966 resultados para MANUALS


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Contiene además con port. propia : El Parnaso español pintoresco y laureado con la vida de los pintores y estatuarios eminentes españoles... / por don Antonio Palomino de Castro y Velasco ... ; tomo tercero

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In the context of the present conference paper culverts are defined as an opening or conduit passing through an embankment usually for the purpose of conveying water or providing safe pedestrian and animal crossings under rail infrastructure. The clear opening of culverts may reach values of up to 12m however, values around 3m are encountered much more frequently. Depending on the topography, the number of culverts is about 10 times that of bridges. In spite of this, their dynamic behavior has received far less attention than that of bridges. The fundamental frequency of culverts is considerably higher than that of bridges even in the case of short span bridges. As the operational speed of modern high-speed passenger rail systems rises, higher frequencies are excited and thus more energy is encountered in frequency bands where the fundamental frequency of box culverts is located. Many research efforts have been spent on the subject of ballast instability due to bridge resonance, since it was first observed when high-speed trains were introduced to the Paris/Lyon rail line. To prevent this phenomenon from occurring, design codes establish a limit value for the vertical deck acceleration. Obviously one needs some sort of numerical model in order to estimate this acceleration level and at that point things get quite complicated. Not only acceleration but also displacement values are of interest e.g. to estimate the impact factor. According to design manuals the structural design should consider the depth of cover, trench width and condition, bedding type, backfill material, and compaction. The same applies to the numerical model however, the question is: What type of model is appropriate for this job? A 3D model including the embankment and an important part of the soil underneath the culvert is computationally very expensive and hard to justify taking into account the associated costs. Consequently, there is a clear need for simplified models and design rules in order to achieve reasonable costs. This paper will describe the results obtained from a 2D finite element model which has been calibrated by means of a 3D model and experimental data obtained at culverts that belong to the high-speed railway line that links the two towns of Segovia and Valladolid in Spain

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El objetivo del presente Proyecto Fin de Grado es la realización de una comparativa de los resultados obtenidos en las medidas de SAR (tasa de absorción específica) y potencia utilizando la normativa europea CENELEC (basada en la del IEC) y la americana FCC (basada en la del IEEE) para distintos dispositivos móviles duales. En primer lugar se ha realizado el estudio de sus características de potencia y de SAR, viendo la variación que hay con respecto a las distintas normativas y rangos de frecuencias. En algunos casos, aunque funcionan sin problema alguno en las diferentes bandas, la diferencia de niveles de emisiones obtenidos en las diferentes bandas puede ser notable. Como se ha comentado al comienzo, se han utilizado diferentes dispositivos duales y se realizaron en ellos las medidas pertinentes utilizando las diferentes normativas y el procedimiento indicado en cada una de ellas. Para observar las diferencias concretas que pudieran existir al utilizar las diferentes normativas, las medidas se han realizado en todas las bandas de funcionamiento del dispositivo y para cada una de ellas se han aplicado las diferentes normativas. Con esto se pretende evaluar si pudiera existir alguna discrepancia en los dispositivos que tienen el certificado de conformidad para una norma concreta cuando se utiliza en otra banda que no es exactamente la banda de utilización de esa norma. En resumen, se quería comprobar que un dispositivo que está certificado con la norma de una región, por ejemplo Europa (900 y 1800 MHz), también cumple si se utiliza en otra región, por ejemplo América (850 y 1900 MHz). La realización práctica del presente PFG se ha hecho en las instalaciones del Laboratorio de Radiofrecuencia de la Secretaría de Estado de Telecomunicación y para la Sociedad de la Información ubicado en El Casar (Guadalajara). En concreto se utilizó el robot articulado movible DASY4 y el software para su control DASY 52.8, disponible en el “banco de medida de Campos Electromagnéticos (Sala de SAR)”. La duración estimada del presente PFG ha sido aproximadamente de cuatro meses. Para llevar a cabo el presente PFG, se dispuso de todo tipo de material y recursos puestos a disposición por el Ministerio de Industria, Turismo y Comercio en el propio laboratorio, así como de los distintos terminales móviles duales con los que se realizaron las medidas pertinentes. Como bibliografía básica se han utilizado las diferentes normas indicadas anteriormente, es decir la norma europea CENELEC (basada en la del IEC) y la americana FCC (basada en la del IEEE), así como manuales de los equipos implicados en el bando de medida de SAR: analizadores de redes, robot articulado y software de control, así como el resto de dispositivos utilizados en las medidas. ABSTRACT. The goal of this Final Degree Project is to perform a comparison of the results obtained in SAR measurements (specific absorption rate) and power using the European standards CENELEC (based on IEC Regulation) and the American FCC (based on IEEE Regulation) to different mobile dual devices. If first place it was made the study of its power and SAR features, seeing that there is shift with respect to the different standards and frequency ranges. In some cases, although they work without any problem in different bands, the difference in levels of emissions obtained in the different bands can be significant. As mentioned at the beginning, different dual devices were used and relevant measurements were taken from them using the different standards and the procedure in each one of them. To see the specific differences that may exist when using the different standards, the measurements were made in all bands of the device operation and to each one it has been applied in the different standards. This attempted to assess whether there could be some discrepancy in the devices that have the certificate of compliance to a specify standard when used in another band that is not exactly the used band of this standard. To sum up, it was required to verify that a device which is certified to the standard of a region, for example (900 and 1800 MHz), also verifies if it is used in another region, for example America (850 and 1900 MHz). The practical realization of this Final Degree Project was made in the facilities of the Radio Frequency Laboratory of the Ministry of State for Telecommunications and the Information Society located in El Casar (Guadalajara). Specifically, the movable articulated robot DASY4 was used and the control software DASY 52.8, available in the “Measure Electromagnetic Field testbench (SAR room)”. The duration of this Final Degree Project has benn about four months. To carry out the present project, all kinds of materials and resources were provided by the Ministry of Industry, Tourism and Trade in its own laboratory, as well as the different mobile dual terminals with which relevant measurements were made. As basic references the different standards indicated above has been used, that is to say the European standard CENELEC (based on IEC standard) and the American FCC (based on IEEE standard), as well as the equipment manuals involved in the SAR measure testbench: network analyzers, articulated robot and control software, as well as the rest of the devices used in the measurements.