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Laser ignition of an experimental combustion chamber with a multi?injector configuration at low pressure conditions

机译:在低压条件下具有多架喷射器构造的实验燃烧室的激光点火

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In search of reliable and light-weight ignition systems for re-ignitable upper stage engines, a laser ignition system was adapted and tested on an experimental combustion chamber for propellant injection into low combustion chamber pressures at 50–80 mbar. The injector head pattern consisted of five coaxial injector elements. Both, laser-ablation-driven ignition and laser-plasmadriven ignition were tested for the propellant combination liquid oxygen and gaseous hydrogen. The 122 test runs demonstrated the reliability of the ignition system for different ignition configurations and negligible degradation due to testing. For the laser-plasma-driven scheme, minimum laser pulse energies needed for 100% ignition probability were found to decrease when increasing the distance of the ignition location from the injector faceplate with a minimum of 2.6 mJ. For laser-ablation-driven ignition, the minimum pulse energy was found to be independent of the ablation material tested and was about 1.7 mJ. The ignition process was characterized using both high-speed Schlieren and OH* emission diagnostics. Based on these findings and on the increased fiber-based pulse transport capabilities recently published, new ignition system configurations for space propulsion systems relying on fiber-based pulse delivery are formulated. If the laser ignition system delivers enough pulse energy, the laser-plasma-driven configuration represents the more versatile configuration. If the laser ignition pulse power is limited, the application of laserablation- driven ignition is an option to realize ignition, but implies restrictions concerning the location of ignition.
机译:为了搜索可靠的上级发动机的可靠和轻量度点火系统,在实验燃烧室上进行激光点火系统,用于在50-80毫巴的低燃烧室压力下进入低燃烧室压力。喷射器头部图案由五个同轴注射器元件组成。测试推进剂组合液氧和气态氢气测试激光烧蚀驱动的点火和激光 - 剥离点火。 122个测试运行证明了由于测试而导致的不同点火配置的点火系统的可靠性和可忽略的降解。对于激光等离子体驱动的方案,发现100%点火概率所需的最小激光脉冲能量在增加从喷射器面板的喷射器面板的距离时减小,至少为2.6MJ。对于激光烧蚀驱动的点火,发现最小脉冲能量与测试的消融材料无关,并且约为1.7MJ。点火过程的特征是使用高速Schlieren和OH *发射诊断。基于这些调查结果和近期纤维的脉冲传输能力最近公布,配制了依赖于基于光纤的脉冲输送的空间推进系统的新点火系统配置。如果激光点火系统提供足够的脉冲能量,则激光等离子体驱动配置代表了更通用的配置。如果激光点火脉冲功率受到限制,则激光驱动的点火的应用是实现点火的选项,但意味着有关点火位置的限制。

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