地球重力作用下低温垂直上升流沸腾的计算流体动力学模拟

IF 6.1 2区 工程技术 Q2 ENERGY & FUELS Applied Thermal Engineering Pub Date : 2024-08-31 DOI:10.1016/j.applthermaleng.2024.124291
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引用次数: 0

摘要

本研究介绍了垂直上升流方向液氮(LN2)流动沸腾的数值模拟及其验证,主要目的是了解对空间应用非常重要的复杂两相流和传热现象。计算流体动力学(CFD)模型采用了流体耦合水平集体积(CLSVOF)方法,在动量守恒方程中加入了气泡碰撞分散力和剪切升力的附加源项,以提高模拟精度。模拟针对两种质量速度(G = 526 和 804 kg/m2s)和三种不同的热通量水平(约为地球重力下临界热通量 (CHF) 的 10%、30% 和 70%)进行。该模型与作者先前实验研究中获得的测量壁温数据进行了验证,结果表明,在所有运行条件下,平均偏差均小于 2.8 K。模拟的两相流等值线显示了各种流动模式,包括气泡、蛞蝓、搅动和环形。据观察,质量速度和热流量都会对成核沸腾(ONB)的开始、气泡成核、生长和凝聚以及整体蒸汽结构产生影响。模拟还提供了对轴向和径向空隙率和速度剖面的深入了解,揭示了与空隙率发展同步的局部流动加速趋势。预测和测量的散装流体温度曲线之间的比较显示出极好的一致性,进一步验证了 CFD 模型在太空应用中两相低温流动沸腾模拟的准确性和实用性。
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Computational fluid dynamics simulation of cryogenic vertical upflow boiling under Earth gravity

This study presents numerical simulations and their validation for flow boiling of liquid nitrogen (LN2) in a vertical upflow orientation, with a primary aim to understand the complex two-phase flow and heat transfer phenomena important to space applications. The computational fluid dynamics (CFD) model utilized the coupled level set volume of fluid (CLSVOF) method, incorporating additional source terms for bubble collision dispersion force and shear lift force in the momentum conservation equation to enhance simulation accuracy. The simulations were conducted for two mass velocities (G = 526 and 804 kg/m2s) and three different heat flux levels (approximately 10%, 30%, and 70% of critical heat flux (CHF) under Earth gravity. The model was validated against measured wall temperature data acquired from the authors’ previous experimental studies, demonstrating average deviations of less than 2.8 K across all operating conditions. The simulated two-phase flow contours illustrated various flow patterns, including bubbly, slug, churn, and annular. Both mass velocity and heat flux were observed to impact the onset of nucleate boiling (ONB), bubble nucleation, growth, and coalescence, and overall vapor structure. The simulations also offered insight into axial and radial void fraction and velocity profiles, revealing local flow acceleration trends synchronized with void fraction development. A comparison between predicted and measured bulk fluid temperature profiles showed excellent agreement, further validating the CFD model’s accuracy and practical usefulness for two-phase cryogenic flow boiling simulations in space applications.

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来源期刊
Applied Thermal Engineering
Applied Thermal Engineering 工程技术-工程:机械
CiteScore
11.30
自引率
15.60%
发文量
1474
审稿时长
57 days
期刊介绍: Applied Thermal Engineering disseminates novel research related to the design, development and demonstration of components, devices, equipment, technologies and systems involving thermal processes for the production, storage, utilization and conservation of energy, with a focus on engineering application. The journal publishes high-quality and high-impact Original Research Articles, Review Articles, Short Communications and Letters to the Editor on cutting-edge innovations in research, and recent advances or issues of interest to the thermal engineering community.
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