模拟下水管道中不稳定气水分层流动的动态一维模型

Hao Le, Biao Huang, Chunling Wang, Jiachun Liu
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引用次数: 0

摘要

在卫生和雨水下水道系统中,通风对减轻臭味问题和避免压力激增至关重要。由于气流建模不足或仅适用于稳态条件,现有数值模型在实际下水道系统中的实际应用受到限制。本研究致力于建立一个数学模型,能够准确模拟自然通风条件下的下水道系统的各种运行状况。动态水流模型采用冲击捕捉 MacCormack 方案。动态气流模型融合了能量和动量方程,避免了费力的压力迭代计算。该模型利用界面处的摩擦系数来加强对气流中动量交换的描述,并为气压提供了合理的解释。系统分析表明,该模型可以很容易地进行调整,以包含复杂的边界条件,从而便于用于模拟真实下水道网络中的气流。此外,这项研究还发现,在自然通风条件下,空气与水的流速比与填充率之间存在直接关联,并得出了包含这种关系的经验公式。这一发现为实际工程应用提供了启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A dynamic one-dimensional model for simulating unsteady air–water stratified flow in sewer pipes
Ventilation is paramount in sanitary and stormwater sewer systems to mitigate odor problems and avert pressure surges. Existing numerical models have constraints in practical applications in actual sewer systems due to insufficient airflow modeling or suitability only for steady-state conditions. This research endeavors to formulate a mathematical model capable of accurately simulating various operational conditions of sewer systems under the natural ventilation condition. The dynamic water flow is modeled using a shock-capturing MacCormack scheme. The dynamic airflow model amalgamates energy and momentum equations, circumventing laborious pressure iteration computations. This model utilizes friction coefficients at interfaces to enhance the description of the momentum exchange in the airflow and provide a logical explanation for air pressure. A systematic analysis indicates that this model can be easily adapted to include complex boundary conditions, facilitating its use for modeling airflow in real sewer networks. Furthermore, this research uncovers a direct correlation between the air-to-water flow rate ratio and the filling ratio under natural ventilation conditions, and an empirical formula encapsulating this relationship is derived. This finding offers insights for practical engineering applications.
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