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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Research on CEEMD-AGA Denoising Method and Its Application in Feed Mixer
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Research on CEEMD-AGA Denoising Method and Its Application in Feed Mixer

机译:CEEMD-AGA去噪方法及其在饲料混合器中的应用研究

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Rotating shaft is the key part of rotating machinery, which directly affects the performance of the whole machine. Field test is an easy and quick way to obtain the load data in engineering practice. However, because of various reasons, the load data are often mixed with many noise components. Based on the autocorrelation function, the CEEMD (complementary ensemble empirical mode decomposition) denoising method is proposed in this paper. The AGA (adaptive genetic algorithm) is adopted to solve parameter optimization problems in CEEMD. A new similarity function is proposed as the fitness function. Lastly, the proposed denoising method is applied to a feed mixer’s load which is obtained by field test. The result shows that the CEEMD-AGA method has good robustness, noise components of small stress amplitude and large stress mean are removed, and there is a high correlation between the original data and the reconstructed data, which demonstrate that the CEEMD-AGA method can reduce the influence of noise components effectively.
机译:旋转轴是旋转机械的关键部分,直接影响整机的性能。现场测试是一种简单而快速的方法,可以获得工程实践中的负载数据。然而,由于各种原因,负载数据通常与许多噪声分量混合。基于自相关函数,本文提出了CEEMD(互补集合经验模式分解)去噪方法。采用AGA(自适应遗传算法)来解决CEEMD中的参数优化问题。提出了一种新的相似性功能作为健身功能。最后,拟议的去噪方法应用于通过现场测试获得的饲料混合器的负荷。结果表明,CeEMD-AGA方法具有良好的鲁棒性,消除了小应力幅度和大应力平均值的噪声分量,并且原始数据与重建数据之间存在高的相关性,这证明了CEEMD-AGA方法可以有效降低噪声分量的影响。

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