Stability Design of Air Vibration Isolation Device for a High Power Density Main Engine

In order to improve the alignment stability of the air vibration isolation device of a high-powered main engine, we established a mechanical model for the air vibration isolation system and analyzed the alignment deviation of the device and the vibration decoupling conditions of the system. Addition...

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Main Authors: Jingmin Zhao, Wenjun Bu, Liang Shi, Zechao Hu
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Symmetry
Subjects:
Online Access:https://www.mdpi.com/2073-8994/13/7/1244
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spelling doaj-950beb49578845489506acb9b81cb5a92021-07-23T14:09:25ZengMDPI AGSymmetry2073-89942021-07-01131244124410.3390/sym13071244Stability Design of Air Vibration Isolation Device for a High Power Density Main EngineJingmin Zhao0Wenjun Bu1Liang Shi2Zechao Hu3Institute of Noise & Vibration, Naval University of Engineering, Wuhan 430033, ChinaInstitute of Noise & Vibration, Naval University of Engineering, Wuhan 430033, ChinaInstitute of Noise & Vibration, Naval University of Engineering, Wuhan 430033, ChinaInstitute of Noise & Vibration, Naval University of Engineering, Wuhan 430033, ChinaIn order to improve the alignment stability of the air vibration isolation device of a high-powered main engine, we established a mechanical model for the air vibration isolation system and analyzed the alignment deviation of the device and the vibration decoupling conditions of the system. Additionally, an optimized design method for the dual-direction support of the air vibration isolators positioned symmetrically on the main engine was proposed. The resultant design showed that when compared to the conventional inclined support of air springs for the main engines onboard ships, the dual-direction support design proposed in this paper for air vibration isolation could eliminate the adverse effect of the output torque reaction on the alignment of the main engine and decouple the system to reduce the number of peaks in the frequency response of vertical force transmission. The optimized design could effectively improve the alignment performance of the device for tilted or swinging operating conditions and maintain the good alignment stability of the device when a single vertical support air spring fails. A single vertical support air spring failure mainly affects the stability of the main engine under the reaction of the output torque, especially the air springs arranged in the corner, while the air springs arranged in the middle have no effect. The optimized design could also improve the vibration isolation performance. This is important for the design of air spring vibration isolation devices for high power density main engines.https://www.mdpi.com/2073-8994/13/7/1244high power density main engineair vibration isolatoralignment stabilityvibration decouplingoptimal design
collection DOAJ
language English
format Article
sources DOAJ
author Jingmin Zhao
Wenjun Bu
Liang Shi
Zechao Hu
spellingShingle Jingmin Zhao
Wenjun Bu
Liang Shi
Zechao Hu
Stability Design of Air Vibration Isolation Device for a High Power Density Main Engine
Symmetry
high power density main engine
air vibration isolator
alignment stability
vibration decoupling
optimal design
author_facet Jingmin Zhao
Wenjun Bu
Liang Shi
Zechao Hu
author_sort Jingmin Zhao
title Stability Design of Air Vibration Isolation Device for a High Power Density Main Engine
title_short Stability Design of Air Vibration Isolation Device for a High Power Density Main Engine
title_full Stability Design of Air Vibration Isolation Device for a High Power Density Main Engine
title_fullStr Stability Design of Air Vibration Isolation Device for a High Power Density Main Engine
title_full_unstemmed Stability Design of Air Vibration Isolation Device for a High Power Density Main Engine
title_sort stability design of air vibration isolation device for a high power density main engine
publisher MDPI AG
series Symmetry
issn 2073-8994
publishDate 2021-07-01
description In order to improve the alignment stability of the air vibration isolation device of a high-powered main engine, we established a mechanical model for the air vibration isolation system and analyzed the alignment deviation of the device and the vibration decoupling conditions of the system. Additionally, an optimized design method for the dual-direction support of the air vibration isolators positioned symmetrically on the main engine was proposed. The resultant design showed that when compared to the conventional inclined support of air springs for the main engines onboard ships, the dual-direction support design proposed in this paper for air vibration isolation could eliminate the adverse effect of the output torque reaction on the alignment of the main engine and decouple the system to reduce the number of peaks in the frequency response of vertical force transmission. The optimized design could effectively improve the alignment performance of the device for tilted or swinging operating conditions and maintain the good alignment stability of the device when a single vertical support air spring fails. A single vertical support air spring failure mainly affects the stability of the main engine under the reaction of the output torque, especially the air springs arranged in the corner, while the air springs arranged in the middle have no effect. The optimized design could also improve the vibration isolation performance. This is important for the design of air spring vibration isolation devices for high power density main engines.
topic high power density main engine
air vibration isolator
alignment stability
vibration decoupling
optimal design
url https://www.mdpi.com/2073-8994/13/7/1244
work_keys_str_mv AT jingminzhao stabilitydesignofairvibrationisolationdeviceforahighpowerdensitymainengine
AT wenjunbu stabilitydesignofairvibrationisolationdeviceforahighpowerdensitymainengine
AT liangshi stabilitydesignofairvibrationisolationdeviceforahighpowerdensitymainengine
AT zechaohu stabilitydesignofairvibrationisolationdeviceforahighpowerdensitymainengine
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