Research on the influence of water injection parameters on flow field of rocket jets
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摘要:
为了研究火箭起飞时不同注水参数对火箭尾焰喷流流场的影响规律,以某火箭发动机缩比喷管为研究对象,基于计算流体力学(CFD)方法及Mixture多相流模型开展了注水时单喷管火箭喷流流场的数值计算研究。以注水速度、流量、位置等注水条件为变量,量化分析了注水对火箭喷流平均温度、压力、速度和湍动能场的影响。结果表明:注水速度大于30 m/s时,可有效降低喷管射流的温度和速度,当注水速度低于20 m/s时,注水对喷流轴线上物理量的影响变小;注水速度为30 m/s,且流量大于2.2倍喷管射流秒流量时,可以有效降低喷管射流温度和速度;注水与喷流作用点位于喷管射流前三个激波位置时,注水对喷流降温降速效果较好,且作用点越靠近上游,对喷管射流的影响越明显,但实际工程应用中应避免注水溅到喷管上。
Abstract:A study on the effects of different water injection conditions on the jet flow field of a rocket model was performed. The numerical calculation of the jet flow field of a single nozzle rocket during water injection was carried out based on the computational fluid dynamics (CFD) and Mixture model. The effects of water injection on average temperature, pressure, velocity and turbulent kinetic energy field of rocket jet were analyzed in different water injection velocities and flow rate conditions. The results showed that when the water injection speed was greater than 30 m/s, the temperature and speed of the nozzle jet can be effectively reduced. When the water injection speed was lower than 20 m/s, the influence of water injection on physical quantity of the jet axis became smaller. When the water injection speed was 30 m/s and the flow rate was more than 2.2 times the nozzle jet second flow rate, the nozzle jet temperature and speed can be effectively reduced. When the action point of water injection and the jet were located at the first three shock wave positions of the nozzle jet, the water injection had a good effect on the jet cooling and velocity reduction, and the closer the operation point was to the upstream, the more obvious the impact on the nozzle jet was. However, in practical engineering applications, the injection should avoid splashing on the nozzle.
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Key words:
- rockets /
- water injection /
- gas-liquid multiphase flow /
- flow field of jet /
- cooling and slowing
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表 1 燃气喷管工况
Table 1. Gas nozzle condition
参数 数值 喷管入口直径D1/mm 50 喷管喉道直径D2/mm 19 喷管出口直径D/mm 67 喷管长度L/mm 207 喷管进口总压p*/106 Pa 5.5 喷管进口总温T*/K 3700 表 2 燃气物性参数表
Table 2. Gas property parameter
参数 数值 摩尔质量M /(g/mol) 25.88 比定压热容cp/ (kJ/(kg∙K)) 1.9174 导热系数/(W/(m∙K)) 0.205 动力黏度/10−5 (kg/(m∙s)) 6.37 表 3 不同注水速度的工况说明
Table 3. Condition of different water infection velocity
序号 水管出口尺寸/mm 注水流速/(m/s) 注水流量/(kg/s) 1 4×30 20 4.8 2 4×30 30 7.2 3 4×30 35 8.4 4 4×30 40 9.6 5 4×30 45 10.8 表 4 不同注水管尺寸的工况说明
Table 4. Condition of different size of water injection pipe
序号 水管出口尺寸/mm 注水流速/(m/s) 注水流量/(kg/s) 1 4×6 30 1.44 2 4×10 30 2.4 3 4×20 30 4.8 4 4×30 30 7.2 5 4×50 30 12 6 4×70 30 16.8 表 5 相同注水流量的工况说明
Table 5. Condition of same water injection flow
序号 水管出口尺寸/mm 注水流速/(m/s) 注水流量/(kg/s) 1 4×6 66.66 3.2 2 4×10 40 3.2 3 4×20 20 3.2 4 4×30 13.33 3.2 5 4×50 8 3.2 表 6 不同注水管高度的工况说明
Table 6. Condition of different height of water injection pipe
序号 水管出口尺寸/mm 注水流速/(m/s) 注水管高度/mm 1 4×10 40 150 2 4×10 40 50 3 4×10 40 0 4 4×10 40 −25 5 4×10 40 −100 -
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