234 resultados para Fortran


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Este trabalho tem por objetivo simular e analisar uma usina termelétrica a carvão em várias condições de funcionamento. A usina simulada neste trabalho é a AVV 1 localizada em Copenhague, Dinamarca. A AVV 1 é uma usina de geração de potência e aquecimento distrital que pode funcionar em várias condições de carga. A simulação da usina supracitada foi tema de um concurso de simuladores proposto no congresso ECOS 2003 realizado em Copenhague, Dinamarca. Para a realização deste trabalho foi construído um programa na linguagem FORTRAN 90. Cada componente da usina é modelado através de equações de balanço de massa e energia, e o sistema completo tem sua solução obtida pelo método de substituição sucessiva. Para viabilizar essa solução é necessário também implementar uma rotina de cálculo de propriedades do fluido de trabalho. No caso estudado, o fluido de trabalho da usina é a água e a formulação utilizada para o cálculo de suas propriedades nos diversos estados é a IAPWS IF-97. A usina é simulada em dois modos de operação: modo de condensação, onde ocorre apenas geração de eletricidade, e em modo de contrapressão, onde há geração de eletricidade e aquecimento distrital, conforme nomenclatura sugerida pela organização do concurso No modo de condensação, são feitas quatro séries de simulações variando a carga de 100% a 40%. Cada série contém um conjunto de hipóteses quanto à variação das eficiências isoentrópicas e pressões das turbinas em função da vazão mássica. No modo de contrapressão, a usina é simulada funcionando com 100% da carga. O programa desenvolvido calcula as propriedades para qualquer ponto de trabalho ao longo da planta, assim como a eficiência da mesma, a potência gerada, e todas as vazões mássicas pertinentes. Além disso, é feita também uma análise exergética da planta. A simulação demonstrou que a planta possui uma eficiência global de 42,02% com uma geração de 250,2 MW em 100% de carga no modo de condensação. Nessas mesmas condições, do ponto de vista exergético, a eficiência encontrada é de 37,21%. No modo de contrapressão, a usina apresenta uma eficiência exergética de 40,19% com um aproveitamento energético de 90,55%. Por fim, é possível também verificar a comportamento da eficiência da planta e a variação de água de resfriamento do condensador com a carga. Os resultados gerados são próximos àqueles encontrados pelos diversos pesquisadores que abordaram o problema.

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This paper was developed as part of a broader research program on the political economy of exchange rate policies in Latin America and the Caribbean. We are grateful for helpful comments and suggestions from Jeff Frieden, Ernesto Stein, Jorge Streb, Marcelo Neri and seminar participants at Getulio Vargas Foundation, PUC-Rio, IDB workshop on The Political Economy of Exchange Rate Policies in Latin America and the Caribbean, and LACEA meeting in Buenos Aires. We thank René Garcia for providing us with a Fortran program for estimating the Markov Switching Model, Ilan Goldfajn for sending us updated estimates of the real exchange rate series of Goldfajn and Valdés (1996), Altamir Lopes and Ricardo Markwald for kindly furnishing data on Brazilian external accounts, and Carla Bernardes, Gabriela Domingues, Juliana Pessoa de Araújo, and, specially, Marcelo Pinheiro for excellent research assistant. Both authors thank CNPq for a research fellowship.

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Este trabalho tem por objetivo estudar a transferência de calor em tubos capilares cilíndricos utilizados na técnica de separação de moléculas denominada Eletroforese Capilar. Esta técnica é usada, por exemplo, na análise de biomoléculas e no sequenciamento de DNA, onde o controle da temperatura está diretamente ligado ao desempenho destes métodos e à qualidade dos resultados. Para empregar esta técnica, tensões elétricas da ordem de 20 kV são aplicadas entre as extremidades dos tubos capilares, que possuem normalmente 50 cm de comprimento, 350 µm de diâmetro externo e 50 µm de diâmetro interno, preenchidos por uma solução aquosa. Tais tensões geram uma corrente elétrica na solução, provocando aquecimento distribuído por Efeito Joule. Os tubos capilares são construídos em quartzo amorfo e protegidos por uma camada de material polimérico (poliimida). Para implementar o controle da temperatura, os tubos capilares são colocados em contato com um fluido de resfriamento. Num primeiro momento, os estudos são realizados por simulação numérica, empregando o Método dos Volumes Finitos em rotinas escritas em FORTRAN. São simulados casos onde os tubos são recobertos por camadas cilíndricas de materiais com uma condutividade térmica relativamente boa, com o objetivo de aumentar a superfície de troca de calor com o fluido de resfriamento. Como resultado, obtêm-se curvas da temperatura no centro dos tubos capilares em função do coeficiente de transferência de calor por convecção. Um caso de interesse é quando os tubos capilares são posicionados excentricamente ao recobrimento cilíndrico Num segundo momento, é utilizado o software de simulação numérica ANSYS CFX®, onde é simulado o resfriamento dos mesmos tubos capilares expostos a um escoamento transversal de ar a 15°C. Neste caso, também são aplicados os recobrimentos cilíndricos e, além disso, opta-se por simular o resfriamento de um arranjo de vários tubos (sistema multicapilar) dispostos entre placas de vidro, no formato de um sanduíche. Como resultados mais importantes salientam-se: a) o aumento do raio do recobrimento resulta no aumento da transferência de calor, fazendo com que a temperatura no núcleo do capilar fique estacionada em valores baixos que não comprometem as separações/análises; b) chegou-se a um valor de raio crítico da ordem de 10 mm para a condição de operação mais típicas na área da Eletroforese Capilar; c) as montagens com o tubo capilar concêntrico e excêntrico ao recobrimento não apresentam diferenças significativas no perfil de temperatura da solução tampão; e finalmente d) observa-se que o uso de duas placas de material dielétrico com os capilares posicionados em forma de sanduíche entre elas permite uma eficiente dissipação do calor gerado na solução tampão.

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O principal objetivo deste trabalho é estabelecer caminhos apropriados para a estimativa da eficiência de pratos valvulados com downcomer e pratos dualflow em colunas de destilação industriais. O conhecimento da eficiência tem importância fundamental no projeto e na avaliação do desempenho de colunas de destilação. Pesquisando a literatura, pôde ser identificada uma árvore de alternativas para compor o modelo de eficiência de prato, dependendo dos modelos de transferência de massa, do modelo de distribuição das vazões de líquido e vapor sobre o prato, do modelo de arraste de líquido, do modelo de equilíbrio da mistura multi-componente, dos modelos de propriedades físicas, do modelo da altura da espuma sobre o prato e da definição de eficiência. Neste trabalho, diferentes métodos para a predição da eficiência em pratos valvulados e pratos dualflow foram compostos e comparados contra dados de três colunas de destilação industriais sob diferentes condições operacionais. Os modelos foram inseridos no simulador Aspen Plus 12.1, em linguagem Fortran, junto com dados geométricos dos pratos, propriedades dos fluidos e dados de operação das colunas de destilação industriais. Para cada coluna foi escolhido o melhor pacote termodinâmico pela verificação dos perfis de temperatura e composições de topo e fundo obtidos via simulação contra os valores reais correspondentes das colunas de destilação industriais. Foi feita uma modificação no parâmetro da fração de furos que estão em jetting no modelo hidráulico da dispersão acima do prato de Garcia (1999). Essa modificação produziu resultados melhores na predição da fração de furos em jetting e eficiência dos pratos dualflow e resultados similares aos de Garcia (1999) para a eficiência dos pratos valvulados.

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Esta tese apresenta um estudo do comportamento térmico de um coletor solar acumulador e desenvolve uma metodologia para medir a sua eficiência diária. O coletor solar acumulador está instalado na face norte do prédio de Energia Solar da UFRGS e possui cerca de 26 m2. É constituído de uma massa espessa de concreto com uma superfície absorvente feita de tijolos, possuindo uma cobertura dupla de vidros colocada de modo a deixar um espaço para a circulação de ar. Os raios solares atravessam a cobertura de vidro e aquecem a massa absorvente de tijolo, a qual aquece o ar que é introduzido no interior da construção por efeito de termossifão. Uma das principais características do coletor solar acumulador consiste no fato de que a resposta do coletor é defasada no tempo. Este fenômeno permite que o coletor entregue calor ao ambiente mesmo após o término da radiação solar. Essa defasagem dos picos de energia térmica ocorre devido ao baixo valor da difusividade térmica do concreto. Este trabalho foi dividido em duas etapas. A primeira etapa consistiu na montagem de um calorímetro para controle e monitoração das variáveis envolvidas. No interior do calorímetro foram instaladas 36 garrafas com água. As temperaturas dos conteúdos das garrafas, do coletor solar e as radiações envolvidas foram monitoradas através de 26 sensores de temperatura de CI, 8 sensores resistivos PT100 e dois sensores de radiação fotovoltaicos. Para obter as medidas dos sensores instalados foi feita a montagem de um sistema de aquisição de dados interfaceado a um microcomputador A segunda etapa consistiu na produção de um programa computacional, escrito em linguagem Fortran 90, para simular o comportamento térmico dos diversos elementos constituintes do coletor, determinar a potência térmica do coletor solar e sua eficiência diária. Para a simulação numérica do coletor solar acumulador, adotou-se um modelo simplificado bidimensional do mesmo. Foi integrada, através do Método dos Volumes Finitos, a equação de difusão de calor transiente em 2 dimensões. Na formulação das equações lineares optou-se pelo emprego das diferenças centrais no espaço e formulação explícita no tempo. Ao todo foram produzidas 4 malhas computacionais, com distintos refinamentos e foi realizado o estudo da estabilidade numérica das diversas malhas. Através da montagem experimental obtiveram-se várias características térmicas do comportamento do sistema, entre as quais, a transmitância da cobertura, curvas de temperatura do ar fornecido ao calorímetro e curva da eficiência diária do coletor solar . Através da simulação numérica foi possível determinar a potência térmica que o coletor entrega para o laboratório, a eficiência do coletor, os campos de temperatura e a vazão mássica nos diversos canais interiores do coletor solar.

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The study of complex systems has become a prestigious area of science, although relatively young . Its importance was demonstrated by the diversity of applications that several studies have already provided to various fields such as biology , economics and Climatology . In physics , the approach of complex systems is creating paradigms that influence markedly the new methods , bringing to Statistical Physics problems macroscopic level no longer restricted to classical studies such as those of thermodynamics . The present work aims to make a comparison and verification of statistical data on clusters of profiles Sonic ( DT ) , Gamma Ray ( GR ) , induction ( ILD ) , neutron ( NPHI ) and density ( RHOB ) to be physical measured quantities during exploratory drilling of fundamental importance to locate , identify and characterize oil reservoirs . Software were used : Statistica , Matlab R2006a , Origin 6.1 and Fortran for comparison and verification of the data profiles of oil wells ceded the field Namorado School by ANP ( National Petroleum Agency ) . It was possible to demonstrate the importance of the DFA method and that it proved quite satisfactory in that work, coming to the conclusion that the data H ( Hurst exponent ) produce spatial data with greater congestion . Therefore , we find that it is possible to find spatial pattern using the Hurst coefficient . The profiles of 56 wells have confirmed the existence of spatial patterns of Hurst exponents , ie parameter B. The profile does not directly assessed catalogs verification of geological lithology , but reveals a non-random spatial distribution

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This study presents a description of the development model of a representation of simplified grid applied in hybrid load flow for calculation of the voltage variations in a steady-state caused by the wind farm on power system. Also, it proposes an optimal load-flow able to control power factor on connection bar and to minimize the loss. The analysis process on system, led by the wind producer, it has as base given technician supplied by the grid. So, the propose model to the simplification of the grid that allows the necessity of some knowledge only about the data referring the internal network, that is, the part of the network that interests in the analysis. In this way, it is intended to supply forms for the auxiliary in the systematization of the relations between the sector agents. The model for simplified network proposed identifies the internal network, external network and the buses of boulders from a study of vulnerability of the network, attributing them floating liquid powers attributing slack models. It was opted to apply the presented model in Newton-Raphson and a hybrid load flow, composed by The Gauss-Seidel method Zbarra and Summation Power. Finally, presents the results obtained to a developed computational environment of SCILAB and FORTRAN, with their respective analysis and conclusion, comparing them with the ANAREDE

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

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The modern society depends on an efficient communications system able to of transmitting and receiving information with a higher speed and reliability every time. The need for ever more efficient devices raises optimization techniques of microstrip devices, such as techniques to increase bandwidth: thicker substrates and substrate structures with EBG (Electromagnetic Band Gap) and PBG (Photonic Band Gap). This work has how aims the study of the application of PBG materials on substrates of planar structures in microstrip, more precisely in directional quadrature couplers and in rat-race and impedance of transformers. A study of the planar structures in microstrip and substrates EBG is presented. The PBG substrates can be used to optimize the radiation through the air, thus reducing the occurrence of surface waves and the resulting diffraction edge responsible for degradation of radiation pattern. Through specific programs in FORTRAN Power Station obtained the frequencies and couplings for each structure. Are used the program PACMO - Computer Aided Design in Microwave. Results are obtained of the frequency and coupling devices, ranging the frequency band used (cellular communication and Wimax systems) and the permittivity of the substrate, comparing the results of conventional material and PBG materials in the s and p polarizations.

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The last years have presented an increase in the acceptance and adoption of the parallel processing, as much for scientific computation of high performance as for applications of general intention. This acceptance has been favored mainly for the development of environments with massive parallel processing (MPP - Massively Parallel Processing) and of the distributed computation. A common point between distributed systems and MPPs architectures is the notion of message exchange, that allows the communication between processes. An environment of message exchange consists basically of a communication library that, acting as an extension of the programming languages that allow to the elaboration of applications parallel, such as C, C++ and Fortran. In the development of applications parallel, a basic aspect is on to the analysis of performance of the same ones. Several can be the metric ones used in this analysis: time of execution, efficiency in the use of the processing elements, scalability of the application with respect to the increase in the number of processors or to the increase of the instance of the treat problem. The establishment of models or mechanisms that allow this analysis can be a task sufficiently complicated considering parameters and involved degrees of freedom in the implementation of the parallel application. An joined alternative has been the use of collection tools and visualization of performance data, that allow the user to identify to points of strangulation and sources of inefficiency in an application. For an efficient visualization one becomes necessary to identify and to collect given relative to the execution of the application, stage this called instrumentation. In this work it is presented, initially, a study of the main techniques used in the collection of the performance data, and after that a detailed analysis of the main available tools is made that can be used in architectures parallel of the type to cluster Beowulf with Linux on X86 platform being used libraries of communication based in applications MPI - Message Passing Interface, such as LAM and MPICH. This analysis is validated on applications parallel bars that deal with the problems of the training of neural nets of the type perceptrons using retro-propagation. The gotten conclusions show to the potentiality and easinesses of the analyzed tools.

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Nowadays there has been a major breakthrough in the aerospace area, with regard to rocket launches to research, experiments, telemetry system, remote sensing, radar system (tracking and monitoring), satellite communications system and insertion of satellites in orbit. This work aims at the application of a circular cylindrical microstrip antenna, ring type, and other cylindrical rectangular in structure of a rocket or missile to obtain telemetry data, operating in the range of 2 to 4 GHz, in S-band. Throughout this was developed just the theoretical analysis of the Transverse transmission line method which is a method of rigorous analysis in spectral domain, for use in rockets and missiles. This analyzes the spread in the direction "ρ" , transverse to dielectric interfaces "z" and "φ", for cylindrical coordinates, thus taking the general equations of electromagnetic fields in function of e [1]. It is worth mentioning that in order to obtain results, simulations and analysis of the structure under study was used HFSS program (High Frequency Structural Simulator) that uses the finite element method. With the theory developed computational resources were used to obtain the numerical calculations, using Fortran Power Station, Scilab and Wolfram Mathematica ®. The prototype was built using, as a substrate, the ULTRALAM ® 3850, of Rogers Corporation, and an aluminum plate as a cylindrical structure used to support. The agreement between the measured and simulated results validate the established processes. Conclusions and suggestions are presented for continuing this work

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The processing of materials through plasma has been growing enough in the last times in several technological applications, more specifically in surfaces treatment. That growth is due, mainly, to the great applicability of plasmas as energy source, where it assumes behavior thermal, chemical and/or physical. On the other hand, the multiplicity of simultaneous physical effects (thermal, chemical and physical interactions) present in plasmas increases the complexity for understanding their interaction with solids. In that sense, as an initial step for the development of that subject, the present work treats of the computational simulation of the heating and cooling processes of steel and copper samples immersed in a plasma atmosphere, by considering two experimental geometric configurations: hollow and plane cathode. In order to reach such goal, three computational models were developed in Fortran 90 language: an one-dimensional transient model (1D, t), a two-dimensional transient model (2D, t) and a two-dimensional transient model (2D, t) which take into account the presence of a sample holder in the experimental assembly. The models were developed based on the finite volume method and, for the two-dimensional configurations, the effect of hollow cathode on the sample was considered as a lateral external heat source. The main results obtained with the three computational models, as temperature distribution and thermal gradients in the samples and in the holder, were compared with those developed by the Laboratory of Plasma, LabPlasma/UFRN, and with experiments available in the literature. The behavior showed indicates the validity of the developed codes and illustrate the need of the use of such computational tool in that process type, due to the great easiness of obtaining thermal information of interest

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The pumping through progressing cavities system has been more and more employed in the petroleum industry. This occurs because of its capacity of elevation of highly viscous oils or fluids with great concentration of sand or other solid particles. A Progressing Cavity Pump (PCP) consists, basically, of a rotor - a metallic device similar to an eccentric screw, and a stator - a steel tube internally covered by a double helix, which may be rigid or deformable/elastomeric. In general, it is submitted to a combination of well pressure with the pressure generated by the pumping process itself. In elastomeric PCPs, this combined effort compresses the stator and generates, or enlarges, the clearance existing between the rotor and the stator, thus reducing the closing effect between their cavities. Such opening of the sealing region produces what is known as fluid slip or slippage, reducing the efficiency of the PCP pumping system. Therefore, this research aims to develop a transient three-dimensional computational model that, based on single-lobe PCP kinematics, is able to simulate the fluid-structure interaction that occurs in the interior of metallic and elastomeric PCPs. The main goal is to evaluate the dynamic characteristics of PCP s efficiency based on detailed and instantaneous information of velocity, pressure and deformation fields in their interior. To reach these goals (development and use of the model), it was also necessary the development of a methodology for generation of dynamic, mobile and deformable, computational meshes representing fluid and structural regions of a PCP. This additional intermediary step has been characterized as the biggest challenge for the elaboration and running of the computational model due to the complex kinematic and critical geometry of this type of pump (different helix angles between rotor and stator as well as large length scale aspect ratios). The processes of dynamic generation of meshes and of simultaneous evaluation of the deformations suffered by the elastomer are fulfilled through subroutines written in Fortan 90 language that dynamically interact with the CFX/ANSYS fluid dynamic software. Since a structural elastic linear model is employed to evaluate elastomer deformations, it is not necessary to use any CAE package for structural analysis. However, an initial proposal for dynamic simulation using hyperelastic models through ANSYS software is also presented in this research. Validation of the results produced with the present methodology (mesh generation, flow simulation in metallic PCPs and simulation of fluid-structure interaction in elastomeric PCPs) is obtained through comparison with experimental results reported by the literature. It is expected that the development and application of such a computational model may provide better details of the dynamics of the flow within metallic and elastomeric PCPs, so that better control systems may be implemented in the artificial elevation area by PCP

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Multiphase flows in ducts can adopt several morphologies depending on the mass fluxes and the fluids properties. Annular flow is one of the most frequently encountered flow patterns in industrial applications. For gas liquid systems, it consists of a liquid film flowing adjacent to the wall and a gas core flowing in the center of the duct. This work presents a numerical study of this flow pattern in gas liquid systems in vertical ducts. For this, a solution algorithm was developed and implemented in FORTRAN 90 to numerically solve the governing transport equations. The mass and momentum conservation equations are solved simultaneously from the wall to the center of the duct, using the Finite Volumes Technique. Momentum conservation in the gas liquid interface is enforced using an equivalent effective viscosity, which also allows for the solution of both velocity fields in a single system of equations. In this way, the velocity distributions across the gas core and the liquid film are obtained iteratively, together with the global pressure gradient and the liquid film thickness. Convergence criteria are based upon satisfaction of mass balance within the liquid film and the gas core. For system closure, two different approaches are presented for the calculation of the radial turbulent viscosity distribution within the liquid film and the gas core. The first one combines a k- Ɛ one-equation model and a low Reynolds k-Ɛ model. The second one uses a low Reynolds k- Ɛ model to compute the eddy viscosity profile from the center of the duct right to the wall. Appropriate interfacial values for k e Ɛ are proposed, based on concepts and ideas previously used, with success, in stratified gas liquid flow. The proposed approaches are compared with an algebraic model found in the literature, specifically devised for annular gas liquid flow, using available experimental results. This also serves as a validation of the solution algorithm

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The treatment of wastewaters contaminated with oil is of great practical interest and it is fundamental in environmental issues. A relevant process, which has been studied on continuous treatment of contaminated water with oil, is the equipment denominated MDIF® (a mixer-settler based on phase inversion). An important variable during the operation of MDIF® is the water-solvent interface level in the separation section. The control of this level is essential both to avoid the dragging of the solvent during the water removal and improve the extraction efficiency of the oil by the solvent. The measurement of oil-water interface level (in line) is still a hard task. There are few sensors able to measure oil-water interface level in a reliable way. In the case of lab scale systems, there are no interface sensors with compatible dimensions. The objective of this work was to implement a level control system to the organic solvent/water interface level on the equipment MDIF®. The detection of the interface level is based on the acquisition and treatment of images obtained dynamically through a standard camera (webcam). The control strategy was developed to operate in feedback mode, where the level measure obtained by image detection is compared to the desired level and an action is taken on a control valve according to an implemented PID law. A control and data acquisition program was developed in Fortran to accomplish the following tasks: image acquisition; water-solvent interface identification; to perform decisions and send control signals; and to record data in files. Some experimental runs in open-loop were carried out using the MDIF® and random pulse disturbances were applied on the input variable (water outlet flow). The responses of interface level permitted the process identification by transfer models. From these models, the parameters for a PID controller were tuned by direct synthesis and tests in closed-loop were performed. Preliminary results for the feedback loop demonstrated that the sensor and the control strategy developed in this work were suitable for the control of organic solvent-water interface level