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Ultrasonic Resonance Spectroscopy of Composite Rings for Flywheel Rotors

机译:飞轮转子复合环的超声共振光谱

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Flywheel energy storage devices comprised of multilayered composite rotor systems are being studied extensively for utilization in the international space station (ISS). These composite material systems were investigated with a recently developed ultrasonic resonance spectroscopy (URS) technique. The system, UltraSpec~(TM), employs a swept frequency approach and performs a fast Fourier transform (FFT) on the frequency spectrum of the response signal. In addition, the system allows for equalization of the frequency spectrum, providing all frequencies with equal amounts of energy to excite higher order resonant harmonics. Interpretation of the second FFT, along with equalization of the frequency spectrum, offers greater assurance in acquiring and analyzing the fundamental frequency, or spectrum resonance spacing. The range of frequencies swept in a pitch-catch mode was varied up to 8 MHz depending on the material and geometry of the component. Single and multilayered material samples, with and without known defects, were evaluated to determine how the constituents of a composite material system affect the resonant frequency. Amplitude and frequency changes in the spectrum and spectrum resonance spacing domains were examined from ultrasonic responses of a flat composite coupon, thin composite rings, and thick composite rings. Also, the ultrasonic spectroscopy responses from areas with an intentional delamination and a foreign material insert, similar to defects that may occur during manufacturing malfunctions, were compared to those from defect free areas in thin composite rings. A thick composite ring with varying thickness was tested to investigate the full thickness resonant frequency and any possible bulk interfacial bond issues. Finally, the effect on the frequency response of naturally occurring single and clustered voids in a composite ring was established.
机译:由多层复合材料转子系统组成的飞轮储能装置正在被广泛研究,以用于国际空间站(ISS)。这些复合材料系统已通过最近开发的超声共振光谱(URS)技术进行了研究。该系统,UltraSpec TM,采用扫频方法,并对响应信号的频谱执行快速傅里叶变换(FFT)。此外,该系统还可以均衡频谱,为所有频率提供等量的能量,以激发更高阶的谐振谐波。第二FFT的解释以及频谱的均衡,为获取和分析基频或频谱谐振间隔提供了更大的保证。在音高捕捉模式下扫描的频率范围取决于组件的材料和几何形状而变化到8 MHz。对具有和没有已知缺陷的单层和多层材料样品进行了评估,以确定复合材料系统的成分如何影响共振频率。从扁平复合试片,薄复合环和厚复合环的超声响应中检查频谱和频谱共振间隔域中的幅度和频率变化。同样,将来自有意分层和异物插入的区域的超声光谱响应(类似于制造故障期间可能发生的缺陷)与薄复合环中无缺陷区域的响应进行了比较。测试了厚度变化的厚复合材料环,以研究整个厚度的共振频率以及任何可能的本体界面键问题。最后,建立了对复合环中天然存在的单个和簇状空隙的频率响应的影响。

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