Investigation and optimization of valve train abnormal noise under idle condition

This paper investigated an abnormal noise under idle condition and analyzed the mechanism of the noise based on the results of experiments and dynamics simulations. It is confirmed that knocking inside variable valve timing phaser is the source of the abnormal noise. The results of experiments show...

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Main Authors: Xu Zheng, Xuan Luo, Quan Zhou, Yi Qiu, Zhi-Yong Hao
Format: Article
Language:English
Published: SAGE Publishing 2020-12-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/1461348419857546
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spelling doaj-4c8e24fb516e4b9d92cddfd76b67ab662020-12-10T04:04:14ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462020-12-013910.1177/1461348419857546Investigation and optimization of valve train abnormal noise under idle conditionXu ZhengXuan LuoQuan ZhouYi QiuZhi-Yong HaoThis paper investigated an abnormal noise under idle condition and analyzed the mechanism of the noise based on the results of experiments and dynamics simulations. It is confirmed that knocking inside variable valve timing phaser is the source of the abnormal noise. The results of experiments show that half-order rhythm of the vibration and noise components around 1000 and 2100 Hz are different from the other dominant components, which is possible to involve the abnormal noise. Numerical analyses are conducted to simulate the process of the abnormal noise. It is found that the thickness of the blades of the variable valve timing rotor has significant influence on the abnormal noise. The simulation implies that increasing the thickness of the rotor blades will decrease the abnormal noise. When the thickness increases to 3.0 mm, the acoustic frequencies within 1000–1200 Hz have an average drop of 3.7 dB(A), and the acoustic frequencies within 2000–2200 Hz have an average drop of 12.5 dB(A). The results of verification experiments show that the amplitudes of the abnormal noise have obvious reduction, and the abnormal noise is basically eliminated under subjective evaluation.https://doi.org/10.1177/1461348419857546
collection DOAJ
language English
format Article
sources DOAJ
author Xu Zheng
Xuan Luo
Quan Zhou
Yi Qiu
Zhi-Yong Hao
spellingShingle Xu Zheng
Xuan Luo
Quan Zhou
Yi Qiu
Zhi-Yong Hao
Investigation and optimization of valve train abnormal noise under idle condition
Journal of Low Frequency Noise, Vibration and Active Control
author_facet Xu Zheng
Xuan Luo
Quan Zhou
Yi Qiu
Zhi-Yong Hao
author_sort Xu Zheng
title Investigation and optimization of valve train abnormal noise under idle condition
title_short Investigation and optimization of valve train abnormal noise under idle condition
title_full Investigation and optimization of valve train abnormal noise under idle condition
title_fullStr Investigation and optimization of valve train abnormal noise under idle condition
title_full_unstemmed Investigation and optimization of valve train abnormal noise under idle condition
title_sort investigation and optimization of valve train abnormal noise under idle condition
publisher SAGE Publishing
series Journal of Low Frequency Noise, Vibration and Active Control
issn 1461-3484
2048-4046
publishDate 2020-12-01
description This paper investigated an abnormal noise under idle condition and analyzed the mechanism of the noise based on the results of experiments and dynamics simulations. It is confirmed that knocking inside variable valve timing phaser is the source of the abnormal noise. The results of experiments show that half-order rhythm of the vibration and noise components around 1000 and 2100 Hz are different from the other dominant components, which is possible to involve the abnormal noise. Numerical analyses are conducted to simulate the process of the abnormal noise. It is found that the thickness of the blades of the variable valve timing rotor has significant influence on the abnormal noise. The simulation implies that increasing the thickness of the rotor blades will decrease the abnormal noise. When the thickness increases to 3.0 mm, the acoustic frequencies within 1000–1200 Hz have an average drop of 3.7 dB(A), and the acoustic frequencies within 2000–2200 Hz have an average drop of 12.5 dB(A). The results of verification experiments show that the amplitudes of the abnormal noise have obvious reduction, and the abnormal noise is basically eliminated under subjective evaluation.
url https://doi.org/10.1177/1461348419857546
work_keys_str_mv AT xuzheng investigationandoptimizationofvalvetrainabnormalnoiseunderidlecondition
AT xuanluo investigationandoptimizationofvalvetrainabnormalnoiseunderidlecondition
AT quanzhou investigationandoptimizationofvalvetrainabnormalnoiseunderidlecondition
AT yiqiu investigationandoptimizationofvalvetrainabnormalnoiseunderidlecondition
AT zhiyonghao investigationandoptimizationofvalvetrainabnormalnoiseunderidlecondition
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