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首页> 外文期刊>Sensors and Actuators, A. Physical >Compact model based on a lumped parameter approach for the prediction of solid propellant micro-rocket performance
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Compact model based on a lumped parameter approach for the prediction of solid propellant micro-rocket performance

机译:基于集总参数方法的紧凑模型用于固体推进剂微火箭性能的预测

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The development of a lumped parameter model is described for the performances prediction of a solid propellant micro-scale rocket. A micro-scale rocket consists of a combustion chamber containing the propellant, a converging and a diverging part to accelerate the gas generated by the propellant combustion. The input modelling parameters are the geometrical features of the rockets, the propellant characteristics and the ambient conditions. The output results are the temperature, the pressure, the volumic mass of the gas in the combustion chamber and the resulting thrust as a function of time. To illustrate the computational results, the performances of one micro-rocket investigated at LAAS for micro-propulsion application have been evaluated. The micro-rocket has a throat diameter of 108 mum, a chamber diameter of 850 pm, a chamber length of 1500 mm, a convergent length of 500 mum and a diverging length of 500 mum. The computational results give a chamber pressure of similar to5 bar and a thrust value of similar to3 mN at steady state. To illustrate the capabilities of the model, Section 3.3 discussed two points: The influence of the heat loss on the thrust force; The influence of the diverging part design on the thrust force. Results show that the divergent length has an interest and must be optimised when the external pressure is closed to vacuum, whereas the diverging part length has no effect on the thrust results when the external pressure is atmospheric. (C) 2002 Elsevier Science B.V. All rights reserved. [References: 15]
机译:描述了集总参数模型的发展,以预测固体推进剂微型火箭的性能。微型火箭由包含推进剂的燃烧室,会聚和发散部分组成,以加速由推进剂燃烧产生的气体。输入的建模参数是火箭的几何特征,推进剂特性和环境条件。输出结果是温度,压力,燃烧室内气体的体积质量以及所产生的推力随时间的变化。为了说明计算结果,评估了在LAAS研究的一种用于微型推进系统的微型火箭的性能。微型火箭的喉径为108毫米,腔室直径为850 pm,腔室长度为1500毫米,会聚长度为500毫米,发散长度为500毫米。计算结果给出了稳态时的腔室压力接近5 bar,推力值接近3 mN。为了说明该模型的功能,第3.3节讨论了两点:热量损失对推力的影响;发散零件设计对推力的影响。结果表明,当外部压力接近真空时,发散长度很有意义,必须对其进行优化;而当外部压力为大气压时,发散部分的长度对推力结果没有影响。 (C)2002 Elsevier Science B.V.保留所有权利。 [参考:15]

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