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A methodology for evaluating and reducing rotor losses, heating, and operational limitations of high-speed flywheel batteries.

机译:一种评估和减少高速飞轮电池的转子损耗,发热和运行限制的方法。

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Flywheel batteries are machines that store kinetic energy in the form of a rotating flywheel. Energy is transferred to and from the flywheel via a motor-generator mounted on the flywheel rotor. For mobile systems in particular, it is important to maximize the stored energy while minimizing the mass and volume of the flywheel battery. This requirement leads to the use of high rotational speeds which in turn necessitates the use of composite materials for flywheel construction, magnetic bearings for reduced wear and friction losses, and a low pressure environment to reduce windage losses.; With the flywheel rotor suspended on magnetic bearings and operating in a partial vacuum, radiation becomes the primary heat transfer mode for removing losses incurred on the rotor. Radiative heat transfer from the rotor to the flywheel battery housing is limited by the relatively low maximum allowable temperature of the composite materials and the permanent magnets which are often used in the motor-generator. In order to ensure the feasibility of a high-speed flywheel battery design it then becomes paramount to properly manage the total rotor losses as well as the heat removal strategy.; This dissertation develops a methodology for accurately modeling the components of rotor heating in high-speed flywheel batteries with a focus on mobile systems employing an integrated design whereby the motor-generator is integrated with the flywheel into a common vacuum housing. The methodology makes it possible to reduce losses through design, construction, and operation so that high-speed flywheel batteries made with temperature sensitive components such as permanent magnets and composite materials can be operated without serious overheating.; The rotor loss origins are investigated with respect to windage, magnetic bearing, and motor-generator sources in general, and with specific regard to a metropolitan transit bus flywheel battery system developed by the University of Texas Center for Electromechanics. Methods are provided to reduce the contribution from each source and measured temperature data is provided to confirm the effectiveness of many of the methods. Finally, thermal finite element models are utilized to determine the operational limitations placed on a flywheel battery by the incurred rotor heating.
机译:飞轮电池是以旋转飞轮的形式存储动能的机器。能量通过安装在飞轮转子上的电动发电机与飞轮之间进行能量传递。特别是对于移动系统,重要的是要最大化存储的能量,同时最小化飞轮电池的质量和体积。这一要求导致使用高转速,这又需要在飞轮结构中使用复合材料,为减少磨损和摩擦损失而使用磁性轴承,并为减少风阻损失而使用低压环境。将飞轮转子悬挂在磁性轴承上并在部分真空中运行时,辐射便成为消除转子上损失的主要传热方式。从转子到飞轮电池壳体的辐射热传递受到复合材料和电动发电机中常用的永磁体相对较低的最高允许温度的限制。为了确保高速飞轮电池设计的可行性,正确管理总的转子损耗以及散热策略变得至关重要。本论文开发了一种方法,用于精确建模高速飞轮电池中转子加热的组件,重点是采用集成设计的移动系统,其中电动发电机与飞轮集成到一个普通的真空壳体中。该方法可以通过设计,构造和运行来减少损耗,从而可以在不造成严重过热的情况下运行由温度敏感部件(例如永磁体和复合材料)制成的高速飞轮电池。通常针对风阻,电磁轴承和电动发电机的来源,特别是针对由德克萨斯大学机电中心开发的大都会公交飞轮电池系统,研究了转子损耗的起因。提供了减少每种来源的影响的方法,并提供了测得的温度数据以确认许多方法的有效性。最后,利用热有限元模型来确定因转子加热引起的飞轮电池的运行限制。

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