Source identification of a vibrating plate using phase conjugation and interior boundary element method

Song Liu, Ren-jie Zhao, Kang Yang, Pan-pan Liu, Yi-fan Du
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Abstract

Noise pollution is the most serious environmental pollution, which seriously affects people’s normal life and physical and mental health, as well as normal production work. Therefore, noise control is necessary, but before noise control, the first thing to do is to identify the location of the noise source, and the noise control work is meaningless when the noise cannot be identified. Flat plate structures are a fundamental part of complex ship structures, and their vibration, noise, and their interrelationships when excited by the outside world are receiving increasing attention. The core of the research in this paper is the identification of the sound source of the vibrating plate. A method combining phase conjugation with interior boundary element method is developed for the identification of the pressure and normal velocity distribution of a vibrating plate. An interior problem is formed by enclosing the phase conjugation array plane and the plate surface. The pressures at the array elements are phase-conjugated as the specified pressure boundary condition. The impedance relationship between the surface pressure and the surface normal velocity of the plate is utilized as a specified impedance boundary condition. The interior boundary element method is applied to solve the interior problem. The identification of the surface pressure and normal velocity distribution is studied numerically. The numerical results show that with the array located in the near field the proposed method achieves subwavelength focusing to identify the surface pressure and normal velocity distribution and clearly shows the response shapes.
利用相位共轭和内部边界元法识别振动板的振源
噪声污染是最严重的环境污染,严重影响人们的正常生活和身心健康,影响正常的生产工作。因此,噪声控制是必要的,但在噪声控制之前,首先要做的是确定噪声源的位置,噪声无法确定,噪声控制工作也就失去了意义。平板结构是复杂船舶结构的基本组成部分,其受外界激励时的振动、噪声及其相互关系越来越受到人们的关注。本文研究的核心是振动板声源的识别。为识别振动板的压力和法向速度分布,本文开发了相位共轭法与内部边界元法相结合的方法。相位共轭阵列平面和振动板表面围成一个内部问题。阵列元素处的压力是相位共轭的,作为指定的压力边界条件。表面压力与板表面法向速度之间的阻抗关系被用作指定阻抗边界条件。采用内部边界元法解决内部问题。对表面压力和法向速度分布的识别进行了数值研究。数值结果表明,当阵列位于近场时,所提出的方法可实现亚波长聚焦,从而识别表面压力和法向速度分布,并清晰显示响应形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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