概括
基于地面的激光可以通过削减材料来为太空推进提供动力. 确定最佳脉冲能量和宽度用于大气传输和空间碎片清除,有利于较小的碎片.
科学领域:
- 太空推进器 空间推进器
- 激光与物质的相互作用
- 大气光学是大气光学.
背景情况:
- 激光除推进是太空应用的一个有前途的技术.
- 现实世界的场景涉及大气流影响激光传播.
- 有效的动量合对于太空中的激光物质相互作用至关重要.
研究的目的:
- 研究用于太空推进的地面激光器脉冲能量规则.
- 分析大气流对激光束传播的影响.
- 在激光-物质相互作用中确定动量合的最佳参数.
主要方法:
- 对激光束在乱的大气中沿斜路径进行分析传播公式的推导.
- 为优化脉冲宽度开发一个合适的配方.
- 对脉冲能量规则的分析推导,以实现值和最佳动量合.
主要成果:
- 通过大气流来导出激光束传播的分析公式.
- 得到了一个优化的脉冲宽度合适公式.
- 建立了地面激光脉冲能量规则,用于值和最佳动量合,表明需要增加激光高度.
结论:
- 几纳秒的脉冲宽度 (大约1 ns) 在目标上适合激光除推进.
- 基于地面的激光器在去除厘米尺度空间碎片方面比米尺度碎片更有效.
- 激光高度是实现有效的空间动量合的关键因素.
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