压力安全阀出口集管内瞬态两相流分析

Maral Taghva, L. Damkilde
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引用次数: 0

摘要

为了保护增压系统免受超压,最常用的策略之一是安装压力安全阀(PSV)。因此,当PSV打开时,系统的过量压力通过排气管释放。排气管也被称为“PSV出口头”。工艺开始后,在出口集箱内形成由高速加压气体与现有静态空气相互作用组成的瞬态两相流。高速射流将静态空气向管道的末端尾部压缩,直到排放到大气中,最终达到稳定状态。本文采用特征法对这一瞬态过程进行了分析和数值研究。利用黎曼解和Godunov法建立了该方程的解。在整个模拟过程中,冲击波的传播和流动特性的变化都得到了清晰的展示。结果表明,出口集箱内存在强激波和高瞬态压力。这是特别重要的,因为它表明了计算冲击波和瞬态压力的重要性,而不是通常接受的稳态计算。更准确地说,如果仅根据传统的稳态计算来选择管道厚度,冲击波和瞬态压力可能导致管道失效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of Transient Two-Phase Flow in Pressure Safety Valve Outlet Headers
To protect a pressurized system from overpressure, one of the most established strategies is to install a Pressure Safety Valve (PSV). Therefore, the excess pressure of the system is relieved through a vent pipe when PSV opens. The vent pipe is also called “PSV Outlet Header”. After the process starts, a transient two-phase flow is formed inside the outlet header consisting of high speed pressurized gas interacting with existing static air. The high-speed jet compresses the static air towards the end tail of the pipe until it is discharged to the ambiance and eventually, the steady state is achieved. Here, this transient process is investigated both analytically and numerically using the method of characteristics. Riemann’s solvers and Godunov’s method are utilized to establish the solution. Propagation of shock waves and flow property alterations are clearly demonstrated throughout the simulations. The results show strong shock waves as well as high transient pressure take place inside the outlet header. This is particularly important since it indicates the significance of accounting for shock waves and transient pressure, in contrast to commonly accepted steady state calculations. More precisely, shock waves and transient pressure could lead to failure, if the pipe thickness is chosen only based on conventional steady state calculations.
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