21 resultados para railway station design


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The new railway station of María Zambrano for AVE (Spanish high-speed trains) located in Malaga, has been inaugurated in November 2006, just on the site of the former railway station. The new railway station with an investment of 134.7 million Euros occupies a surface of 51.377 m2, five times the surface of the former station. The enclosure is the biggest intermodal transport and commercial center of Spain which comprises a parking of 21,000 m2 for 1,300 parking places, one commercial area and a hotel of 35 m height, with a total extension constructed of approximately 100,000 m2.

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The commercial centre VIALIA and the new railway station of the AVE (high speed train) in Malaga was inaugurated in November 2006, just on the place of the former railway station. The new railway station with an investment of 134,7 million Euros occupies a surface of 51.377 m2, five times the surface of the former station. The enclosure is the biggest intermodal and commercial centre of Spain which comprises a parking of 21.000 m2 for 1300 parking places, one commercial area and a hotel with a total extension constructed of approximately 100.000 m2. The spaces of leisure contain cinemas, shops, restaurants, bowling, gymnasium, swimming pool and zones of passenger's traffic.

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The commercial centre VIALIA and the new railway station of the AVE (high speed train) in Malaga was inaugurated in November 2006, just on the place of the former railway station. The new railway station with an investment of 134,7 million Euros occupies a surface of 51.377 m2, five times the surface of the former station. The enclosure is the biggest intermodal and commercial centre of Spain which comprises a parking of 21.000 m2 for 1300 parking places, one commercial area and a hotel with a total extension constructed of approximately 100.000 m2. The spaces of leisure contain cinemas, shops, restaurants, bowling, gymnasium, swimming pool and zones of passenger's traffic.

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En las ciudades europeas, los patrones de movilidad son cada vez más complejos debido fundamentalmente a un crecimiento sostenido de la población así como a la tendencia de dispersión de los núcleos urbanos. En consecuencia, muchos de los usuarios del transporte público se ven obligados a combinar varios modos o servicios de transporte para completar sus viajes diarios. Por tanto, el mayor reto de las ciudades es conseguir una mejora e incremento en la movilidad mientras que al mismo tiempo se reducen problemas como la congestión, los accidentes y la contaminación (COM, 2006). Un principio básico para lograr una movilidad sostenible es reducir los inconvenientes y molestias derivados de la transferencia o ruptura del viaje. En este sentido, los intercambiadores de transporte público juegan un papel fundamental como nodos de la red urbana de transporte y la calidad del servicio prestado en ellos tiene una influencia directa sobre la experiencia diaria de los viajeros. Como señaló Terzis and Last (2002), un intercambiador de transportes urbano eficiente debe ser competitivo y al mismo tiempo, debe ser atractivo para los usuarios dado que sus experiencias físicas y sus reacciones psicológicas se ven influenciadas de manera significativa por el diseño y operación del intercambiador. Sin embargo, todavía no existen standards o normativas a nivel europeo que especifiquen como deberían ser estos intercambiadores. Esta tesis doctoral proporciona conocimientos y herramientas de análisis dirigidas a planificadores y gestores de los propios intercambiadores con el fin de entender mejor el funcionamiento de los intercambiadores y gestionar así los recursos disponibles. Así mismo, esta tesis identifica los factores clave en el diseño y operación de intercambiadores urbanos de transporte y proporciona algunas guías generales de planificación en base a ellos. Dado que las percepciones de los usuarios son particularmente importantes para definir políticas adecuadas para intercambiadores, se diseñó y se llevó a cabo en 2013 una encuesta de satisfacción al viajero en tres intercambiadores de transporte urbano europeos: Moncloa (Madrid, España), Kamppi (Helsinki, Finlandia) e Ilford Railway Station ( Londres, Reino Unido). En resumen, esta tesis pone de relieve la naturaleza ambivalente de los intercambiadores urbanos de transporte, es decir, como nodos de la red de transporte y como lugares en sí mismos donde los usuarios pasan tiempo dentro de ellos y propone algunas recomendaciones para hacer más atractivos los intercambiadores a los usuarios. Travel patterns in European urban areas are becoming increasingly complex due to a sustained increase in the urban population and the trend towards urban sprawl. Consequently, many public transport users need to combine several modes or transport services to complete their daily trips. Therefore, the challenge facing all major cities is how to increase mobility while at the same time reducing congestion, accididents and pollution (COM, 2006). Reducing the inconvenience inherent in transferring between modes is a basic principle for achieving sustainable mobility. In this regard, transport interchanges play a key role as urban transport network nodes, and the quality of the service provided in them has a direct influence on travellers' daily experience. As noted by Terzis and Last (2000), an efficient urban transport interchange must be competitive and, at the same time, be attractive for users given that their physical experiences and psychological reactions are significantly influenced by the design and operation of the interchange. However, yet there are no standards or regulations specifying the form these interchanges should take in Europe. This doctoral thesis provides knowledge and analysis tools addressed to developers and managers in order to understand better the performance of an urban transport interchange and manage the available resources properly. Likewise, key factors of the design and operation of urban transport interchanges are identified and some 'Planning guidelines' are proposed on the basis on them. Since the users' perceptions of their experience are particularly important for achieving the most appropriate policy measures for interchanges, an ad‐hoc travellers' satisfaction survey was designed and carried out in 2013 at three European transport interchanges: Moncloa (Madrid, Spain), Kamppi (Helsinki, Finland) and Ilford Railway Station (London, United Kingdom) In summary, this thesis highlights the ambivalent nature of the urban transport interchanges, i.e. as nodes within the transport network and as places where users spending time and proposes some policy recommendations in order to make urban transport interchanges attractive for users.

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La aparición del tren de alta velocidad en Europa en las últimas décadas del siglo XX supuso el resurgir de un medio de transporte en progresivo declive desde la popularización del automóvil y del avión. La decadencia del ferrocarril había supuesto en muchos casos el abandono, o incluso la demolición, de estaciones históricas y el deterioro de su entorno urbano. Como reacción a esa desatención surgió, también en el último cuarto de siglo, una mayor conciencia social preocupada por la conservación del patrimonio construido del ferrocarril. La necesidad de adaptación de las grandes estaciones de ferrocarril para dar servicio al nuevo sistema de transporte, junto con el interés por poner en valor sus construcciones históricas y su céntrico entorno, ha dado como resultado la realización de importantes transformaciones. El objeto de la presente investigación es el estudio de las transformaciones que han sufrido las grandes estaciones europeas del siglo XIX con la llegada del tren de alta velocidad, profundizando de manera especial en el caso más significativo que tenemos en nuestro país: la estación de Atocha. En el ámbito europeo es donde se localizan los ejemplos más relevantes de estaciones que tuvieron gran trascendencia en el siglo XIX y que ahora, con la llegada de la Alta Velocidad, vuelven a recuperar su grandeza. En España, el crecimiento de la Alta Velocidad en los últimos años ha sido extraordinario, hasta situarse como el segundo país del mundo con más kilómetros de líneas de alta velocidad en operación y, en consecuencia, se ha construido un gran número de estaciones adaptadas a este servicio. El caso más notable es el de la estación de Atocha, que desde la llegada del AVE en 1992 hasta el día de hoy, se ha convertido en uno de los complejos ferroviarios más importantes del mundo. El trabajo parte del estudio de otros referentes europeos, como las Gares de París, la estación de St Pancras en Londres y de otras cinco estaciones del centro de Europa –Amsterdam Centraal, Antwerpen Centraal, Köln Hauptbahnhof, Frankfurt (Main) Hauptbahnhof y la Gare de Strasbourg–, para establecer el marco analítico sobre el que se profundiza con la estación de Atocha. El proceso de transformación de la estación de Atocha se ha gestado a través de una serie de proyectos que han ido configurando la estación hasta el momento actual y planteando la previsión de futuro: el proyecto del Plan General de Madrid, el concurso de ideas para el diseño de la estación, la estación de Cercanías, la estación de Alta Velocidad y Largo Recorrido, la ampliación de esta para separar los flujos por niveles, los Estudios Informativos del Nuevo Complejo Ferroviario de la Estación de Atocha y su primera fase de construcción. Estos siete proyectos son objeto de un análisis en tres niveles: análisis cronológico, análisis funcional y análisis formal. La estación de Atocha fue la primera estación histórica europea en sufrir una gran transformación vinculada a la llegada de la Alta Velocidad. Aporta el entendimiento de la estación como un todo y la intermodalidad como sus principales valores, además de la gran mejora urbana que supuso la «operación Atocha», y adolece de ciertas carencias en su desarrollo comercial, vinculadas en parte a la presencia del jardín tropical, y de un pobre espacio en las salas de embarque para los pasajeros de salidas. La estación de Atocha completa su transformación a partir de su renovación funcional, manteniendo la carga simbólica de su historia. De la confrontación del caso de Atocha con otras importantes estaciones europeas resulta la definición de las principales consecuencias de la llegada de la Alta Velocidad a las grandes terminales europeas y la identificación de los elementos clave en su transformación. Las consecuencias principales son: la potenciación de la intermodalidad con otros medios de transporte, el desarrollo comercial no necesariamente destinado a los usuarios de los servicios ferroviarios, y la puesta en valor de la antigua estación y de su entorno urbano. Por su parte, los elementos clave en la transformación de las grandes estaciones tienen que ver directamente con la separación de flujos, el entendimiento de la estación por niveles, la dotación de nuevos accesos laterales y la construcción de una nueva gran cubierta para los nuevos andenes. La preeminencia de unos elementos sobre otros depende del carácter propio de cada estación y de cada país, de la magnitud de la intervención y, también, de la estructura y composición de los equipos encargados del diseño de la nueva estación. En la actualidad, nos encontramos en un momento interesante respecto a las estaciones de Alta Velocidad. Tras el reciente atentado frustrado en el Thalys que viajaba de Ámsterdam a París, se ha acordado establecer controles de identidad y equipajes en todas las estaciones de la red europea de alta velocidad, lo que implicará modificaciones importantes en las grandes estaciones que, probablemente, tomarán el modelo de la estación de Atocha como referencia. ABSTRACT The emergence of the high speed train in Europe in the last few decades of the 20th century represented the resurgence of a means of transport in progressive decline since the popularization of the car and the airplane. The railway decay brought in many cases the abandonment, or even the demolition, of historical stations and the deterioration of its urban environment. In response to that neglect, a greater social awareness towards the preservation of the railway built heritage raised up, also in the last quarter-century. The need for adaptation of the great railway stations to serve the new transport system, along with the interest in enhancing the historical buildings and its central locations, had resulted in important transformations. The subject of current investigation is the study of the transformations that the great 19th century European stations have experienced with the arrival of the high speed rail, deepening in particular in the most significant case we have in Spain: Atocha railway station. At European level is where the most relevant examples of stations which have had a great significance in the 19th century and now, with the arrival of the high speed train, have regain their greatness, are located. In Spain, the growth of the high speed rail over the past few years has been outstanding. Today is the second country in the world with the longest high speed rail network in operation and, therefore, with a great number of new stations adapted to this service. The most remarkable case is Atocha station. Since the arrival of the AVE in 1992, the station has become one of the world's most important railway hub. The research starts with the study of other European reference points, as the Gares of Paris, St Pancras station in London and five other stations of Central Europe –Amsterdam Centraal, Antwerpen Centraal, Köln Hauptbahnhof, Frankfurt (Main) Hauptbahnhof y la Gare de Strasbourg–, to establish the analytical framework that will be deepen with Atocha station. The transformation process of Atocha station has been created through a number of projects that have forged the station to date and have raised the sights in the future: the project of the General Urban Development Plan, the ideas competition for the station design, the Suburban train station, the High Speed and Long Distance station, its enlargement in order to separate passenger flows in different levels, the 'Masterplans' for the new Atocha transport hub and its first phase of construction. These seven projects are under scrutiny at three levels: chronological analysis, functional analysis and formal analysis. Atocha station was the first European historical station to undergo a great transformation tied to the arrival of the high speed rail. It brings the understanding of the station as a whole and the intermodality as its greatest values, besides the great urban improvement of the 'Atocha operation', and suffers from certain shortcomings in its commercial development, partly linked to the presence of the tropical garden, and from a poor space in the departure lounges. Atocha station completes its transformation on the basis of its functional renewal, keeping the symbolic charge of its history. The confrontation of Atocha case with the great European stations results in the definition of the principal consequences of the high speed rail arrival to the great European terminals and the identification of the key elements in its transformation. The principal consequences are: the empowering of the intermodality with other means of transport, of the commercial development, not necessarily intended for railway services users, and the enhancement of the old station and its urban environment. On the other hand, the key elements in the transformation of the great stations are directly related with the separation of passenger flows, the understanding of the station in different levels, the placement of new lateral accesses and the construction of a new deck over the new platforms. The pre-eminence of some elements over the others depends on the particular nature of each station and each country, on the scale of the intervention and also in the structure and composition of the teams in charge of the new station design. Nowadays, this is an interesting time concerning the high speed rail stations. After the recent foiled terrorist attempt in the Thalys train travelling from Amsterdam to Paris, it was agreed to establish passenger and luggage controls in every European high speed rail station. This will mean important changes in these great stations, which probably will take Atocha station's model as a reference.

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The prediction of train induced vibration levels in structures close to railway tracks before track construction starts is important in order to avoid having to implement costly mitigation measures afterwards. The used models require an accurate characterization of the propagation medium i.e. the soil layers. To this end the spectral analysis of surface waves (SASW) method has been chosen among the active surface waves techniques available. As dynamic source a modal sledge hammer has been used. The generated vibrations have been measured at known offsets by means of several accelerometers. There are many parameters involved in estimating the experimental dispersion curve and, later on, thickness and propagation velocities of the different layers. Tests have been carried out at the Segovia railway station. Its main building covers some of the railway tracks and vibration problems in the building should be avoided. In the paper these tests as well as the influence of several parameters on the estimated soil profile will be detailed.

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The dynamic effects of high-speed trains on viaducts are important issues for the design of the structures, as well as for the consideration of safe running conditions for the trains. In this work we start by reviewing the relevance of some basic design aspects. The significance of impact factor envelopes for moving loads is considered first. Resonance which may be achieved for high-speed trains requires dynamic analysis, for which some key aspects are discussed. The relevance of performing a longitudinal distribution of axle loads, the number of modes taken in analysis, and the consideration of vehicle-structure interaction are discussed with representative examples. The lateral dynamic effects of running trains on bridges is of importance for laterally compliant viaducts, such as some very tall structures erected in new high-speed lines. The relevance of this study is mainly for the safety of the traffic, considering both internal actions such as the hunting motion as well as external actions such as wind or earthquakes [1]. These studies require three-dimensional dynamic coupled vehicle-bridge models, and consideration of wheel to rail contact, a phenomenon which is complex and costly to model in detail. We describe here a fully nonlinear coupled model, described in absolute coordinates and incorporated into a commercial finite element framework [2]. The wheel-rail contact has been considered using a FastSim algorithm which provides a compromise between accuracy and computational cost, and captures the main nonlinear response of the contact interface. Two applications are presented, firstly to a vehicle subject to a strong wind gust traversing a bridge, showing the relevance of the nonlinear wheel-rail contact model as well as the dynamic interaction between bridge and vehicle. The second application is to a real HS viaduct with a long continuous deck and tall piers and high lateral compliance [3]. The results show the safety of the traffic as well as the importance of considering features such as track alignment irregularities.

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Revisión y puesta al día de la publicaciones relacionadas con el diseño de puentes de ferrocarril de alta velocidad y nuevas investigaciones sobre dinámica lateral.

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Overhead rigid conductor arrangements for current collection for railway traction have some advantages compared to other, more conventional, energy supply systems. They are simple, robust and easily maintained, not to mention their flexibility as to the required height for installation, which makes them particularly suitable for use in subway infrastructures. Nevertheless, due to the increasing speeds of new vehicles running on modern subway lines, a more efficient design is required for this kind of system. In this paper, the authors present a dynamic analysis of overhead conductor rail systems focused on the design of a new conductor profile with a dynamic behaviour superior to that of the system currently in use. This means that either an increase in running speed can be attained, which at present does not exceed 110 km/h, or an increase in the distance between the rigid catenary supports with the ensuing saving in installation costs. This study has been carried out using simulation techniques. The ANSYS programme has been used for the finite element modelling and the SIMPACK programme for the elastic multibody systems analysis.

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Overhead rail current collector systems for railway traction offer certain features, such as low installation height and reduced maintenance, which make them predominantly suitable for use in underground train infrastructures. Due to the increased demands of modern catenary systems and higher running speeds of new vehicles, a more capable design of the conductor rail is needed. A new overhead conductor rail has been developed and its design has been patented [13]. Modern simulation and modelling techniques were used in the development approach. The new conductor rail profile has a dynamic behaviour superior to that of the system currently in use. Its innovative design permits either an increase of catenary support spacing or a higher vehicle running speed. Both options ensure savings in installation or operating costs. The simulation model used to optimise the existing conductor rail profile included both a finite element model of the catenary and a three-dimensional multi-body system model of the pantograph. The contact force that appears between pantograph and catenary was obtained in simulation. A sensitivity analysis of the key parameters that influence in catenary dynamics was carried out, finally leading to the improved design.

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Flat or worn wheels rolling on rough or corrugated tracks can provoke airborne noise and ground-borne vibration, which can be a serious concern for nearby neighbours of urban rail transit lines. Among the various treatments used to reduce vibration and noise, resilient wheels play an important role. In conventional resilient wheels, a slightly prestressed V­shaped rubber ring is mounted between the steel wheel centre and tyre. The elastic layer enhances rolling noise and vibration suppression, as well as impact reduction on the track. In this paper the effectiveness of resilient wheels in underground lines, in comparison to monobloc ones, is assessed. The analysed resilient wheel is able to carry greater loads than standard resilient wheels used for light vehicles. It also presents a greater radial resiliency and a higher axial stiffness than conventional V­wheels. The finite element method was used in this study. A quarter car model was defined, in which the wheelset was modelled as an elastic body. Several simulations were performed in order to assess the vibrational behaviour of elastic wheels, including modal, harmonic and random vibration analysis, the latter allowing the introduction of realistic vertical track irregularities, as well as the influence of the running speed. Due to numerical problems some simplifications were needed. Parametric variations were also performed, in which the sensitivity of the whole system to variations of rubber prestress and Poisson’s ratio of the elastic material was assessed.Results are presented in the frequency domain, showing a better performance of the resilient wheels for frequencies over 200 Hz. This result reveals the ability of the analyzed design to mitigate rolling noise, but not structural vibrations, which are primarily found in the lower frequency range.

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Virtual certification partially substitutes by computer simulations the experimental techniques required for rail vehicle certification. In this paper, several works were these techniques were used in the vehicle design and track maintenance processes are presented. Dynamic simulation of multibody systems was used to virtually apply the EN14363 standard to certify the dynamic behaviour of vehicles. The works described are: assessment of a freight bogie design adapted to meter-gauge, assessment of a railway track layout for a subway network, freight bogie design with higher speed and axle load, and processing of the data acquired by a track recording vehicle for track maintenance.

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In overhead conductor rail lines, aluminium beams are usually mounted with support spacing between 8 and 12 meters, to limit the maximum vertical deflection in the center of the span. This small support spacing limits the use of overhead conductor rail to tunnels, therefore it has been used almost exclusively in metropolitan networks, with operation speeds below 110 km/h. Nevertheless, due to the lower cost of maintenance required for this electrification system, some railway administrations are beginning to install it in some tunnels on long-distance lines, requesting higher operation speeds [1]. Some examples are the Barcelona and Madrid suburban networks (Spain), and recent lines in Turkey and Malaysia. In order to adapt the design of the overhead conductor for higher speeds (V > 160 km/h), particular attention must be paid to the geometry of the conductor rail in critical zones as overlaps, crossings and, especially, transitions between conductor rail and conventional catenary, since the use of overhead conductor rail is limited to tunnels, as already mentioned. This paper describes simulation techniques developed in order to take into account these critical zones. Furthermore, some specific simulations results are presented that have been used to analyze and optimizes the geometry of this special zones to get a better current collection quality, in a real suburban network. This paper presents the work undertaken by the Railways Technology Research Centre (CITEF), having over 10 years of experience in railways research [1-4].

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Communications Based Train Control Systems require high quality radio data communications for train signaling and control. Actually most of these systems use 2.4GHz band with proprietary radio transceivers and leaky feeder as distribution system. All them demand a high QoS radio network to improve the efficiency of railway networks. We present narrow band, broad band and data correlated measurements taken in Madrid underground with a transmission system at 2.4 GHz in a test network of 2 km length in subway tunnels. The architecture proposed has a strong overlap in between cells to improve reliability and QoS. The radio planning of the network is carefully described and modeled with narrow band and broadband measurements and statistics. The result is a network with 99.7% of packets transmitted correctly and average propagation delay of 20ms. These results fulfill the specifications QoS of CBTC systems.

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Railway bridges have specific requirements related to safety, which often are critical aspects of design. In this paper the main phenomena are reviewed, namely vertical dynamic effects for impact effect of moving loads and resonance in high-speed, service limit states which affect the safety of running traffic, and lateral dynamic effects.