Study on the length of diagnostic time window of CUP-VISAR

被引:14
作者
Guan, Zanyang [1 ]
Li, Yulong [1 ]
Wang, Feng [1 ]
Liu, Xiangming [1 ]
Peng, Xiaoshi [1 ]
Xu, Tao [1 ]
Ren, Kuan [1 ]
Wei, Huiyue [1 ]
Liu, Yonggang [1 ]
机构
[1] China Acad Engn Phys, Laser Fus Res Ctr, Mianyang 621900, Sichuan, Peoples R China
关键词
inertial confinement fusion; 2D-VISAR; 2D-velocity field; compressed ultrafast photography; INTERFEROMETER; COMPRESSION;
D O I
10.1088/1361-6501/ac29d4
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
One-dimensional line velocity interferometer system for any reflectors (VISARs) acts as a significant diagnostic device in the process of the inertial confinement fusion, which can be used to measure the free surface velocity and the history of shockwave velocity in transparent media over time. But the lack of spatial information makes it impossible to measure the flatness of wavefront. The compressed ultrafast photography (CUP) system developed in recent years can realize two-dimensional ultrafast photography. We have designed a new two-dimensional VISAR diagnosis system by combining the CUP with line-VISAR, called the CUP-VISAR, which will be of great significance in two-dimensional shockwave front measurement. In this paper, a data simulation method of CUP-VISAR is proposed to study the length of diagnostic time window of the device. A series of original VIASR images are firstly generated and then the compressed images are simulated after image encoding and compression. Finally, two-step iterative shrinkage thresholding algorithm is used to reconstruct the compressed images, which results in corresponding reconstructed images. In order to verify the restoration effect of the algorithm, we calculate the velocity error and image correlation coefficient value. Finally the relationship between the image reconstruction quality and the number of images is preliminarily obtained, which provides reference for the actual experiment.
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页数:6
相关论文
共 20 条
[1]   Compressive sensing [J].
Baraniuk, Richard G. .
IEEE SIGNAL PROCESSING MAGAZINE, 2007, 24 (04) :118-+
[2]   LASER INTERFEROMETER FOR MEASURING HIGH VELOCITIES OF ANY REFLECTING SURFACE [J].
BARKER, LM ;
HOLLENBACH, RE .
JOURNAL OF APPLIED PHYSICS, 1972, 43 (11) :4669-+
[3]  
Barker LM, 2000, AIP CONF PROC, V505, P11, DOI 10.1063/1.1303413
[4]   A new TwIST: Two-step iterative shrinkage/thresholding algorithms for image restoration [J].
Bioucas-Dias, Jose M. ;
Figueiredo, Mario A. T. .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2007, 16 (12) :2992-3004
[5]   Robust uncertainty principles:: Exact signal reconstruction from highly incomplete frequency information [J].
Candès, EJ ;
Romberg, J ;
Tao, T .
IEEE TRANSACTIONS ON INFORMATION THEORY, 2006, 52 (02) :489-509
[6]   A high-resolution two-dimensional imaging velocimeter [J].
Celliers, P. M. ;
Erskine, D. J. ;
Sorce, C. M. ;
Braun, D. G. ;
Landen, O. L. ;
Collins, G. W. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2010, 81 (03)
[7]   Line-imaging velocimeter for shock diagnostics at the OMEGA laser facility [J].
Celliers, PM ;
Bradley, DK ;
Collins, GW ;
Hicks, DG ;
Boehly, TR ;
Armstrong, WJ .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2004, 75 (11) :4916-4929
[8]   Three-dimensional modeling and hydrodynamic scaling of National Ignition Facility implosions [J].
Clark, D. S. ;
Weber, C. R. ;
Milovich, J. L. ;
Pak, A. E. ;
Casey, D. T. ;
Hammel, B. A. ;
Ho, D. D. ;
Jones, O. S. ;
Koning, J. M. ;
Kritcher, A. L. ;
Marinak, M. M. ;
Masse, L. P. ;
Munro, D. H. ;
Patel, M. V. ;
Patel, P. K. ;
Robey, H. F. ;
Schroeder, C. R. ;
Sepke, S. M. ;
Edwards, M. J. .
PHYSICS OF PLASMAS, 2019, 26 (05)
[9]   Compressed sensing [J].
Donoho, DL .
IEEE TRANSACTIONS ON INFORMATION THEORY, 2006, 52 (04) :1289-1306
[10]   Structured Compressed Sensing: From Theory to Applications [J].
Duarte, Marco F. ;
Eldar, Yonina C. .
IEEE TRANSACTIONS ON SIGNAL PROCESSING, 2011, 59 (09) :4053-4085