10 resultados para Particle size, Pennisetum glaucum (L.) R. B.

em Universidad Politécnica de Madrid


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Influencia de cereal principal y el tamaño medio de partícula de la dieta sobre el desempeño productivo y calidad de los huevos de las gallinas marrones para puesta.

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Si existe una imagen verdaderamente elocuente para describir a Richard Buckminster Fuller (1895-1983) esta es, sin duda, la que el pintor Boris Artzybasheff (1899-1965) realizó para la portada con la que la revista Time abrió el 10 de enero de 1964. En ella se puede ver como la cabeza de este inventor, ingeniero, poeta y arquitecto se encuentra facetada en cientos de triángulos, formando algo que no es sino una cúpula geodésica, como aquellas que le ha­an hecho famoso en todo el mundo. Frente a esta identificación que se da en la imagen de Artzybasheff entre Fuller y sus cúpulas, transformando al arquitecto en su propia obra, lo que se pretende realizar en este trabajo de investigación es el camino inverso, penetrar en esa cabeza o, mejor dicho, en esa cúpula que la alberga, a través del estudio de una de las cúpulas más personales que construyera RBF: la que fue su casa en Carbondale, en la que vivió durante toda la década de los años sesenta del pasado siglo, precisamente los mismo años de aquella fantástica portada de Time. El análisis detallado de esta obra nos permiti¡ acercarnos al centro gravitacional del pensamiento de RBF: la ºsqueda de una mayor libertad para el hombre gracias a una arquitectura más sostenible y, por ello, más económica. Una ºsqueda que le llevó a crear no sólo una casa, sino todo un mundo propio.

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Fuller explicitly connects his career with a childhood full of experiences marked by a merger between the biological and the cultural, constituting a major source of imagery, handled over his whole life. Childhood mobile games like the rope, kyte, swing, wheel, or balloon, all characterized by their dynamic condition, serve as narrative vehicles and provide a context to relate childhood, science and architectural design through an universal approach. We pose three elementary cathegories, in order to trace a genealogy of primary technical objects which operate under tension and mobility principles. Rescued experiences, notions and attitudes from Fuller?s childhood memories, refer to the experience of tension which, in clear contrast with traditional structural methods, which perpetuate the Euclidean, the stable, the massive and the compressive, promote multipolar, dynamic en the ephimeral.

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This work presents the main experimental results obtained from the study of plaster test pieces and boards with addition of various volumetric rubber fractions from mechanical grinding of end-of-life tires (ELTs), in three different particle size gradations. It includes a description of the materials employed, and their proportions. The physical and mechanical properties, as well as the thermal conductivity and acoustic insulation properties are analyzed. Experimental results obtained for specimens with addition of recycled rubber are compared with similar ones, carried out on specimens of plaster of identical features without any addition, evaluating the influence of the particle size and mixture proportions. An improvement in thermal and acoustic performance has been obtained as well as a reduction in density, and as a result, some constructive applications for paving and slabs in rehabilitation works are proposed.

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The study of granular systems is of great interest to many fields of science and technology. The packing of particles affects to the physical properties of the granular system. In particular, the crucial influence of particle size distribution (PSD) on the random packing structure increase the interest in relating both, either theoretically or by computational methods. A packing computational method is developed in order to estimate the void fraction corresponding to a fractal-like particle size distribution.

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The study of particulate systems is of great interest in many fields of science and technology. Soil, sediments, powders, granular materials, colloidal and particulate suspensions are examples of systems involving many size particles. For those systems, the statistical description of the particle size distribution (PSD), that is, the mathematical distribution that defines the relative amounts of particles present, sorted according to size, is a crutial issue. The PSD can be important in understanding soil hydraulic properties, the geological origin or sediments or the physical and chemical properties of granular materials and ceramics, among others.

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A 2D computer simulation method of random packings is applied to sets of particles generated by a self-similar uniparametric model for particle size distributions (PSDs) in granular media. The parameter p which controls the model is the proportion of mass of particles corresponding to the left half of the normalized size interval [0,1]. First the influence on the total porosity of the parameter p is analyzed and interpreted. It is shown that such parameter, and the fractal exponent of the associated power scaling, are efficient packing parameters, but this last one is not in the way predicted in a former published work addressing an analogous research in artificial granular materials. The total porosity reaches the minimum value for p = 0.6. Limited information on the pore size distribution is obtained from the packing simulations and by means of morphological analysis methods. Results show that the range of pore sizes increases for decreasing values of p showing also different shape in the volume pore size distribution. Further research including simulations with a greater number of particles and image resolution are required to obtain finer results on the hierarchical structure of pore space.

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The study of granular systems is of great interest to many fields of science and technology. The packing of particles affects to the physical properties of the granular system. In particular, the crucial influence of particle size distribution (PSD) on the random packing structure increase the interest in relating both, either theoretically or by computational methods. A packing computational method is developed in order to estimate the void fraction corresponding to a fractal-like particle size distribution.

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Nowadays, translating information about hydrologic and soil properties and processes across scales has emerged as a major theme in soil science and hydrology, and suitable theories for upscaling or downscaling hydrologic and soil information are being looked forward. The recognition of low-order catchments as self-organized systems suggests the existence of a great amount of links at different scales between their elements. The objective of this work was to research in areas of homogeneous bedrock material, the relationship between the hierarchical structure of the drainage networks at hillslope scale and the heterogeneity of the particle-size distribution at pedon scale. One of the most innovative elements in this work is the choice of the parameters to quantify the organization level of the studied features. The fractal dimension has been selected to measure the hierarchical structure of the drainage networks, while the Balanced Entropy Index (BEI) has been the chosen parameter to quantify the heterogeneity of the particle-size distribution from textural data. These parameters have made it possible to establish quantifiable relationships between two features attached to different steps in the scale range. Results suggest that the bedrock lithology of the landscape constrains the architecture of the drainage networks developed on it and the particle soil distribution resulting in the fragmentation processes.

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Nowadays, translating information about hydrologic and soil properties and processes across scales has emerged as a major theme in soil science and hydrology, and suitable theories for upscaling or downscaling hydrologic and soil information are being looked forward. The recognition of low-order catchments as self-organized systems suggests the existence of a great amount of links at different scales between their elements. The objective of this work was to research in areas of homogeneous bedrock material, the relationship between the hierarchical structure of the drainage networks at hillslope scale and the heterogeneity of the particle-size distribution at pedon scale. One of the most innovative elements in this work is the choice of the parameters to quantify the organization level of the studied features. The fractal dimension has been selected to measure the hierarchical structure of the drainage networks, while the Balanced Entropy Index (BEI) has been the chosen parameter to quantify the heterogeneity of the particle-size distribution from textural data. These parameters have made it possible to establish quantifiable relationships between two features attached to different steps in the scale range. Results suggest that the bedrock lithology of the landscape constrains the architecture of the drainage networks developed on it and the particle soil distribution resulting in the fragmentation processes.