纸浆蒸煮器管道系统中液体吹送、推力和冷凝水冲击风险的模拟

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL Journal of Pressure Vessel Technology-Transactions of the Asme Pub Date : 2023-04-17 DOI:10.1115/1.4062335
Andrew Carlson, C. Narayanan, D. Lakehal
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引用次数: 0

摘要

本研究是一个工业案例研究,用于将经过验证的闪蒸和液压冲击建模方法应用于反应器吹管的安全性和设计。最大流量对于下游部件的定径非常重要。液体的高压吹打和喷射会对管道弯头和其他几何特征产生显著的作用力。这种力的分析和预测对管道的结构设计和锚固具有重要意义。高压下液体冲击的另一个问题是冷凝引起液压冲击的可能性。闪蒸蒸汽向液相的坍缩产生大振幅的激波是一个严重的安全问题。CFD模型采用均匀混合模型和闪变模型来描述流体的相变。流体的性质由一个自定义函数定义,该函数在热力学和输运性质的表值之间进行插值。通过CFD模拟,预测了空管道吹气时冷凝液压冲击的发生,并证明了充液条件下可以防止冷凝液压冲击的发生。管道的几何形状也进行了优化,以减少作用在连接处的力。对闪蒸引起的出口汽质进行了估计,这对下游系统的设计是必要的。
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Simulation of Liquor Blow, Thrust Force and Risk of Condensation Hydraulic Shock in a Pulp-digester Piping System
This study is an industrial case study for the application of a validated flashing and hydraulic shock modeling approach to the safety and design of a reactor blow line. The maximum flow rate is important for sizing of downstream components. The high pressure of the blow and flashing of the liquid can result in significant forces on pipe bends and other geometrical features. Analysis and prediction of such forces are of importance for the structural design and anchoring of the piping. Another concern for a liquid blow under high pressure is the potential for condensation-induced hydraulic shock. The collapse of the flashed vapor to the liquid phase creating shock waves of large amplitudes is a serious safety concern. The CFD model used the homogeneous mixture model with a flashing model for phase change of the fluid. The properties of the fluid were defined by a custom function which interpolated between tabulated values of the thermodynamic and transport properties. The CFD simulations predicted the occurrence of a condensation hydraulic shock when the blow down is initiated with empty pipes and demonstrated that a hydraulic shock could be prevented with liquid-filled condition. The pipework geometry was also optimized to reduce the forces acting at the junctions. The vapor quality at the outlet as a result of flashing was estimated which is necessary for the design of downstream systems.
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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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