Conjugate heat transfer applied to transitory analysis for rocket engine cooling systems design

V. Barbato
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Abstract

Abstract. This study investigates the use of an in-house Conjugate Heat Transfer (CHT) numerical solver for the modelling of transient phenomena in liquid rocket engines active cooling systems. Heat transfer considerations place great limitations in the development of rocket engines and transient operative conditions are amongst the most critical. The current lack of models and numerical tools capable of accounting for the complexities of this time-dependent multi-physics problem, results in oversized cooling systems, long development times and increased risk of failure. The fine modelling of all the involved phenomena and their interaction with each other is crucial to achieve a correct prediction of the thermal fluxes and wall temperatures involved. Hence, CHT simulations are the state-of-the-art for this application. The CHT solver proposed in this work utilizes a partitioned coupling strategy where two extensively validated single-physics solvers exchange information through their interfaces at discrete time steps. A simplified version of the RL-10A-3-3A regenerative cooling jacket is considered as reference to test the strengths and the limits of this approach. Both a complete chilldown of the engine and part of the start-up transient have been simulated. The analyses performed show the ability of the solver proposed to deal with transient phenomena where fluid-structure interaction occurs. In addition, they provide a complete overview of the numerical issues related to the partitioned coupling approach. These preliminary results pave the way for further developments aimed at increasing the reliability of the solutions and extending the application field of the software developed.
共轭传热在火箭发动机冷却系统设计暂态分析中的应用
摘要本研究探讨了使用内部的共轭传热(CHT)数值求解器来模拟液体火箭发动机主动冷却系统中的瞬态现象。热传递的考虑给火箭发动机的发展带来了很大的限制,其中瞬态工作条件是最关键的。目前缺乏能够解释这种时间依赖性多物理场问题复杂性的模型和数值工具,导致冷却系统过大,开发时间长,故障风险增加。对所涉及的所有现象及其相互作用的精细建模对于正确预测所涉及的热通量和壁面温度至关重要。因此,CHT模拟是该应用程序的最先进技术。本工作中提出的CHT求解器采用了一种分区耦合策略,其中两个经过广泛验证的单物理求解器通过其接口以离散时间步交换信息。以RL-10A-3-3A再生冷却夹套的简化版本为参考,测试了该方法的强度和局限性。模拟了发动机的完全冷却和部分启动瞬态。分析结果表明,所提出的求解器能够处理发生流固耦合的瞬态现象。此外,它们还提供了与分区耦合方法相关的数值问题的完整概述。这些初步结果为进一步提高解决方案的可靠性和扩展所开发软件的应用领域铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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