987 resultados para Fire Safety engineering, FSE, ingegneria antincendio, prevenzione incnedi, evacuazione.


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La salvaguardia e conservazione del Patrimonio Artistico ed Architettonico rappresentano un aspetto imprescindibile di ogni cultura, e trovano le loro fondamenta nella coscienza e conoscenza dei Beni. Il rilievo è l’operazione basilare per acquisire una conoscenza rigorosa di un oggetto nella sua geometria e in altre sue caratteristiche. Le finalità delle operazioni di rilevamento sono molteplici, dall’archiviazione a scopo di documentazione fino all’indagine conservativa volta alla diagnostica e alla progettazione di interventi. I modelli digitali, introdotti dallo sviluppo tecnologico degli ultimi decenni, permettono una perfetta conoscenza del bene, non necessitano di contatto diretto durante la fase di rilevamento e possono essere elaborati secondo le esigenze del caso. Le tecniche adottate nel Reverse Engineering si differenziano per il tipo di sensore utilizzato: quelle fotogrammetriche utilizzano sensori di tipo “passivo” e trovano oggi largo impiego nel settore dei Beni Culturali grazie agli strumenti di Structure from Motion, mentre strumenti basati su sensori di tipo “attivo” utilizzano Laser o proiezione di luce strutturata e sono in grado di rilevare con grande precisione geometrie anche molto complesse. La costruzione del modello della fontana del Nettuno e della torre Garisenda di Bologna costituiscono un valido esempio di applicazione delle tecniche di rilievo digitale, e dimostrano la validità delle stesse su oggetti di diversa dimensione in due diversi ambiti applicativi: il restauro e il monitoraggio. Gli sviluppi futuri del Reverse Engineering in questo ambito sono molteplici, e la Geomatica rappresenta senza dubbio una disciplina fondamentale per poterli realizzare.

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In 2010, the American Association of State Highway and Transportation Officials (AASHTO) released a safety analysis software system known as SafetyAnalyst. SafetyAnalyst implements the empirical Bayes (EB) method, which requires the use of Safety Performance Functions (SPFs). The system is equipped with a set of national default SPFs, and the software calibrates the default SPFs to represent the agency’s safety performance. However, it is recommended that agencies generate agency-specific SPFs whenever possible. Many investigators support the view that the agency-specific SPFs represent the agency data better than the national default SPFs calibrated to agency data. Furthermore, it is believed that the crash trends in Florida are different from the states whose data were used to develop the national default SPFs. In this dissertation, Florida-specific SPFs were developed using the 2008 Roadway Characteristics Inventory (RCI) data and crash and traffic data from 2007-2010 for both total and fatal and injury (FI) crashes. The data were randomly divided into two sets, one for calibration (70% of the data) and another for validation (30% of the data). The negative binomial (NB) model was used to develop the Florida-specific SPFs for each of the subtypes of roadway segments, intersections and ramps, using the calibration data. Statistical goodness-of-fit tests were performed on the calibrated models, which were then validated using the validation data set. The results were compared in order to assess the transferability of the Florida-specific SPF models. The default SafetyAnalyst SPFs were calibrated to Florida data by adjusting the national default SPFs with local calibration factors. The performance of the Florida-specific SPFs and SafetyAnalyst default SPFs calibrated to Florida data were then compared using a number of methods, including visual plots and statistical goodness-of-fit tests. The plots of SPFs against the observed crash data were used to compare the prediction performance of the two models. Three goodness-of-fit tests, represented by the mean absolute deviance (MAD), the mean square prediction error (MSPE), and Freeman-Tukey R2 (R2FT), were also used for comparison in order to identify the better-fitting model. The results showed that Florida-specific SPFs yielded better prediction performance than the national default SPFs calibrated to Florida data. The performance of Florida-specific SPFs was further compared with that of the full SPFs, which include both traffic and geometric variables, in two major applications of SPFs, i.e., crash prediction and identification of high crash locations. The results showed that both SPF models yielded very similar performance in both applications. These empirical results support the use of the flow-only SPF models adopted in SafetyAnalyst, which require much less effort to develop compared to full SPFs.

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The large scale development of an Intelligent Transportation System is very close. The main component of such a smart environment is the network that provides connectivity for all vehicles. Public safety is the most demanding application because requires a fast, reliable and secure communication. Although IEEE 802.11p is presently the only full wireless standard for vehicular communications, recent advancements in 3GPP LTE provide support to direct communications and the ongoing activities are also addressing the vehicle to vehicle case. This thesis focuses on the resource allocation procedures and performance of LTE-V2V. To this aim, a MATLAB simulator has been implemented and results have been obtained adopting different mobility models for both in-coverage and out-of-coverage scenarios.

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In the last decades, the possibility to generate plasma at atmospheric pressure gave rise to a new emerging field called plasma medicine; it deals with the application of cold atmospheric pressure plasmas (CAPs) or plasma-activated solutions on or in the human body for therapeutic effects. Thanks to a blend of synergic biologically active agents and biocompatible temperatures, different CAP sources were successfully employed in many different biomedical applications such as dentistry, dermatology, wound healing, cancer treatment, blood coagulation, etc.… Despite their effectiveness has been verified in the above-mentioned biomedical applications, over the years, researchers throughout the world described numerous CAP sources which are still laboratory devices not optimized for the specific application. In this perspective, the aim of this dissertation was the development and the optimization of techniques and design parameters for the engineering of CAP sources for different biomedical applications and plasma medicine among which cancer treatment, dentistry and bioaerosol decontamination. In the first section, the discharge electrical parameters, the behavior of the plasma streamers and the liquid and the gas phase chemistry of a multiwire device for the treatment of liquids were performed. Moreover, two different plasma-activated liquids were used for the treatment of Epithelial Ovarian Cancer cells and fibroblasts to assess their selectivity. In the second section, in accordance with the most important standard regulations for medical devices, were reported the realization steps of a Plasma Gun device easy to handle and expected to be mounted on a tabletop device that could be used for dental clinical applications. In the third section, in relation to the current COVID-19 pandemic, were reported the first steps for the design, realization, and optimization of a dielectric barrier discharge source suitable for the treatment of different types of bioaerosol.

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The innovation in several industrial sectors has been recently characterized by the need for reducing the operative temperature either for economic or environmental related aspects. Promising technological solutions require the acquisition of fundamental-based knowledge to produce safe and robust systems. In this sense, reactive systems often represent the bottleneck. For these reasons, this work was focused on the integration of chemical (i.e., detailed kinetic mechanism) and physical (i.e., computational fluid dynamics) models. A theoretical-based kinetic mechanism mimicking the behaviour of oxygenated fuels and their intermediates under oxidative conditions in a wide range of temperature and pressure was developed. Its validity was tested against experimental data collected in this work by using the heat flux burner, as well as measurements retrieved from the current literature. Besides, estimations deriving from existing models considered as the benchmark in the combustion field were compared with the newly generated mechanism. The latter was found to be the most accurate for the investigated conditions and fuels. Most influential species and reactions on the combustion of butyl acetate were identified. The corresponding thermodynamic parameter and rate coefficients were quantified through ab initio calculations. A reduced detailed kinetic mechanism was produced and implemented in an open-source computational fluid dynamics model to characterize pool fires caused by the accidental release of aviation fuel and liquefied natural gas, at first. Eventually, partial oxidation processes involving light alkenes were optimized following the quick, fair, and smoot (QFS) paradigm. The proposed procedure represents a comprehensive and multidisciplinary approach for the construction and validation of accurate models, allowing for the characterization of developing industrial sectors and techniques.

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Monolithic materials cannot always satisfy the demands of today’s advanced requirements. Only by combining several materials at different length-scales, as nature does, the requested performances can be met. Polymer nanocomposites are intended to overcome the common drawbacks of pristine polymers, with a multidisciplinary collaboration of material science with chemistry, engineering, and nanotechnology. These materials are an active combination of polymers and nanomaterials, where at least one phase lies in the nanometer range. By mimicking nature’s materials is possible to develop new nanocomposites for structural applications demanding combinations of strength and toughness. In this perspective, nanofibers obtained by electrospinning have been increasingly adopted in the last decade to improve the fracture toughness of Fiber Reinforced Plastic (FRP) laminates. Although nanofibers have already found applications in various fields, their widespread introduction in the industrial context is still a long way to go. This thesis aims to develop methodologies and models able to predict the behaviour of nanofibrous-reinforced polymers, paving the way for their practical engineering applications. It consists of two main parts. The first one investigates the mechanisms that act at the nanoscale, systematically evaluating the mechanical properties of both the nanofibrous reinforcement phase (Chapter 1) and hosting polymeric matrix (Chapter 2). The second part deals with the implementation of different types of nanofibers for novel pioneering applications, trying to combine the well-known fracture toughness enhancement in composite laminates with improving other mechanical properties or including novel functionalities. Chapter 3 reports the development of novel adhesive carriers made of nylon 6,6 nanofibrous mats to increase the fracture toughness of epoxy-bonded joints. In Chapter 4, recently developed rubbery nanofibers are used to enhance the damping properties of unidirectional carbon fiber laminates. Lastly, in Chapter 5, a novel self-sensing composite laminate capable of detecting impacts on its surface using PVDF-TrFE piezoelectric nanofibers is presented.

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Nonostante il forte calo della mortalità per malattie cardiovascolari, tali disfunzioni rappresentano ancora la prima causa di morte in Europa. L’unico vero trattamento è il trapianto di cuore che però presenta diverse complicanze, tra cui la scarsa disponibilità di organi e il rigetto da parte dell’organismo curato. Per superare questi problemi, la ricerca si sta focalizzando sullo studio di nuovi polimeri biocompatibili e biodegradabili, per la realizzazione di strutture porose tridimensionali in grado di supportare la crescita e l’adesione cellulare. Tra i polimeri sintetici sperimentati per questa applicazione, il poli(butilene succinato) (PBS) rappresenta un ottimo candidato. Nonostante i promettenti risultati già ottenuti dal punto di vista di biodegradabilità e biocompatibilità, il PBS presenta però proprietà meccaniche poco adatte all’impiego qui descritto, proprio perché l’applicazione miocardica richiede particolari caratteristiche di modulo di Young (E) e un ritorno elastico comparabile con quello del miocardio naturale. Nella presente Tesi è stato sintetizzato e caratterizzato un nuovo copolimero statistico a base di PBS che presenta proprietà meccaniche funzionali all’MTE (Miocardial Tissue Engineering). In particolare, è stato inserito all’interno della catena polimerica, il neopentil glicole, che ha portato a un aumento della stabilità termica, proprietà di particolare interesse in fase di lavorazione del materiale, e una diminuzione del grado di cristallinità. La ridotta capacità a cristallizzare del copoliestere ha un effetto diretto sulle proprietà funzionali, tra le altre, sulla risposta meccanica e sulla velocità di degradazione idrolitica in ambiente fisiologico. In particolare, i risultati ottenuti hanno evidenziato come la copolimerizzazione abbia determinato una maggiore plasticità del materiale finale insieme a una maggiore velocità di degradazione idrolitica, entrambi spiegabili sulla base del ridotto grado di cristallinità.

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L’enorme progresso nel campo della biologia cellulare ha consentito lo sviluppo di tecnologie per la ricostruzione in vitro di tessuti, definendo una nuova branca di scienze biomediche: l’ingegneria dei tessuti. Tra le sue numerose applicazioni, la riparazione del tessuto cardiaco infartuato rappresenta un’importante obiettivo. Tra i polimeri sintetici sperimentati per questa applicazione, il poli(butilene succinato) (PBS) rappresenta un ottimo candidato. Nonostante i promettenti risultati già ottenuti dal punto di vista di biodegradabilità e biocompatibilità, il PBS presenta proprietà meccaniche poco adatte a questo impiego: l’applicazione miocardica richiede particolari caratteristiche di modulo di Young (E) e un ritorno elastico comparabile a quello del miocardio. Al fine di conferire al PBS proprietà meccaniche funzionali all’MTE (Miocardial Tissue Engineering), in questa Tesi è stato sintetizzato e caratterizzato un nuovo copolimero statistico a base di PBS contenente subunità Pripol 1009, un diacido prodotto dalla Croda, biobased e biodegradabile. Sono stati preparati film attraverso pressofusione e scaffold tramite elettrofilatura. Oltre alla caratterizzazione molecolare, volta a determinare il peso molecolare, la struttura e la composizione, film e scaffold sono stati sottoposti anche ad analisi termica, diffrattometrica, meccanica e a studi di degradazione idrolitica in condizioni fisiologiche. I risultati ottenuti hanno evidenziato che l’inserimento di segmenti Pripol all’interno della catena polimerica ha portato, oltre che a un incremento della stabilità termo-ossidativa, anche a un importante miglioramento delle proprietà meccaniche: il materiale sintetizzato, sia sotto forma di film che di scaffold, possiede le caratteristiche di elastomero termoplastico che lo rendono adatto ad applicazioni nell’ingegneria tissutale. Da ultimo, rispetto al PBS, il copolimero statistico mostra una maggiore velocità di degradazione in condizioni fisiologiche.

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Lo studio ha indagato l’impatto delle reti di distribuzione idrica sulla qualità dell’acqua ed il supporto che in questo ambito possono fornire i modelli numerici nella redazione dei Piani di Sicurezza delle Acque (PSA) o Water Safety Plan (WSP). In una prima fase, esso è stato analizzato prendendo atto del percorso normativo europeo e nazionale e delle linee guida fornite dall’Organizzazione Mondiale di Sanità (OMS) e dall’Istituto Superiore di Sanità (ISS) che hanno portato i Piani di Sicurezza delle Acque nell’ambito del controllo delle acque potabili, tenendo conto, anche, dei vari soggetti coinvolti e delle problematiche generate dai cambiamenti climatici. In una seconda fase, si è analizzato il caso studio della rete di distribuzione idrica della città di Cesena, fornito dal gestore HERA S.p.A., modellando la qualità dell’acqua attraverso il programma EPANET 2.2. Questa analisi è stata sviluppata successivamente alla calibrazione del modello idraulico. Per gli aspetti che richiedono una georeferenziazione è stato utilizzato il programma open source QGIS, mentre per le analisi dei dati e le elaborazioni statistiche relative al campionamento del cloro residuo e delle portate immesse dalle fonti idriche è stato utilizzato il linguaggio R. E' stato quindi possibile creare mappe georeferenziate per diversi momenti della giornata del tempo di permanenza dell'acqua nella rete di distribuzione, delle concentrazioni di cloro residuo dell'acqua prelevata dagli utenti e analizzare il ruolo dei serbatoi di compenso.

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Existing bridges built in the last 50 years face challenges due to states far different than those envisaged when they were designed, due to increased loads, ageing of materials, and poor maintenance. For post-tensioned bridges, the need emerged for reliable engineering tools for the evaluation of their capacity in case of steel corrosion due to lack of mortar injection. This can lead to sudden brittle collapses, highlighting the need for proper maintenance and monitoring. This thesis proposes a peak strength model for corroded strands, introducing a “group coefficient” that aims at considering corrosion variability in the wires constituting the strands. The application of the introduced model in a deterministic approach leads to the proposal of strength curves for corroded strands, which represent useful engineering tools for estimating their maximum strength considering both geometry of the corrosion and steel material parameters. Together with the proposed ultimate displacement curves, constitutive laws of the steel material reduced by the effects of corrosion can be obtained. The effects of corroded strands on post-tensioned beams can be evaluated through the reduced bending moment-curvature diagram accounting for these reduced stress-strain relationships. The application of the introduced model in a probabilistic approach allows to estimate peak strength probability functions and consecutive design-oriented safety factors to consider corrosion effects in safety assessment verifications. Both approaches consider two procedures that are based on the knowledge level of the corrosion in the strands. On the sidelines of this main research line, this thesis also presents a study of a seismic upgrading intervention of a case-study bridge through HDRB isolators providing a simplified procedure for the identification of the correct device. The study also investigates the effects due to the variability of the shear modulus of the rubber material of the HDRB isolators on the structural response of the isolated bridge.

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Long air gaps containing a floating conductor are common insulation types in power grids. During the transmission line live-line work, the process of lineman entering the transmission line air gap constitutes a live-line work combined air gap, which is a typical long air gap containing a floating conductor. This thesis investigates the discharge characteristics, the discharge mechanism and a discharge simulation model of long air gaps containing a floating conductor in order to address the engineering issues in live-line work. The innovative achievements of the thesis are as follows: (1) The effect of the gap distance, the floating electrode structure, the switching impulse wavefront time, the altitude, and the deviation of the floating conductor from the axis on the breakdown voltage was determined. (2) The physical process of the discharges in long air gaps containing a floating conductor was determined. The reason why the discharge characteristics of long air gaps containing a floating electrode with complex geometrics and sharp protrusions and long air gaps with a rod-shaped floating electrode are similar has been studied. The formation mechanism of the lowest breakdown voltage area of a long air gap containing a floating conductor is explained. (3) A simulation discharge model of long air gaps containing a floating conductor was established, which can describe the physical process and predict the breakdown voltage. The model can realize the accurate prediction of the breakdown voltage of typical long air gaps containing a floating conductor and live-line work combined air gaps in transmission lines. The findings of the study can provide theoretical reference and technical support for improving the safety of live-line work.

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Historical evidence shows that chemical, process, and Oil&Gas facilities where dangerous substances are stored or handled are target of deliberate malicious attacks (security attacks) aiming at interfering with normal operations. Physical attacks and cyber-attacks may generate events with consequences on people, property, and the surrounding environment that are comparable to those of major accidents caused by safety-related causes. The security aspects of these facilities are commonly addressed using Security Vulnerability/Risk Assessment (SVA/SRA) methodologies. Most of these methodologies are semi-quantitative and non-systematic approaches that strongly rely on expert judgment, leading to security assessments that are not reproducible. Moreover, they do not consider the synergies with the safety domain. The present 3-year research is aimed at filling the gap outlined by providing knowledge on security attacks, as well as rigorous and systematic methods supporting existing SVA/SRA studies suitable for the chemical, process, and Oil&Gas industry. The different nature of cyber and physical attacks resulted in the development of different methods for the two domains. The first part of the research was devoted to the development and statistical analysis of security databases that allowed to develop new knowledge and lessons learnt on security threats. Based on the obtained background, a Bow-Tie based procedure and two reverse-HazOp based methodologies were developed as hazard identification approaches for physical and cyber threats respectively. To support the quantitative estimation of the security risk, a quantitative procedure based on the Bayesian Network was developed allowing to calculate the probability of success of physical security attacks. All the developed methods have been applied to case studies addressing chemical, process and Oil&Gas facilities (offshore and onshore) proving the quality of the results that can be achieved in improving site security. Furthermore, the outcomes achieved allow to step forward in developing synergies and promoting integration among safety and security management.

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The project aims to gather an understanding of additive manufacturing and other manufacturing 4.0 techniques with an eyesight for industrialization. First the internal material anisotropy of elements created with the most economically feasible FEM technique was established. An understanding of the main drivers for variability for AM was portrayed, with the focus on achieving material internal isotropy. Subsequently, a technique for deposition parameter optimization was presented, further procedure testing was performed following other polymeric materials and composites. A replicability assessment by means of the use of technology 4.0 was proposed, and subsequent industry findings gathered the ultimate need of developing a process that demonstrate how to re-engineer designs in order to show the best results with AM processing. The latest study aims to apply the Industrial Design and Structure Method (IDES) and applying all the knowledge previously stacked into fully reengineer a product with focus of applying tools from 4.0 era, from product feasibility studies, until CAE – FEM analysis and CAM – DfAM. These results would help in making AM and FDM processes a viable option to be combined with composites technologies to achieve a reliable, cost-effective manufacturing method that could also be used for mass market, industry applications.

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At the intersection of biology, chemistry, and engineering, biosensors are a multidisciplinary innovation that provide a cost-effective alternative to traditional laboratory techniques. Due to their advantages, biosensors are used in medical diagnostics, environmental monitoring, food safety and many other fields. The first part of the thesis is concerned with learning the state of the art of paper-based immunosensors with bioluminescent (BL) and chemiluminescent (CL) detection. The use of biospecific assays combined with CL detection and paper-based technology offers an optimal approach to creating analytical tools for on-site applications and we have focused on the specific areas that need to be considered more in order to ensure a future practical implementation of these methods in routine analyses. The subsequent part of the thesis addresses the development of an autonomous lab-on-chip platform for performing chemiluminescent-based bioassays in space environment, exploiting a CubeSat platform for astrobiological investigations. An origami-inspired microfluidic paper-based analytical device has been developed with the purpose of assesses its performance in space and to evaluate its functionality and the resilience of the (bio)molecules when exposed to a radiation-rich environment. Subsequently, we designed a paper-based assay to detect traces of ovalbumin in food samples, creating a user-friendly immunosensing platform. To this purpose, we developed an origami device that exploits a competitive immunoassay coupled with chemiluminescence detection and magnetic microbeads used to immobilize ovalbumin on paper. Finally, with the aim of exploring the use of biomimetic materials, an hydrogel-based chemiluminescence biosensor for the detection of H2O2 and glucose was developed. A guanosine hydrogel was prepared and loaded with luminol and hemin, miming a DNAzyme activity. Subsequently, the hydrogel was modified by incorporating glucose oxidase enzyme to enable glucose biosensing. The emitted photons were detected using a portable device equipped with a smartphone's CMOS (complementary metal oxide semiconductor) camera for CL emission detection.

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Nowadays, the development of intelligent and autonomous vehicles used to perform agricultural activities is essential to improve quantity and quality of agricultural productions. Moreover, with automation techniques it is possible to reduce the usage of agrochemicals and minimize the pollution. The University of Bologna is developing an innovative system for orchard management called ORTO (Orchard Rapid Transportation System). This system involves an autonomous electric vehicle capable to perform agricultural activities inside an orchard structure. The vehicle is equipped with an implement capable to perform different tasks. The purpose of this thesis project is to control the vehicle and the implement to perform an inter-row grass mowing. This kind of task requires a synchronized motion between the traction motors and the implement motors. A motion control system has been developed to generate trajectories and manage their synchronization. Two main trajectories type have been used: a five order polynomial trajectory and a trapezoidal trajectory. These two kinds of trajectories have been chosen in order to perform a uniform grass mowing, paying a particular attention to the constrains of the system. To synchronize the motions, the electronic cams approach has been adopted. A master profile has been generated and all the trajectories have been linked to the master motion. Moreover, a safety system has been developed. The aim of this system is firstly to improve the safety during the motion, furthermore it allows to manage obstacle detection and avoidance. Using some particular techniques obstacles can be detected and recovery action can be performed to overcome the problem. Once the measured force reaches the predefined force threshold, then the vehicle stops immediately its motion. The whole project has been developed by employing Matlab and Simulink. Eventually, the software has been translated into C code and executed on the TI Lauchpad XL board.