磁浮运输的异极磁悬浮和直线驱动系统的计算、设计和制造

Yuri F. Antonov
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摘要

背景:为发展“俄罗斯磁悬浮”运输技术,建立磁悬浮、横向稳定和牵引直线同步电机转子转轮的异极磁系统的计算方法和技术要素,以实现增加0.2 m的悬浮间隙,将出口车辆在悬浮模式下的阈值速度降低到10 km/h。目的:发展从初等永磁体、第二代复合低温超导体和高温带式超导体的同类型线圈计算和设计异极极的方法及其分步生产技术。任务:创建一个悬浮和横向稳定的车载磁系统,允许提供0.2 m的悬浮间隙,过渡到悬浮模式时车速阈值为10 km/h,将杂散磁场降低到50 T的地磁自然磁场水平;一种功率为10mw的无铁定子直线同步电机转子转轮的创造。方法:概述了主要的计算方法:“分析”和“综合”。在解决“直接”计算问题时,采用“分析”方法,设置磁系统的配置,计算工作区域的磁场,必要时计算杂散磁场。如果有创建磁性系统的经验,则可以有效地应用此方法。否则,采用“综合”方法,解决“逆”计算问题,即设置工作区磁场分布的图像,求得磁系统的构型(综合)。研究结果:分析了由稀土金属、低温和高温超导绕组材料制成的高能永磁体的参数和特性,对永磁体和超导绕组材料进行了选择;对“哈尔巴赫组合”和传统齿形铁磁磁芯组合中永磁体的磁性系统进行了计算;对具有矩形截面的轨道线圈进行了计算;从一组相似的轨道模块出发,提出了计算和优化超导磁系统的方法;结论:基础研究成果将为磁浮客运、货运主线及城市公共交通的计算、设计和施工提供依据。
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Calculation, design and manufacture of heteropolar magnetic levitation and linear drive systems of maglev transport
Background: The methods of calculation and elements of the technology for creating heteropolar magnetic systems of levitation, lateral stabilization and a rotor-runner of a traction linear synchronous motor for the development of the transport technology "Russian Maglev" in order to achieve an increased levitation gap of 0.2 m, reduce the threshold speed of the exit vehicle in levitation mode up to 10 km/h. Aim: to develop methods for calculating and designing heteropolar poles from elementary permanent magnets, coils of the same type based on composite low-temperature superconductors and high-temperature tape superconductors of the second generation and a step-by-step technology for their production. Tasks: Creation of an on-board magnetic system of levitation and lateral stabilization, allowing to provide a levitation gap of 0.2 m, a threshold value of vehicle speed of 10 km/h when transition to levitation mode, to reduce stray magnetic fields to the level of the natural field of terrestrial magnetism of 50 T; Creation of a rotor-runner of a linear synchronous motor with an ironless stator with a power of 10 MW. Methods: outlines the main calculation methodologies: "analysis" and "synthesis". The "analysis" methodology is adopted in solving the "direct" calculation problem, when the configuration of the magnetic system is set and the magnetic field in the working area is calculated, and, if necessary, the stray magnetic fields. This methodology can be effectively applied if there is experience in creating magnetic systems. Otherwise, the "synthesis" methodology is applied, which is used in solving the "inverse" calculation problem, in which the picture of the distribution of the magnetic field in the working zone is set and the configuration of the magnetic system is found (synthesized). Results of the study performed: The parameters and characteristics of high-energy permanent magnets made of rare-earth metals, low-temperature and high-temperature superconducting winding materials have been analyzed, the choice of permanent magnets and superconducting winding material has been made; Calculations of the magnetic system of permanent magnets in the "Halbach assembly" and in the traditional assembly in a toothed ferromagnetic core have been carried out; Calculations of a track coil with a rectangular cross-section of the winding are performed; Methods for calculating and optimizing superconducting magnetic systems from a set of similar track modules have been developed; Conclusions: The results of the performed fundamental research will allow starting the calculation, design and construction of conveyor-main passenger and freight lines of maglev transport, as well as urban public transport.
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