利用响应面分析和拓扑刚度优化对空调压缩机隔音罩的研究

IF 1.2 4区 工程技术 Q3 ACOUSTICS
Hai-Feng Cao, Cang-Jie Yang, Ren-Lian Ma, Shi-Wei Ni, Zheng-Kai Song, Xi Wang, Yu-Xuan Chen, Chen-Xing Jiang
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引用次数: 0

摘要

为了兼顾实用性和便携性,我们推出了一种新型分体式空调系统。传统的分体式系统通常将压缩机安装在室外,而本系统将压缩机安装在室内机内,这可能会使用户受到压缩机噪音的影响。压缩机噪声频谱中存在明显的峰值,特别是在压缩机工作频率及其谐波(尤其是二次和三次谐波)处。这项研究提出了一种专为空调压缩机设计的多层隔音罩,可在不改动压缩机或室内机外壳的情况下解决这一问题。为了获得更好的隔音性能,研究人员采用响应面方法(RSM)优化了具有预定厚度的隔音罩的厚度比、开口面积比和开口面积高度。此外,还采用了拓扑优化技术来加强隔声罩的薄弱区域。然后,在半消声室中使用所提议的隔声罩进行了实验测试。结果表明,噪音水平明显降低,其中压缩机工作频率的基频、二次谐波和三次谐波噪音分别降低了 7.99 dB(A)、5.69 dB(A) 和 5.19 dB(A)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Investigation of the Acoustic Enclosure of an Air Conditioning Compressor Using Response Surface Analysis and Topological Rigidity Optimization
A novel split-type air conditioning system is introduced to balance usability and portability. Unlike conventional split-type systems, where the compressor is typically placed outside, this system situates the compressor within the indoor unit, which may expose users to compressor noise. There are prominent peaks in the compressor noise spectrum, particularly at the compressor operating frequency and its harmonics, notably the second and third harmonics. The research presents a multilayered acoustic enclosure specifically designed for air conditioning compressors to address this issue without modifying the compressor or indoor unit casing. In order to get better sound insulation performance, a response surface methodology (RSM) is applied to optimize the thickness ratio, open area ratio, and open area height of the acoustic enclosure with predefined thickness. In addition, topological optimization is employed to strengthen weak areas of the acoustic enclosure. Then, experimental trials using the proposed acoustic enclosure are conducted in a semianechoic chamber. Results demonstrate significant reductions in noise levels, including 7.99 dB(A), 5.69 dB(A), and 5.19 dB(A) reductions in the fundamental frequency, second harmonic, and third harmonic noise of the compressor’s operating frequency, respectively.
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来源期刊
Shock and Vibration
Shock and Vibration 物理-工程:机械
CiteScore
3.40
自引率
6.20%
发文量
384
审稿时长
3 months
期刊介绍: Shock and Vibration publishes papers on all aspects of shock and vibration, especially in relation to civil, mechanical and aerospace engineering applications, as well as transport, materials and geoscience. Papers may be theoretical or experimental, and either fundamental or highly applied.
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