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Properties of fiber composites for advanced flywheel energy storage devices

机译:高级飞轮储能设备的纤维复合材料的性能

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The performance of commercial high-performance fibers is examined for application to flywheel power supplies. It is shown that actual delivered performance depends on multiple factors such as inherent fiber strength, strength translation and stress-rupture lifetime. Experimental results for recent stress-rupture studies of carbon fibers will be presented and compared with other candidate reinforcement materials. Based on an evaluation of all of the performance factors, it is concluded that carbon fibers are preferred for highest performance and E-glass fibers for lowest cost. The inferior performance of the low-cost E-glass fibers can be improved to some extent by retarding the stress-corrosion of the material due to moisture and practical approaches to mitigating this corrosion are discussed. Many flywheel designs are limited not by fiber failure, but by matrix-dominated failure modes. Unfortunately, very few experimental results for stress-rupture under transverse tensile loading are available. As a consequence, significant efforts are made in flywheel design to avoid generating any transverse tensile stresses. Recent results for stress-rupture of a carbon fiber/epoxy composite under transverse tensile load reveal that these materials are surprisingly durable under the transverse loading condition and that some radial tensile stress could be tolerated in flywheel applications.
机译:检查商业高性能纤维的性能,以应用于飞轮电源。结果表明,实际的交付性能取决于多种因素,例如固有的纤维强度,强度转换和应力破裂的寿命。将提出并与其他候选增强材料进行碳纤维近期应力破裂研究的实验结果。基于对所有性能因素的评估,得出结论,碳纤维是最优选的最高性能和电子玻璃纤维的成本。通过延迟由于水分的压力腐蚀,可以在一定程度上提高低成本的电子玻璃纤维的劣质性能,并且讨论了减轻这种腐蚀的实用方法。许多飞轮设计不受纤维失败的限制,而是通过矩阵主导的故障模式而受到限制。不幸的是,可以获得横向拉伸负载下的应力破裂的很少的实验结果。因此,在飞轮设计中进行了重大努力,以避免产生任何横向拉伸应力。在横向拉伸下,碳纤维/环氧复合材料的应力破裂的最近结果表明,这些材料在横向负载条件下令人惊讶地耐用,并且在飞轮应用中可以容忍一些径向拉伸应力。

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