708 resultados para Perera -- Varietats


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This paper proposes a repairability index for damage assessment in reinforced concrete structural members. The procedure discussed in this paper differs from the standard methods in two aspects: the structural and damage analyses are coupled and it is based on the concepts of fracture and continuum damage mechanics. The relationship between the repairability index and the well-known Park and Ang index is shown in some particular cases.

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Non-linear physical systems of infinite extent are conveniently modelled using FE–BE coupling methods. By the combination of both methods, suitable use of the advantages of each one may be obtained. Several possibilities of FEM–BEM coupling and their performance in some practical cases are discussed in this paper. Parallelizable coupling algorithms based on domain decomposition are developed and compared with the most traditional coupling methods.

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In the present work a seismic retrofitting technique is proposed for masonry infilled reinforced concrete frames based on the replacement of infill panels by K-bracing with vertical shear link. The performance of this technique is evaluated through experimental tests. A simplified numerical model for structural damage evaluation is also formulated according to the notions and principles of continuum damage mechanics. The proposed model is calibrated with the experimental results. The experimental results have shown an excellent energy dissipation capacity with the proposed technique. Likewise, the numerical predictions with the proposed model are in good agreement with experimental results.

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To model strength degradation due to low cycle fatigue, at least three different approaches can be considered. One possibility is based on the formulation of a new free energy function and damage energy release rate, as was proposed by Ju(1989). The second approach uses the notion of bounding surface introduced in cyclic plasticity by Dafalias and Popov (1975). From this concept, some models have been proposed to quantify damage in concrete or RC (Suaris et al. 1990). The model proposed by the author to include fatigue effects is based essentially in Marigo (1985) and can be included in this approach.

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Tanto las investigaciones experimentales y numéricas como las observaciones llevadas a cabo en áreas afectadas por terremotos aportan de forma continua nuevos datos sobre el comportamiento sísmico de las construcciones. Los avances en este campo redundan en normativas más exigentes y sistemas constructivos más efectivos. Dentro de la ingeniería sísmica, uno de los objetivos está en proporcionar métodos simplificados de evaluación del daño potencial en una estructura sometida a acciones sísmicas como forma de medir la posible reparabilidad de la misma. En el presente trabajo se propone una técnica de reacondicionamiento sísmico aplicada a pórticos de hormigón armado con relleno de mampostería. La eficiencia de dicha técnica es evaluada mediante ensayos experimentales. Asimismo se propone un modelo numérico simplificado de evaluación de daño estructural cuya validación es llevada a cabo con los resultados experimentales anteriores.

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Cuando se modelan sistemas físicos no lineales de extensión infinita, como las excavaciones, se hace necesario simular adecuadamente tanto la solución en el infinito como la no linealidad. El método de elementos finitos es una herramienta efectiva para representar la no linealidad. Sin embargo, el tratamiento del campo infinito truncando el dominio es bastante cuestionable. Por otro lado, el método de elementos de contorno es adecuado para simular el comportamiento en el infinito sin truncamientos. Por combinación de ambos métodos, se puede obtener un uso adecuado de las ventajas de cada uno. En este trabajo se proponen diversas posibilidades de acoplamiento entre los dos métodos. Se desarrollan algoritmos de acoplamiento basados en una descomposición de dominios y se comparan con los esquemas más tradicionales de acoplamiento.

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Damage models based on the Continuum Damage Mechanics (CDM) include explicitly the coupling between damage and mechanical behavior and, therefore, are consistent with the definition of damage as a phenomenon with mechanical consequences. However, this kind of models is characterized by their complexity. Using the concept of lumped models, possible simplifications of the coupled models have been proposed in the literature to adapt them to the study of beams and frames. On the other hand, in most of these coupled models damage is associated only with the damage energy release rate which is shown to be the elastic strain energy. According to this, damage is a function of the maximum amplitude of cyclic deformation but does not depend on the number of cycles. Therefore, low cycle effects are not taking into account. From the simplified model proposed by Flórez-López, it is the purpose of this paper to present a formulation that allows to take into account the degradation produced not only by the peak values but also by the cumulative effects such as the low cycle fatigue. For it, the classical damage dissipative potential based on the concept of damage energy release rate is modified using a fatigue function in order to include cumulative effects. The fatigue function is determined through parameters such as the cumulative rotation and the total rotation and the number of cycles to failure. Those parameters can be measured or identified physically through the haracteristics of the RC. So the main advantage of the proposed model is the possibility of simulating the low cycle fatigue behavior without introducing parameters with no suitable physical meaning. The good performance of the proposed model is shown through a comparison between numerical and test results under cycling loading.

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The effect of infill walls on the behaviour of frames is widely recognized, and, for several decades now, has been the subject of numerous experimental investigations. However, the analytical modeling of infilled panels and frames under in-plane loading is difficult and generally unreliable. From the point of view of the simulation technique the models may be divided into micromodels and simplified (or macro-) models. Based on the equivalent strut approach (simplified model), in this paper a damage model is proposed for the characterization of masonry walls submitted to lateral cyclic loads. The model, developed along the lines of the Continuum Damage Mechanics, have the advantages of including explicitly the coupling between damage and mechanical behaviour and so is consistent with the definition of damage as a phenomenon with mechanical consequences.

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Numerous damage models have been developed in order to analyse the seismic behavior. Among the different possibilities existing in the literature, it is very clear that models developed along the lines of Continuum Damage Mechanics are more consistent with the definition of damage like a phenomenon with mechanical consequences as they include explicitly the coupling between damage and mechanical behavior. On the other hand, for seismic processes, phenomena such as low cycle fatigue may have a pronounced effect on the overall behavior of the frames and, therefore, its consideration turns out to be very important. However, many of existing models evaluate the damage only as a function of the maximum amplitude of cyclic deformation without considering the number of cycles. In this paper, a generalization of the simplified model proposed by Flórez is made in order to include the low cycle fatigue. Such model employs in its formulation irreversible thermodynamics and internal state variable theory.

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When non linear physical systems of infinite extent are modelled, such as tunnels and perforations, it is necessary to simulate suitably the solution in the infinite as well as the non linearity. The finite element method (FEM) is a well known procedure for simulating the non linear behavior. However, the treatment of the infinite field with domain truncations is often questionable. On the other hand, the boundary element method (BEM) is suitable to simulate the infinite behavior without truncations. Because of this, by the combination of both methods, suitable use of the advantages of each one may be obtained. Several possibilities of FEM-BEM coupling and their performance in some practical cases are discussed in this paper. Parallelizable coupling algorithms based on domain decomposition are developed and compared with the most traditional coupling methods.

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Many studies have been developed to analyze the structural seismic behavior through the damage index concept. The evaluation of this index has been employed to quantify the safety of new and existing structures and, also, to establish a framework for seismic retrofitting decision making of structures. Most proposed models are based in a posterthquake evaluation in such a way they uncouple the structural response from the damage evaluation. In this paper, a generalization of the model by Flórez-López (1995) is proposed. The formulation employs irreversible thermodynamics and internal state variable theory applied to the study of beams and frames and it allows and explicit coupling between the degradation and the structural mechanical behavior. A damage index es defined in order to model elastoplasticity coupled with damage and fatigue damage.

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In the present work a constitutive model is developed which permits the simulation of the low cycle fatigue behaviour in steel framed structures. In the elaboration of this model, the concepts of the mechanics of continuum medium are applied on lumped dissipative models. In this type of formulation an explicit coupling between the damage and the structural mechanical behaviour is employed, allowing the possibility of considering as a whole different coupled phenomena. A damage index is defined in order to model elastoplasticity coupled with damage and fatigue damage.

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This paper summarizes the work developed in order to establish a framework for seismic retrofitting of bridges. In this context, the first objetive is to find a numerical model to evaluate the damage induced in a structure, under seismic action, as an index of its vulnerability. The model used has the adventage that is based on concepts of fracture mechanics and concentrated plasticity. As a result, the work is based on basic principles. The performance of this model is being evaluated. Some results of the computer program developed for this purpose are shown.

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El reacondicionamiento de estructuras surge como reacción a la mejora de conocimientos, tanto en cuanto a la peligrosidad sísmica del emplazamiento, como a la vulnerabilidad de ciertas tipologías o detalles constructivos. En el caso particular de los puentes, la situación es debida a las continuas llamadas de atención que los grandes terremotos recientes están realizando respecto a estructuras tradicionalmente consideradas perfectas. El reacondicionamiento, desde un punto de vista social, es una respuesta activa frente a los daños previsibles, y una forma de minimizarlos con criterios ingenieriles. La actuación se articula alrededor de un Catálogo de estructuras, que se clasifican en forma que permite la toma de decisiones de acuerdo con los fondos disponibles. Tras un primer cribado que separa los puentes que, previsiblemente, no sufrirán problemas, se aplican métodos de cálculo capaces de prever los daños, y estimar las zonas en que aquellos pueden producirse, lo que permite contribuir a la ordenación precitada. Finalmente se establecen métodos que corrijan las deficiencias estructurales y ayuden a mejorar la respuesta.

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En este articulo se resumen las principales ideas relacionadas con la resolución de problemas elípticos mediante fórmulas de representación. El uso de una familia de funciones interpolantes jerarquizadas permite el establecimiento de un sistema de resolución autoadaptable a un nivel de exactitud prefijado. Se incluye también una comparación descriptiva con el método de los elementos finitos. La extracción de una mejor solución sin refinar la malla se obtiene en el Método de los Elementos de Contorno, gracias a la aplicación de la fórmula de representación para puntos de contorno. Ello permite diseñar una estrategia de indicadores y estimadores que mejora la eficacia de intentos anteriores y permite controlar el desarrollo de la solución tanto en las versiones p como en la h o mixtos.