期刊文献+

超声辐照及辐照环境对液体中流场分布特性的影响 被引量:2

Influence of ultrasonic irradiation on distribution of the flow field
原文传递
导出
摘要 研究了超声辐照下液体中声压场分布,模拟了流场分布的特性,模拟结果与利用粒子成像测速仪得到的实验结果相符。进一步研究了声学参数及容器几何环境对流场分布的影响。研究发现,增大超声功率和频率可使流场速度变大:在30-60W范围内,超声功率与流场中最大流速间存在线性关系;在频率为100-472kHz范围内,流场速度大小随频率的升高而增加:在层流区,流速与频率的平方成正比;在湍流区,流速与频率的1/2次方成正比。进一步研究发现,随着换能器到容器壁间距离的增加,流场速度减小。 Distribution for ultrasonic pressure field in a vessel was simulated, and the results are in good agreement with experimental results. On this basis, the flow field was simulated by the use of the distribution of the ultrasound field. Results were compared with experimental results obtained by particle image velocimetry. The influence of acoustical and geometric parameters for the flow field was discussed. Results have indicated that ultrasonic power enhances the flow field, and the maximum of the liquid velocity is linear to the ultrasonic power in a range. Within ultrasonic frequency range from 100 kHz to 472 kHz, the flow field was enhanced by the increase of frequency. The liquid velocity is proportional to the square of the frequency when flow is laminar flow. The liquid velocity is proportional to the square root of the frequency. The influence of the vessel size on the flow field was also discussed: with increasing distance from the transducer to the walls of the vessel, the flow field velocity decreases.
作者 徐峥 刘晓峻
出处 《声学学报》 EI CSCD 北大核心 2016年第5期718-723,共6页 Acta Acustica
基金 国家自然科学基金项目(11404245 11211140039)资助
关键词 流场分布 超声辐照 特性 液体 环境 粒子成像测速仪 流场速度 最大流速 Laminar flow Liquids Velocity Velocity measurement
  • 相关文献

参考文献14

  • 1徐峥,许坚毅,刘晓峻.超声波降解有机物溶液的气泡动力学研究[J].声学学报,2009,34(2):180-186. 被引量:5
  • 2徐峥,许坚毅,刘晓峻.声光协同作用下金纳米颗粒表面空化泡的动力学研究[J].声学学报,2010,35(1):14-18. 被引量:5
  • 3邓明晰,D.C.Price,D.A.Scott.兰姆波非线性效应的实验观察[J].声学学报,2005,30(1):37-46. 被引量:13
  • 4马大猷.热声学的基本理论和非线性 Ⅱ.热声管中的非线性声波[J].声学学报,1999,24(5):449-462. 被引量:14
  • 5Nyborg W L. Acoustic stwaming due to attenuated plane waves. J. Acoust. Soc. Am., 1953: 25(1): 68- 75.
  • 6Bernassau A L, Glymle-Jones P, Gesellchen F, Riehle M, Hill M, Cumming D. Controlling acoustic streaming in all ultrasonic heptagonal tweezers with application to ('ell ma, nipulation. Ultrasonics, 2014: 54(1): 268 -274.
  • 7Luong T D, Phan V N, Nguyen N T. High-throughput mi- cromixers based on acoustic streaming induced by surface acoustic wave, Microlltid Naroflui& 2011; 10(3): 619- 625.
  • 8Li F, Cai F, Liu Z, Meng L, Qian M, Wang C, Cheng Q, Qian M, Liu X, W'u J, Li .J, Zheng H. Phononic-crystal- based acoustic sieve for tunable manipulations of particles by a highly localized radiation force. Phy,s. Rev. Appl., 2014; 1(5): 051001-1-5.
  • 9Dentry M B, Yeo L Y, Friend ,1 R. Frequency effects oil the scale and behavior of acoustic streaming. Pltl. Rev. E, 2014; 89(1): 013203-1-11.
  • 10Kamakura T, Sudo T, Matsuda K, Kunlamoto Y. Time evolution of acoustic streaming from a planar ultrasound source. J. Acoust. Soc. Am., 1996; 100(1): 132 -138.

二级参考文献42

共引文献32

同被引文献9

引证文献2

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部