A new concept of superelevation in magnetic levitation – prodynamic

A. Jacob, J. Angelo, N. Monteiro, Monteiro Nuno
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引用次数: 3

Abstract

Background: The topic of Magnetic Levitation systems, in terms of land mass transport, have created high expectations compared to aviation and also to the high speed railway industry. This new concept comes to revolutionize the terrestrial mass transport, in both the speeds and the subject of friction. Magnetic levitation solves the issue of attrition between material contact and as such may also be an opportunity to solve the question of constant physical superelevation. Aim: Precisely that point of superelevation coupled with magnetic levitation, eliminating the rigid physical structures to laterally lift the vehicle in a curve. Current magnetic levitation systems do not address this issue of dynamic superelevation. It’s exposed an improvement technology which is a theoretical possibility of a track through a new magnetic line can apply necessary rotation to the vehicle in curve and adjust its rotation according to the speed that vehicle moves. Methods: In order to make this system to work it is suggested the introduction of a magnetic field in the new line, which will allow the vehicle to rotate in curves and will negate the need of the conventional static superelevation. This study appeared as a result of an investigation of a master's thesis in civil engineering at ISEP, where the participants created the concept of dynamic superelevation in the context of magnetic levitation. The project was applied to the reformulation of an existing railway network. The study base of this model resulted from a broad survey of current magnetic levitation systems. Then came the idea of creating a third dynamic magnetic field to operate the curved superelevation. Results: The result of the study was the creation of a new "monorail" system of simple and geometrically constant structure. The new line has the advantage of providing a simple and constant geometry, facilitating the manufacture, assembly and thus making it much more economical compared to the current systems. The cross-section allows the vehicle to fit perfectly and with the creation of rotating magnetic fields, the vehicle can be turned to both sides, at the required inclination, according the speed. With this new concept called ProDynamic, the geometry design in plan is totally independent of the speed practiced by the vehicle, where it can travel in curve at different speeds, but with the same lateral no-compensated acceleration, without detriment of passenger comfort. Conclusion: Combining existing systems with this new concept, it is possible to create a total freedom in curves and superelevation, which will provide a maximum comfort and significant construction savings. There is therefore no longer a problem of deficiency or excess cant, as currently exists on railways. The advantage in the ProDynamic system is that it is possible to greatly reduce or even eliminate the lateral no-compensated acceleration.
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磁悬浮超高程的新概念——生动力
背景:磁悬浮系统的主题,在陆地运输方面,与航空和高速铁路行业相比,创造了很高的期望。这个新概念在速度和摩擦的主题上彻底改变了陆地质量运输。磁悬浮解决了物质接触之间的摩擦问题,因此也可能是解决恒定物理超高度问题的机会。目的:正是超高度点与磁悬浮相结合,消除了刚性物理结构,使车辆在曲线上横向提升。目前的磁悬浮系统没有解决这个动态超高度的问题。提出了一种改进技术,即通过一种新型磁力线的轨道,可以在曲线上对车辆施加必要的旋转,并根据车辆移动的速度调整其旋转,这在理论上是可能的。方法:为了使该系统工作,建议在新线路中引入磁场,这将允许车辆在曲线上旋转,并将消除传统的静态超仰角的需要。这项研究是对ISEP土木工程硕士论文的调查结果,其中参与者在磁悬浮的背景下创造了动态超高度的概念。该项目应用于现有铁路网的重新规划。该模型的研究基础来自于对现有磁悬浮系统的广泛调查。然后又产生了创造第三个动态磁场来操作弯曲超仰角的想法。结果:研究的结果是创造了一个新的“单轨”系统的简单和几何常数结构。新生产线的优点是提供了一个简单和恒定的几何形状,便于制造,组装,从而使其比目前的系统更经济。横截面允许车辆完美适配,并且随着旋转磁场的产生,车辆可以根据速度以所需的倾斜度转向两侧。在这个名为ProDynamic的新概念中,计划中的几何设计完全独立于车辆的速度,它可以以不同的速度在曲线上行驶,但具有相同的横向无补偿加速度,而不会损害乘客的舒适性。结论:将现有系统与这个新概念相结合,可以创造出完全自由的曲线和超立面,这将提供最大的舒适度和显著的建筑节省。因此,不再存在铁路目前存在的不足或过剩的问题。ProDynamic系统的优点是可以大大减少甚至消除横向无补偿加速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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