894 resultados para Finite Element Modelling
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The transfer of hillslope water to and through the riparian zone forms a research area of importance in hydrological investigations. Numerical modelling schemes offer a way to visualise and quantify first-order controls on catchment runoff response and mixing. We use a two-dimensional Finite Element model to assess the link between model setup decisions (e.g. zero-flux boundary definitions, soil algorithm choice) and the consequential hydrological process behaviour. A detailed understanding of the consequences of model configuration is required in order to produce reliable estimates of state variables. We demonstrate that model configuration decisions can determine effectively the presence or absence of particular hillslope flow processes and, the magnitude and direction of flux at the hillslope–riparian interface. If these consequences are not fully explored for any given scheme and application, the resulting process inference may well be misleading.
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We design consistent discontinuous Galerkin finite element schemes for the approximation of a quasi-incompressible two phase flow model of Allen–Cahn/Cahn–Hilliard/Navier–Stokes–Korteweg type which allows for phase transitions. We show that the scheme is mass conservative and monotonically energy dissipative. In this case the dissipation is isolated to discrete equivalents of those effects already causing dissipation on the continuous level, that is, there is no artificial numerical dissipation added into the scheme. In this sense the methods are consistent with the energy dissipation of the continuous PDE system.
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Sealed gas filled flat plate solar collectors will have stresses in the material since volume and pressure varies in the gas when the temperature changes. Several geometries were analyzed and it could be seen that it is possible reducing the stresses and improve the safety factor of the weakest point in the construction by using larger area and/or reducing the distance between glass and absorber and/or change width and height relationship so the tubes are getting longer. Further it could be shown that the safety factor won't always get improved with reinforcements. It is so because when an already strong part of the collector gets reinforced it will expose weaker parts for higher stresses. The finite element method was used for finding out the stresses.
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One of the first questions to consider when designing a new roll forming line is the number of forming steps required to produce a profile. The number depends on material properties, the cross-section geometry and tolerance requirements, but the tool designer also wants to minimize the number of forming steps in order to reduce the investment costs for the customer. There are several computer aided engineering systems on the market that can assist the tool designing process. These include more or less simple formulas to predict deformation during forming as well as the number of forming steps. In recent years it has also become possible to use finite element analysis for the design of roll forming processes. The objective of the work presented in this thesis was to answer the following question: How should the roll forming process be designed for complex geometries and/or high strength steels? The work approach included both literature studies as well as experimental and modelling work. The experimental part gave direct insight into the process and was also used to develop and validate models of the process. Starting with simple geometries and standard steels the work progressed to more complex profiles of variable depth and width, made of high strength steels. The results obtained are published in seven papers appended to this thesis. In the first study (see paper 1) a finite element model for investigating the roll forming of a U-profile was built. It was used to investigate the effect on longitudinal peak membrane strain and deformation length when yield strength increases, see paper 2 and 3. The simulations showed that the peak strain decreases whereas the deformation length increases when the yield strength increases. The studies described in paper 4 and 5 measured roll load, roll torque, springback and strain history during the U-profile forming process. The measurement results were used to validate the finite element model in paper 1. The results presented in paper 6 shows that the formability of stainless steel (e.g. AISI 301), that in the cold rolled condition has a large martensite fraction, can be substantially increased by heating the bending zone. The heated area will then become austenitic and ductile before the roll forming. Thanks to the phenomenon of strain induced martensite formation, the steel will regain the martensite content and its strength during the subsequent plastic straining. Finally, a new tooling concept for profiles with variable cross-sections is presented in paper 7. The overall conclusions of the present work are that today, it is possible to successfully develop profiles of complex geometries (3D roll forming) in high strength steels and that finite element simulation can be a useful tool in the design of the roll forming process.
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A numerical study on the behavior of tied-back retaining walls in sand, using the finite element method (FEM) is presented. The analyses were performed using the software Plaxis 2D, and were focused on the development of horizontal displacements, horizontal stresses, shear forces and bending moments in the structure during the construction process. Emphasis was placed on the evaluation of wall embedment, tie-back horizontal spacing, wall thickness, and free anchor length on wall behavior. A representative soil profile of a specific region at the City of Natal, Brazil, was used in the numerical analyses. New facilities built on this region often include retaining structures of the same type studied herein. Soil behavior was modeled using the Mohr-Coulomb constitutive model, whereas the structural elements were modeled using the linear elastic model. Shear strength parameters of the soil layers were obtained from direct shear test results conducted with samples collected at the studied site. Deformation parameters were obtained from empirical correlations from SPT test results carried out on the studied site. The results of the numerical analyses revealed that the effect of wall embedment on the investigated parameters is virtually negligible. Conversely, the tie-back horizontal spacing plays an important role on the investigated parameters. The results also demonstrated that the wall thickness significantly affects the wall horizontal displacements, and the shear forces and bending moments within the retaining structure. However, wall thickness was not found to influence horizontal stresses in the structure
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Presents the dynamic modelling of a flexible robotic manipulator with two flexible links and two revolute joints, which rotates in the horizontal plane. The dynamic equations are derived using the Newton-Euler formulation and the finite element method, based on elementary beam theory, which is used to discretize the displacements such that the small motion is represented in terms of nodal displacements. Computer simulation results are presented to illustrate this study. The dynamic model becomes necessary for use in future design and control applications.
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A direct version of the boundary element method (BEM) is developed to model the stationary dynamic response of reinforced plate structures, such as reinforced panels in buildings, automobiles, and airplanes. The dynamic stationary fundamental solutions of thin plates and plane stress state are used to transform the governing partial differential equations into boundary integral equations (BIEs). Two sets of uncoupled BIEs are formulated, respectively, for the in-plane state ( membrane) and for the out-of-plane state ( bending). These uncoupled systems are joined to formamacro-element, in which membrane and bending effects are present. The association of these macro-elements is able to simulate thin-walled structures, including reinforced plate structures. In the present formulation, the BIE is discretized by continuous and/or discontinuous linear elements. Four displacement integral equations are written for every boundary node. Modal data, that is, natural frequencies and the corresponding mode shapes of reinforced plates, are obtained from information contained in the frequency response functions (FRFs). A specific example is presented to illustrate the versatility of the proposed methodology. Different configurations of the reinforcements are used to simulate simply supported and clamped boundary conditions for the plate structures. The procedure is validated by comparison with results determined by the finite element method (FEM).
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Group theoretical-based techniques and fundamental results from number theory are used in order to allow for the construction of exact projectors in finite-dimensional spaces. These operators are shown to make use only of discrete variables, which play the role of discrete generator coordinates, and their application in the number symmetry restoration is carried out in a nuclear BCS wave function which explicitly violates that symmetry. © 1999 Published by Elsevier Science B.V. All rights reserved.
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Smart material technology has become an area of increasing interest for the development of lighter and stronger structures which are able to incorporate actuator and sensor capabilities for collocated control. In the design of actively controlled structures, the determination of the actuator locations and the controller gains, is a very important issue. For that purpose, smart material modelling, modal analysis methods, control and optimization techniques are the most important ingredients to be taken into account. The optimization problem to be solved in this context presents two interdependent aspects. The first one is related to the discrete optimal actuator location selection problem, which is solved in this paper using genetic algorithms. The second is represented by a continuous variable optimization problem, through which the control gains are determined using classical techniques. A cantilever Euler-Bernoulli beam is used to illustrate the presented methodology.
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A general technique to embed non-uniform displacement discontinuities into standard solid finite elements is presented. The technique is based on the decomposition of the kinematic fields into a component related to the deformation of the solid portion of the element and one related to the rigid-body motion due to a displacement discontinuity. This decomposition simplifies the incorporation of discontinuity interfaces and provides a suitable framework to account for non-uniform discontinuity modes. The present publication addresses two families of finite element formulations: displacement-based and stress hybrid finite element. © 2005 Elsevier Ltd. All rights reserved.
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The necessity of adapting the standardized fan models to conditions of higher temperature has emerged due to the growth of concerning referring to the consequences of the gas expelling after the Mont Blanc tunnel accident in Italy and France, where even though, with 100 fans in operation, 41 people died. However, since then, the defied solutions have pointed to aerodynamic disadvantages or have seemed nonappropriate in these conditions. The objective of this work is to present an alternative to the market standard fans considering a new technology in constructing blades. This new technology introduces the use of the stainless steel AISI 409 due to its good adaptation to temperatures higher than 400°C, particularly exposed to temperatures of gas exhaust from tunnels in fire situation. Furthermore, it presents a very good resistance to corrosion and posterior welding and pressing, due to its alloyed elements. The innovation is centered in the process of a deep drawing of metallic shells and posterior welding, in order to keep the ideal aerodynamic superficies for the fan ideal performance. On the other hand, the finite element method, through the elasto-plastic software COSMOS permitted the verification of the thickness and structural stability of the blade in relation to the aerodynamic efforts established in the project. In addition, it is not advisable the fabrication of blades with variable localized thickness not even, non-uniform ones, due to the verified concentration of tensions and the difficulties observed in the forming. In this way, this study recommends the construction of blades with uniform variations of thickness. © 2007 Springer.
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The use of composite materials has increased in the recent decades, mainly in the aeronautics and automotives industries. In the present study is elaborated a computational simulation program of the bending test using the finite elements method, in the commercial software ANSYS. This simulation has the objective of analyze the mechanical behavior in bending of two composites with polymeric matrix reinforced with carbon fibers. Also are realized bending tests of the 3 points to obtain the resistances of the materials. Data from simulation and tests are used to make a comparison between two failures criteria, Tsai-Wu and Hashin criterion. Copyright © 2009 SAE International.
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The applications of the Finite Element Method (FEM) for three-dimensional domains are already well documented in the framework of Computational Electromagnetics. However, despite the power and reliability of this technique for solving partial differential equations, there are only a few examples of open source codes available and dedicated to the solid modeling and automatic constrained tetrahedralization, which are the most time consuming steps in a typical three-dimensional FEM simulation. Besides, these open source codes are usually developed separately by distinct software teams, and even under conflicting specifications. In this paper, we describe an experiment of open source code integration for solid modeling and automatic mesh generation. The integration strategy and techniques are discussed, and examples and performance results are given, specially for complicated and irregular volumes which are not simply connected. © 2011 IEEE.
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This work presents an application of a Boundary Element Method (BEM) formulation for anisotropic body analysis using isotropic fundamental solution. The anisotropy is considered by expressing a residual elastic tensor as the difference of the anisotropic and isotropic elastic tensors. Internal variables and cell discretization of the domain are considered. Masonry is a composite material consisting of bricks (masonry units), mortar and the bond between them and it is necessary to take account of anisotropy in this type of structure. The paper presents the formulation, the elastic tensor of the anisotropic medium properties and the algebraic procedure. Two examples are shown to validate the formulation and good agreement was obtained when comparing analytical and numerical results. Two further examples in which masonry walls were simulated, are used to demonstrate that the presented formulation shows close agreement between BE numerical results and different Finite Element (FE) models. © 2012 Elsevier Ltd.
Resumo:
A América do Sul apresenta várias peculiaridades geomagnéticas, uma delas, é a presença do Eletrojato Equatorial, o qual se estende de leste para oeste no Brasil ao longo de aproximadamente 3500 km. Considerando-se o fato de que a influência do Eletrojato Equatorial pode ser detectada a grandes distâncias do seu centro, isto suscita o interesse em se estudar os seus efeitos na exploração magnetotelúrica no Brasil. A influência do eletrojato equatorial na prospecção magnetotelúrica tem sido modelada para meios geológicos uni e bidimensionais valendo-se para isto de soluções analíticas fechadas e de técnicas numéricas tais como elementos finitos e diferenças finitas. Em relação aos meios geológicos tridimensionais, eles tem sido modelados na forma de "camadas finas", usando o algoritmo "thin sheet". As fontes indutoras utilizadas para simular o eletrojato equatorial nestes trabalhos, tem sido linhas de corrente, eletrojatos gaussianos e eletrojatos ondulantes. Por outro lado, o objetivo principal da nossa tese foi o modelamento dos efeitos que o eletrojato equatorial provoca em estruturas tridimensionais próprias da geofísica da prospecção. Com tal finalidade, utilizamos o esquema numérico da equação integral, com as fontes indutoras antes mencionadas. De maneira similar aos trabalhos anteriores, os nossos resultados mostram que a influência do eletrojato equatorial somente acontece em frequências menores que 10-1 Hz. Este efeito decresce com a distância, mantendo-se até uns 3000 km do centro do eletrojato. Assim sendo, a presença de grandes picos nos perfis da resistividade aparente de um semi-espaço homogêneo, indica que a influência do eletrojato é notável neste tipo de meio. Estes picos se mostram com diferente magnitude para cada eletrojato simulado, sendo que a sua localização também muda de um eletrojato para outro. Entretanto, quando se utilizam modelos geo-elétricos unidimensionais mais de acordo com a realidade, tais como os meios estratificados, percebe-se que a resposta dos eletrojatos se amortece significativamente e não mostra muitas diferenças entre os diferentes tipos de eletrojato. Isto acontece por causa da dissipação da energia eletromagnética devido à presença da estratificação e de camadas condutivas. Dentro do intervalo de 3000 km, a resposta eletromagnética tridimensional pode ser deslocada para cima ou para baixo da resposta da onda plana, dependendo da localização do corpo, da frequência, do tipo de eletrojato e do meio geológico. Quando a resposta aparece deslocada para cima, existe um afastamento entre as sondagens uni e tridimensionais devidas ao eletrojato, assim como um alargamento da anomalia dos perfis que registra a presença da heterogeneidade tridimensional. Quando a resposta aparece deslocada para baixo, no entanto, há uma aproximação entre estes dois tipos de sondagens e um estreitamento da anomalia dos perfis. Por outro lado, a fase se mostra geralmente, de uma forma invertida em relação à resistividade aparente. Isto significa que quando uma sobe a outra desce, e vice-versa. Da mesma forma, comumente nas altas frequências as respostas uni e tridimensionais aparecem deslocadas, enquanto que nas baixas frequências se mostram com os mesmos valores, com exceção dos eletrojatos ondulantes com parâmetros de ondulação α = —2 e —3. Nossos resultados também mostram que características geométricas próprias das estruturas tridimensionais, tais como sua orientação em relação à direção do eletrojato e a dimensão da sua direção principal, afetam a resposta devido ao eletrojato em comparação com os resultados da onda plana. Desta forma, quando a estrutura tridimensional é rotacionada de 90°, em relação à direção do eletrojato e em torno do eixo z, existe uma troca de polarizações nas resistividades dos resultados, mas não existem mudanças nos valores da resistividade aparente no centro da estrutura. Ao redor da mesma, porém, se percebe facilmente alterações nos contornos dos mapas de resistividade aparente, ao serem comparadas com os mapas da estrutura na sua posição original. Isto se deve à persistência dos efeitos galvânicos no centro da estrutura e à presença de efeitos indutivos ao redor do corpo tridimensional. Ao alongar a direção principal da estrutura tridimensional, as sondagens magnetotelúricas vão se aproximando das sondagens das estruturas bidimensionais, principalmente na polarização XY. Mesmo assim, as respostas dos modelos testados estão muito longe de se considerar próximas das respostas de estruturas quase-bidimensionais. Porém, os efeitos do eletrojato em estruturas com direção principal alongada, são muito parecidos com aqueles presentes nas estruturas menores, considerando-se as diferenças entre as sondagens de ambos tipos de estruturas. Por outro lado, os mapas de resistividade aparente deste tipo de estrutura alongada, revelam um grande aumento nos extremos da estrutura, tanto para a onda plana como para o eletrojato. Este efeito é causado pelo acanalamento das correntes ao longo da direção principal da estrutura. O modelamento de estruturas geológicas da Bacia de Marajó confirma que os efeitos do eletrojato podem ser detetados em estruturas pequenas do tipo "horst" ou "graben", a grandes distâncias do centro do mesmo. Assim, os efeitos do eletrojato podem ser percebidos tanto nos meios estratificados como tridimensionais, em duas faixas de freqüência (nas proximidades de 10-1 Hz e para freqüências menores que 10-3 Hz), possivelmente influenciados pela presença do embasamento cristalino e a crosta inferior, respectivamente. Desta maneira, os resultados utilizando o eletrojato como fonte indutora, mostram que nas baixas freqüências as sondagens magnetotelúricas podem ser fortemente distorcidas, tanto pelos efeitos galvânicos da estrutura tridimensional como pela presença da influência do eletrojato. Conseqüêntemente, interpretações errôneas dos dados de campo podem ser cometidas, se não se corrigirem os efeitos do eletrojato equatorial ou, da mesma forma, não se utilisarem algoritmos tridimensionais para interpretar os dados, no lugar do usual modelo unidimensional de Tikhonov - Cagniard.