首页> 外文期刊>Experimental Thermal and Fluid Science: International Journal of Experimental Heat Transfer, Thermodynamics, and Fluid Mechanics >Experimental and numerical study of mini-riser geometry effect on drops residence time in the developing flow
【24h】

Experimental and numerical study of mini-riser geometry effect on drops residence time in the developing flow

机译:微型冒口几何形状对液滴在显影液中停留时间的影响的实验和数值研究

获取原文
获取原文并翻译 | 示例
       

摘要

In this study, velocity distribution and concentration of droplets for mini-riser with different geometries in the developing region is investigated experimentally and numerically to estimate the effects of riser shapes on the drops residence time. Since drops residence time affect on the drops size and consequently total separation efficiency by increasing of the condensation rate for moving droplets in the super-saturated carrier gas. Further, it increases the coagulation in mono dispersed dense gas-particles flow. In the experimental study, an ultrasonic atomizer produces small size water drops. Mini-risers with corners including triangular, rectangular and square shapes with the same hydraulic diameter are examined. Particle shadow velocimetry (PSV) technique based on shadow casting combined with the high-speed microscopic imaging is introduced for visualizing droplets motion and simultaneous velocity and concentration measurements near walls and corners. Such a technique is well suited for small water droplets measurements near surfaces especially in narrow geometries where conventional laser-based PIV methods are hampered by surface glare, interference of scattered lights and optical access. Effectively narrowdepth-of-field optical setup is employed for imaging a two dimensional plane within a flow volume. In addition, the numerical modeling is carried out for estimating general drops residence time in the riser. Results indicate that the drops concentration near wall is very low especially in the corners. Droplets residence time and concentration near the wall and corner is highest for triangular shape. Triangular shape enhances the average residence time of drops 50.6% more with respect to square one. Using of sharper corners and higher aspect ratio for the riser geometry increase droplets residence time in addition ease the separation process.
机译:在这项研究中,通过实验和数值研究了不同几何形状的微型上升器在发育区域的速度分布和液滴浓度,以评估立管形状对液滴停留时间的影响。由于液滴的停留时间会影响液滴的尺寸,进而影响总分离效率,因为增加了过饱和载气中移动液滴的冷凝速率。此外,它增加了单分散的致密气体颗粒流中的凝结。在实验研究中,超声波雾化器会产生小水滴。检查了具有相同水力直径的转角包括三角形,矩形和正方形的小型立管。引入了基于阴影投射和高速显微成像的粒子阴影测速(PSV)技术,用于可视化液滴运动以及同时测量壁和拐角附近的速度和浓度。这种技术非常适用于表面附近的小水滴测量,尤其是在狭窄的几何形状中,在这种几何形状中,常规的基于激光的PIV方法会因表面眩光,散射光的干扰和光学通道而受阻。有效地使用窄景深光学装置来对流量内的二维平面成像。另外,进行了数值建模以估计一般液滴在立管中的停留时间。结果表明,壁附近的液滴浓度非常低,尤其是在角落。对于三角形,液滴在壁和角附近的停留时间和浓度最高。相对于正方形,三角形的形状使液滴的平均停留时间增加了50.6%。对于立管几何形状,使用更锐利的角和更高的长宽比会增加液滴的停留时间,并简化分离过程。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号