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首页> 外文期刊>Journal of propulsion and power >Computational Fluid Dynamics Simulations of a GO2/GH2 Single Element Combustor
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Computational Fluid Dynamics Simulations of a GO2/GH2 Single Element Combustor

机译:GO2 / GH2单元素燃烧室的计算流体动力学模拟

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A single-element combustor known as the "Penn State preburner combustor" is modeled numerically using the commercial computational fluid dynamics code ANSYS CFX. The aim of computational fluid dynamics modeling is to simulate the wall heat flux, which has been measured experimentally. The simulated combustion chamber has a single shear coaxial injector and operates with gaseous oxygen and hydrogen in a staged combustion configuration. The turbulent flow in the combustion chamber is modeled using the Favre-averaged Navier-Stokes equations and the shear-stress transport turbulence model. The turbulent non-premixed flame is modeled using an extended eddy dissipation model. The developed turbulent combustion model shows good agreement with the experimental data, good convergence, and a short computational time. A mesh convergence study is performed, and a mesh-independent solution is obtained on a mesh with 1.5 million nodes. The complexity of the model is gradually increased until the model is capable of predicting the wall heat flux. The analysis of numerical results shows a significant effect of boundary conditions on wall heat flux predictions. The comparison of the Reynolds-averaged Navier-Stokes simulations with the experimental data demonstrates the capability of Reynolds-averaged Navier-Stokes simulations to predict wall heat fluxes in a rocket combustion chamber.
机译:使用商业计算流体动力学代码ANSYS CFX对称为“潘恩州预燃器燃烧器”的单元素燃烧器进行数值建模。计算流体动力学建模的目的是模拟已通过实验测量的壁热通量。模拟燃烧室具有一个单剪切同轴喷射器,并在分段燃烧配置中与气态氧气和氢气一起运行。使用Favre平均Navier-Stokes方程和切应力传输湍流模型对燃烧室中的湍流进行建模。使用扩展的涡流消散模型对湍流非预混火焰进行建模。建立的湍流燃烧模型与实验数据吻合良好,收敛性好,计算时间短。进行了网格收敛研究,并在具有150万节点的网格上获得了与网格无关的解决方案。模型的复杂性逐渐增加,直到模型能够预测壁热通量为止。数值结果分析显示边界条件对壁热通量预测有显着影响。雷诺平均Navier-Stokes模拟与实验数据的比较表明,雷诺平均Navier-Stokes模拟能够预测火箭燃烧室内的壁热通量。

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