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首页> 外文期刊>The Korean journal of chemical engineering >On the modeling of electro-hydrodynamic flow in a wire-plate electrostatic precipitator
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On the modeling of electro-hydrodynamic flow in a wire-plate electrostatic precipitator

机译:线板式静电除尘器中电动流体流动的建模

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摘要

Modeling of the flow velocity fields for the electrohydrodynamic (EHD) flow in a wire-to-plate type electrostatic precipitator (ESP) was achieved. Solutions of the steady, two-dimensional Navier-Stokes equations have been computed. The equations were solved in the conservative finite-difference form on a fine uniform rectilinear grid of sufficient resolution to accurately capture the momentum boundary layers. The numerical procedure for differential equations was used by SIMPLEST [Michel, 2002], a derivative of Patankar's SIMPLE algorithm, to bring rapid convergence. The Phoenics (Version 3.5.1) CFD code, coupled with Poisson's and ion transport equations and electric body force in the momentum equation, developed in this study, was used for the numerical simulation. From calculations for the flow employing different flow models, the Chen-Kim k-ε turbulent model appeared to be the most appropriate choice to obtain a quantitative image of the resulting mean flow field and downstream wake flow of the rear wire, although this was obtained from a qualitative analysis due to the lack of experimental verification. The flow velocity field pattern showed a strong EHD secondary flow, which was clearly visible in the downstream regions of the corona wire despite the low Reynolds number for the electrode (Re_(CW)=12.4). Secondary flow vortices were also caused by the EHD with increases in the discharge current.
机译:实现了线对板式静电除尘器(ESP)中的电动流体(EHD)流动的流速场的建模。计算出了稳定的二维Navier-Stokes方程的解。在具有足够分辨率以精确捕获动量边界层的精细均匀直线网格上,以保守的有限差分形式求解方程。 Patankar的SIMPLE算法的派生SIMPLEST [Michel,2002]使用了微分方程的数值程序来实现快速收敛。本研究开发的Phoenics(3.5.1版)CFD代码与泊松和离子传输方程以及动量方程中的电子体力相结合,用于数值模拟。从采用不同流动模型的流动计算中,Chen-Kimk-ε湍流模型似乎是获得所得平均流场和后钢丝下游尾流的定量图像的最合适选择,尽管这是获得的由于缺乏实验验证,因此无法进行定性分析。流速场模式显示出很强的EHD二次流,尽管电极的雷诺数低(Re_(CW)= 12.4),但在电晕丝的下游区域清晰可见。 EHD还会随着放电电流的增加而引起二次流动涡旋。

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