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Filtering and Control of High Speed Motor Current in a Flywheel Energy Storage System

机译:飞轮储能系统中高速电动机电流的滤波和控制

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摘要

The NASA Glenn Research Center has been developing technology to enable the use of high speed flywheel energy storage units in future spacecraft for the last several years. An integral part of the flywheel unit is the three phase motor/generator that is used to accelerate and decelerate the flywheel. The motor/generator voltage is supplied from a pulse width modulated (PWM) inverter operating from a fixed DC voltage supply. The motor current is regulated through a closed loop current control that commands the necessary voltage from the inverter to achieve the desired current. The current regulation loop is the innermost control loop of the overall flywheel system and, as a result, must be fast and accurate over the entire operating speed range (20,000 to 60,000 rpm) of the flywheel. The voltage applied to the motor is a high frequency PWM version of the DC bus voltage that results in the commanded fundamental value plus higher order harmonics. Most of the harmonic content is at the switching frequency and above. The higher order harmonics cause a rapid change in voltage to be applied to the motor that can result in large voltage stresses across the motor windings. In addition, the high frequency content in the motor causes sensor noise in the magnetic bearings that leads to disturbances for the bearing control. To alleviate these problems, a filter is used to present a more sinusoidal voltage to the motor/generator. However, the filter adds additional dynamics and phase lag to the motor system that can interfere with the performance of the current regulator. This paper will discuss the tuning methodology and results for the motor/generator current regulator and the impact of the filter on the control. Results at speeds up to 50,000 rpm are presented.
机译:在过去的几年中,NASA格伦研究中心一直在开发技术,以使高速飞轮储能装置能够在未来的航天器中使用。飞轮单元的组成部分是三相电动机/发电机,用于加速和减速飞轮。电动机/发电机电压由使用固定直流电压源运行的脉宽调制(PWM)逆变器提供。通过闭环电流控制来调节电动机电流,该闭环电流控制命令逆变器提供必要的电压以实现所需的电流。电流调节回路是整个飞轮系统的最内部控制回路,因此,在飞轮的整个运行速度范围(20,000至60,000 rpm)中必须快速而准确。施加到电机上的电压是直流母线电压的高频PWM版本,可产生指令的基本值和高次谐波。大部分谐波含量都在开关频率及以上。高次谐波会导致施加到电动机的电压快速变化,这可能会导致电动机绕组两端的电压应力过大。此外,电动机中的高频成分会在电磁轴承中引起传感器噪声,从而导致轴承控制产生干扰。为了减轻这些问题,使用滤波器向电动机/发电机提供更正弦的电压。但是,滤波器会给电动机系统增加额外的动力学和相位滞后,从而可能干扰电流调节器的性能。本文将讨论电动机/发电机电流调节器的调谐方法和结果,以及滤波器对控制的影响。给出了转速高达50,000 rpm的结果。

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