带风管的冰箱冷冻柜的振动声分析

Q2 Physics and Astronomy Advances in Acoustics and Vibration Pub Date : 2017-01-01 DOI:10.1155/2017/1960898
Onur Çelikkan, H. Erol
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引用次数: 5

摘要

研究了冷冻柜结构与空腔之间的振动和声相互作用。因此,进行了一组数值和实验分析。在数值分析中,求解了冷冻室腔体的声学特性,并采用声学流固耦合(AFSI)技术,采用混合有限元法分析了冷冻室腔体与风道的耦合行为。在实验分析中,对冷冻室腔体进行了声学模态分析,并对风管进行了结构模态分析。结果之间取得了很好的一致性。从而验证了数值模型的准确性。将验证的模型用于优化设计。为了解决冰柜内部的噪声产生机理,在冰柜正常工作状态下,对主要由冰柜风扇单元产生的噪声进行了测量,得到了其共振频率。该信息与风道的正常模式进行了比较,并确定了重叠频率。为了减少源和结构之间的相互作用,对风道进行了一些设计修改。因此,减少了从风管辐射到冷冻室腔的结构噪声。
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Vibroacoustic Analysis of a Refrigerator Freezer Cabinet Coupled with an Air Duct
In this study, the vibration and acoustic interactions between the structure and the cavity inside the freezer cabinet were investigated. Thus, a set of numerical and experimental analyses were performed. In the numerical analysis, the acoustic characteristics of the freezer cavity were solved, and the mixed finite element method was then implemented to analyse the coupled behaviour of the cavity with the air duct using the Acoustic Fluid-Structure Interaction (AFSI) technique. In the experimental analyses, an acoustic modal analysis of the freezer cavity and a structural modal analysis of the air duct were performed for the validation process. A good agreement was obtained among the results. Thus, the accuracy of the numerical model was confirmed. The validated models were used for optimizing the design. To solve the noise generation mechanism inside the freezer cabinet, the noise primarily generated by the freezer fan unit was measured under normal working conditions of the refrigerator, and the resonance frequencies were obtained. This information was compared with the normal modes of the air duct, and the overlapping frequencies were identified. To reduce the interaction between the source and the structure, a few design modifications were applied to the air duct. Thus, the structural-borne noise radiating from the air duct into the freezer cavity was reduced.
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期刊介绍: The aim of Advances in Acoustics and Vibration is to act as a platform for dissemination of innovative and original research and development work in the area of acoustics and vibration. The target audience of the journal comprises both researchers and practitioners. Articles with innovative works of theoretical and/or experimental nature with research and/or application focus can be considered for publication in the journal. Articles submitted for publication in Advances in Acoustics and Vibration must neither have been published previously nor be under consideration elsewhere. Subject areas include (but are not limited to): Active, semi-active, passive and combined active-passive noise and vibration control Acoustic signal processing Aero-acoustics and aviation noise Architectural acoustics Audio acoustics, mechanisms of human hearing, musical acoustics Community and environmental acoustics and vibration Computational acoustics, numerical techniques Condition monitoring, health diagnostics, vibration testing, non-destructive testing Human response to sound and vibration, Occupational noise exposure and control Industrial, machinery, transportation noise and vibration Low, mid, and high frequency noise and vibration Materials for noise and vibration control Measurement and actuation techniques, sensors, actuators Modal analysis, statistical energy analysis, wavelet analysis, inverse methods Non-linear acoustics and vibration Sound and vibration sources, source localisation, sound propagation Underwater and ship acoustics Vibro-acoustics and shock.
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