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Turbulence-Based Models for Gas Transfer Analysis with Channel Shape Factor Influence

机译:具有通道形状因子影响的基于湍流的气体传输模型

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Gas transfer through surface water of streams is an effective process for the environmental quality of the aquatic ecosystem. Several theoretical approaches have been proposed to estimate gas transfer rate. This paper is devoted to present a turbulence-based model and to compare it with other 3 turbulence-based modeling frameworks that provide an estimation of gas-transfer coefficient K_L at the air-water interface. These models were derived for the reaeration process. In this paper, they have been verified both for reaeration and volatilization using experimental data collected in a laboratory rectangular flume and in a circular sewer reach. These data refer to oxygen absorption and cyclohexane volatilization, respectively. Comparison of results for oxygen shows that the tested models exhibit an average absolute difference between their results and the experimental data ranging from 12.5% and 25.6%. Also, the scaling analysis of the experimental data support both small-eddy based models and the model proposed by the authors. Moreover, volatilization results show that the process is also affected by a channel shape factor, which was, finally, quantified.
机译:通过溪流的地表水进行的气体转移是改善水生生态系统环境质量的有效过程。已经提出了几种理论方法来估计气体传输速率。本文致力于介绍一个基于湍流的模型,并将其与其他三个基于湍流的建模框架进行比较,这些模型框架提供了对气-水界面处气体传输系数K_L的估计。这些模型是针对再造过程而得出的。在本文中,已使用在实验室矩形水槽和圆形下水道范围内收集的实验数据验证了它们的重结晶性和挥发性。这些数据分别涉及氧吸收和环己烷挥发。氧气结果的比较表明,测试的模型在其结果和实验数据之间显示出平均绝对差值,范围为12.5%和25.6%。同样,实验数据的比例分析也支持基于小涡流的模型和作者提出的模型。此外,挥发结果表明,该过程还受到最终被量化的通道形状因子的影响。

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