• High Power Laser and Particle Beams
  • Vol. 35, Issue 9, 092003 (2023)
Hengwei Zhao1, Tao Tao1、*, Peng Yuan1, and Jian Zheng1、2
Author Affiliations
  • 1Department of Plasma Physics and Fusion Engineering , School of Nuclear Science and Technology , University of Science and Technology of China, Hefei 230026, China
  • 2Collaborative Innovation Center of IFSA, Shanghai Jiao Tong University, Shanghai 200240, China
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    DOI: 10.11884/HPLPB202335.220406 Cite this Article
    Hengwei Zhao, Tao Tao, Peng Yuan, Jian Zheng. Optimization algorithm for compound filter parameters of flat response X-ray diode[J]. High Power Laser and Particle Beams, 2023, 35(9): 092003 Copy Citation Text show less
    References

    [1] Lindl J D, Amendt P, Berger R L, et al. The physics basis for ignition using indirect-drive targets on the National Ignition Facility[J]. Physics of Plasmas, 11, 339-491(2004).

    [2] Dewald E L, Glenzer S H, Landen O L, et al. First laser–plasma interaction and hohlraum experiments on the National Ignition Facility[J]. Plasma Physics and Controlled Fusion, 47, B405(2005).

    [3] Glenzer S H, MacGowan B J, Meezan N B, et al. Demonstration of ignition radiation temperatures in indirect-drive inertial confinement fusion hohlraums[J]. Physical Review Letters, 106, 085004(2011).

    [4] Wang Zhicheng. Thermodynamics·statistical physics[M]. 5th ed. Beijing: Higher Education Press, 2013

    [5] Meezan N B, Atherton L J, Callahan D A, et al. National Ignition Campaign Hohlraum energetics[J]. Physics of Plasmas, 17, 056304(2010).

    [6] Betti R, Chang Poyu, Spears B K, et al. Thermonuclear ignition in inertial confinement fusion and comparison with magnetic confinement[J]. Physics of Plasmas, 17, 058102(2010).

    [7] Dewald E L, Suter L J, Landen O L, et al. Radiation-driven hydrodynamics of high-Z hohlraums on the National Ignition Facility[J]. Physical Review Letters, 95, 215004(2005).

    [8] Li Zhichao, Jiang Xiaohua, Liu Shenye, et al. A novel flat-response X-ray detector in the photon energy range of 0.1-4 keV[J]. Review of Scientific Instruments, 81, 073504(2010).

    [9] Kornblum H N, Slivinsky V W. Flat-response, subkiloelectronvolt X-ray detector with a subnanosecond time response[J]. Review of Scientific Instruments, 49, 1204-1205(1978).

    [10] Clery D. Fusion''s great bright hope. Science, 2009, 324(5925): 326330.

    [11] Li Zhichao, Zhu Xiaoli, Jiang Xiaohua, et al. Note: Continuing improvements on the novel flat-response X-ray detector[J]. Review of Scientific Instruments, 82, 106106(2011).

    [12] Che Xingsen, Hou Lifei, Yang Yimeng, . Parameter optimization of compound filters applied for flat-response X-ray detectors[J]. Infrared and Laser Engineering, 46, 1017008(2017).

    [13] Guo Liang, Li Sanwei, Zheng Jian, et al. A compact flat-response X-ray detector for the radiation flux in the range from 1.6 keV to 4.4 keV[J]. Measurement Science and Technology, 23, 065902(2012).

    [14] Guo Liang. The precise measurement modeling of Mb radiation flux from void hohlraums[D]. Hefei: University of Science Technology of China, 2012

    [15] Bentley C D, Simmons A C. Spectral response calibrations of X-ray diode photocathodes in the 50-5900 eV photon energy region[J]. Review of Scientific Instruments, 72, 1202-1204(2001).

    [16] Zheng Zhijian, Ding Yongkun, Ding Yaonan, . Recent progress and application of diagnostic technique in laser fusion[J]. High Power Laser and Particle Beams, 15, 1073-1078(2003).

    [17] Henke B L, Knauer J P, Premaratne K. The characterization of X-ray photocathodes in the 0.1-10-keV photon energy region[J]. Journal of Applied Physics, 52, 1509-1520(1981).

    [18] Henke B L, Smith J A, Attwood D T. 0.1-10-keV X-ray-induced electron emissions from solids—Models and secondary electron measurements[J]. Journal of Applied Physics, 48, 1852-1866(1977).

    [19] Henke B L, Lee P, Tanaka T J, et al. Low-energy X-ray interaction coefficients: Photoabsorption, scattering, and reflection: E= 100-2000 eV Z= 1-94[J]. Atomic Data and Nuclear Data Tables, 27, 1-144(1982).

    [20] Shi Yuhui, Eberhart R. A modified particle swarm optimizer[C]1998 IEEE International Conference on Evolutionary Computation Proceedings. IEEE Wld Congress on Computational Intelligence (Cat. No. 98TH8360). Anchage: IEEE, 1998: 6973.

    [21] Wang Chuanke, Li Jin, Yang Ming, . Theoretical design and numerical simulation of flat response X-ray photocathode[J]. Acta Photonica Sinica, 46, 0523001(2017).

    [22] Del Río M S, Dejus R J. XOP v2.4: recent developments of the Xray optics software toolkit[C]Proceedings of SPIE 8141, Advances in Computational Methods f XRay Optics II. 2011: 814115.

    [23] Del Rio M S. Advances in computational methods f Xray neutron optics[C]Proceedings of SPIE 8141, Advances in Computational Methods f XRay Optics II. 2004: 814101.

    [24] Zhang Xia. Matrix analysis application[M]. Beijing: Tsinghua University Press, 2004

    Hengwei Zhao, Tao Tao, Peng Yuan, Jian Zheng. Optimization algorithm for compound filter parameters of flat response X-ray diode[J]. High Power Laser and Particle Beams, 2023, 35(9): 092003
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