期刊文献+

微气泡曝气中微气泡收缩特性研究 被引量:3

Characteristics of microbubble's shrinkage in microbubble aeration
在线阅读 下载PDF
导出
摘要 微气泡曝气是一种新的气泡曝气方式,气泡特性对微气泡曝气性能具有显著影响。采用气-水旋流微气泡发生装置,考察了微气泡曝气中气泡尺寸和微气泡收缩特性及其影响因素。结果表明,微气泡发生装置在清水中产生的微气泡平均直径为55.85μm,标准偏差为30.03μm;40~50μm直径范围内的微气泡所占的体积分率最大,表面活性剂SDS会降低微气泡的平均直径。微气泡具有加速收缩消失的行为特性,微气泡初始直径与收缩时间之间存在显著的正相关关系,静态条件下相同初始直径的微气泡收缩过程存在明显差异。表面活性剂SDS存在时,微气泡的收缩时间显著延长。微气泡的收缩时间与传质区域面积具有负相关关系,表明微环境影响微气泡收缩过程。 Microbubble aeration is a new type of bubble aeration and bubbles characteristics show great influence on the per formance of microbubble aeration. The characteristics of microbubble size and its shrinkage in microbubble aeration were inves tigated using a gas-water circulation type microbubble generator. The average diameter of microbubbles produced by the micro bubble generator in clean water was 55.85 bμm and the standard deviation was 30.03 bμm. The microbubbles with the diameter range from 40 μm to 50 μm had the maximum volumetric ratio. The existence of surfactant SDS decreased the average micro bubble diameter. Microbubbles also showed the behaviors of accelerated shrinkage and disappearance. There was a significant positive correlation between microbubbles initial diameter and its shrinkage time. The microbubble shrinkage time was pro- longed remarkably in the presence of surfactant SDS, compared to that in clean water. The shrinkage processes of different mi crobubbles with the same diameter showed diversity under the static condition. Furthermore, the negative correlation between microbubble shrinkage time and gas mass transfer area was observed, indicating that mierobubble shrinkage was influenced by its micro-environment.
出处 《河北工业科技》 CAS 2012年第6期352-356,共5页 Hebei Journal of Industrial Science and Technology
基金 河北省应用基础研究计划重点基础研究项目(11966726D)
关键词 微气泡曝气 微气泡直径 微气泡收缩 表面活性剂 microbubble aeration mierobubb|e size microbubbles shrinkage surfactant
  • 相关文献

参考文献21

  • 1ASHLEY K I, MAVINIC D S, HALL K J. Bench-scale study of oxygen transfer in coarse bubble diffused aeration [J]. Wa-ter Research, 1992, 26:1 289-1 295.
  • 2JENKINS K B. Application of oxygen mierobubbles for in situ biodegradation of .o-xylene-eontaminated groundwater in a soil column[J]. Bioteehnology Progress, 1993, 9: 394-400.
  • 3PARK J Y, CHOI Y J, MOON S, et al. Mierobubble suspen- sion as a carrier of oxygen and acclimated bacteria for phenan- threne biodegradation[J]. Journal of Hazardous Materials, 2009, 163: 761-767.
  • 4CHOI Y J, PARK J Y, KIM Y J, et al. Flow characteristics of microbubble suspensions in porous media as an qxygen carri- er [J]. Clean, 2008, 36 (1) ,59-65.
  • 5CHU L B, YAN S T, XING X H: et al. Enhanced sludge sol- ubilization by microbubble ozonation[J]. Chemosphere, 2008, 72: 205-212.
  • 6CHU L B, XING X H, YU A F, et al. Enhanced ozonation of simulated dyestuff wastewater by microbubbles [J]. Chemo- sphere, 2007, 68:1 854-1 860.
  • 7HASEGAWA H, NAGASAKA Y, KATAOKA H. Electrical potential of microbubble generated by shear flow in pipe with slits [J]. Fluid Dynamics Research, 2008, 40: 555-564.
  • 8XU Q Y, NAKAJIMA M, ICHIKAWA S, et al. A compara- tive study of microbubble generation by mechanical agitation and sonication [J]. Innovative Food Science and Emerging Technologies, 2008, 9(4): 489-494.
  • 9SHIN W T, MIRMIRAN A, YIACOUMI S, et ah Ozonation using microbubbles formed by electric fields[J]. Separation and Purification Technology, 1999, 155 271-282.
  • 10BREDWELL M D, WORDEN R M. Mass transfer properties of microbubbles(I):Experimental studies [J]. Biotechnology Progress, 1998, 14: 31-38.

二级参考文献51

  • 1孙漓青,甘一萍,魏薇,陈晓华.Biostyr~曝气生物滤池中试研究[J].给水排水,2005,31(8):14-18. 被引量:19
  • 2HASEGAWA H, NAGASAKA Y, KATAOKA H. Electrical potential of microbubble generated by shear flow in pipe with slits[J].Fluid Dynamics Research, 2008,40 : 554-564.
  • 3CHU L B,XING X H,YU A F, et al. Enhanced ozonation of simulated dyestuff wastewater by microbubbles [J].Chemosphere,2007,68:l 854-1 860.
  • 4CHOI Y J,PARK J Y,KIM Y J,et al. Flow characteristics of microbubble suspensions in porous media as an oxygen carrier [J]. Clean,2008,36 (1) :59-65.
  • 5XU Q Y,NAKAJIMA M,ICHIKAWA S,et al. A comparative study of microbubble generation by mechanical agitation and sonication[J]. Innovative Food Science and Emerging Technologies, 2008,9 (4) : 489-494.
  • 6TAKAHASHI M, CHIBA K, LIP. Free-radical generation from collapsing microbubbles in the absence of a dynamic stimulus[J]. J Phys Chem B,2007,111(6) :1 343-1 347.
  • 7BURNS S E, YIACOUMI S, TSOURIS C. Microbubble generation for environmental and industrial separations[J].Separation and Purifieation Technology, 1997,11 : 221-232.
  • 8SHINTAKU H,IMAMURA S,KAWANO S. Microbubble formations in MEMS-fabricated rectangular channels: A high-speed observation[J]. Experimental Thermal and Fluid Science, 2008,32:1 132-1 140.
  • 9KUKIZAKI M,WADA T. Effect of the membrane wettability on the size and size distribution of microbubbles formed from shirasu-porous-glass (SPG) membranes[J]. Colloids and Surfaces A : Physicochemical and Engineering Aspects, 2008,317 : 146-154.
  • 10KUKIZAKI M, WADA T. Effect of surfaetant type on microbubble formation behavior using shlrasu porous glass (SPG) membranes[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2008,326 : 129-137.

共引文献26

同被引文献25

引证文献3

二级引证文献13

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