4 resultados para moisture-exposed cracks in mica

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


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Bone is continually being removed and replaced through the actions of basic multicellular units (BMU). This constant upkeep is necessary to remove microdamage formed naturally due to fatigue and thus maintain the integrity of the bone. The repair process in bone is targeted, meaning that a BMU travels directly to the site of damage and repairs it. It is still unclear how targeted remodelling is stimulated and directed but it is highly likely that osteocytes play a role. A number of theories have been advanced to explain the microcrack osteocyte interaction but no complete mechanism has been demonstrated. Osteocytes are connected to each other by dendritic processes. The “scissors model" proposed that the rupture of these processes where they cross microcracks signals the degree of damage and the urgency of the necessary repair. In its original form it was proposed that under applied compressive loading, microcrack faces will be pressed together and undergo relative shear movement. If this movement is greater than the width of an osteocyte process, then the process will be cut in a “scissors like" motion, releasing RANKL, a cytokine known to be essential in the formation of osteoclasts from pre-osteoclasts. The main aim of this thesis was to investigate this theoretical model with a specific focus on microscopy and finite element modelling. Previous studies had proved that cyclic stress was necessary for osteocyte process rupture to occur. This was a divergence from the original “scissors model" which had proposed that the cutting of cell material occurred in one single action. The present thesis is the first study to show fatigue failure in cellular processes spanning naturally occurring cracks and it's the first study to estimate the cyclic strain range and relate it to the number of cycles to failure, for any type of cell. Rupture due to shear movement was ruled out as microcrack closing never occurred, as a result of plastic deformation of the bone. Fatigue failure was found to occur due to cyclic tensile stress in the locality of the damage. The strain range necessary for osteocyte process rupture was quantified. It was found that the lower the process strain range the greater the number of cycles to cell process failure. FEM modelling allowed to predict stress in the vicinity of an osteocyte process and to analyse its interaction with the bone surrounding it: simulations revealed evident creep effects in bone during cyclic loading. This thesis confirms and dismisses aspects of the “scissors model". The observations support the model as a viable mechanism of microcrack detection by the osteocyte network, albeit in a slightly modified form where cyclic loading is necessary and the method of rupture is fatigue failure due to cyclic tensile motion. An in depth study was performed focusing on microscopy analysis of naturally occurring cracks in bone and FEM simulation analysis of an osteocyte process spanning a microcrack in bone under cyclic load.

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Recent studies found that soil-atmosphere coupling features, through soil moisture, have been crucial to simulate well heat waves amplitude, duration and intensity. Moreover, it was found that soil moisture depletion both in Winter and Spring anticipates strong heat waves during the Summer. Irrigation in geophysical studies can be intended as an anthropogenic forcing to the soil-moisture, besides changes in land proprieties. In this study, the irrigation was add to a LAM hydrostatic model (BOLAM) and coupled with the soil. The response of the model to irrigation perturbation is analyzed during a dry Summer season. To identify a dry Summer, with overall positive temperature anomalies, an extensive climatological characterization of 2015 was done. The method included a statistical validation on the reference period distribution used to calculate the anomalies. Drought conditions were observed during Summer 2015 and previous seasons, both on the analyzed region and the Alps. Moreover July was characterized as an extreme event for the referred distribution. The numerical simulation consisted on the summer season of 2015 and two run: a control run (CTR), with the soil coupling and a perturbed run (IPR). The perturbation consists on a mask of land use created from the Cropland FAO dataset, where an irrigation water flux of 3 mm/day was applied from 6 A.M. to 9 A.M. every day. The results show that differences between CTR and IPR has a strong daily cycle. The main modifications are on the air masses proprieties, not on to the dynamics. However, changes in the circulation at the boundaries of the Po Valley are observed, and a diagnostic spatial correlation of variable differences shows that soil moisture perturbation explains well the variation observed in the 2 meters height temperature and in the latent heat fluxes.On the other hand, does not explain the spatial shift up and downslope observed during different periods of the day. Given the results, irrigation process affects the atmospheric proprieties on a larger scale than the irrigation, therefore it is important in daily forecast, particularly during hot and dry periods.

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Organic semiconductor technology has attracted considerable research interest in view of its great promise for large area, lightweight, and flexible electronics applications. Owing to their advantages in processing and unique physical properties, organic semiconductors can bring exciting new opportunities for broad-impact applications requiring large area coverage, mechanical flexibility, low-temperature processing, and low cost. In order to achieve highly flexible device architecture it is crucial to understand on a microscopic scale how mechanical deformation affects the electrical performance of organic thin film devices. Towards this aim, I established in this thesis the experimental technique of Kelvin Probe Force Microscopy (KPFM) as a tool to investigate the morphology and the surface potential of organic semiconducting thin films under mechanical strain. KPFM has been employed to investigate the strain response of two different Organic Thin Film Transistor with active layer made by 6,13-bis(triisopropylsilylethynyl)-pentacene (TIPS-Pentacene), and Poly(3-hexylthiophene-2,5-diyl) (P3HT). The results show that this technique allows to investigate on a microscopic scale failure of flexible TFT with this kind of materials during bending. I find that the abrupt reduction of TIPS-pentacene device performance at critical bending radii is related to the formation of nano-cracks in the microcrystal morphology, easily identified due to the abrupt variation in surface potential caused by local increase in resistance. Numerical simulation of the bending mechanics of the transistor structure further identifies the mechanical strain exerted on the TIPS-pentacene micro-crystals as the fundamental origin of fracture. Instead for P3HT based transistors no significant reduction in electrical performance is observed during bending. This finding is attributed to the amorphous nature of the polymer giving rise to an elastic response without the occurrence of crack formation.

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Da poco più di 30 anni la comunità scientifica è a conoscenza dell’occasionale presenza di strutture cicloniche con alcune caratteristiche tropicali sul Mar Mediterraneo, i cosiddetti medicane. A differenza dei cicloni baroclini delle medie latitudini, essi posseggono una spiccata simmetria termica centrale che si estende per gran parte della troposfera, un occhio, talvolta privo di nubi, e una struttura nuvolosa a bande spiraleggianti. Ad oggi non esiste ancora una teoria completa che spieghi la loro formazione ed evoluzione. La trattazione di questa tesi, incentrata sull’analisi dei campi di vorticità potenziale e di umidità relativa, è sviluppata nell’ottica di una miglior comprensione delle dinamiche alla mesoscala più rilevanti per la nascita dei medicane. Lo sviluppo di tecniche avanzate di visualizzazione dei campi generati dal modello WRF, quali l’animazione tridimensionale delle masse d’aria aventi determinate caratteristiche, ha permesso l’individuazione di due zone di forti anomalie di due campi derivati dalla vorticità potenziale in avvicinamento reciproco, intensificazione e mutua interazione nelle ore precedenti la formazione dei medicane. Tramite la prima anomalia che è stata chiamata vorticità potenziale secca (DPV), viene proposta una nuova definizione di tropopausa dinamica, che non presenta i problemi riscontrati nella definizione classica. La seconda anomalia, chiamata vorticità potenziale umida (WPV), individua le aree di forte convezione e permette di avere una visione dinamica dello sviluppo dei medicane alle quote medio-basse. La creazione di pseudo immagini di vapore acqueo tramite la teoria del trasferimento radiativo e la comparazione di queste mappe con quelle effettivamente misurate nei canali nella banda del vapore acqueo dai sensori MVIRI e SEVIRI dei satelliti Meteosat hanno da un lato confermato l’analisi modellistica, dall’altro consentito di stimare gli errori spazio-temporali delle simulazioni. L’utilizzo dei dati di radianza nelle microonde, acquisiti dai sensori AMSU-B e MHS dei satelliti NOAA, ha aggiunto ulteriori informazioni sia sulle intrusioni di vorticità potenziale che sulla struttura degli elementi convettivi presenti sul dominio, in modo particolare sulla presenza di ghiaccio in nube. L’analisi dettagliata di tre casi di medicane avvenuti nel passato sul Mar Mediterraneo ha infine consentito di combinare gli elementi innovativi sviluppati in questo lavoro, apportando nuove basi teoriche e proponendo nuovi metodi di indagine non solo per lo studio di questi fenomeni ma anche per un’accurata ricerca scientifica su ciclogenesi di altro tipo.