Reconstruction of Vital Blade Signal from Unsteady Casing Vibration

Some important information pertaining to blade fault is thought to be concealed in highly unsteady casing vibration. This paper explores suitable methods to best reconstruct blade related signals from raw casing vibration, which could be used for diagnosis of blade fault. The feasibility of translat...

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Main Authors: Meng Hee Lim, M. S. Leong
Format: Article
Language:English
Published: SAGE Publishing 2014-01-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1155/2014/146983
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spelling doaj-aefecbe235b84f80b40583613d6d921d2020-11-25T03:20:34ZengSAGE PublishingAdvances in Mechanical Engineering1687-81322014-01-01610.1155/2014/14698310.1155_2014/146983Reconstruction of Vital Blade Signal from Unsteady Casing VibrationMeng Hee Lim0M. S. Leong1 Razak School of Engineering & Advanced Technology, Universiti Teknologi Malaysia International Campus, Jalan Semarak, 54100 Kuala Lumpur, Malaysia Faculty of Mechanical Engineering, Universiti Teknologi Malaysia, 81310 Johor, MalaysiaSome important information pertaining to blade fault is thought to be concealed in highly unsteady casing vibration. This paper explores suitable methods to best reconstruct blade related signals from raw casing vibration, which could be used for diagnosis of blade fault. The feasibility of translation invariant wavelet transform and cycle spinning (TIWT-CS) technique in reconstruction of these signals is investigated in this paper. Subsequently, a new parameter for blade fault diagnosis, namely, the energy profile of blade signal (EPBS), is formulated. Experimental results show that TIWT-CS method effectively retained blade related signals, while other unwanted signals such as system noises and aerodynamic induced vibration are reasonably suppressed. EPBS provides an indication of the condition of blade faults in rotor system, whereby the exact position and the quantity of faulty blades, as well as the root cause of blade fault, can be identified. In comparison, the energy profile plots using unfiltered casing vibration were found to be highly unstable and therefore provides inconsistent results for diagnosis of blade fault.https://doi.org/10.1155/2014/146983
collection DOAJ
language English
format Article
sources DOAJ
author Meng Hee Lim
M. S. Leong
spellingShingle Meng Hee Lim
M. S. Leong
Reconstruction of Vital Blade Signal from Unsteady Casing Vibration
Advances in Mechanical Engineering
author_facet Meng Hee Lim
M. S. Leong
author_sort Meng Hee Lim
title Reconstruction of Vital Blade Signal from Unsteady Casing Vibration
title_short Reconstruction of Vital Blade Signal from Unsteady Casing Vibration
title_full Reconstruction of Vital Blade Signal from Unsteady Casing Vibration
title_fullStr Reconstruction of Vital Blade Signal from Unsteady Casing Vibration
title_full_unstemmed Reconstruction of Vital Blade Signal from Unsteady Casing Vibration
title_sort reconstruction of vital blade signal from unsteady casing vibration
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8132
publishDate 2014-01-01
description Some important information pertaining to blade fault is thought to be concealed in highly unsteady casing vibration. This paper explores suitable methods to best reconstruct blade related signals from raw casing vibration, which could be used for diagnosis of blade fault. The feasibility of translation invariant wavelet transform and cycle spinning (TIWT-CS) technique in reconstruction of these signals is investigated in this paper. Subsequently, a new parameter for blade fault diagnosis, namely, the energy profile of blade signal (EPBS), is formulated. Experimental results show that TIWT-CS method effectively retained blade related signals, while other unwanted signals such as system noises and aerodynamic induced vibration are reasonably suppressed. EPBS provides an indication of the condition of blade faults in rotor system, whereby the exact position and the quantity of faulty blades, as well as the root cause of blade fault, can be identified. In comparison, the energy profile plots using unfiltered casing vibration were found to be highly unstable and therefore provides inconsistent results for diagnosis of blade fault.
url https://doi.org/10.1155/2014/146983
work_keys_str_mv AT mengheelim reconstructionofvitalbladesignalfromunsteadycasingvibration
AT msleong reconstructionofvitalbladesignalfromunsteadycasingvibration
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