On the Resonance of a Lined Tire Cavity

Q1 Arts and Humanities Acta Acustica united with Acustica Pub Date : 2019-11-01 DOI:10.3813/aaa.919400
Yong-Bin Zhang, Q. Yao, Lei Xiao, Xiao-Zheng Zhang, C. Zheng, C. Bi
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引用次数: 3

Abstract

Cavity resonance is one of the important sources of tire noise. The measures commonly used for suppressing the cavity resonance is to paste sound absorbing material on the inner surface of the tire, which has been proved to be very effective by many experimental studies. But so far there is a lack of methods to assess the influence of absorbing material on the cavity resonance and help determine the optimal sound absorbing material for a tire. To resolve this problem, a method based on the eigenvalue analysis is proposed. In the method, the resonance of a tire cavity lined with sound absorbing material is turned into a complex eigenvalue problem of a closed cavity with prescribed boundary conditions. The real and imaginary parts of the complex eigenvalue can then be used to represent the influence of sound absorbing material on the cavity resonance. Experiments were conducted on a tire lined with polyurethane foams of different thickness and flow resistivity to validate the results obtained by the proposed method, and a good agreement between their results is achieved.
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衬里轮胎腔体共振的研究
空腔共振是轮胎噪声的重要来源之一。常用的抑制空腔共振的措施是在轮胎的内表面粘贴吸声材料,这已经被许多实验研究证明是非常有效的。但是目前还没有方法来评估吸声材料对腔共振的影响,从而确定轮胎的最佳吸声材料。为了解决这一问题,提出了一种基于特征值分析的方法。该方法将内衬吸声材料的轮胎腔的共振问题转化为具有规定边界条件的封闭腔的复特征值问题。复特征值的实部和虚部可以用来表示吸声材料对腔共振的影响。在内衬不同厚度和流动电阻率的聚氨酯泡沫橡胶轮胎上进行了试验,验证了所提方法的结果,两者吻合较好。
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来源期刊
CiteScore
2.60
自引率
0.00%
发文量
0
审稿时长
6.8 months
期刊介绍: Cessation. Acta Acustica united with Acustica (Acta Acust united Ac), was published together with the European Acoustics Association (EAA). It was an international, peer-reviewed journal on acoustics. It published original articles on all subjects in the field of acoustics, such as • General Linear Acoustics, • Nonlinear Acoustics, Macrosonics, • Aeroacoustics, • Atmospheric Sound, • Underwater Sound, • Ultrasonics, • Physical Acoustics, • Structural Acoustics, • Noise Control, • Active Control, • Environmental Noise, • Building Acoustics, • Room Acoustics, • Acoustic Materials and Metamaterials, • Audio Signal Processing and Transducers, • Computational and Numerical Acoustics, • Hearing, Audiology and Psychoacoustics, • Speech, • Musical Acoustics, • Virtual Acoustics, • Auditory Quality of Systems, • Animal Bioacoustics, • History of Acoustics.
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