2018
DOI: 10.1155/2018/3496870
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Flutter Test Data Processing Based on Improved Hilbert-Huang Transform

Abstract: Flutter tests are conducted primarily for the purpose of modal parameter estimation and flutter boundary prediction, the accuracy of which is severely affected by the acquired data quality, structural modal density, and nonstationary conditions. An improved Hilbert-Huang Transform (HHT) algorithm is presented in this paper which mitigates the typical mode mixing effect via modulation. The algorithm is validated by theory, by numerical simulation, and per actual flight flutter test data. The results show that t… Show more

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Cited by 8 publications
(15 citation statements)
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“…The proposed HHT structure is shown in Figure 2 . First, the frequency shifting [ 49 ] is applied to reduce the mode mixing. Second, the BLSTM-based EMD is performed to compute the IMFs of inertial data and noise assistance analysis.…”
Section: Methods For Fault Diagnosis Of Mems Inertial Sensors In Unmentioning
confidence: 99%
See 1 more Smart Citation
“…The proposed HHT structure is shown in Figure 2 . First, the frequency shifting [ 49 ] is applied to reduce the mode mixing. Second, the BLSTM-based EMD is performed to compute the IMFs of inertial data and noise assistance analysis.…”
Section: Methods For Fault Diagnosis Of Mems Inertial Sensors In Unmentioning
confidence: 99%
“…The proposed method is used to detect ice formation on aircraft. In [ 49 ] Zheng et al presented a flutter test method using HHT, and the method mitigated the mode mixing effect in HHT. In [ 50 ], an improved EMD, called IEEMD, added Gaussian noise into the EMD operation.…”
Section: Related Workmentioning
confidence: 99%
“…Flutter signals are typically processed based on system stability [2], where flutter is considered an unstable phenomenon in the structural system as an appropriate dynamic data model is established for subcritical test signals. The dynamic data modeling places model parameters under certain criteria to define "stability" and calculate the stability parameters accordingly.…”
Section: Introductionmentioning
confidence: 99%
“…However, they are not suited for the signal of complex construction. A self-adaptive method for non-stationary signals and nonlinear is called Empirical mode decomposition (EMD) [19], and it has been successfully implemented for; (a) fault diagnosis [20], (b) wind energy [21], (c) flight flutter [22], (d) image processing [23], (e) health monitoring [24], (f) electroencephalogram (EEG) analysis [25], and (g) electrocardiogram (ECG) signals [26]. Moreover, it still flops to disintegrate a signal within the existence of a high trend.…”
Section: Introductionmentioning
confidence: 99%