Numerical Simulation of Intermittent-Controlled Multiple Jets

K. Tsujimoto, Kango Kitahara, T. Shakouchi, T. Ando
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Abstract

Multiple jets are used in industrial processes such as combustion, ventilation and so on, and their improvement of mixing and diffusion is demanded. Unlike single jet, since the jets issuing from nozzles will coalescence, merge or combine with each other, it is necessary to reduce mixing performance such as entrainment from surroundings and spreading into surroundings. It is well known that the characteristics such as mixing and diffusion of the jet are strongly dependent on the large-scale vortex structures being formed near the nozzles. Therefore, an appropriate inflow condition at a nozzle is capable of controlling the large vortex structures near field around the nozzle and improves the mixing performance. In this study, we examine an intermittent control of jets varying the control frequency and the jet spacing so as to reduce the interaction between each jet. We conduct the DNS (direct numerical simulation) of intermittently-controlled two round jets. In order to quantify the mixing efficiency of the intermittent control, statistical entropy and entrainment are examined. Compared to the uncontrolled jet, it is confirmed that the mixing efficiency is markedly improved, suggesting that the intermittent control can be expected to be useful for the improvement of mixing performance of multiple jets.
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间歇控制多射流的数值模拟
多喷嘴应用于燃烧、通风等工业过程中,对其混合扩散性能提出了更高的要求。与单个射流不同,由于从喷嘴发出的射流会相互聚并、合并或结合,因此需要减少从周围环境夹带和向周围环境扩散等混合性能。众所周知,射流的混合和扩散等特性强烈依赖于在喷嘴附近形成的大尺度涡结构。因此,适当的喷嘴入流条件可以控制喷嘴周围近场的大涡结构,提高混合性能。在本研究中,我们研究了改变控制频率和射流间距的射流间歇控制,以减少每个射流之间的相互作用。本文对间歇式控制双圆射流进行了直接数值模拟。为了量化间歇控制的混合效率,对统计熵和夹带进行了研究。与未控制射流相比,混合效率明显提高,表明间歇控制可用于改善多射流的混合性能。
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