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Towards the Effects of Initial Grain Temperature and Erosive Burning on the Solid Propellant Combustion

机译:初始颗粒温度和侵蚀性燃烧对固体推进剂燃烧的影响

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On the basis of an improved mathematical model it was explored how the derived nonlinear pressure coupling response function, depending on pressure and frequency, behaves at extreme initial grain temperatures. This is accomplished by extending the existing model QSHOD (Α Β) to incorporate the effects of nonlinearity. Pressure - frequency analysis of nonlinear combustion response function at the pressure coupling is a relevant input of this paper and provides useful data on the occurrence of the combustion instability in the case of unsteady DB homogeneous solid propellant burning with and without erosion. A study concerning the combustion stability prediction based on the classical linear stability theory was also included in our paper. The model incorporates unsteady rotational sources and sinks in the acoustic energy assessment and thus a more accurate acoustic instability evaluation can be achieved. This method involves the computing of minimum 11 growth rate terms that arise in the dynamics of an oscillating complex flow. Finally, the paper gives an overview of some experimental results on combustion instabilities and pressure oscillations in DB solid propellant rocket motors (SPRM-01, 02 and 03). Some particular pressure-time traces, at extreme grain initial temperatures, with significant perturbed pressure signal were recorded and FFT analysed.
机译:在改进的数学模型的基础上,研究了导出的非线性压力耦合响应函数(取决于压力和频率)在极端初始晶粒温度下的行为。这可以通过扩展现有模型QSHOD(AΒ)并纳入非线性效应来实现。压力耦合中非线性燃烧响应函数的压力-频率分析是本文的重要内容,它提供了在非稳态DB均质固体推进剂燃烧和不腐蚀的情况下发生燃烧不稳定性的有用数据。本文还对基于经典线性稳定性理论的燃烧稳定性预测进行了研究。该模型在声能评估中纳入了不稳定的旋转源和下沉,因此可以实现更准确的声不稳定性评估。此方法涉及计算最小的11个增长率项,这些项在振荡复杂流的动力学中出现。最后,本文概述了DB固体推进剂火箭发动机(SPRM-01、02和03)的燃烧不稳定性和压力振荡的一些实验结果。在极端的谷物初始温度下,记录了一些特殊的压力-时间轨迹,并带有明显的扰动压力信号,并对FFT进行了分析。

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