969 resultados para RF energy harvesting


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L’ablation de fibrillation auriculaire (FA) persistante est associée à des temps de procédure plus longs et à un moindre succès par rapport à l’ablation de FA paroxystique. Nous avons posé l’hypothèse que la restauration et le maintien du rythme sinusal ≥ 1 mois pré-procédure faciliteraient la terminaison de la FA et amélioreraient le succès de la procédure. Méthodes: Nous avons conduit une étude rétrospective comparant deux cohortes de patients consécutifs se présentant en FA persistante pour première ablation de FA : le groupe rythme sinusal (RS) avec restauration et maintien du rythme RS ≥ 1 mois pré-procédure (Groupe RS; N=40) et un groupe contrôle de patients en FA pré ablation (Groupe contrôle; N=40), apparié selon le sexe, l’âge, la longueur maximale de durée de FA. Une ablation de type en paliers (“stepwise”) a été réalisée dans les deux groupes (avec FA induite en début de procédure dans le groupe RS). Le succès a été défini par l’absence de récidive de FA ou de tachycardie atriale sans anti arythmique après un suivi minimal de 12 mois post procédure. Résultats: Durant la procédure de index d’ablation de FA, le cycle de FA était plus long dans le groupe RS par rapport au groupe contrôle (183±32 vs 166±20 ms, P=0.06) suggérant un remodelage inverse. Dans le groupe RS, la FA a été terminée plus fréquemment par l’ablation (95.0% vs 77.5%, P<0.05) et a demandé une ablation moins extensive avec moins d’ablation des électrocardiogrammes fragmentés (40.0% vs 87.5%, p<0.001) et moins de lésions linéaires (42.5% vs 82.5%, p<0.001). Les durées moyennes de procédure (199.8±69.8 vs 283.5±72.3 minutes, P<0.001), de fluoroscopie (51.0±24.9 vs 96.3±32.1 minutes, P<0.001), et de radiofréquence (47.5±18.9 vs 97.0±30.6 minutes, P<0.001) ont été plus courtes dans le groupe RS. Les succès cliniques ont été comparables dans les deux groupes après la première (55.0% vs 45.0%, P=0.28) et la dernière procédure (80.0% vs 70.0%, P=0.28), après une durée moyenne de suivi comparable (21.1±9.7 mois).

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The widespread use of poly(3-hexylthiophene) (P3HT) in the active layers of organic solar cells indicates that it possesses chemical stability and solubility suitable for such an application. However, it would be desirable to have a material that can maintain these properties but with a smaller bandgap, which would lead to more efficient energy harvesting of the solar spectrum. Fifteen P3HT derivatives were studied using the Density Functional Theory. The conclusion is that it is possible to obtain compounds with significantly smaller bandgaps and with solubility and stability similar to that of P3HT, mostly through the binding of oxygen atoms or conjugated organic groups to the thiophenic ring. © 2013 Wiley Periodicals, Inc.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Pós-graduação em Engenharia Mecânica - FEB

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Recently, research on energy harvesting has increased substantially. Many researchers have concentrated their efforts to find the best configuration for these systems and to optimize their output power. In the process of energy harvesting, the electric energy is obtained by converting mechanics energy created by an environment vibration source by a transducer, for example, a thin piezoceramic film. That vibration source is, for example, a beam suffering some mechanic force able to generate a vibration in it, an oscillating beam is the best properly used example. Different mechanisms of electromechanical coupling have been developed to harvesting devices, and a particular interest has been given to the use of models that transform the mechanical vibration into electrical current using a piezoelectric element. In this paper we propose a model to energy harvesting from vibrations, from an oscillating beam, including non-linearities in the piezoelectric coupling and a non-ideal excitation in the material. From this model, it was developed a system to obtain some results about the harvested power by the material. It was demonstrated that the power captured was influenced by the effect of the nonlinearities of the piezoelectric coupling, modifying the system dynamic behavior

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Pós-graduação em Engenharia Mecânica - FEIS

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Pós-graduação em Engenharia Mecânica - FEIS

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Sensor and actuator based on laminated piezocomposite shells have shown increasing demand in the field of smart structures. The distribution of piezoelectric material within material layers affects the performance of these structures; therefore, its amount, shape, size, placement, and polarization should be simultaneously considered in an optimization problem. In addition, previous works suggest the concept of laminated piezocomposite structure that includes fiber-reinforced composite layer can increase the performance of these piezoelectric transducers; however, the design optimization of these devices has not been fully explored yet. Thus, this work aims the development of a methodology using topology optimization techniques for static design of laminated piezocomposite shell structures by considering the optimization of piezoelectric material and polarization distributions together with the optimization of the fiber angle of the composite orthotropic layers, which is free to assume different values along the same composite layer. The finite element model is based on the laminated piezoelectric shell theory, using the degenerate three-dimensional solid approach and first-order shell theory kinematics that accounts for the transverse shear deformation and rotary inertia effects. The topology optimization formulation is implemented by combining the piezoelectric material with penalization and polarization model and the discrete material optimization, where the design variables describe the amount of piezoelectric material and polarization sign at each finite element, with the fiber angles, respectively. Three different objective functions are formulated for the design of actuators, sensors, and energy harvesters. Results of laminated piezocomposite shell transducers are presented to illustrate the method. Copyright (C) 2012 John Wiley & Sons, Ltd.