首页> 外文学位 >Experimental studies of static mixers and twin screw extruders.
【24h】

Experimental studies of static mixers and twin screw extruders.

机译:静态混合器和双螺杆挤出机的实验研究。

获取原文
获取原文并翻译 | 示例

摘要

The laminar flow field in a Kenics KM® static mixer and a Werner and Pfleiderer ZSK-30® twin screw extruder (TSE) has been studied using laser induced fluorescence (LIF) coupled with digital image analysis, particle image velocimetry (PIV) and laser Doppler anemometry (LDA). The objective of this study was to observe the flow fields in these two devices, to determine their mixing capabilities qualitatively and quantitatively.; Mixing in the static mixer was quantified by measurement of the number average striation thickness, variance of striation widths and interfacial area for elements with 90 degrees of twist. From flow visualisations; and LDA measurements, transitions were observed in the flow where vortices developed above the first and second elements. These vortices did not appreciably enhance mixing after 4 to 5 elements with an aspect ratio (L/D) of 1.0.; The velocity field measured over the first four elements (L/D = 1.5), captured the mixing nature of the static mixer, where flow was split at the leading edge and recombined at the trailing edge of the elements. Recirculations in the radial plane were observed where fluid flowed from the high-pressure side of the element forward out along the tube wall to the low-pressure side or suction side. The radial flow field required a development length to allow the flow to build in magnitude. The rate of deformation analysis on the flow field indicated that mixing efficiency would be increased if the first element had a larger helix angle. The highest rates of deformation were measured at the junctions between elements, and between the element and tube surfaces.; The visualisations coupled with image analysis for the TSE demonstrated clearly that the mixing was enhanced by placing a reverse conveying element directly after the last set of kneading discs in the mixing section. The velocity results for the screw profile with extended first and last discs (geometry A) showed an increase in back flow and recirculations with increasing screw rotation. When a forward conveying element was used before and after the kneading discs (geometry B), higher radial and lower axial velocities were measured. The fluid flowed in the direction of rotation and no back-mixing or recirculations in the flow were measured.; Results of a 3D model for the simulation of flow in the kneading disc region and the PIV measurements were compared. Results for geometry A are in good qualitative agreement for low flow rates. Geometry B showed better agreement at higher flow rates compared to lower flow rates.; The performance of the kneading discs was characterised based on the shear, elongation and the magnitude of the rate of deformation tensor within the measured flow fields. For the various cases of screw rotation speed, the largest rates of deformations (elongation and shear) were seen at the first and last disc of the kneading block where flow transitions occurred.
机译:使用激光诱导荧光(LIF)研究了Kenics KM ®静态混合器以及Werner和Pfleiderer ZSK-30 ®双螺杆挤出机(TSE)中的层流场。结合数字图像分析,粒子图像测速(PIV)和激光多普勒风速仪(LDA)。这项研究的目的是观察这两个装置中的流场,以定性和定量地确定它们的混合能力。静态混合器中的混合通过测量90度扭曲元素的数均条纹厚度,条纹宽度变化和界面面积来量化。从流程可视化;在LDA和LDA测量中,在第一和第二元素上方形成涡流的流动中观察到过渡。这些旋涡在4至5个元素(长宽比(L / D)为1.0)后并未明显增强混合。在前四个元件(L / D = 1.5)上测得的速度场捕获了静态混合器的混合特性,在该混合器中,流量在元件的前缘处分离并在后缘处重新结合。在径向平面中观察到了再循环,其中流体从元件的高压侧沿着管壁流向低压侧或吸力侧。径向流场需要一定的展开长度,以使流量增大。在流场上的变形速率分析表明,如果第一个元素具有较大的螺旋角,则混合效率将提高。在元件之间以及元件与管子表面之间的连接处测得的变形率最高。可视化与TSE的图像分析相结合,清楚地表明,通过在混合区的最后一组捏合盘之后直接放置反向输送元件,可以增强混合效果。带有扩展的第一个和最后一个圆盘(几何形状A)的螺杆轮廓的速度结果显示,随着螺杆旋转的增加,回流和再循环增加。当在捏合盘之前和之后使用向前输送元件(几何形状B)时,测得较高的径向速度和较低的轴向速度。流体沿旋转方向流动,未测量到流体中的回混或再循环。比较了在捏合盘区域中模拟流动的3D模型结果和PIV测量结果。对于低流速,几何形状A的结果具有良好的定性一致性。与较低的流量相比,几何B在较高的流量下显示出更好的一致性。捏合盘的性能基于所测流场内的剪切力,伸长率和变形张量的大小来表征。对于螺杆转速的各种情况,在发生流动过渡的捏合块的第一个和最后一个圆盘处观察到最大的变形率(伸长率和剪切力)。

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