5 resultados para CFRP aging composite thermal

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


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I componenti del carbonio in ambito strutturale (aeronautico, navale, automobilistico) sono soggetti a deterioramenti ambientali di difficile determinazione, in particolare alla temperatura e all'umidità. Scopo di questa tesi è determinare i danneggiamenti dei materiali compositi CFRP in funzione di un invecchiamento a diverse percentuali della temperatura di transizione vetrosa Tg. In particolare si vuole studiare e approfondire il processo di reazione della matrice e del carbonio. Per meglio descrivere il procedimento di deterioramento e reazione del materiale composito dovuto ad alti livelli di temperatura, mi sono avvalso del supporto pratico dell’azienda “Riba Composites” di Faenza che in particolare si occupa della prototipazione e produzione di componenti strutturali in materiali compositi avanzati e che si è dimostrata leader nel settore dei compositi CFRP. Pochi studi sono stati condotti su tale argomento. Da qui il mio interesse specifico nel volere studiare e dimostrare come questo processo possa ulteriormente apportare un aiuto agli studi in ambito strutturale già effettuati e pubblicati precedentemente. La dimostrazione pratica della seguente tesi è avvenuta, con l’aiuto dell’Ing. Paolo Proli, nel laboratorio di MaSTeR Lab dell’Università di Bologna, dove si è deciso di eseguire vari invecchiamenti termici a diverse temperature per constatare i livelli di deterioramento e influenza delle variazioni di temperatura sulla matrice del composito preso in analisi. Gli effetti di tale studi sono stati sostenuti anche grazie alla guida del Professore Lorenzo Donati, e verranno dettagliatamente evidenziati nello specifico con spiegazioni in ambito teorico e dimostrazioni pratiche affiancate da schemi dimostrativi e supporto grafico.

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The current design life of nuclear power plant (NPP) could potentially be extended to 80 years. During this extended plant life, all safety and operationally relevant Instrumentation & Control (I&C) systems are required to meet their designed performance requirements to ensure safe and reliable operation of the NPP, both during normal operation and subsequent to design base events. This in turn requires an adequate and documented qualification and aging management program. It is known that electrical insulation of I&C cables used in safety related circuits can degrade during their life, due to the aging effect of environmental stresses, such as temperature, radiation, vibration, etc., particularly if located in the containment area of the NPP. Thus several condition monitoring techniques are required to assess the state of the insulation. Such techniques can be used to establish a residual lifetime, based on the relationship between condition indicators and ageing stresses, hence, to support a preventive and effective maintenance program. The object of this thesis is to investigate potential electrical aging indicators (diagnostic markers) testing various I&C cable insulations subjected to an accelerated multi-stress (thermal and radiation) aging.

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In this work the problem of performing a numerical simulation of quasi-static crack propagation within an adhesive layer of a bonded joint under Mode I loading affected by stress field changes due to thermal-chemical shrinkage induced by cure process is addressed. Secondly, a parametric study on fracture critical energy, cohesive strength and Young's modulus is performed. Finally, a particular case of adhesive layer stiffening is simulated in order to verify qualitatively the major effect.

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The low-strength concrete is defined as a concrete where the compressive cubic strength is less than 15 MPa. Since the beginning of the last century, many low-strength concrete buildings and bridges have been built all over the world. Being short of deeper study, composite sheets are prohibited in strengthening of low-strength reinforced concrete members (CECS 146; ACI 440). Moreover, there are few relevant information about the long-term behavior and durability of strengthened RC members. This fact undoubtedly limits the use of the composite materials in the strengthening applications, therefore, it is necessary to study the behaviours of low-strength concrete elements strengthened with composite materials (FRP) for the preservation of historic constructions and innovation in the strengthening technology. Deformability is one of criteria in the design of concrete structures, and this for functionality, durability and aesthetics reasons. Civil engineer possibly encounters more deflection problems in the structural design than any other type of problem. Many materials common in structural engineering such as wood, concrete and composite materials, suffer creep; if the creep phenomenon is taken into account, checks for serviceability limit state criteria can become onerous, because the creep deformation in these materials is in the same order of magnitude as the elastic deformation. The thesis presents the results of an experimental study on the long-term behavior of low-strength reinforced concrete beams strengthened with carbon fiber composite sheets (CFRP). The work has investigated the accuracy of the long-term deflection predictions made by some analytical procedures existing in literature, as well as by the most widely used design codes (Eurocode 2, ACI-318, ACI-435).

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A really particular and innovative metal-polymer sandwich material is Hybrix. Hybrix is a product developed and manufactured by Lamera AB, Gothenburg, Sweden. This innovative hybrid material is composed by two relatively thin metal layers if compared to the core thickness. The most used metals are aluminum and stainless steel and are separated by a core of nylon fibres oriented perpendicularly to the metal plates. The core is then completed by adhesive layers applied at the PA66-metal interface that once cured maintain the nylon fibres in position. This special material is very light and formable. Moreover Hybrix, depending on the specific metal which is used, can achieve a good corrosion resistance and it can be cut and punched easily. Hybrix architecture itself provides extremely good bending stiffness, damping properties, insulation capability, etc., which again, of course, change in magnitude depending in the metal alloy which is used, its thickness and core thickness. For these reasons nowadays it shows potential for all the applications which have the above mentioned characteristic as a requirement. Finally Hybrix can be processed with tools used in regular metal sheet industry and can be handled as solid metal sheets. In this master thesis project, pre-formed parts of Hybrix were studied and characterized. Previous work on Hybrix was focused on analyze its market potential and different adhesive to be used in the core. All the tests were carried out on flat unformed specimens. However, in order to have a complete description of this material also the effect of the forming process must be taken into account. Thus the main activities of the present master thesis are the following: Dynamic Mechanical-Thermal Analysis (DMTA) on unformed Hybrix samples of different thickness and on pre-strained Hybrix samples, pure epoxy adhesive samples analysis and finally moisture effects evaluation on Hybrix composite structure.