On the Modeling of Gas and Liquid Leaks Through Packed Glands

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL Journal of Pressure Vessel Technology-Transactions of the Asme Pub Date : 2022-02-11 DOI:10.1115/1.4053830
Ali Salah Omar Aweimer, A. Bouzid
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Abstract

The prediction of gas and liquid leak rates through packed glands is overlooked and the very few studies available in the literature focus on the packing axial stress distribution. For better prediction of leakage, the change of porosity with length due to this non-uniform axial stress must be accounted for. Our previous theoretical model on leakage predictions are based on uniform capillaries. In this paper, a new model that accounts for the change of the capillary diameter with the axial stress is developed for gaseous leak and a straight capillary model for liquid leaks are developed. The first slip flow condition is used to predict gas and liquid flow considering straight capillary model and a non-uniform capillary model the area of which dependents on the axial stress in the packing rings. An approach that uses an analytical-computational methodology based on the number and the size of pores obtained experimentally is adopted to predict gas and liquid leak rates in both the uniform and non-uniform compressed packed gland models. The Navier-Stokes equations associated with slip boundary condition at the wall are used to predict leakage. Experimental tests with helium, argon, nitrogen and air for gazes and water and kerosene for liquids are used to validate the models. The porosity parameters characterization is conducted experimentally with a reference gas namely helium at different gland stresses and pressures.
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气体和液体通过填料压盖泄漏的模型研究
通过填料腺体的气体和液体泄漏率的预测被忽视了,文献中很少有研究集中在填料轴向应力分布上。为了更好地预测泄漏,由于这种不均匀的轴向应力,孔隙率随长度的变化必须考虑在内。我们以前的泄漏预测理论模型是基于均匀毛细血管的。本文建立了气体泄漏的毛管直径随轴向应力变化的新模型和液体泄漏的直毛管模型。采用第一滑移流动条件,考虑了直毛管模型和面积取决于填料环轴向应力的非均匀毛管模型,对气液流动进行了预测。采用一种基于实验获得的孔隙数量和大小的分析计算方法来预测均匀和非均匀压缩填料压盖模型中的气体和液体泄漏率。采用带滑移边界条件的Navier-Stokes方程对泄漏进行了预测。用氦气、氩气、氮气和空气进行实验测试,用水和煤油进行液体测试,以验证模型。在不同压盖应力和压力下,以氦气为基准气体进行孔隙度参数表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.10
自引率
10.00%
发文量
77
审稿时长
4.2 months
期刊介绍: The Journal of Pressure Vessel Technology is the premier publication for the highest-quality research and interpretive reports on the design, analysis, materials, fabrication, construction, inspection, operation, and failure prevention of pressure vessels, piping, pipelines, power and heating boilers, heat exchangers, reaction vessels, pumps, valves, and other pressure and temperature-bearing components, as well as the nondestructive evaluation of critical components in mechanical engineering applications. Not only does the Journal cover all topics dealing with the design and analysis of pressure vessels, piping, and components, but it also contains discussions of their related codes and standards. Applicable pressure technology areas of interest include: Dynamic and seismic analysis; Equipment qualification; Fabrication; Welding processes and integrity; Operation of vessels and piping; Fatigue and fracture prediction; Finite and boundary element methods; Fluid-structure interaction; High pressure engineering; Elevated temperature analysis and design; Inelastic analysis; Life extension; Lifeline earthquake engineering; PVP materials and their property databases; NDE; safety and reliability; Verification and qualification of software.
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