciliarizzato, mentre sul territorio del terzo gestore prevale il sistema di raccolta con contenitori stradali e con livelli di raccolta differenziata buoni, ma significativamente inferiori rispetto ai Gestori prima descritti. Nella fase iniziale sono stati individuati sul territorio dei tre Gestori uno o più Comuni con caratteristiche abbastanza simili come urbanizzazione, contesto sociale, numero di utenze domestiche e non domestiche. Nella scelta dei Comuni sono state privilegiate le realtà che hanno maturato il passaggio dal modello di raccolta a contenitori stradali a quello a raccolta porta a porta. Attuata l’identificazione delle aree da sottoporre a studio, è stato realizzato, per ognuna di queste aree, uno studio LCA dell’intero sistema di gestione dei rifiuti, dalla raccolta allo smaltimento e riciclaggio dei rifiuti urbani e assimilati. Lo studio ha posto anche minuziosa attenzione al passaggio dal sistema di raccolta a contenitori al sistema di raccolta porta a porta, evidenziando il confronto fra le due realtà, nelle fasi pre e post passaggio, in particolare sono stati realizzati tre LCA di confronto attraverso i quali è stato possibile individuare il sistema di gestione con minori impatti ambientali.

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Membrane-based separation processes are acquiring, in the last years, an increasing importance because of their intrinsic energetic and environmental sustainability: some types of polymeric materials, showing adequate perm-selectivity features, appear rather suitable for these applications, because of their relatively low cost and easy processability. In this work have been studied two different types of polymeric membranes, in view of possible applications to the gas separation processes, i.e. Mixed Matrix Membranes (MMMs) and high free volume glassy polymers. Since the early 90’s, it has been understood that the performances of polymeric materials in the field of gas separations show an upper bound in terms of permeability and selectivity: in particular, an increase of permeability is often accompanied by a decrease of selectivity and vice-versa, while several inorganic materials, like zeolites or silica derivates, can overcome this limitation. As a consequence, it has been developed the idea of dispersing inorganic particles in polymeric matrices, in order to obtain membranes with improved perm-selectivity features. In particular, dispersing fumed silica nanoparticles in high free volume glassy polymers improves in all the cases gases and vapours permeability, while the selectivity may either increase or decrease, depending upon material and gas mixture: that effect is due to the capacity of nanoparticles to disrupt the local chain packing, increasing the dimensions of excess free volume elements trapped in the polymer matrix. In this work different kinds of MMMs were fabricated using amorphous Teflon® AF or PTMSP and fumed silica: in all the cases, a considerable increase of solubility, diffusivity and permeability of gases and vapours (n-alkanes, CO2, methanol) was observed, while the selectivity shows a non-monotonous trend with filler fraction. Moreover, the classical models for composites are not able to capture the increase of transport properties due to the silica addition, so it has been necessary to develop and validate an appropriate thermodynamic model that allows to predict correctly the mass transport features of MMMs. In this work, another material, called poly-trimethylsilyl-norbornene (PTMSN) was examined: it is a new generation high free volume glassy polymer that, like PTMSP, shows unusual high permeability and selectivity levels to the more condensable vapours. These two polymer differ each other because PTMSN shows a more pronounced chemical stability, due to its structure double-bond free. For this polymer, a set of Lattice Fluid parameters was estimated, making possible a comparison between experimental and theoretical solubility isotherms for hydrocarbons and alcoholic vapours: the successfully modelling task, based on application of NELF model, offers a reliable alternative to direct sorption measurement, which is extremely time-consuming due to the relevant relaxation phenomena showed by each sorption step. For this material also dilation experiments were performed, in order to quantify its dimensional stability in presence of large size, swelling vapours.