880 resultados para Masonry materials
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Masonry is a non-homogeneous material, composed of units and mortar, which can be of different types, with distinct mechanical properties. The design of both masonry units and mortar is based on the role of the walls in the building. Load-bearing walls relate to structural elements that bear mainly vertical loads, but can serve also to resist to horizontal loads. When a structural masonry building is submitted to in-plane and out-of-plane loadings induced by an earthquake for example, the masonry walls are the structural elements that ensure the global stability of the building. This means that the walls should have adequate mechanical properties that enable them to resist to different combinations of compressive, shear and tensile stresses.The boundary conditions influence the resisting mechanisms of the structural walls under in-plane loading and in a buildings the connection at the intersection walls are of paramount importance for the out-of-plane resisting mechanism. However, it is well established that the masonry mechanical properties are also relevant for the global mechanical performance of the structural masonry walls. Masonry units for load-bearing walls are usually laid so that their perforations are vertically oriented, whereas for partition walls, brick units with horizontal perforation are mostly adopted.
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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.
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Environmental decay in porous masonry materials, such as brick and mortar, is a widespread problem concerning both new and historic masonry structures. The decay mechanisms are quite complex dependng upon several interconnected parameters and from the interaction with the specific micro-climate. Materials undergo aesthetical and substantial changes in character but while many studies have been carried out, the mechanical aspect has been largely understudied while it bears true importance from the structural viewpoint. A quantitative assessment of the masonry material degradation and how it affects the load-bearing capacity of masonry structures appears missing. The research work carried out, limiting the attention to brick masonry addresses this issue through an experimental laboratory approach via different integrated testing procedures, both non-destructive and mechanical, together with monitoring methods. Attention was focused on transport of moisture and salts and on the damaging effects caused by the crystallization of two different salts, sodium chloride and sodium sulphate. Many series of masonry specimens, very different in size and purposes were used to track the damage process since its beginning and to monitor its evolution over a number of years Athe same time suitable testing techniques, non-destructive, mini-invasive, analytical, of monitoring, were validated for these purposes. The specimens were exposed to different aggressive agents (in terms of type of salt, of brine concentration, of artificial vs. open-air natural ageing, …), tested by different means (qualitative vs. quantitative, non destructive vs. mechanical testing, punctual vs. wide areas, …), and had different size (1-, 2-, 3-header thick walls, full-scale walls vs. small size specimens, brick columns and triplets vs. small walls, masonry specimens vs. single units of brick and mortar prisms, …). Different advanced testing methods and novel monitoring techniques were applied in an integrated holistic approach, for quantitative assessment of masonry health state.
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XXXVI IAHS World Congress on Housing - National Housing Programs-New Visions, November 03–07, 2008, Kolkata, India
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En este trabajo de investigación que se presenta para optar al grado de Doctor, se analizan y estudian los materiales que conforman las viviendas de mampostería de arenisca “Piedra de Ojo” del casco histórico de Maracaibo, Venezuela, construidas en el siglo XIX. No existe una bibliografía descriptiva técnico-constructiva del sistema constructivo, por lo que esta tesis complementa la escasa descripción estilística existente donde apenas se mencionan algunos materiales de construcción. Definido el marco histórico y las manzanas del área en donde se encontraban las viviendas preseleccionadas a estudiar, en la visita de campo se seleccionaron 12 que se encontraban en estado de deterioro, y que permitieron recolectar las muestras más fácilmente. Para realizar la caracterización y comportamientos de los diferentes materiales utilizados: piedra y morteros en los cerramientos, maderas en armaduras de tejados, techos y carpintería de puertas y ventanas, cerámicos en muros y acabados, etc. Para complementar lo antes dicho se ha dividido esta tesis en seis capítulos: En el capítulo I se desarrolla el estado del arte a nivel nacional e internacional de trabajos de investigación, similares. Se aborda la memoria histórica, que es una reseña de la evolución de la vivienda en la ciudad de Maracaibo. En el capítulo II se describe la metodología empleada en la tesis, de acuerdo a los objetivos, tanto generales como específicos de la investigación. Que ha cubierto diferentes frentes: consulta bibliográfica, levantamiento planimétrico, toma de muestras, análisis de visu, caracterización físico-química y correlación de resultados. Se ha desarrollado el trabajo tanto in situ como en laboratorio y despacho. El capítulo III presenta la caracterización de la arenisca “Piedra de Ojo”, se desarrolla: la descripción geológica y caracterización petrológica. Se reseñan los ensayos realizados en laboratorio como: caracterización de visu, caracterización petrográfica, estudio petrográfico por microcopia óptica de trasmisión, estudio petrográfico por microcopia electrónica de barrido, microscopia electrónica de barrido en modo electrones secundarios (SSE) y microscopia electrónica de barrido en modo electrones retrodispersados. También las propiedades escalares de los mampuestos y los siguientes valores: densidades, porosidades y resistencia mecánicas, entre otros. En el capítulo IV se analizan las características de los morteros aplicados en las viviendas, y la patología o lesiones que presentan. Se clasifican en tres tipos: mortero de junta o asiento, de enfoscado y revoco. Se documenta la realización de los ensayos físicos y químicos, resistencia mecánica y de granulometría; se explican sus componentes principales: conglomerante de cal, áridos y aditivos y la tecnología de fabricación, así como las características físicas, hídricas, químicas y granulométricas. El capítulo V, contiene las aplicaciones constructivas de los materiales de albañilería, Se describen otros elementos de la vivienda como; cimentaciones, muros mixtos, molduras, apliques y pinturas y finalmente pavimentos. Y en el capítulo VI se analizan las especies de madera más representativas usadas en las armaduras de las cubiertas, así como los elementos de cubrición. De igual forma se describe la carpintería de puertas y ventanas, así como sus dinteles o cargaderos de madera y se realiza la identificación anatómica, las propiedades físicas y mecánicas de las utilizadas. Entre los resultados y conclusiones se determinó que el 90% de los materiales utilizados en su construcción proceden de zonas cercanas a la construcción de la vivienda, como la formación El Milagro convertida en cantera de piedra y que el resto de los materiales provenían de la Isla de Toas y de la exportación de las islas del Caribe y de Europa como el cemento. El principal aporte de esta investigación es el análisis técnico constructivo y la caracterización física, mecánica y química de los materiales de la vivienda, con el fin de que dicha información sea usada para definir los materiales nuevos a utilizar en las restauraciones de las viviendas y en futuras líneas de investigación. ABSTRACT In this research paper submitted to opt to the degree of Doctor, the materials that make the “Piedra de Ojo” sandstone masonry houses of the historical center of Maracaibo, Venezuela, built in the XIX century, are analyzed and studied. There exists no technical-constructive descriptive literature of the constructive system, so this thesis complements the very limited existing stylistic description, where barely some construction materials are mentioned. With the historical context and the blocks of the area where the preselected houses to be studied being defined, 12 of these houses that were in a state of decay (deterioration) were selected and this condition allowed to collect samples more easily, in order to carry out the characterization and behavior of the different materials used: stone and mortars in the walls, wood trusses in roofs, ceilings and woodwork of doors and windows, walls and ceramic finishes, etc. To complement the foregoing, this thesis has been divided in six chapters: In Chapter I, the state of art at national and international levels of similar research is developed, which is a review of the evolution of housing in the city of Maracaibo. In Chapter II, the methodology used in the thesis is described, according to the research’s objectives, general and specific ones, which have covered several fronts: literature survey, planimetric survey, sampling, visu analysis, physical-chemical characterization and correlation of results. Chapter III presents the characterization of the “Piedra de Ojo” sandstone; geological description and petrologic characterization are developed. Essays performed in the laboratory are reviewed, such as: visu characterization, petrographic characaterization, petrographic study by optical microscopy of transmission, petrographic study by electronic scanning microscopy in secondary electron mode (SSE) and electron microscopy scaning by backscattered electron mode. Also scalar properties of the masonry and the following: density, porosity and mechanical resistance, among others. In Chapter IV, characteristics of the mortars used in the houses are analyzed and pathology or damages are presented. They are classified into three types: grout, cement render and plaster. Physical and chemical testing, mechanical strength and grain size (granulometric) is documented; its main components are explained: lime binder, aggregates and additives and manufacturing technology as well as the physical, water, chemical and granulometric characteristics. Chapter V contains the constructive applications of masonry materials. Other housing elements are described, such as; foundations, mixed walls, moldings, wall paintings and finally floorings (pavements). And in chapter VI the most representative species of wood used in the overhead fixtures and cover elements are analyzed. Likewise, woodwork of doors and windows and their wooden lintels or landings are described; anatomical identification and physical and mechanical properties of the ones used is made. The results and conclusions determined that 90% of the materials used in its construction came from areas near the construction of housing, such as El Milagro formation, converted into stone quarry and other materials came from the Toas Island and from the export of the Caribbean islands and Europe, such as cement. The main contribution of this research is the constructive technical analysis and physical, mechanical and chemical characterization of the materials of the houses, in order that such information is used to define the new materials to be used in the housing restoration and future research lines.
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This study wants to analyze the effectiveness of different reinforcement typologies for masonry columns, in particular Fiber-Reinforced Polymer (FRP) and FRCM. The behavior of 10 solid – brick columns that are externally wrapped by FRP sheets and 2 unreinforced columns are presented in this study. The specimens are subjected to axial load until failure occurs. Three different confinement schemes were experimentally analyzed in order to evaluate and compare the effectiveness of the proposed strengthening techniques: 1) Grid carbon FRP (CFRP_G); 2) Grid glass FRP (GFRP_G); 3) Uniaxial carbon FRP (CFRP_U). Two different configurations of the reinforcing system were investigated: FRP sheets are applied as external reinforcement along the perimeter of the masonry columns in the form of continuous and discontinuous wrap, respectively. The results, compared with those for un-reinforced columns, indicate an increases in ultimate load, stiffness and ductility.
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"Prepared under the supervision of William A. Radford, editor-in-chief ... Alfred Sidney Johnson ... editor in charge."
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Mode of access: Internet.
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Historic vaulted masonry structures often need strengthening interventions that can effectively improve their structural performance, especially during seismic events, and at the same time respect the existing setting and the modern conservation requirements. In this context, the use of innovative materials such as fiber-reinforced composite materials has been shown as an effective solution that can satisfy both aspects. This work aims to provide insight into the computational modeling of a full-scale masonry vault strengthened by fiber-reinforced composite materials and analyze the influence of the arrangement of the reinforcement on the efficiency of the intervention. At first, a parametric model of a cross vault focusing on a realistic representation of its micro-geometry is proposed. Then numerical modeling, simulating the pushover analyses, of several barrel vaults reinforced with different reinforcement configurations is performed. Finally, the results are collected and discussed in terms of force-displacement curves obtained for each proposed configuration.
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The results of a combined experimental program and numerical modeling program to evaluate the behavior of ungrouted hollow concrete blocks prisms under uniaxial compression are addressed. In the numerical program, three distinct approaches have been considered using a continuum model with a smeared approach, namely plane-stress, plane-strain and three-dimensional conditions. The response of the numerical simulations is compared with experimental data of masonry prisms using concrete blocks specifically designed for this purpose. The elastic and inelastic parameters were acquired from laboratory tests on concrete and mortar samples that constitute the blocks and the bed joint of the prisms. The results from the numerical simulations are discussed with respect to the ability to reproduce the global response of the experimental tests, and with respect to the failure behavior obtained. Good agreement between experimental and numerical results was found for the peak load and for the failure mode using the three-dimensional model, on four different sets of block/mortar types. Less good agreement was found for plain stress and plain strain models.
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Present paper present the main results obtained in the scope of an ongoing project which aims to contribute to the valorization of a waste generated by the Portuguese oil company in construction materials. This waste is an aluminosilicate with high pozzolanic reactivity. Several different technological applications had already been tested with success both in terms of properties and compliance with the corresponding standards specifications. Namely, this project results already demonstrated that this waste can be used in traditional concrete, self-compacted concrete, mortars (renders, masonry mortar, concrete repair mortars), cement main constituent as well as alkali activated binders.
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HMC08 - 1st Historical Mortars Conference: Characterization, Diagnosis, Conservation, Repair and Compatibility, LNEC, Lisbon, 24-26 September 2008
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HMC08 - 1st Historical Mortars Conference: Characterization, Diagnosis, Conservation, Repair and Compatibility, LNEC, Lisbon, 24-26 September 2008
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This study deals with the characterization of masonry mortars produced with different binders and sands. Several properties of the mortars were determined, like consistence, compressive and flexural strengths, shrinkage and fracture energy. By varying the type of binder (Portland cement, hydrated lime and hydraulic lime) and the type of sand (natural or artificial), it was possible to draw some conclusions about the influence of the composition on mortars properties. The results showed that the use of Portland cement makes the achievement of high strength classes easier. This was due to the slower hardening of lime compared with cement. The results of fracture energy tests showed much higher values for artificial sand mortars when compared with natural sand ones. This is due to the higher roughness of artificial sand particles which provided better adhesion between sand and binder.
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The development of novel strengthening techniques to address the seismic vulnerability of masonry elements is gradually leading to simpler, faster and more effective strengthening strategies. In particular, the use of fabric reinforced cementitious matrix systems is considered of great potential, given the increase of ductility achieved with simple and economic strengthening procedures. To assess the effectiveness of these strengthening systems, and considering that the seismic action is involved, one important component of the structural behaviour is the in-plane cyclic response. In this work is discussed the applicability of the diagonal tensile test for the assessment of the cyclic response of strengthened masonry. The results obtained allowed to assess the contribution of the strengthening system to the increase of the load carrying capacity of masonry elements, as well as to evaluate the damage evolution and the stiffness degradation mechanisms developing under cyclic loading.