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Design and analysis of liquid rocket engine regenerative cooling jackets: Emphasis on computational modeling.

机译:液体火箭发动机蓄冷套的设计与分析:强调计算模型。

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An analytical computational procedure was developed in MATLAB to efficiently design the coolant channel height profile of a regeneratively cooled liquid rocket engine using the chamber wall temperature as the primary design point. The procedure employs a linear control volume marching scheme proceeding from the coolant channel inlet up through the chamber wall to the main injector face, successively iterating on the primary fluid variables. A conjugate analysis is used to accurately capture the heat transfer interaction between the hot combustion gases in the chamber and the cryogenic liquid fuel in the coolant passages. Verification of the procedure was achieved by comparing analytical results with exact solutions and another existing fluid analysis procedure in addition to published experimental data from the RL10 engine. A design trade study focusing on the main descent engine for the Altair Lunar Lander was carried out to explore the coolant channel design capabilities of the procedure at varying chamber pressures and mixture ratios as well using different chamber materials. The results of this trade study pointed to lower pressures and moderate mixture ratios as providing the best results. A copper chamber, as opposed to a stainless steel chamber, also resulted in beneficial lower pressure losses and slightly higher levels of heat pickup in the coolant channels in several cases. Overall, the procedure was successful in both designing coolant channel height profiles and in analyzing existing channels in an accurate and timely fashion while maintaining a sufficient level of flexibility and expansion capabilities.
机译:在MATLAB中开发了一种分析计算程序,以腔室壁温为主要设计点,有效地设计了再生冷却液体火箭发动机的冷却液通道高度轮廓。该过程采用线性控制体积前进方案,该方案从冷却剂通道入口向上穿过腔室壁到主喷射器表面,依次迭代主要流体变量。共轭分析用于精确捕获腔室内的热燃烧气体与冷却剂通道中的低温液体燃料之间的传热相互作用。通过将分析结果与精确的解决方案进行比较,以及从RL10发动机发布的实验数据之外,还可以通过另一种现有的流体分析程序对程序进行验证。进行了一项针对Altair Lunar Lander主下降发动机的设计贸易研究,以探讨在不同的腔室压力和混合比以及使用不同腔室材料的情况下,该程序的冷却剂通道设计能力。这项贸易研究的结果表明,较低的压力和适度的混合比可提供最佳结果。与不锈钢腔室相反,铜腔室在某些情况下还导致有益的较低的压力损失,并且在冷却剂通道中的吸热水平略高。总体而言,该程序在设计冷却剂通道高度轮廓以及准确,及时地分析现有通道方面都取得了成功,同时又保持了足够的灵活性和扩展能力。

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