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Precisely Controlled Reactive Multilayer Films with Excellent Energy Release Property for Laser-Induced Ignition

机译:精确控制的具有优异能量释放特性的反应性多层膜用于激光诱导点火

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摘要

AbstractThree types of reactive multilayer films (RMFs) were integrated to the energetic flyer plates (EFPs) by depositing TiO2, MnO2, and CuO onto aluminum films with different modulation periods using magnetron sputtering technology in this study. The effects of the laser ignition property and laser reflectivity on the RMFs and the thermal behavior of the RMFs were analyzed and compared with those of a single-layer Al film. A high-speed video, photonic Doppler velocimetry (PDV), and a thermal analysis were utilized to characterize the flame morphology, EFP velocity, and chemical thermal behavior, respectively. The surface reflectivities of the TiO2/Al, MnO2/Al, and CuO/Al layers were measured using laser reflectivity spectrometers. The results showed that RMFs with smaller modulation periods exhibited excellent laser ignition performances, and EFP with MnO2/Al had the best performance. These RMFs achieved flame durations of 120–220 μs, maximum flame areas of 7.523–11.476 mm2, and reaction areas of 0.153–0.434 mm2 (laser-induced with 32.20 J/cm2). Flyer velocities of 3972–5522 m/s were obtained in the EFPs by changing the material and modulation period of the RMFs. Furthermore, the rate of the chemical reaction and laser energy utilization were also enhanced by reducing the modulation period and using different material. This behavior was consistent with a one-dimensional nanosecond-laser-induced plasma model. The RMFs of MnO2/Al exhibited the highest level of energy release and promoted laser energy utilization, which could better improve the performance of laser ignition for practical application.
机译:摘要本研究利用磁控溅射技术将TiO2,MnO2和CuO沉积在具有不同调制周期的铝膜上,从而将三种类型的反应性多层膜(RMF)集成到高能飞行器板(EFP)中。分析了激光点火特性和激光反射率对RMF的影响以及RMF的热行为,并将其与单层Al膜的影响进行了比较。高速视频,光子多普勒测速仪(PDV)和热分析分别用于表征火焰形态,EFP速度和化学热行为。使用激光反射光谱仪测量TiO2 / Al,MnO2 / Al和CuO / Al层的表面反射率。结果表明,调制周期较小的RMF表现出优异的激光点火性能,而MnO2 / Al的EFP表现最佳。这些RMF的火焰持续时间为120–220μs,最大火焰面积为7.523–11.476 mm 2 ,反应区域为0.153–0.434 mm 2 (激光诱导32.20 J / cm 2 )。通过更改RMF的材料和调制周期,在EFP中获得了3972–5522 m / s的飞行速度。此外,通过减少调制周期和使用不同的材料,还提高了化学反应的速度和激光能量的利用。此行为与一维纳秒激光诱导的等离子体模型一致。 MnO2 / Al的RMF表现出最高的能量释放水平,并促进了激光能量的利用,可以更好地提高激光点火的性能以供实际应用。

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