Pouncey J Cameron, Lehr Jane M
Naval Surface Warfare Center Dahlgren Division, 18444 Frontage Rd. Ste 328, Dahlgren, Virginia 22448, USA.
Department of Electrical and Computer Engineering, University of New Mexico, Albuquerque, New Mexico 87131, USA.
Rev Sci Instrum. 2024 Jun 1;95(6). doi: 10.1063/5.0189789.
A low-energy, diode-pumped, solid-state passively Q-switched laser operating at a wavelength of 1535 nm has been demonstrated to trigger gas switches. This technology has the potential to bring significant improvements to the operation and reliability of compact pulsed power drivers. Compact pulsed power drivers are often required to operate for hundreds to thousands of shots without maintenance; thus, the reliable operation of the laser triggered switch is significant for the adoption of this technology. A primary limiter of spark gap lifetime is electrode erosion. In the case of a laser triggered switch where the laser is focused on one electrode, an additional source of erosion is the direct ablation of the electrode material by the laser. The micro-laser used in the previous experiments is very low energy, but over thousands of shots, it does damage directly to the target electrode. This damage could potentially interact with the erosion due to the current discharge and impact the operation of the switch. The focus of this paper is to describe experiments undertaken to assess this damage and quantify its effect on switch operation over many discharges at current and energy levels relevant to compact pulsed power systems.
已证明,一台波长为1535纳米、低能量、二极管泵浦、固态被动调Q激光器能够触发气体开关。这项技术有可能显著改善紧凑型脉冲功率驱动器的运行和可靠性。紧凑型脉冲功率驱动器通常需要在无需维护的情况下运行数百至数千次;因此,激光触发开关的可靠运行对于这项技术的应用至关重要。火花隙寿命的一个主要限制因素是电极侵蚀。在激光聚焦于一个电极的激光触发开关的情况下,另一个侵蚀源是激光对电极材料的直接烧蚀。先前实验中使用的微型激光器能量非常低,但经过数千次发射后,它确实会对目标电极造成直接损坏。这种损坏可能会与电流放电造成的侵蚀相互作用,并影响开关的运行。本文的重点是描述为评估这种损坏并量化其在与紧凑型脉冲功率系统相关的电流和能量水平下多次放电时对开关运行的影响而进行的实验。