Numerical Study of Supersonic Jet Characteristics of Underwater Solid Rocket Engine

Yiqing Li, Ranhui Liang, Pin Lv, Zhitan Zhou, Dehua Cao
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Abstract

The structure of the rocket supersonic jet changes periodically when the solid rocket engines are ignited underwater. To investigate the flowfield structure and thrust characteristics of underwater gas jets emanating from solid rocket engines, this study establishes a numerical model for the multiphase flow of underwater jets based on the volume of fluid and realizable [Formula: see text] models. The effectiveness of the model is validated through comparison with experimental data. Subsequently, numerical simulations of tail jets from solid rocket engines are conducted at different water depths. The results indicate that during the underwater operation of solid rocket engines, the tail jet undergoes periodic processes such as expansion, constriction, rupture, and recoil. At larger depths, the environmental pressure exerts a more significant effect on the gas jet, thus resulting in a slower axial development of gas bubbles but more significant periodic evolution processes. Unlike the case in air, the thrust of solid rocket engines oscillates significantly when ignited underwater. In deeper water environments, the engine thrust presents a smaller oscillation amplitude. The findings of this study provide a theoretical basis for the design of solid rocket engines ignited underwater.
水下固体火箭发动机超音速喷流特性的数值研究
固体火箭发动机在水下点火时,火箭超音速射流的结构会发生周期性变化。为了研究固体火箭发动机喷出的水下气体射流的流场结构和推力特性,本研究建立了基于流体体积和可实现[公式:见正文]模型的水下射流多相流数值模型。通过与实验数据的对比,验证了模型的有效性。随后,对不同水深的固体火箭发动机尾部喷流进行了数值模拟。结果表明,固体火箭发动机在水下运行时,尾喷流会经历膨胀、收缩、破裂和反冲等周期性过程。在水深较大时,环境压力对气体射流的影响更为明显,因此气泡的轴向发展速度较慢,但周期性演变过程更为显著。与空气中的情况不同,固体火箭发动机在水下点火时,推力会发生明显的摆动。在深水环境中,发动机推力的振荡幅度较小。这项研究的结果为水下点火固体火箭发动机的设计提供了理论依据。
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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