气体泄漏应用的声波射流建模

S. Minotti, A. Corsini, G. Delibra, G. Lucherini, S. Rossin, L. Tieghi, S. Traldi
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引用次数: 1

摘要

燃气轮机包的设计受到安全问题的影响,相关指南由ISO-21789提供。根据本规范,通风系统应保证在外壳内的燃气系统组件发生意外气体泄漏时,有良好和安全的稀释。稀释度的评估通常是通过CFD模拟进行的,ISO-21789规定了通过估计爆炸性混合物的云体积来评估气体泄漏危险的标准。为了遵循这一公式,正确计算准确的体积云,准确再现燃气泄漏是至关重要的,燃气泄漏始终是一个超音速的燃气射流进入空气流通的领域。主要的关键是将超音速喷气机模拟到一个复杂的领域,如燃气轮机包,考虑到精度和时间限制方面的工业目标。复杂性是由于封装的几何形状和可能发生泄漏的多个位置。在这种情况下,最好是开发一种先进的现象建模,而不是简单地改进CFD的细节,这可能对工业目标是不可行的。为此,作者提出了一系列高压比下欠膨胀射流的模拟,以研究声源方法对非圆形射流的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling of Sonic Jets for Gas Leak Applications
Design of gas turbine packages is subjected to safety issues and the related guidelines are provided by ISO-21789. According to this code, the ventilation system shall guarantee a good and safe dilution in case of an unexpected gas leakage from components of the fuel gas system inside the enclosure. The evaluation of the dilution is commonly carried out by CFD simulations and the ISO-21789 indicates the criteria to evaluate the danger of a gas leak by estimating the cloud volume of the explosive mixture. To follow this prescription and to properly calculate the exact volume cloud, it is fundamental to accurately reproduce the fuel gas leak, which is always a supersonic jet of fuel gas into an air-ventilated domain. The main criticality is to simulate a supersonic jet into a complex domain such as the gas turbine package, considering the industrial goals in terms of accuracy and time constraints. The complexity is due to the geometry of the package and to the multiple locations where the leakage could occur. In such context, it is preferable to develop an advanced modeling of the phenomenon rather than simply improve the detail of the CFD, that could turn out to be unfeasible for industrial goals. For this reason, the authors present a series of simulations of under-expanded jets at high pressure ratios carried out to investigate the applicability of the sonic source approach to not-round jets.
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