[1] Lin Z Q. Progress of laser fusion (invited paper)[J]. Chinese Journal of Lasers, 37, 2202-2207(2010).
[2] Yuan J L, Zhang F H, Dai Y F et al. Development research of science and technologies in ultra-precision machining field[J]. Journal of Mechanical Engineering, 46, 161-177(2010).
[3] Parham T, Kozioziemski B, Atkinson D et al. Cryogenic target system for hydrogen layering[J]. Fusion Science and Technology, 69, 407-419(2016).
[4] Haid B J, Malsbury T N, Gibson C R et al. Measurement of total condensation on a shrouded cryogenic surface using a single quartz crystal microbalance[J]. Fusion Science and Technology, 55, 276-282(2009).
[5] Burkhart S C, Bliss E, di Nicola P et al. National Ignition Facility system alignment[J]. Applied Optics, 50, 1136-1157(2011).
[6] Zhu J Q, Chen S H, Zheng Y X et al. Review on development of Shenguang-Ⅱ laser facility[J]. Chinese Journal of Lasers, 46, 100002(2019).
[7] Cui W H, Zhu J Q, Liu Z G et al. Optomechanical coupling active control for improving beam pointing accuracy of the spatial filter in PW laser facility[J]. Applied Sciences, 11, 5017(2021).
[8] Okishev A V, Boni R, Millecchia M et al. Unique high-bandwidth UV fiber delivery system for the OMEGA diagnostics applications[J]. IEEE Journal of Selected Topics in Quantum Electronics, 7, 471-474(2001).
[9] Moses E. Overview of the National Ignition Facility[C](2007).
[10] Miquel J L, Lion C, Vivini P. The laser mega-joule: LMJ & PETAL status and program overview[J]. Journal of Physics: Conference Series, 688, 012067(2016).
[11] Luttmann M, Denis V, Gendeau P et al. Overview of LMJ alignment to target chamber center and very first results[J]. Journal of Physics: Conference Series, 717, 012106(2016).
[12] Alger E T, Dzenitis E G, Mapoles E R et al. Experimental D-T ice-layering target assembly[J]. Fusion Science and Technology, 55, 269-275(2009).
[13] Bhandarkar S, Teslich N, Haid B et al. Importance of limiting hohlraum leaks at cryogenic temperatures on NIF targets[J]. High Power Laser Science and Engineering, 5, 44-51(2017).
[14] Yang H, Du K, Lei H L et al. Mechanical design and analysis of an indirect-drive cryogenic target[J]. Journal of Fusion Energy, 35, 673-682(2016).
[15] Gibson C R, Atkinson D P, Baltz J A et al. Design of the NIF cryogenic target system[J]. Fusion Science and Technology, 55, 233-236(2009).
[16] Malsbury T N, Atkinson D, Brugman V et al. Fabrication and test of the NIF cryogenic target system[J]. Annual of the British School at Athens, 10, 144-147(2010).
[17] Chatain D, Périn J P, Bonnay P et al. Cryogenic systems for inertial fusion energy[J]. Laser and Particle Beams, 26, 517-523(2008).
[19] Perin J P. Cryogenic systems for LMJ cryotarget and HiPER application[J]. Laser and Particle Beams, 28, 203-208(2010).
[20] Manzagol J, Paquignon G, Brisset D et al. Evolution and progress of the cryogenic target shroud remover prototypes developed for the LMJ facility[J]. Fusion Science and Technology, 59, 159-165(2011).
[21] Tomaru T, Suzuki T, Haruyama T et al. Vibration analysis of cryocoolers[J]. Cryogenics, 44, 309-317(2004).