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Study on lateral stability of levitation modules for low- and medium-speed maglev trains

机译:中低速磁悬浮列车悬浮模块的侧向稳定性研究

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In order to study the lateral dynamics stability of the levitation module of low- and medium-speed maglev train, the motion equation is simplified by reasonable assumptions, and the simplest lateral dynamics model is established under the premise of retaining the lateral dynamic characteristics of the levitation module. The model can be characterized by a non-autonomous differential equation with periodic coefficients, which can be transformed into a damped Mathieu equation under certain conditions, with its stability equivalent to that of its Poincare mapping. The stability of the system can be determined by whether the largest modulus of the eigenvalues of the mapped coefficient matrix is > 1. Then, the sensitivity frequency of the vertical electromagnetic force is obtained by calculating the stability domain of the equation in the parameter space. When the variation frequency of the vertical electromagnetic force is approximately equivalent to the sensitivity frequency, the lateral dynamics model is more likely to be unstable. Besides, the variation amplitude and variation frequency of the vertical electromagnetic force, and other factors such as vehicle load and system damping will also change the stability of the lateral dynamics model. However, due to the uncontrollability of these factors, it is necessary to install a lateral damper for the levitation module to improve the lateral stability.
机译:为了研究中低速磁悬浮列车悬浮模块的侧向动力学稳定性,通过合理的假设简化了运动方程,并在保持侧向动力学特性的前提下建立了最简单的侧向动力学模型。悬浮模块。该模型可以通过具有周期系数的非自治微分方程来表征,该方程可以在一定条件下转换为阻尼Mathieu方程,其稳定性等同于Poincare映射的稳定性。可以通过映射系数矩阵的特征值的最大模数是否大于1来确定系统的稳定性。然后,通过在参数空间中计算方程的稳定性域来获得垂直电磁力的敏感频率。当垂直电磁力的变化频率近似等于灵敏度频率时,横向动力学模型更可能不稳定。此外,垂直电磁力的变化幅度和变化频率,以及诸如车辆负载和系统阻尼之类的其他因素也将改变横向动力学模型的稳定性。然而,由于这些因素的不可控制性,有必要为悬浮模块安装侧向阻尼器以改善侧向稳定性。

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