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首页> 外文期刊>Journal of Spacecraft and Rockets >Navier-Stokes Solutions with Finite Rate Ablation for Planetary Mission Earth Reentries
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Navier-Stokes Solutions with Finite Rate Ablation for Planetary Mission Earth Reentries

机译:具有有限速率消融的Navier-Stokes解决方案,用于行星任务地球再入

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A formulation of finite rate ablation surface boundary conditions, including oxidation, nitridation, and sublimation of carbonaceous material with pyrolysis gas injection, based on surface species mass conservation, has been developed. These surface boundary conditions are discretized and integrated with a Navier-Stokes solver. This numerical procedure can predict aerothermal heating, chemical species concentration, and carbonaceous material ablation rates over the heat-shield surface of reentry space vehicles. Two finite rate gas-surface interaction models, based on the work of Park and of Zhluktov and Abe, are considered. Three test cases are studied. The stream conditions of these test cases are typical for Earth reentry from a planetary mission with both oxygen and nitrogen fully or partially dissociated inside the shock layer. Predictions from both gas-surface interaction models are compared with those obtained by using chemical equilibrium ablation tables. Stagnation point convective heat fluxes predicted by using Park's finite rate model are usually below those obtained from chemical equilibrium tables and Zhluktov and Abe's model. Recession predictions from Zhluktov and Abe's model are usually lower than those obtained from Park's model and from chemical equilibrium tables. The effect of species mass diffusion on the predicted ablation rate is also examined.
机译:基于表面物质的质量守恒,已经开发出了一种速率有限的烧蚀表面边界条件的公式,包括通过热解气体注入对碳质材料进行氧化,氮化和升华。这些表面边界条件被离散化并与Navier-Stokes求解器集成。该数值程序可以预测再入航天器隔热屏上的空气热,化学物质浓度和碳质材料的烧蚀速率。考虑了基于Park以及Zhluktov和Abe的工作的两个有限速率气-地相互作用模型。研究了三个测试用例。这些测试用例的水流条件是行星任务重新进入地球时的典型情况,氧气和氮气都在冲击层内部完全或部分解离。将两种气体-表面相互作用模型的预测结果与使用化学平衡消融表获得的预测结果进行比较。使用Park的有限速率模型预测的停滞点对流热通量通常低于化学平衡表以及Zhluktov和Abe模型获得的对流热通量。从Zhluktov和Abe模型得出的衰退预测通常低于从Park模型和化学平衡表获得的衰退预测。还检查了物质质量扩散对预计的消融速率的影响。

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