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Motion analysis of fluid flow in a spinning disk reactor.

机译:旋转盘式反应器中流体流动的运动分析。

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摘要

The flow of a liquid film over a rapidly rotating horizontal disk has numerous industrial applications including pharmaceuticals, chemical engineering, bioengineering, etc. The analysis and control of complex fluid flows over a rapidly rotating horizontal disk is an important issue in the experimental fluid mechanics. The spinning disk reactor exploits the benefits of centrifugal force, which produces thin highly sheared films due to radial acceleration. The hydrodynamics of the film results in excellent fluid mixing and high heat or mass transfer rates.;This work focuses on developing a novel approach for fluid flow tracking and analysis. Specifically, the developed algorithm is able to detect the moving waves and compute controlling film flow parameters for the fluid flowing over a rotating disk. The input to this algorithm is an easily acquired non-invasive video data. It is shown that under single light illumination it is possible to track specular portion of the reflected light on the moving wave. Hence, the fluid wave motion can be tracked and fluid flow parameters can be computed. The fluid flow parameters include wave velocities, wave inclination angles, and distances between consecutive waves. Once the parameters are computed, their accuracy is analyzed and compared with the solutions of the mathematical fluid dynamics models based on the Navier-Stokes equations for the case of a thin film. The fluid model predicts wave characteristics based on directly measured controlling parameters, such as disk rotation speed and fluid flow rate. It is shown that the calculated parameter values approximately coincide with the predicted ones. The average computed parameters were within 5 -- 10% of the predicted values.;In addition, given recovered fluid characteristics and fluid flow controlling parameters, full 3D wave description is obtained. That includes 3D wave location, speed, and distance between waves, as well as approximate wave thickness.;Next, the developed approach is generalized to model-based recovery of fluid flow controlling parameters: the speed of the spinning disk and the initial fluid-flow rate. The search in space for model parameters is performed as to minimize the error between the flow characteristics predicted by the fluid dynamics model (e.g. distance between waves, wave inclination angles) and parameters recovered from video data. Results demonstrate that the speed of a disk and the flow rate are recovered with high accuracy. When compared to the ground truth available from direct observation, we noted that the controlling parameters were estimated with less than 10% error.
机译:液膜在快速旋转的水平盘上的流动具有许多工业应用,包括制药,化学工程,生物工程等。在快速旋转的水平盘上的复杂流体的分析和控制是实验流体力学中的重要问题。旋转盘式反应器利用了离心力的优势,由于径向加速度,该离心力产生了薄的高剪切薄膜。薄膜的流体动力学特性可实现出色的流体混合以及较高的传热或传质速率。这项工作致力于开发一种新颖的流体流动跟踪和分析方法。具体而言,所开发的算法能够检测运动波并为流过旋转磁盘的流体计算控制薄膜流量参数。该算法的输入是易于获取的非侵入性视频数据。结果表明,在单光照射下,可以在移动波上跟踪反射光的镜面部分。因此,可以跟踪流体波运动并可以计算流体流量参数。流体流动参数包括波速,波倾角和连续波之间的距离。一旦计算出参数,就可以分析其准确性,并与基于Navier-Stokes方程的薄膜流体数学数学模型的解进行比较。流体模型基于直接测量的控制参数(例如磁盘转速和流体流速)来预测波浪特征。结果表明,计算出的参数值与预测值基本一致。计算出的平均参数在预测值的5%至10%之内;此外,给定恢复的流体特性和流体流量控制参数,可以获得完整的3D波描述。其中包括3D波浪的位置,速度和波浪之间的距离以及近似的波浪厚度。接下来,将开发的方法推广到基于模型的流体流量控制参数的恢复:纺丝盘的速度和初始流体的速度。流量。进行空间中的模型参数搜索,以使流体动力学模型预测的流动特性(例如,波之间的距离,波倾斜角)与从视频数据中恢复的参数之间的误差最小。结果表明,磁盘的速度和流速得到了高精度的恢复。当与直接观察得到的地面真相进行比较时,我们注意到控制参数的估计误差小于10%。

著录项

  • 作者

    Korzhova, Valentina N.;

  • 作者单位

    University of South Florida.;

  • 授予单位 University of South Florida.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 95 p.
  • 总页数 95
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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