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首页> 外文期刊>International Journal of Heat and Mass Transfer >Numerical investigation of oxygen thermochemical nonequilibrium on high-enthalpy double-cone flows
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Numerical investigation of oxygen thermochemical nonequilibrium on high-enthalpy double-cone flows

机译:高焓双锥流氧热化学非平衡的数值研究

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摘要

Hypersonic thermochemical nonequilibrium flows over a double-cone configuration are numerically investigated. Simulations with oxygen as the test gas are performed using different coupling models of vibrational excitation and dissociation, including a conventional two-temperature model as the baseline and an improved model established on elementary kinetics and validated against existing shock tube experimental data. For the condition with the highest total enthalpy, the improved model predicts a larger separation region and greater peak heat flux with relative differences of 20.3% and 29.2%, respectively, compared with the baseline two-temperature model. The differences are attributed to inaccurate modeling of the vibration–dissociation coupling effects by the conventional two-temperature model, which overestimates the post-shock degree of dissociation and underestimates the post-shock temperature. The size of the separation bubble is therefore altered due to the change in its density. These findings may help to explain the large discrepancies found between numerical results and experimental data for high-enthalpy double-cone flows in hypersonic studies.
机译:数值研究了双锥结构上的高超声速热化学非平衡流动。使用氧气作为测试气体的模拟是使用不同的振动激发和离解耦合模型进行的,包括常规的双温度模型作为基准,以及基于基本动力学建立的改进模型,并针对现有的冲击管实验数据进行了验证。对于总焓最高的条件,与基线两温模型相比,改进的模型预测出较大的分离区域和较大的峰值热通量,相对差异分别为20.3%和29.2%。差异归因于常规两温模型对振动-解离耦合效应的建模不准确,从而高估了震后的解离度,而低估了震后的温度。因此,分离气泡的尺寸由于其密度的变化而改变。这些发现可能有助于解释高超声速研究中高焓双锥流的数值结果与实验数据之间的巨大差异。

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