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大动态范围高时空性能X射线条纹相机的研制 被引量:7

Development of X-Ray Streak Camera with Large Dynamic Range and High Temporal-Spatial Resolution
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摘要 为了满足激光驱动惯性约束聚变(ICF)的诊断需求,研制了一台大动态范围高时空性能X射线条纹相机系统;通过优化电子光学设计、改进条纹变像管的制作工艺,以及制作和使用高效器件来达到提高条纹相机动态范围以及时间和空间性能的目的;设计相机的阴极工作长度为30mm,聚焦电压为12kV;借助飞秒和皮秒激光器组建相机的静态和动态标定测试系统。结果表明:该相机系统的空间分辨率大于20lp/mm,时间分辨率达到5ps,动态范围达到2237∶1,扫描速度非线性小于3%;相机具有4个挡位,可以实现4个扫描速度下的超快信号获取;该相机性能优良,可以满足激光聚变研究中时间、空间、能谱分辨的精密化诊断要求。 To satisfy the diagnosis requirement of laser driven inertial confinement fusion (ICF), an X-ray streak camera system with large dynamic range and high temporal-spatial resolution is developed. By optimizing the design of electronic optics, improving the production process of streak image converter tube, as well as producing and using the efficient devices, we improve the dynamic range and temporal-spatial resolution of the streak camera. The photocathode working length of the camera is designed to be 30 mm, and the focus voltage is designed to be 12 kV. Static and dynamic calibration systems are set up with the help of femtosecond and picosecond lasers. The results show that the spatial resolution of the camera system is greater than 20 lp/mm, the temporal resolution reaches 5 ps, the dynamic range reaches 2237: 1, and the sweep speed nonlinearity is smaller than 3 %. Ultra-fast signals can be achieved by four gears of the camera with four sweep speeds. The camera has good performance and can be used for precise diagnosis of temporal-spatial and energy spectrum resolution in laser fusion research.
出处 《光学学报》 EI CAS CSCD 北大核心 2017年第12期372-378,共7页 Acta Optica Sinica
基金 国家重大科学仪器设备开发专项(2014YQ230659) 国家自然科学基金青年科学基金(11705119) 广东省自然科学基金(2017A030310142) 深圳市科技计划项目(JCYJ20170302152748002)
关键词 X射线光学 条纹相机 X射线探测器 空间分辨率 时间分辨率 动态范围 X-ray optics streak camera X-ray detector spatial resolution temporal resolution dynamic range
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  • 1易荣清,杨国洪,崔延莉,杜华冰,韦敏习,董建军,赵屹东,崔明启,郑雷.北京同步辐射3B3中能束线X射线探测系统性能研究[J].物理学报,2006,55(12):6287-6292. 被引量:16
  • 2屈军乐,杨勤劳,牛憨笨,宋宗贤.一种长狭缝软X射线扫描相机系统[J].强激光与粒子束,1997,9(1):114-120. 被引量:4
  • 3Christopher J S. The national ignition facility: the world's largest optical system[C]. SPIE, 2007, 6834: 683402.
  • 4Luttmann M, Denis V, Lanternier C, et al: Laser m6gajoule alignment to target center[C]. SPIE, 2011, 7916: 79160N.
  • 5Burkhart S C, Bliss E, Nieola P D, et al: National Ignition Facility system alignment[J]. Applied Optics, 2011, 50(8): 1136-1157.
  • 6Zacharias R A, Beer N R, Bliss E S. Alignment and wavefront control systems of the national ignition facility[J]. Optical Engineering, 2004, 43(12): 2873-2884.
  • 7Kalantar D H, Nicola P D, Shingleton N, et aL. An overview of target and diagnostic alignment at the National Ignition Facility[C]. SPIE, 2012, 8505: 850509.
  • 8Nicola P D, Kalantar D H, Mccarville T, et al: Beam and target alignment at the national ignition facility using the target alignment sensor (TAS)[C]. SPIE, 2012, 8505: 85050B.
  • 9Niu H, Sibbett W. Theoretical analysis of space charge effects in photochron streak cameras [J]. Rev Sci Instrum, 1981, 52(12): 1830- 1836.
  • 10D Schirmann, AMens, R Sauneuf, et al.. Performance of the ultra fast streak camera C850X[C]. SPIE, 1992, 1757: 8-18.

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