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首页> 外文期刊>Journal of Sound and Vibration >Analyticalmodel for the prediction of pulsations in a cold-gas scale-model of a Solid Rocket Motor
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Analyticalmodel for the prediction of pulsations in a cold-gas scale-model of a Solid Rocket Motor

机译:固体火箭电机冷气尺度模型中脉动预测的分析模型

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Cold gas scale model experiments (1/30) demonstrate that coupling of vortex shedding with acoustic standing waves can produce pressure oscillations of the same level as observed in large Solid Rocket Motors. An analytical acoustical energy balance model is proposed in which the system is described as a single mode acoustic resonator and the pulsations are assumed to be purely harmonic. The selected acoustic mode number is an input to the model. Quasi-steady linear models are used to describe losses of acoustic energy by vortex shedding at a thermal inhibitor ring, radiation at the nozzle and friction within the porous injection wall used for gas injection. The sound production is predicted by using a 2-D planar point vortex model combined with the Vortex Sound Theory. The model demonstrates that the sound production due to interaction of the vortex with the cavity surrounding the integrated nozzle is dominant, explaining previous results of cold gas and hot-gas scale models. The effect of vortex ingestion by the nozzle is negligible. Aspects of the nozzle geometry, other than the cavity volume, are not critical. The model predicts pressure pulsations within a factor 2, when the circulation of the vortices is taken one third of the maximum available circulation. This reduction factor of the circulation is assumed to be a consequence of turbulence. The Mach number corresponding to the maximum of pulsation is predicted within 20% in a range comparable to results obtained by axis-symmetrical numerical flow simulations. (c) 2018 Elsevier Ltd. All rights reserved.
机译:冷气度模型实验(1/30)表明涡流脱落与声学驻波的耦合可以产生与大型固体火箭电动机中观察到相同水平的压力振荡。提出了一种分析声能量平衡模型,其中系统被描述为单模声谐振器,并且假设脉动纯度谐波。所选的声模式号是模型的输入。准稳态线性模型用于描述在热抑制作用环上的涡流脱落的声能损失,喷嘴处的辐射和用于气体喷射的多孔注射壁内的摩擦。通过使用2-D平面点涡流模型与涡旋音响理论相结合来预测声音生产。该模型表明,由于涡流与围绕集成喷嘴的腔的相互作用导致的声音产生是显性的,解释了冷气和热气级模型的先前结果。喷嘴涡流摄取的影响可忽略不计。除腔体积之外的喷嘴几何形状的各方面并不重要。当涡流的循环被捕获最大可用循环的三分之一时,该模型预测因子2内的压力脉动。假设循环的这种减少因子是湍流的结果。与通过轴对称数值流模拟获得的结果相当的范围内预测对应于脉动的最大脉动的马赫数。 (c)2018年elestvier有限公司保留所有权利。

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