首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Design and selection of curved vane demisters using Taguchi based CFD analysis
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Design and selection of curved vane demisters using Taguchi based CFD analysis

机译:基于Taguchi的CFD分析设计和选择弯曲叶片除雾器

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摘要

The present work discusses the design and selection of a curved vane demister as used in seawater desalination. A baseline design of a curved vane demister was chosen and the key geometrical parameter which influences the demister performance was identified. To optimize the curved vane demister geometry with multiple parameters with multiple levels, a design of an experiment approach using Taguchi method was chosen to select an orthogonal array of 25 designs. Numerical computations for the water vapor flow carrying water droplets in different curved vane geometries, with options like Wave droplet breakup and Realizable k-e turbulence model using Fluent 14.0, were carried out. Water droplets were injected using discrete phase modeling approach and Rosin-Rammler size distribution at four vapor velocities of 5,7.5,10 and 12.5 m/s. The mean water droplet diameter, the Sauter mean diameter and the droplet separation efficiency along with the associated pressure drop were estimated, compared and reported. The values of the lowest friction factor and the highest separation efficiency were found to be 2.54 and 99.98% for one case and 1.88 and 99.29% for another case respectively. With a little compromise on pressure drop, the former case may be considered as the best, as it has the highest water droplet separation efficiency.
机译:本工作讨论了用于海水淡化的弧形叶片除雾器的设计和选择。选择了弯曲叶片除雾器的基线设计,并确定了影响除雾器性能的关键几何参数。为了优化具有多个级别的多个参数的弯曲叶片除雾器的几何形状,选择了使用Taguchi方法的实验方法设计,以选择25个设计的正交阵列。对带有不同弯曲叶片几何形状的水滴中携带水滴的水蒸气流进行了数值计算,并使用了诸如Fluent 14.0的小波分解和可实现k-e湍流模型等选项。使用离散相建模方法和Rosin-Rammler尺寸分布以5、7.5、10和12.5 m / s的四个蒸汽速度注入水滴。估计,比较和报告了平均水滴直径,Sauter平均直径和水滴分离效率以及相关的压降。最低的摩擦系数值和最高的分离效率值分别为一种情况下的2.54和99.98%,另一种情况下的分别为1.88和99.29%。在压降稍有妥协的情况下,前一种情况可以认为是最好的,因为它具有最高的水滴分离效率。

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