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Mechanical design of flywheels for energy storage: A review with state-of-the-art developments

机译:储能飞轮的机械设计:最新发展的回顾

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摘要

For years, engineers and designers have capitalized on electrochemical batteries for long-term energy storage, which can only last for a finite number of charge-discharge cycles. More recently, compressed hydrogen is being scrutinized as a large-scale storage medium but this poses the risk of spreading high-pressure vessels with inflammable content. Historically, flywheels have provided an effective way to smooth out speed fluctuations in irregular machines and mechanisms. With advancements in composite materials, magnetic bearings, and mechatronic drives, flywheels have become the subject of extensive research as power storage devices for mobile or fixed installations. Flywheel energy storage systems are considered to be an attractive alternative to electrochemical batteries due to higher stored energy density, higher life term, deterministic state of charge and ecological operation. The mechanical performance of a flywheel can be attributed to three factors: material strength, geometry, and rotational speed. Focusing on the simple relationship between these variables, this paper reviews the literature of flywheel technology and explores the merits of four simple but unconventional flywheel configurations that have not been examined so far. Two geometries assume the use of monolithic isotropic materials two solutions are based on the use of high-strength strips or tapes wound up to form a multilayered structure.
机译:多年以来,工程师和设计人员一直在利用电化学电池进行长期能量存储,而电化学电池只能持续有限数量的充放电循环。最近,压缩氢被作为一种大规模的存储介质进行了审查,但这带来了散布具有易燃内容物的高压容器的风险。从历史上看,飞轮提供了一种有效的方法来消除不规则机器和机构中的速度波动。随着复合材料,磁性轴承和机电驱动器的发展,飞轮作为移动或固定安装的动力存储设备已成为广泛研究的主题。由于较高的存储能量密度,较高的使用寿命,确定的充电状态和生态运行,飞轮能量存储系统被认为是电化学电池的一种有吸引力的替代方案。飞轮的机械性能可归因于三个因素:材料强度,几何形状和转速。着眼于这些变量之间的简单关系,本文回顾了飞轮技术的文献,并探讨了到目前为止尚未研究的四种简单但非常规的飞轮配置的优点。两种几何结构均假定使用整体性各向同性材料,两种解决方案均基于使用高强度条或带进行缠绕以形成多层结构。

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