989 resultados para Tubular Steel Member
Resumo:
This study analyses the differences between two calculation models for guardrails on building sites that use wooden boards and tubular steel posts. Wood was considered an isotropic material in one model and an orthotropic material in a second model. The elastic constants of the wood were obtained with ultrasound. Frequencies and vibration modes were obtained for both models through linear analysis using the finite element method. The two models were experimentally calibrated through operational modal analysis. The results obtained show that for the three types of wood under analysis, the model which considered them as an orthotropic material fitted the experimental results better than the model which considered them as an isotropic material.
Resumo:
El siglo XIX fue un siglo dedicado a los grandes edificios públicos. Los teatros, las academias, los museos. Sin embargo la arquitectura durante el siglo XX se dedicará al estudio de la casa. Todos los usos y tipologías se verán fuertemente revisados pero el núcleo de todos los esfuerzos y verdadero inicio de la arquitectura moderna será la vivienda. A partir de ella todos los preceptos modernos se irán aplicando a los distintos programas. Nikolaus Pevsner señala a William Morris como el primer arquitecto moderno porque precisamente entendió que un arte verdaderamente social, en consonancia con su tiempo y la sociedad a la que sirve, ha de ocuparse de aquello que preocupe a la gente. Con la nueva situación de la vivienda en el centro de las motivaciones disciplinares el mueble adopta un nuevo protagonismo. En un momento avanzado de su carrera Marcel Breuer observa entre curioso e irónico cómo el mueble moderno había sido promocionado paradójicamente no por los diseñadores de muebles sino por los arquitectos1. La respuesta la da Le Corbusier en una de sus conferencias de 1931 recogida en Precisiones 2 cuando señala la reformulación del mobiliario como el "nudo gordiano" de cuya resolución pendía la renovación de la planta moderna. El Movimiento Moderno se había visto obligado a atacar este tema para poder avanzar en sus propuestas domésticas. El Movimiento Moderno se propuso solucionar los problemas de la vivienda y de una Europa en reconstrucción pero se exigía además ser capaz de aportar una visión propositiva de la vida moderna. No se trataba únicamente de resolver los problemas ya existentes sino que además había la necesidad autoimpuesta de anticipar la domesticidad del futuro. Para ello sus viviendas al completo, mueble e inmueble, debían de presentarse bajo esa nueva imagen. El manifiesto fundacional de la Deustcher Werkbund extendía el radio de acción del nuevo arquitecto desde la construcción de las ciudades a los cojines del sofá. Este mobiliario tenía la compleja misión de condensar sintéticamente todos esos ideales que la modernidad había traído consigo: abstracción, higiene, fascinación maquínica, confianza positivista en la ciencia o la expresión material optimizada. Objetos de la vida moderna, en palabras de Le Corbusier, susceptibles de suscitar un estado de vida moderno. Pocas sillas en la historia del diseño habrán acarreado tanta polémica y tanta disputa por su autoría como la sillas voladas de tubo de acero en sus diferentes versiones. Para entenderlo situémonos en el año 1927 a las puertas de la exposición "Die Wohnung" ("La vivienda") organizada por los maestros de la Bauhaus y dirigida por Mies van der Rohe en la ladera Weissenhof de Stuttgart. Muchos nombres célebres de la arquitectura mostraron en esa ocasión su personal propuesta para la vivienda moderna y los objetos que la habitan. Entre ellos los muebles con tubo de acero fueron una presencia constante en la exposición pero hubo una pieza que destacó sobre todas las demás por su novedad y audacia. La pieza en cuestión era el modelo de silla volada, esto es, sin apoyos posteriores y cuya rigidez estaba conferida al esfuerzo solidario de la estructura continua de tubo de acero y que terminaría por convertirse en el cruce de caminos de tres figuras de la disciplina arquitectónica: Marcel Breuer, Mies van der Rohe y Mart Stam. Cada uno de ellos desarrolló su propio modelo de silla volada en sus versiones MR por parte de Mies, L&C Arnold de Stam y el posterior modelo BR 33 de Marcel Breuer. Los tres, en algún momento de su vida reclamaron de uno u otro modo su autoría como objetos que les pertenecían intelectualmente. Estas sillas se convirtieron en la expresión máxima de uno de los ansiados anhelos de la modernidad, la propia materialidad del acero, en su versión optimizada, era la que había derivado en una forma completamente nueva de un objeto cotidiano y cuyo tipo estaba ya totalmente asumido. Los nuevos materiales y las nuevas formas de hacer habían irrumpido hasta en los utensilios domésticos, y habían sido capaces de reformularlos. El punto de partida para esta investigación es precisamente esa coincidencia de tres figuras de la arquitectura moderna, los tres de formación artesanal, en un mismo modelo de silla y en una misma fecha. Tres arquitectos que se habían encargado de asegurar que el movimiento moderno no reconocía problemas formales sino solamente de construcción, iban a coincidir en el mismo tiempo y lugar, precisamente en una misma forma, como si tal coincidencia hubiera sido producto de una voluntad de época. Sin embargo el interés de este estudio no radica en una indagación sobre la autoría sino sobre cómo un mismo objeto resulta ser propositivo e interesante en campos muy diversos y la forma en que cada uno lo hace suyo incorporándolo a su propia investigación proyectual. La silla, más allá de ser un objeto de diseño exclusivamente, trasciende su propia escala para situarse inmersa en un proceso de búsqueda y exploración a nivel conceptual, formal, constructivo y estructural en la arquitectura cada uno de ellos. En un momento en que el oficio del arquitecto está siendo intensamente redefinido considero especialmente pertinente esta investigación, que en definitiva versa sobre la forma distintiva en que el pensamiento arquitectónico es capaz de proyectarse sobre cualquier disciplina para reformularla. ABSTRACT The nineteenth century was a century dedicated to the great public buildings; theaters, schools or museums. However the architecture in the twentieth century was devoted to the study of housing. All uses and typologies were heavily revised but the focus of all efforts and true beginning of modern architecture was housing. From these beginnings all modern precepts were applied to the various programs. Nikolaus Pevsner points to William Morris as the first modern architect precisely because he understood that a truly social art in line with its time and the society it serves must deal with social concerns at that time. With the new housing situation at the center of disciplinary concerns furniture took on a new prominence. At an advanced stage of his career Marcel Breuer observed partly with curiosity, partly with irony how modern furniture had been promoted not by furniture designers but by architects. The answer is given by Le Corbusier in one of his lectures of 1931 collected in Precisions when he pointed the reformulation of furniture as the "Gordian knot" for the renewal of modern plan resolution. Modernism had been forced to confront this issue in order to advance their domestic approaches. Modernism not only put forward a solution to the problems of housing and a Europe under reconstruction but is also needed to be able to contribute to an exciting vision of modern life. Not only did solve existing problems but also it had the self-imposed necessity of anticipating future domesticity and to do their houses full, movable and immovable, they should be submitted under this new image. The founding manifesto of the Deutsche Werkbund extended the scope of the new architect from building cities to the couch cushions. This furniture had the complex mission of synthetically condensing all the ideals of modernity had brought with it: abstraction, hygiene, mechanization, positivist confidence in science or material expression. Objects of modern life, in words of Le Corbusier, were likely to give rise a state of modern life. Few chairs in design history have resulted in so much controversy and so much dispute over their invention as the various versions of cantilevered tubular steel chairs. To understand this let us place ourselves in 1927 at the gates of the exhibition "Die Wohnung" ("Housing") organized by the teachers of the Bauhaus and directed by Mies van der Rohe in Stuttgart Weissenhoflung. Many famous names in architecture at that time showed their personal proposals for modern housing and the objects that inhabit them. Amongst these objects, the steel tube furniture was a constant presence at the exhibition but there was a piece so audacious that it stood out from all the others. This piece in question was the cantilever model chair, that is, which had no further rear support and whose rigidity was attributed to the solidity of its continues structure of steel tube. This piece would eventually become the crossroads of three very different personalities: Mart Stam, Marcel Breuer and Mies van der Rohe. Each of them developed their own model of cantilevered chair in different versions; The MR model developed by Mies van der Rohe, the L&C by Arnold Stam and a later model BR 33 by Marcel Breuer, and the three, at some point in their lives demanded the authorship of its invention as objects that belonged to them intellectually. These chairs epitomized one of the coveted objects of modernity, steel material in its optimized version, was what had led to a completely new form of an everyday object whose this type was fully adopted on board in design. New materials and production methods had burst into world of household objects, and had been able to reformulate their design. The bold design then became a dark object of controversy. The starting point for this doctoral thesis is the concurrent invention of the same model of chair by three different figures of modern architecture. These three architects, who were responsible for ensuring that the modern movement considered construction rather than form as the main design consideration, were working in the same place and at the same point in time. It was almost as if these three architects were shaped by the culture of the time (Zeitgeist). However the focus of this study lies not in an investigation of responsibility of ownership but in the investigation fo how the same object can turn out to be purposeful and interesting in many different fields and the way in which each researcher makes it his own by developing his own project research. 1927, the year of their meeting, was a initiatory year in the career of our players. The chair, beyond being only a design object transcended its own scale and became immersed in a process of research and development on a conceptual, formal, structural and constructive level in the architectural approach of each of the architects. At a time when the role of the architect is being redefined intensely I consider this research, which ultimately concerns the distinctive way the architectural thought can be projected onto and reformulate any discipline, to be particularly relevant.
Resumo:
The most common method of achieve the required fire resistance is by the use of passive fire protection systems, being intumescent coatings the fire protection material frequently used. These are usually considered thin film coatings as they are applied with a dry film thickness (DFT) between 0.3-3 [mm]. The required DFT is obtained by experimental fire resistance tests performed to assess the contribution of this reactive fire protection material to the steel member fire resistance. This tests are done after dry coating and a short time period of atmospheric conditioning, at constant temperature and humidity. As the coatings formulation is mainly made from polymeric basis compounds, it is expected that the environmental factors, such temperature, humidity and UV radiation (UVA and UVB) significantly affect the intumescent coating fire protection performance and its durability. This work presents a research study about the effects of aging on the fire protection performance of intumescent coatings. A commercial water based coating is submitted to an accelerated aging cycle, using a QUV Accelerated Weathering Tester. This tests aim to simulate 10 years of the coating natural aging. The coating durability is tested comparing the fire protection of small steel samples submitted to a radiant heat flux exposure from a cone calorimeter. In total, 28 tests were performed on intumescent coating protected steel specimens, of which 14 specimens were tested before the hydrothermal aging test and other 14 after accelerated aging. The experimental tests results of the steel temperature evolution shows that increasing the intumescent dry coating film thickness, the fire resistance time increases. After the accelerated aging cycles, the coating lose their ability to expand, resulting in an increase of the steel temperature of approximately 200 [ºC], compared to the samples without aging.
Resumo:
Steel tubular cast-in-place pilings are used throughout the country for many different project types. These piles are a closed-end pipe with varying wall thicknesses and outer diameters, that are driven to depth and then the core is filled with concrete. These piles are typically used for smaller bridges, or secondary structures. Mostly the piling is designed based on a resistance based method which is a function of the soil properties of which the pile is driven through, however there is a structural capacity of these members that is considered to be the upper bound on the loading of the member. This structural capacity is given by the AASHTO LRFD (2010), with two methods. These two methods are based on a composite or non-composite section. Many state agencies and corporations use the non-composite equation because it is requires much less computation and is known to be conservative. However with the trends of the time, more and more structural elements are being investigated to determine ways to better understand the mechanics of the members, which could lead to more efficient and safer designs. In this project, a set of these piling are investigated. The way the cross section reacts to several different loading conditions, along with a more detailed observation of the material properties is considered as part of this research. The evaluation consisted of testing stub sections of pile with varying sizes (10-¾”, 12-¾”), wall thicknesses (0.375”, 0.5”), and testing methods (whole compression, composite compression, push through, core sampling). These stub sections were chosen as they would represent a similar bracing length to many different soils. In addition, a finite element model was developed using ANSYS to predict the strains from the testing of the pile cross sections. This model was able to simulate the strains from most of the loading conditions and sizes that were tested. The bond between the steel shell and the concrete core, along with the concrete strength through the depth of the cross section were some of the material properties of these sections that were investigated.
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This paper describes the behaviour of very high strength (VHS) circular steel tubes strengthened by carbon fibre reinforced polymer (CFRP) and subjected to axial tension. A series of tests were conducted with different bond lengths and number of layers. The distribution of strain through the thickness of CFRP layers and along CFRP bond length was studied. The strain was found to generally decrease along the CFRP bond length far from the joint. The strain through the thickness of the CFRP layers was also found to decrease from bottom to top layer. The effective bond length for high modulus CFRP was established. Finally empirical models were developed to estimate the maximum load for a given CFRP arrangement.
Resumo:
Finite element frame analysis programs targeted for design office application necessitate algorithms which can deliver reliable numerical convergence in a practical timeframe with comparable degrees of accuracy, and a highly desirable attribute is the use of a single element per member to reduce computational storage, as well as data preparation and the interpretation of the results. To this end, a higher-order finite element method including geometric non-linearity is addressed in the paper for the analysis of elastic frames for which a single element is used to model each member. The geometric non-linearity in the structure is handled using an updated Lagrangian formulation, which takes the effects of the large translations and rotations that occur at the joints into consideration by accumulating their nodal coordinates. Rigid body movements are eliminated from the local member load-displacement relationship for which the total secant stiffness is formulated for evaluating the large member deformations of an element. The influences of the axial force on the member stiffness and the changes in the member chord length are taken into account using a modified bowing function which is formulated in the total secant stiffness relationship, for which the coupling of the axial strain and flexural bowing is included. The accuracy and efficiency of the technique is verified by comparisons with a number of plane and spatial structures, whose structural response has been reported in independent studies.
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In the finite element modelling of steel frames, external loads usually act along the members rather than at the nodes only. Conventionally, when a member is subjected to these transverse loads, they are converted to nodal forces which act at the ends of the elements into which the member is discretised by either lumping or consistent nodal load approaches. For a contemporary geometrically non-linear analysis in which the axial force in the member is large, accurate solutions are achieved by discretising the member into many elements, which can produce unfavourable consequences on the efficacy of the method for analysing large steel frames. Herein, a numerical technique to include the transverse loading in the non-linear stiffness formulation for a single element is proposed, and which is able to predict the structural responses of steel frames involving the effects of first-order member loads as well as the second-order coupling effect between the transverse load and the axial force in the member. This allows for a minimal discretisation of a frame for second-order analysis. For those conventional analyses which do include transverse member loading, prescribed stiffness matrices must be used for the plethora of specific loading patterns encountered. This paper shows, however, that the principle of superposition can be applied to the equilibrium condition, so that the form of the stiffness matrix remains unchanged with only the magnitude of the loading being needed to be changed in the stiffness formulation. This novelty allows for a very useful generalised stiffness formulation for a single higher-order element with arbitrary transverse loading patterns to be formulated. The results are verified using analytical stability function studies, as well as with numerical results reported by independent researchers on several simple structural frames.
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Concrete-filled steel tubular (CFST) columns have shown great potential as axial load carrying member and used widely in many mission critical infrastructures. However, attention is needed to strengthen these members where transverse impact force is expected to occur due to vehicle collisions. In this work, finite element (FE) model of carbon fibre reinforced polymer (CFRP) strengthened CFST columns are developed and the effect of CFRP bond length is investigated under transverse impact loading. Initially the numerical models have been validated by comparing impact test results from literature. The validated models are then used for detail parametric studies by varying the length of externally bonded CFRP composites. The parameters considered for this research are impact velocity, impact mass, CFRP modulus, adhesive type, and axial static loading. It has been observed that the effect of CFRP strengthening is consistent after an optimum effective bond length of CFRP wrapping. The effect of effective bond length has been studied for above parameters. The results show that, under combined axial static and transverse impact loads CFST columns can successfully prevent global buckling failure by strengthening only 34% of column length. Therefore, estimation of effective bond length is essential to utilise the CFRP composites cost effectively.
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This paper presents a combined experimental, numerical, and theoretical study on the mechanical behaviors of track-shaped concrete-filled steel tubular (SCFRT) stub columns stiffened by rebars under compressive load. A total of 18 track-shaped concrete-filled steel tubular specimens including 12 specimens stiffened by rebars and 6 non-stiffened counterparts are tested, with consideration of parameters including flakiness ratio, concrete strength, and stiffeners. Failure pattern, bearing capacity, and ductility are all analyzed and discussed based on the experimental results. The numerical simulation by finite element (FE) software ABAQUS is also conducted. Based on both experimental and numerical results, theoretical formula to predict the load-bearing capacity of SCFRT stub columns subjected to axial compression loading is established according to the superposition principle of ultimate load-bearing capacity with rational simplification. The proposed theoretical method provides accurate predictions on the load bearing capacity by comparing with experimental results from 18 groups of specimens.