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首页> 外文期刊>CEAS Space Journal >Laser ignition of a multi-injector LOX/methane combustor
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Laser ignition of a multi-injector LOX/methane combustor

机译:激光点火多喷射器LOX /甲烷燃烧器

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摘要

This paper reports the results of a test campaign of a laser-ignited combustion chamber with 15 shear coaxial injectors for the propellant combination LOX/methane. 259 ignition tests were performed for sea-level conditions. The igniter based on a monolithic ceramic laser system was directly attached to the combustion chamber and delivered 20 pulses with individual pulse energies of $${33.2 pm 0.8 ,ext{ mJ }}$$ 33.2 ± 0.8 mJ at 1064?nm wavelength and 2.3?ns FWHM pulse length. The applicability, reliability, and reusability of this ignition technology are demonstrated and the associated challenges during the start-up process induced by the oxygen two-phase flow are formulated. The ignition quality and pressure dynamics are evaluated using 14 dynamic pressure sensors distributed both azimuthally and axially along the combustion chamber wall. The influence of test sequencing on the ignition process is briefly discussed and the relevance of the injection timing of the propellants for the ignition process is described. The flame anchoring and stabilization process, as monitored using an optical probe system close to the injector faceplate connected to photomultiplier elements, is presented. For some of the ignition tests, non-uniform anchoring was detected with no influence onto the anchoring at steady-state conditions. The non-uniform anchoring can be explained by the inhomogeneous, transient injection of the two-phase flow of oxygen across the faceplate. This characteristic is verified by liquid nitrogen cold flow tests that were recorded by high-speed imaging. We conclude that by adapting the ignition sequence, laser ignition by optical breakdown of the propellants within the shear layer of a coaxial shear injector is a reliable ignition technology for LOX/methane combustors without significant over-pressure levels.
机译:本文报告了激光点火燃烧室的试验活动的结果,该燃烧室具有15个剪切同轴注射器,用于推进剂组合LOX /甲烷。对海平条件进行259点火试验。基于单片陶瓷激光系统的点火器直接连接到燃烧室,并通过1064×nm的单独脉冲能量提供20个脉冲能量的脉冲能量.13.2±0.8 mj波长和2.3?ns fwhm脉冲长度。该点火技术的适用性,可靠性和可重用性在制定了由氧气两相流诱导的启动过程中的相关挑战。使用14个动态压力传感器评估点火质量和压力动力学,所述动态压力传感器沿着燃烧室壁横向分布。简要讨论了试验测序对点火过程的影响,并描述了用于点火过程的推进剂的喷射定时的相关性。呈现了使用靠近连接到光电倍增器元件的喷射器面板的光学探针系统监测的火焰锚固和稳定过程。对于一些点火试验,检测不均匀的锚定,没有影响稳定状态下的锚固。可以通过非均匀的,瞬态注射穿过面板的两相流动的非均匀锚定。通过高速成像记录的液氮冷流量试验验证该特性。我们得出结论,通过调整点火序列,通过同轴剪切喷射器的剪切层内的推进剂内的光学击穿激光点火是用于LOX /甲烷燃烧器的可靠点火技术,而无需显着过压水平。

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