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Multiphysics Computational Analysis of a Solid-Core Nuclear Thermal Engine Thrust Chamber

机译:耐核核热发动机推力室的多职业计算分析

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The objective of this effort is to develop an efficient and accurate computational heat transfer methodology to predict thermal, fluid, and hydrogen environments for a hypothetical solid-core, nuclear thermal engine - the Small Engine. In addition, the effects of power profile and hydrogen conversion on heat transfer efficiency and thrust performance were also investigated. The computational methodology is based on an unstructured-grid, pressure-based, all speeds, chemically reacting, computational fluid dynamics platform, while formulations of conjugate heat transfer were implemented to describe the heat transfer from solid to hydrogen inside the solid-core reactor. The computational domain covers the entire thrust chamber so that the afore-mentioned heat transfer effects impact the thrust performance directly. The result shows that the computed core-exit gas temperature, specific impulse, and core pressure drop agree well with those of design data for the Small Engine. Finite-rate chemistry is very important in predicting the proper energy balance as naturally occurring hydrogen decomposition is endothermic. Locally strong hydrogen conversion associated with centralized power profile gives poor heat transfer efficiency and lower thrust performance. On the other hand, uniform hydrogen conversion associated with a more uniform radial power profile achieves higher heat transfer efficiency, and higher thrust performance.
机译:这项努力的目的是开发一种高效和准确的计算传热方法,以预测假想的固体核热力发动机 - 小型发动机的热,流体和氢气环境。此外,还研究了电力曲线和氢转化对传热效率和推力性能的影响。计算方法基于非结构化网,基于压力的,所有速度,化学反应,计算流体动力学平台,而共轭热传递的配制以描述从固体反应器内的固体到氢的热传递。计算结构域覆盖整个推力室,使得前述传热效应直接影响推力性能。结果表明,计算的核心出口气体温度,特定的脉冲和核心压降与小型发动机的设计数据相吻合得很好。有限速率化学在预测适当的能量平衡时非常重要,因为天然存在的氢分解是吸热的。与集中功率型材相关的局部强氢转换使传热效率差和较低的推力性能。另一方面,与更均匀的径向电力型材相关的均匀氢转换达到较高的传热效率和更高的推力性能。

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