4 resultados para Freeze dryer

em AMS Tesi di Laurea - Alm@DL - Università di Bologna


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Per limitare gli effetti tossici delle Ag-NPs, si è pensato che esse possano essere utilizzate in forma di microincapsulati, in quanto le microcapsule possono avere una certa velocità di rilascio sotto specifiche condizioni. Incapsulando quindi le Ag-NPs, posso ottenere un rilascio controllato di esse, in modo da ottenere una concentrazione di esse utile allo scopo per cui vengono impiegate, evitando un sovradosaggio che non porterebbe alcun beneficio ma solo a una maggior probabilità di causare effetti tossici.

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Lo scopo di questo lavoro sperimentale ha riguardato l’ottimizzazione del processo di produzione di materiali compositi ecocompatibili per pannellature con proprietà termoisolanti e resistenza al fuoco, già oggetto di brevetto CNR. Questi compositi sono ottenuti miscelando fibre di lana di scarto in una matrice geopolimerica. Le fibre di lana, a base di cheratina, vengono parzialmente attaccate dalle soluzioni alcaline portando al rilascio di ammoniaca e a una degradazione del materiale. Questo fenomeno, che si verifica in modo non sistematico, è tanto più marcato quanto maggiori sono le dimensioni dei manufatti prodotti, in quanto aumenta il tempo in cui le fibre di lana rimangono nell’ambiente acquoso alcalino. Il fattore di scala risulta quindi essere determinante. È stata pertanto investigata la degradazione delle fibre di lana in ambiente acquoso alcalino necessario alla sintesi della matrice geopolimerica. Sono stati anche valutati diversi trattamenti volti a velocizzare l’essiccamento del composito e fermare contestualmente il rilascio di ammoniaca, quali: aumento dei tempi e delle temperature di postcura, vacuum bagging e liofilizzazione (freeze drying).

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This thesis tries to interpret the origin and evolution of karst-like forms present in Arabia Terra, a region of Mars that develops in the equatorial zone of the planet. The work has been carried out specifically in the craters Crommelin (4o 91’ N-10o 51’ E), 12000088 (3o 48’ N-1o 30’ E), NE 12000088 (4° 20’ N-2° 50’ E), C "2" (3° 54’ N-1° W), and in their surrounding areas. These craters contain layered deposits characterized by a high albedo and on which erosion is very pronounced. The area containing the craters is a plateau that has the same characteristics of albedo and texture. The preliminary morphological study has made use of instrumentation such as the Mars Reconnaissance Orbiter (MRO), in particular HiRISE images (High Resolution Imaging Science Experiment), CTX (Context Camera) and CRISM (Compact Reconnaissance Imaging Spectrometers for Mars). A regional geomorphological map has been drawn up containing the main morphotypes, and detailed geomorphological maps were prepared for different karst-like morphologies. The analysis of spectral data collected from CRISM instrumentation has allowed to identify the footprint of sulphate minerals in the external area. Data were collected for morphometric negative forms (karst-like) and positive forms (mud volcanoes, dikes and pingos). For the analysis of the relief forms DTMs (Digital Terrain Models) produced by the union of stereographic CTX couples or HiRISE were used. From the analysis of high-resolution images morphological footprints similar to periglacial environments have been identified, including the presence of patterned ground and polygonal cracks found all over the area of investigation, and relief structures similar to pingos present in the crater C "2". These observations allow us to imagine a geological past with a cold climate at the equator able to freeze the few fluids present in the Martian arid terrain. The development of karst-like landforms, on the other hand, can be attributed to a subsequent improval of the weather conditions that led to a normal climate regime for the equatorial areas, resulting in the degradation of the permafrost. The melt waters have thus allowed the partial dissolution of the sulphate layers. The karst-like forms look rather fresh suggesting them to be not that old.

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In the last years, the European countries have paid increasing attention to renewable sources and greenhouse emissions. The Council of the European Union and the European Parliament have established ambitious targets for the next years. In this scenario, biomass plays a prominent role since its life cycle produces a zero net carbon dioxide emission. Additionally, biomass can ensure plant operation continuity thanks to its availability and storage ability. Several conventional systems running on biomass are available at the moment. Most of them are performant either in the large-scale or in the small power range. The absence of an efficient system on the small-middle scale inspired this thesis project. The object is an innovative plant based on a wet indirectly fired gas turbine (WIFGT) integrated with an organic Rankine cycle (ORC) unit for combined heat and power production. The WIFGT is a performant system in the small-middle power range; the ORC cycle is capable of giving value to low-temperature heat sources. Their integration is investigated in this thesis with the aim of carrying out a preliminary design of the components. The targeted plant output is around 200 kW in order not to need a wide cultivation area and to avoid biomass shipping. Existing in-house simulation tools are used: They are adapted to this purpose. Firstly the WIFGT + ORC model is built; Zero-dimensional models of heat exchangers, compressor, turbines, furnace, dryer and pump are used. Different fluids are selected but toluene and benzene turn out to be the most suitable. In the indirectly fired gas turbine a pressure ratio around 4 leads to the highest efficiency. From the thermodynamic analysis the system shows an electric efficiency of 38%, outdoing other conventional plants in the same power range. The combined plant is designed to recover thermal energy: Water is used as coolant in the condenser. It is heated from 60°C up to 90°C, ensuring the possibility of space heating. Mono-dimensional models are used to design the heat exchange equipment. Different types of heat exchangers are chosen depending on the working temperature. A finned-plate heat exchanger is selected for the WIFGT heat transfer equipment due to the high temperature, oxidizing and corrosive environment. A once-through boiler with finned tubes is chosen to vaporize the organic fluid in the ORC. A plate heat exchanger is chosen for the condenser and recuperator. A quasi-monodimensional model for single-stage axial turbine is implemented to design both the WIFGT and the ORC turbine. The system simulation after the components design shows an electric efficiency around 34% with a decrease by 10% compared to the zero-dimensional analysis. The work exhibits the system potentiality compared to the existing plants from both technical and economic point of view.