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Implementation of the Average-Log-Ratio ALR gear-damage detection algorithm on gear-fatigue-test recordings

机译:在齿轮疲劳测试记录上实现平均对比的ALR齿轮损伤检测算法

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The Average-Log-Ratio, ALR, gear-damage detection algorithm is exercised on accelerome-ter recordings made during earlier-performed accelerated gear testing. Results of ALR computations from tooth bending-fatigue failure and pitting failure are displayed and discussed. The periodic behavior of the rotational-harmonic frequency spectra of tooth working-surface damage is verified and utilized in ALR detection of both tooth bending-fatigue and pitting damage. Rotational-harmonic frequency spectra out to the tenth tooth-meshing harmonic of damaged gears are utilized. ALR computations of gears failing in tooth-bending fatigue are shown to provide strong periodic contributions out to (and beyond) the tenth tooth-meshing harmonic, whereas tooth pitting damage is shown to generate rotational harmonic spectra with strongest contributions determined by the fractional size of the pitting damage on tooth working surfaces. This differing character of ALR rotational harmonic spectra between bending-fatigue and pitting damage allows remote detection of damage that can distinguish between these two classifications of gear damage.
机译:在早期进行的加速齿轮测试期间制造的加速记录上行使平均对比比,ALR,齿轮损坏检测算法。显示和讨论从牙齿弯曲疲劳失效和点蚀失败的ALR计算结果。牙齿工作表面损坏的旋转谐波频谱的周期性行为被验证并利用牙齿弯曲疲劳和凹陷损坏。旋转谐波频率光谱到第十齿啮合的损坏齿轮的谐波。显示出在牙齿弯曲疲劳中失效的齿轮的计算,以提供强烈的周期性的周期性贡献,而第十齿啮合的谐波,而齿蚀损坏被示出为产生旋转谐波谱,其具有由分数尺寸确定的最强的贡献牙齿工作表面的凹陷损伤。这种弯曲疲劳和蚀损伤之间的ALR旋转谐波谱的这种不同性格允许远程检测可以区分这两个齿轮损坏分类的损坏。

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