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Observation of particle ejection behavior following laser-induced breakdown on the rear surface of a sodium chloride optical window

机译:在氯化钠光学窗口后表面上发生激光诱导的粒子喷射行为的观察

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摘要

Laser-induced rear surface breakdown process of sodium chloride (NaCI) optical window was investigated based on the time-resolved shadowgraphy and interferometry. Violent particle ejection behavior lasting from tens of nanoseconds to tens of microseconds after the breakdown was observed. Classified by the particle velocity and propagating direction, the ejection process can be divided into three phases: (1) high-speed ejection of liquid particles during the first 100-ns delay; (2) micron-sized material clusters ejection from 00-ns to ~1 -μs delay; (3) larger and slower solid-state particles ejection from ~1 /μs to tens of microseconds delay. The moving directions of particles in the first and third phases are both perpendicular to the sample surface while particles ejected in the second phase exhibits angular ejection and present a V-like particle pattern. Mechanisms include explosive boiling, impact ejection, and Shockwave ejection are discussed to explain this multiple phase ejection behavior. Our results highlight the significance of impact ejection induced by recoil pressure and backward propagating internal Shockwave for laser-induced rear surface breakdown events of optical materials with low melting point.
机译:基于时间分辨的阴影和干涉测量,研究了激光诱导的氯化钠(NaCI)光学窗口的后表面击穿过程。在观察到击穿后,剧烈的颗粒喷射行为持续到数十纳秒到数十微秒。通过颗粒速度和传播方向分类,喷射过程可以分为三相:(1)在前100-NS延迟期间液体颗粒的高速喷射; (2)从00-ns突出到〜1μs延迟的微米尺寸的材料簇; (3)较大且较慢的固态颗粒从〜1 /μs喷射到几十微秒的延迟。第一和第三阶段中的颗粒的移动方向垂直于样品表面,同时在第二相中喷射的颗粒表现出角度喷射并呈现V样颗粒图案。机制包括爆炸性沸腾,冲击喷射和冲击波喷射被讨论以解释这种多相喷射行为。我们的结果突出了反冲压力和向后传播内部冲击波对具有低熔点的光学材料的激光诱导的后表面击穿事件的撞击喷射的重要性。

著录项

  • 来源
    《Optical engineering》 |2017年第1期|011009.1-011009.6|共6页
  • 作者单位

    National University of Defense Technology College of Opto-Electronic Science and Engineering No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial Key Laboratory of High Energy Laser Technology No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial ColLaborative Innovation Center of High Power Fiber Laser No. 137 Yanwachi Street Changsha 410073 China;

    National University of Defense Technology College of Opto-Electronic Science and Engineering No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial Key Laboratory of High Energy Laser Technology No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial ColLaborative Innovation Center of High Power Fiber Laser No. 137 Yanwachi Street Changsha 410073 China National University of Defense Technology State Key Laboratory of High Performance Computing No.137 Yanwachi Street Changsha 410073 China;

    National University of Defense Technology College of Opto-Electronic Science and Engineering No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial Key Laboratory of High Energy Laser Technology No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial ColLaborative Innovation Center of High Power Fiber Laser No. 137 Yanwachi Street Changsha 410073 China;

    National University of Defense Technology College of Opto-Electronic Science and Engineering No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial Key Laboratory of High Energy Laser Technology No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial ColLaborative Innovation Center of High Power Fiber Laser No. 137 Yanwachi Street Changsha 410073 China;

    National University of Defense Technology College of Opto-Electronic Science and Engineering No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial Key Laboratory of High Energy Laser Technology No. 137 Yanwachi Street Changsha 410073 China Hunan Provincial ColLaborative Innovation Center of High Power Fiber Laser No. 137 Yanwachi Street Changsha 410073 China National University of Defense Technology State Key Laboratory of High Performance Computing No.137 Yanwachi Street Changsha 410073 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    laser-induced damage; time-resolved; particle ejection; optical materials;

    机译:激光诱导的损伤;时间解决;颗粒喷射;光学材料;

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