Matter and Radiation at Extremes, 2019, 4 (2): 025401, Published Online: Oct. 17, 2019  

Measurement of laser differential confocal geometrical parameters for ICF capsule

Author Affiliations
Beijing Key Lab for Precision Optoelectronic Measurement Instrument and Technology, School of Optoelectronics, Beijing Institute of Technology, Beijing 100081, China
Copy Citation Text

Longxiao Wang, Yun Wang, Xianxian Ma, Weiqian Zhao. Measurement of laser differential confocal geometrical parameters for ICF capsule[J]. Matter and Radiation at Extremes, 2019, 4(2): 025401.

References

[1] D. A. Callahan, D. T. Casey, P. M. Celliers, C. Cerjan, O. A. Hurricane, et al.. Fuel gain exceeding unity in an inertially confined fusion implosion. Nature, 2014, 506: 343-348.

[2] G. Brumfiel. Laser lab shifts focus to warheads. Nature, 2012, 491: 170-171.

[3] R. Betti, V. N. Goncharov, R. L. McCrory, C. P. Verdon. Growth rates of the Rayleigh-Taylor instability in inertial confinement fusion. Phys. Plasmas, 1998, 5: 1446-1454.

[4] D. W. Hill, H. Huang, C. Lyon, A. Nikroo, R. B. Stephens, et al.. Automated batch characterization of ICF shells with vision-enabled optical microscope system. Fusion Sci. Technol., 2004, 45: 214-217.

[5] M. L. Hoppe, D. A. Steinman, R. B. Stephens. White light interferometry for the optical characterization of transparent ICF shells. Fusion Sci. Technol., 2006, 49: 646-649.

[6] B. W. Weinstein. White-Light interferometric measurement of the wall thickness of hollow glass microspheres. Appl. Phys., 1975, 46: 5305-5306.

[7] C. D. Hendricks, B. W. Weinstein. Interferometric measurement of laser fusion targets. Appl. Opt., 1978, 17: 3641-3646.

[8] C. D. Hendricks, R. M. Singleton, B. W. Weinstein. X-ray measurement of laser fusion targets using least squares fitting. Appl. Opt., 1979, 18: 4116-4123.

[9] D. Gong, D. Yang, X. Yu. Image analyses of ICF target by X-ray measurement. High Power Laser Part. Beams, 2004, 16: 1553-1557.

[10] H. Lei, J. Li, W. Lin, X. Qi, K. Wang, et al.. Characterization of inertial confinement fusion targets using X-ray phase contrast imaging. Opt. Commun., 2014, 332: 9-13.

[11] S. Jiang, Z. Lin, M. Su, S. Wu, J. Yan. The application of phase contrast imaging to ICF multi-shell capsule diagnosis. Acta Phys. Sin., 2012, 61: 068703.

[12] D. Gao, X. Ma, J. Meng, Q. Wang, Z. Wang. Three-dimensional thickness reconstruction of ICF shells using X-ray tomography. Fusion Eng. Des., 2015, 100: 525-530.

[13] T. J. Drake, S. A. Eddinger, H. Huang, A. Nikroo, R. B. Stephens, et al.. Precision X-ray optical depth measurements in ICF shells. Fusion Sci. Technol., 2007, 51: 525-529.

[14] M.Born and E.Wolf, Principles of Optics, 7th (expanded) ed. (Cambrige University, London, 1999).

[15] L. Qiu, J. Tan, W. Zhao. Bipolar absolute differential confocal approach to higher spatial resolution. Opt. Express, 2004, 12: 5013-5021.

[16] L.Cao and B.Wang, Roundness Measurement and Verification Techniques (National Defense Industry, Beijing, 1998).

[17] S. Chen, M. Liu, Y. Liu, R. Shi, L. Su, et al.. Characterization of sphericity and wall thickness uniformity of thick-walled hollow microspheres. High Power Laser Part. Beams, 2014, 26: 22017.

[18] T. R.Corle and G.S Kino, Confocal Scanning Optical Microscopy and Related Imaging Systems (Academic, New York, 1996), p. 37.

Longxiao Wang, Yun Wang, Xianxian Ma, Weiqian Zhao. Measurement of laser differential confocal geometrical parameters for ICF capsule[J]. Matter and Radiation at Extremes, 2019, 4(2): 025401.

引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!