过膨胀单膨胀斜坡喷管分离模式与分离模式过渡的OpenFOAM求解器比较研究

IF 1.1 4区 工程技术 Q4 MECHANICS Journal of Applied Fluid Mechanics Pub Date : 2023-11-01 DOI:10.47176/jafm.16.11.1751
T. Yu, Y. Yu, Y. P. Mao, Y. L. Yang, S. L. Xu
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引用次数: 0

摘要

过膨胀单膨胀斜坡喷嘴(SERN)内的流动分离涉及激波、膨胀波、湍流边界层和剪切层等复杂现象。计算流体力学在研究超声速喷管的非定常流动特性中起着至关重要的作用,它使研究动态流场特性成为可能。然而,在可压缩流动领域,特别是流场特征更为复杂的过膨胀状态下,将OpenFOAM作为研究SERN的数值工具,受到的关注相对较少。本文采用实验与数值计算相结合的方法,研究了不同湍流模式下过膨胀式SERN的流场特性。对比了OpenFOAM中两个可压缩流动求解器(rhoCentralFOAM和sonicFOAM)在过膨胀SERN内的流动分离模式和分离模式转换的定性和定量预测性能。评估了rhoCentralFOAM和sonicFOAM准确预测复杂流体状态的能力。结果表明,采用rhoCentralFOAM和sonicFOAM进行的数值模拟成功地捕获了相同喷嘴压力比(NPR)下两种受限激波分离模式下的流动分离、分离激波、分离气泡和剪切层,与实验结果吻合较好。然而,在整个SERN的分离模式转变过程中,sonicFOAM比rhoCentralFOAM更早地在0.0773 NPR的分离模式中开始转变。sonicFOAM的过渡过程持续时间更长,并且在NPR中表现出更大的变化。SonicFOAM不能准确预测分离泡后的压力上升、再附着激波等方面,并且容易高估分离激波长度。因此,sonicFOAM不能被推荐为准确捕获过膨胀喷嘴分离模式的合适求解器。
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Comparative Study of OpenFOAM Solvers on Separation Pattern and Separation Pattern Transition in Overexpanded Single Expansion Ramp Nozzle
Flow separation in overexpanded single expansion ramp nozzles (SERN) involves complex phenomena, such as shock waves, expansion waves, turbulent boundary layers, and shear layers. Computational fluid dynamics plays a crucial role in studying unsteady flow behaviour in supersonic nozzles, allowing for an investigation into the dynamic flow field characteristics. However, the application of OpenFOAM as a numerical tool for studying SERN in the field of compressible flows, particularly in the overexpansion state where the flow field characteristics are more complex, has received relatively less attention. In this study, the flow field characteristics of an overexpanded SERN under different turbulence models are investigated through a combination of experiments and numerical calculations. The qualitative and quantitative predictive performance of two compressible flow solvers in OpenFOAM, namely, rhoCentralFOAM and sonicFOAM, are compared in terms of flow separation pattern and separation pattern transitions within the overexpanded SERN. The ability of rhoCentralFOAM and sonicFOAM to accurately predict complex flow states is evaluated. Results indicate that the numerical simulations conducted using rhoCentralFOAM and sonicFOAM successfully capture flow separation, separated shock waves, separated bubbles and shear layers for two types of restricted shock separation patterns at the same nozzle pressure ratio (NPR), demonstrating agreement with experimental results. However, sonicFOAM initiates the transition in the separation pattern 0.0773 NPR earlier than rhoCentralFOAM during the whole separation pattern transition process of the SERN. The transition process in sonicFOAM lasts longer and exhibits a greater variation in NPR. SonicFOAM fails to accurately predict certain aspects, such as the pressure rise after the separation bubble, the reattachment shock wave, and tends to overestimat the length of the separation shock length. Consequently, sonicFOAM cannot be recommended as a suitable solver for accurately capturing the separation pattern of an overexpanded nozzle.
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来源期刊
Journal of Applied Fluid Mechanics
Journal of Applied Fluid Mechanics THERMODYNAMICS-MECHANICS
CiteScore
2.00
自引率
20.00%
发文量
138
审稿时长
>12 weeks
期刊介绍: The Journal of Applied Fluid Mechanics (JAFM) is an international, peer-reviewed journal which covers a wide range of theoretical, numerical and experimental aspects in fluid mechanics. The emphasis is on the applications in different engineering fields rather than on pure mathematical or physical aspects in fluid mechanics. Although many high quality journals pertaining to different aspects of fluid mechanics presently exist, research in the field is rapidly escalating. The motivation for this new fluid mechanics journal is driven by the following points: (1) there is a need to have an e-journal accessible to all fluid mechanics researchers, (2) scientists from third- world countries need a venue that does not incur publication costs, (3) quality papers deserve rapid and fast publication through an efficient peer review process, and (4) an outlet is needed for rapid dissemination of fluid mechanics conferences held in Asian countries. Pertaining to this latter point, there presently exist some excellent conferences devoted to the promotion of fluid mechanics in the region such as the Asian Congress of Fluid Mechanics which began in 1980 and nominally takes place in one of the Asian countries every two years. We hope that the proposed journal provides and additional impetus for promoting applied fluids research and associated activities in this continent. The journal is under the umbrella of the Physics Society of Iran with the collaboration of Isfahan University of Technology (IUT) .
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