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Parametric Doppler correction for wayside array acoustic signal via short-time reconstruction.

Authors :
Ding, Xiaoxi
Wu, Shanshan
Li, Yulan
Zhang, Ying
He, Qingbo
Shao, Yimin
Source :
Mechanical Systems & Signal Processing. Jan2024, Vol. 207, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

• An adaptive parametric Doppler correction scheme is mechanistically built for wayside acoustic correction. • The principle of the proposed method aims to mathematically build wayside array acoustic physical model with multiple perception operators. • Short-time reconstruction with formulaic compensation mathematically recover the real-time signal. • STR-based PDC simultaneously recover amplitude, frequency distribution and phase in high fidelity. • Results show validity and potential in propagation and distortion correction for the real-time diagnosis of TADS. The trackside acoustic detection system (TADS) plays a vital role in vehicle bearings condition monitoring. However, the inevitable Doppler distortion embedded in collected data will bring considerable difficulties to defect inspection and diagnosis in the system. The distortion elimination approaches mainly achieve spectrum recovery based on time-domain interpolation resampling (TIR) in a data-driven way. These will be further limited by the requirement to signal to noise ratio (SNR) or calculation speed. Considering the principle of wayside acoustic physical model and the benefits of array acoustic in practice, this study proposes an adaptive parametric Doppler correction (PDC) scheme based on short-time reconstruction (STR), including perception modeling, inverse perception optimization and Doppler correction. Firstly, mathematical modeling with multiple perception operators, including acoustic amplitude modulation operator, frequency modulation operator and array time delay operator, a wayside acoustic physical model based on array sensing is established. Secondly, through the corresponding inverse multiple perception operators, a transition signal with frequency-domain energy concentrated is obtained for the optimal moving parameters searching. Thirdly, within short-time sequence segments of the sound source, the real-time position recovery is realized via the proposed STR with formulaic propagation delay compensation. Theoretically, it can be seen that the proposed PDC scheme can simultaneously recover the amplitude, frequency distribution and phase of the Doppler signal, which can be applicable to all wayside acoustic diagnosis scenarios. With the correction analysis of simulation and experimental array defect signals, it can be confirmed that the proposed STR-based PDC scheme is effective for Doppler signal recovery in high fidelity, and has great potential to the real-time diagnosis of TADS. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
08883270
Volume :
207
Database :
Academic Search Index
Journal :
Mechanical Systems & Signal Processing
Publication Type :
Academic Journal
Accession number :
173858320
Full Text :
https://doi.org/10.1016/j.ymssp.2023.110902