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Experimental research on the rotating detonation in gaseous fuels–oxygen mixtures

机译:气态燃料-氧气混合物中旋转爆轰的实验研究

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An experimental study on rotating detonation is presented in this paper. The study was focused on the possibility of using rotating detonation in a rocket engine. The research was divided into two parts: the first part was devoted to obtaining the initiation of rotating detonation in fuel–oxygen mixture; the second was aimed at determination of the range of propagation stability as a function of chamber pressure, composition, and geometry. Additionally, thrust and specific impulse were determined in the latter stage. In the paper, only rich mixture is described, because using such a composition in rocket combustion chambers maximizes the specific impulse and thrust. In the experiments, two kinds of geometry were examined: cylindrical and cylindrical-conic, the latter can be simulated by a simple aerospike nozzle. Methane, ethane, and propane were used as fuel. The pressure–time courses in the manifolds and in the chamber are presented. The thrust–time profile and detonation velocity calculated from measured pressure peaks are shown. To confirm the performance of a rocket engine with rotating detonation as a high energy gas generator, a model of a simple engine was designed, built, and tested. In the tests, the model of the engine was connected to the dump tank. This solution enables different environmental conditions from a range of flight from 16 km altitude to sea level to be simulated. The obtained specific impulse for pressure in the chamber of max. 1.2 bar and a small nozzle expansion ratio of about 3.5 was close to 1,500 m/s.
机译:本文对旋转爆轰进行了实验研究。该研究集中于在火箭发动机中使用旋转爆轰的可能性。研究分为两个部分:第一部分致力于获得燃料-氧气混合物中的旋转爆轰。第二个目标是确定传播稳定性的范围,该范围是室压力,成分和几何形状的函数。另外,推力和比冲在后期确定。在本文中,仅描述了浓混合气,因为在火箭燃烧室中使用这种成分可使比冲和推力最大化。在实验中,检查了两种几何形状:圆柱几何形状和圆柱圆锥形几何形状,后者可以通过简单的雾化喷嘴进行模拟。甲烷,乙烷和丙烷用作燃料。介绍了歧管和腔室内的压力-时间过程。显示了从测得的压力峰值计算得出的推力-时间曲线和爆震速度。为了确认旋转爆轰式火箭发动机作为高能气体发生器的性能,设计,制造和测试了一种简单发动机的模型。在测试中,发动机模型连接到了自卸车。该解决方案可以模拟从16 km高度的飞行范围到海平面的不同环境条件。所获得的最大腔室内压力的比脉冲。 1.2巴和约3.5的小喷嘴膨胀比接近1,500 m / s。

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