7 resultados para Ground Conditions

em Universidad Politécnica de Madrid


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Dynamic weighing systems based on load cells are commonly used to estimate crop yields in the field. There is lack of data, however, regarding the accuracy of such weighing systems mounted on harvesting machinery, especially on that used to collect high value crops such as fruits and vegetables. Certainly, dynamic weighing systems mounted on the bins of grape harvesters are affected by the displacement of the load inside the bin when moving over terrain of changing topography. In this work, the load that would be registered in a grape harvester bin by a dynamic weighing system based on the use of a load cell was inferred by using the discrete element method (DEM). DEM is a numerical technique capable of accurately describing the behaviour of granular materials under dynamic situations and it has been proven to provide successful predictions in many different scenarios. In this work, different DEM models of a grape harvester bin were developed contemplating different influencing factors. Results obtained from these models were used to infer the output given by the load cell of a real bin. The mass detected by the load cell when the bin was inclined depended strongly on the distribution of the load within the bin, but was underestimated in all scenarios. The distribution of the load was found to be dependent on the inclination of the bin caused by the topography of the terrain, but also by the history of inclination (inclination rate, presence of static periods, etc.) since the effect of the inertia of the particles (i.e., representing the grapes) was not negligible. Some recommendations are given to try to improve the accuracy of crop load measurement in the field.

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En esta Tesis Doctoral se aborda un tema poco estudiado en el ámbito de los túneles y cuya problemática está basada en los riesgos e incertidumbres que representa el diseño y ejecución de túneles en macizos calizos karstificados. Mediante un estudio profundo del comportamiento de distintos casos reales de túneles en macizos kársticos calizos, aportando la realización de modelos y la experiencia constructiva del autor, se pretende proponer un procedimiento que permita sistematizar las actuaciones, investigación, evaluación y tratamiento en los túneles en karst, como herramienta básica para la toma de decisiones primarias correctas. Además, se proponen herramientas que pueden ayudar a mejorar el diseño y a decidir las medidas más eficientes para afrontar los problemas que genera el karst en los túneles, minimizando los riesgos para todos los actores, su probabilidad e impacto. Se profundiza en tres fases principales (que son referidas en la tesis en cuatro Partes): La INVESTIGACIÓN del macizo rocoso: La investigación engloba todas las actuaciones observacionales encaminadas a obtener el IK (Índice de Karstificación), así como las investigaciones necesarias mediante recopilación de datos superficiales, hidrogeológicos, climáticos, topográficos, así como los datos de investigaciones geofísicas, fotointerpretación, sondeos y ensayos geotécnicos que sean posibles. Mediante la misma, se debe alcanzar un conocimiento suficiente para llevar a cabo la determinación de la Caracterización geomecánica básica del macizo rocoso a distintas profundidades, la determinación del Modelo o modo de karstificación del macizo rocoso respecto al túnel y la Zonificación del índice de karstificación en el ámbito de actuación en el que se implantará el túnel. En esta primera fase es necesaria la correcta Definición geométrica y trazado de la obra subterránea: En función de las necesidades que plantee el proyecto y de los condicionantes externos de la infraestructura, se deben establecer los requisitos mínimos de gálibo necesarios, así como las condiciones de máximas pendientes para el trazado en alzado y los radios mínimos de las curvas en planta, en función del procedimiento constructivo y motivación de construcción del túnel (ferrocarril, carretera o hidráulico, etc...). Estas son decisiones estratégicas o primerias para las que se ha de contar con un criterio y datos adecuados. En esta fase, son importantes las decisiones en cuanto a las monteras o profundidades relativas a la karstificación dominante e investigación de las tensiones naturales del macizo, tectónica, así como las dimensiones del túnel en función de las cavidades previstas, tratamientos, proceso de excavación y explotación. En esta decisión se debe definir, conocida ya de forma parcial la geotecnia básica, el procedimiento de excavación en función de las longitudes del túnel y la clasificación geomecánica del terreno, así como sus monteras mínimas, accesos y condicionantes medioambientales, pero también en función de la hidrogeología. Se establecerá la afección esperable en el túnel, identificando en la sectorización del túnel, la afección esperable de forma general para las secciones pésimas del túnel. Con todos estos datos, en esta primera aproximación, es posible realizar el inventario de casos posibles a lo largo del trazado, para poder, posteriormente, minimizar el número de casos con mayores riesgos (técnicos, temporales o económicos) que requieran de tratamiento. Para la fase de EVALUACIÓN de la matriz de casos posibles en función del trazado inicial escogido (que puede estar ya impuesto por el proyecto, si no se ha podido intervenir en dicha fase), es necesario valorar el comportamiento teórico del túnel en toda su longitud, estudiando las secciones concretas según el tipo y el modo de afección (CASOS) y todo ello en función de los resultados de los estudios realizados en otros túneles. Se debe evaluar el riesgo para cada uno de los casos en función de las longitudes de túnel que se esperan que sean afectadas y el proceso constructivo y de excavación que se vaya a adoptar, a veces varios. Es importante tener en cuenta la existencia o no de agua o relleno arcilloso o incluso heterogéneo en las cavidades, ya que los riesgos se multiplican, así mismo se tendrá en cuenta la estabilidad del frente y del perímetro del túnel. En esta segunda fase se concluirá una nueva matriz con los resultados de los riesgos para cada uno de los casos que se presentarán en el túnel estudiado. El TRATAMIENTO, que se debe proponer al mismo tiempo que una serie de actuaciones para cada uno de los casos (combinación de tipos y modos de afección), debiendo evaluar la eficacia y eficiencia, es decir la relevancia técnica y económica, y como se pueden optimizar los tratamientos. Si la tabla de riesgos que se debe generar de nuevo introduciendo los factores técnicos y económicos no resulta aceptable, será necesaria la reconsideración de los parámetros determinados en fases anteriores. Todo el desarrollo de estas tres etapas se ha recogido en 4 partes, en la primera parte se establece un método de estudio e interpretativo de las investigaciones superficiales y geotécnicas, denominado índice de karstificación. En la segunda parte, se estudia la afección a las obras subterráneas, modelos y tipos de afección, desde un punto de vista teórico. La tercera parte trata de una recopilación de casos reales y las consecuencias extraídas de ellos. Y finalmente, la cuarta parte establece los tratamientos y actuaciones para el diseño y ejecución de túneles en macizos kársticos calizos. Las novedades más importantes que presenta este trabajo son: El estudio de los casos de túneles realizados en karst calizo. Propuesta de los tratamientos más efectivos en casos generales. La evaluación de riesgos en función de las tipologías de túnel y afecciones en casos generales. La propuesta de investigación superficial mediante el índice de karstificación observacional. La evaluación mediante modelos del comportamiento teórico de los túneles en karst para casos muy generales de la influencia de la forma, profundidad y desarrollo de la karstificación. In this doctoral thesis is studied the recommended investigation, evaluation and treatment when a tunnel is planed and constructed in karstic calcareous rock masses. Calcareous rock masses were selected only because the slow disolution produces stable conduct and caves instead the problems of sudden disolutions. Karstification index (IK) that encompasses various aspects of research karstic rock mass is presented. The karst rock masses are all unique and there are no similarities between them in size or density cavities ducts, but both their formation mechanisms, like, geological and hydrogeological geomorphological evidence allow us, through a geomechanical survey and geological-photo interpretation in the surface, establish a karst evaluation index specific for tunnelling, which allows us to set a ranking of the intensity of karstification and the associated stadistic to find caves and its risk in tunnelling. This index is estimated and useful for decision-making and evaluation of measures to be considered in the design of a tunnel and is set in degrees from 0 to 100, with similar to the RMR degrees. The sectorization of the tunnel section and the types of condition proposed in this thesis, are estimated also useful to understand the different effects that interception of ducts and cavities may have in the tunnel during construction and service life. Simplified calculations using two-dimensional models contained in the thesis, have been done to establish the relationship between the position of the cavities relative to the section of the tunnel and its size in relation to the safety factors for each ground conditions, cover and natural stresses. Study of over 100 cases of tunnels that have intercepted cavities or karst conduits have been used in this thesis and the list of risks found in these tunnels have been related as well. The most common and effective treatments are listed and finally associated to the models and type of affection generated to give the proper tool to help in the critical decision when the tunnels intercept cavities. Some existing studies from Marinos have been considered for this document. The structure of the thesis is mainly divided 4 parts included in 3 steps: The investigation, the evaluation and the treatments, which match with the main steps needed for the critical decisions to be made during the design and construction of tunnels in karstic rockmasses, very important to get a successfully project done.

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Regenerated silkworm fibers spun through a wet-spinning process followed by an immersion postspinning drawing step show a work to fracture comparable with that of natural silkworm silk fibers in a wide range of spinning conditions. The mechanical behavior and microstructure of these high performance fibers have been characterized, and compared with those fibers produced through conventional spinning conditions. The comparison reveals that both sets of fibers share a common semicrystalline microstructure, but significant differences are apparent in the amorphous region. Besides, high performance fibers show a ground state and the possibility of tuning their tensile behavior. These properties are characteristic of spider silk and not of natural silkworm silk, despite both regenerated and natural silkworm silk share a common composition different from that of spider silk.

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In this paper, in order to select a speed controller for a specific non-linear autonomous ground vehicle, proportional-integral-derivative (PID), Fuzzy, and linear quadratic regulator (LQR) controllers were designed. Here, in order to carry out the tuning of the above controllers, a multicomputer genetic algorithm (MGA) was designed. Then, the results of the MGA were used to parameterize the PID, Fuzzy and LQR controllers and to test them under laboratory conditions. Finally, a comparative analysis of the performance of the three controllers was conducted.

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This paper presents a new hazard-consistent ground motion characterization of the Itoiz dam site, located in Northern Spain. Firstly, we propose a methodology with different approximation levels to the expected ground motion at the dam site. Secondly, we apply this methodology taking into account the particular characteristics of the site and of the dam. Hazard calculations were performed following the Probabilistic Seismic Hazard Assessment method using a logic tree, which accounts for different seismic source zonings and different ground-motion attenuation relationships. The study was done in terms of peak ground acceleration and several spectral accelerations of periods coinciding with the fundamental vibration periods of the dam. In order to estimate these ground motions we consider two different dam conditions: when the dam is empty (T = 0.1 s) and when it is filled with water to its maximum capacity (T = 0.22 s). Additionally, seismic hazard analysis is done for two return periods: 975 years, related to the project earthquake, and 4,975 years, identified with an extreme event. Soil conditions were also taken into account at the site of the dam. Through the proposed methodology we deal with different forms of characterizing ground motion at the study site. In a first step, we obtain the uniform hazard response spectra for the two return periods. In a second step, a disaggregation analysis is done in order to obtain the controlling earthquakes that can affect the dam. Subsequently, we characterize the ground motion at the dam site in terms of specific response spectra for target motions defined by the expected values SA (T) of T = 0.1 and 0.22 s for the return periods of 975 and 4,975 years, respectively. Finally, synthetic acceleration time histories for earthquake events matching the controlling parameters are generated using the discrete wave-number method and subsequently analyzed. Because of the short relative distances between the controlling earthquakes and the dam site we considered finite sources in these computations. We conclude that directivity effects should be taken into account as an important variable in this kind of studies for ground motion characteristics.

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Adjusting N fertilizer application to crop requirements is a key issue to improve fertilizer efficiency, reducing unnecessary input costs to farmers and N environmental impact. Among the multiple soil and crop tests developed, optical sensors that detect crop N nutritional status may have a large potential to adjust N fertilizer recommendation (Samborski et al. 2009). Optical readings are rapid to take and non-destructive, they can be efficiently processed and combined to obtain indexes or indicators of crop status. However, other physiological stress conditions may interfere with the readings and detection of the best crop nutritional status indicators is not always and easy task. Comparison of different equipments and technologies might help to identify strengths and weakness of the application of optical sensors for N fertilizer recommendation. The aim of this study was to evaluate the potential of various ground-level optical sensors and narrow-band indices obtained from airborne hyperspectral images as tools for maize N fertilizer recommendations. Specific objectives were i) to determine which indices could detect differences in maize plants treated with different N fertilizer rates, and ii) to evaluate its ability to identify N-responsive from non-responsive sites.

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Besides space laboratories for in-orbit experimentation, Earth based facilities for laboratory experimentation are of paramount importance for the enhancement on liquid bridge knowledge. In spite of the constraints imposed by simulated microgravity (which force to work either with very small size liquid bridges or by using the Plateau tank technique, amongst other techniques), the availability and accessibility of Earth facilities can circumvent in many cases the drawbacks associated with simulated microgravity conditions. To support theoretical and in orbit experimental studies on liquid bridges under reduced gravity conditions, several ground facilities were developed at IDR. In the following these ground facilities are briefly described, and main results obtained by using them are cited.