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炉内四角切圆流场中的声传播特性研究

Research on acoustic propagation characteristics in the four-corner tangent circular flow field in the furnace

  • 摘要: 针对炉内流场中声传播特性规律不明,影响声波法测量炉内物理场精度的问题,对流场与声场进行耦合仿真,研究炉内流场分布对声传播特性的影响,并设计四角切圆流场中的声传播实验。研究发现:与无背景流场相比,在四角切圆流场中,射流尾迹处的声压级在低频段减小,高频段增大,并且在5~10 kHz频段声压级的峰谷发生翻转;入风口附近的涡流变化区声压级峰值增大,在5~10 kHz和13~16 kHz频段,声压级的峰谷发生翻转;实验与仿真结果均表明,随着背景流速增大,扩散衰减增大,声压级增幅减缓;实验结果发现,在4~5.5 kHz频段,流场对声压级影响较小,该频段信号适合作为温度场监测的声源。研究结论为炉内物理场重建提供了理论依据,可提高重建精度。

     

    Abstract: The law of sound propagation characteristics is unclear in the flow field in the furnace, which affects the accuracy of the acoustic wave method to measure the physical field in the furnace. In order to solve this problem, the coupling simulation of the flow field and the sound field is carried out to study the influence of the flow field distribution in the furnace on the sound propagation characteristics, and the acoustic propagation experiment in the four-corner tangent circle flow field is designed. It is found that in the tangential flow field, the sound pressure level at the wake of the jet decreases at low frequencies and increases at high frequencies, and the peaks and valleys of the sound pressure level in the frequency band of 5–10 kHz are reversed. The peak value of the sound pressure level in the vortex change region near the inlet increases, and the peak and valley of the sound pressure level in the frequency band of 5–10 kHz and 13–16 kHz are reversed. Both experimental and simulation results show that with the increase of background velocity, diffusion attenuation increases and sound pressure level increases slowly. Moreover, the experimental results show that the flow field has little influence on sound pressure level in the frequency band of 4–5.5 kHz, which is suitable for the sound source frequency band for temperature field monitoring. The research results provide a principle basis for the reconstruction of the physical field in the furnace, so as to improve the accuracy of the reconstruction.

     

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