电力存储系统在牵引供电中的仿真模型及应用选择

V. Nezevak, Aleksandr D. Dmitriev
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摘要

背景:在存储设备运行条件下,基于列车时刻表的牵引供电系统能量指标的确定是基于多个瞬时方案的求解,每个瞬时方案对应于已建立的运行模式。这些方法需要适应非线性特征或指标,其价值与变化的回顾有关。为此,有必要采用基于微分方程解的计算方法来解决暂态或应急模式下的性能评估问题,同时考虑动态特性。对牵引供电系统中存储设备的运行进行建模,可以根据设备参数、牵引负载和各种拓扑电路解决方案来评估指标的变化。目的:确定直流和交流牵引供电系统中蓄电装置的模型结构,考虑主要能量指标的计算结果,根据识别的特征确定改进电路方案的方法,确定牵引供电系统中蓄电装置的技术要求。材料与方法:为了得到结果,使用Matlab软件包实现了求解牵引电源中存储器件各种拓扑变体对应的微分方程的方法。结果:得到的结果使我们能够确定牵引电源存储器件的结构,评价直流和交流牵引电源器件的模型,勾勒出在电路解决方案领域进一步研究的前景和所需的器件参数。结论:研究结果允许蓄电装置模型及其实施的技术解决方案,旨在将直流和交流牵引电源引入系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation models and application options of electric power storage systems in traction power supply
Background: the determination of the energy indicators of the traction power supply system based on the train schedule in the conditions of operation of storage devices is based on the solution of a number of instantaneous schemes, each of which corresponds to the established operating mode. These methods require adaptation to account for non-linear characteristics or indicators, the value of which is associated with the retrospective of the change. In this regard, it is necessary to use calculation methods based on the solution of differential equations to solve problems related to the assessment of performance in transient or emergency modes, taking into account dynamic characteristics. Modeling the operation of storage devices in the traction power supply system allows you to evaluate the change in indicators depending on the parameters of the devices, traction load and circuit solutions for various topologies. Aim: to determine the structure of models of electric power storage devices in DC and AC traction power supply systems, to consider the results of calculating the main energy indicators, to determine ways to improve circuit solutions based on the identified features, to determine the technical requirements for electric power storage devices in traction power supply. Materials and Methods: to obtain the results, methods for solving differential equations corresponding to various variants of the topology of storage devices in traction power supply, implemented in the Matlab software package, are used. Results: the results obtained allow us to determine the structure of storage devices for traction power supply, evaluate models of devices for traction power supply of direct and alternating current, outline the prospects for further research in the field of circuit solutions and required device parameters. Conclusion: the results of the study allow models of electricity storage devices and technical solutions for their implementation aimed at introducing DC and AC traction power supply into the system.
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