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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Experimental study of sloshing noise in a partially filled rectangular tank under periodic excitation
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Experimental study of sloshing noise in a partially filled rectangular tank under periodic excitation

机译:周期性激励下部分填充矩形箱中晃动噪声的实验研究

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摘要

Liquid sloshing is becoming a major source of noise in hybrid and high-end luxury cars, especially during acceleration/deceleration driving conditions. This is due to the reduction in noise from other sources, namely, engine, transmission system, road-tyre interaction and so on. Sloshing noise is highly dependent on fluid motion in the containers. Based on the fluid motion in the containers, sloshing is classified into different regimes. The present experimental study discusses the noise generation mechanisms for various sloshing regimes. It is done by emulating different sloshing regimes in a partially filled rectangular tank by imposing longitudinal periodic excitation. The effect of fill level on noise generation phenomenon in each regime is analysed, individually, using dynamic response parameters and high-speed camera images. In this study, the measured dynamic response parameters are pressure, force, acceleration and sound pressure levels as a function of time. The fundamental reasons for the cause of sloshing noise in partially filled rectangular tanks are identified in terms of fluid motion and its interaction with the surrounding objects. The excitations upto the sloshing resonance condition cause hydraulic jumps along the tank walls leading to hit noise. Excitations beyond the sloshing natural frequency cause the predominant interaction of surface waves with surrounding fluid leading to splash noise.
机译:液体晃动正在成为混合动力和高端豪华车的主要噪声来源,特别是在加速/减速驾驶条件下。这是由于来自其他来源的噪音,即发动机,传动系统,道路轮胎交互等。晃动噪声高度依赖于容器中的流体运动。基于容器中的流体运动,晃动被分为不同的制度。本实验研究探讨了各种晃动制度的噪声产生机制。通过施加纵向周期性激发,通过在部分填充的矩形罐中模拟不同的晃动制度来完成。使用动态响应参数和高速相机图像单独分析每个制度中噪声产生现象的效果。在本研究中,测量的动态响应参数是随时间的压力,力,加速度和声压水平。在部分填充的矩形箱中晃动晃动​​原因的根本原因在流体运动和与周围物体的相互作用方面识别。晃动晃动条件的激励导致沿罐壁的液压跳跃,导致噪音击中噪音。超出晃动自然频率的激励导致表面波与周围流体的主要相互作用导致飞溅噪声。

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