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Numerical investigation and recommendations for push-pull ventilation systems.

机译:推拉式通风系统的数值研究和建议。

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This study presents numerical simulations of push-pull ventilation systems. A push-pull system is a device commonly used in capturing pollutants from large tanks used in industrial chemical processes. An air jet is blown from one side of a tank and collected by an exhaust hood on the opposite side of the tank. In this study, a finite volume model coupled with the standard k -epsilon turbulent model is employed to describe the flow structures and characteristics. Moreover, the turbulence mass transfer equation is adopted to show the concentration distribution above the open surface tank. All the flow fields can be classified according to four dominant modes, i.e., dispersion, transition, encapsulation, and strong suction. The push and pull flow velocities should be adjusted into encapsulation and strong suction modes to ensure all pollutants can be captured by the exhaust hood. Other geometric parameters such as the flange size, pull-channel size, offset distance, etc., also influence the flow characteristics. For a variety of lengths of tanks and pollutant evaporation velocities, the push and pull flow velocity must be matched to achieve optimal operation. Furthermore, the flange size and other parameters are determined to enhance the capture efficiency of the push-pull system. Recommendations for design guidelines are introduced in this study.
机译:这项研究提出了推拉通风系统的数值模拟。推拉系统是一种通常用于从工业化学过程中使用的大型储罐中收集污染物的设备。空气从储罐的一侧吹出,并由储罐另一侧的排气罩收集。在这项研究中,将有限体积模型与标准kε湍流模型相结合来描述流动结构和特性。此外,采用湍流传质方程式来显示露天水箱上方的浓度分布。可以根据四个主要模式对所有流场进行分类,即分散,过渡,包封和强吸力。推流和拉流的速度应调整为密封和强力抽吸模式,以确保所有污染物都能被排气罩捕获。其他几何参数,例如法兰尺寸,拉通道尺寸,偏移距离等,也会影响流动特性。对于各种长度的水箱和污染物蒸发速度,推流和拉流的速度必须匹配,以实现最佳运行。此外,确定法兰尺寸和其他参数以提高推挽系统的捕获效率。本研究介绍了有关设计准则的建议。

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