501 results on '"Robey, H. F."'
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52. Update 2017 on Target Fabrication Requirements for High-Performance NIF Implosion Experiments
53. Hydro-instability growth of perturbation seeds from alternate capsule-support strategies in indirect-drive implosions on National Ignition Facility
54. Publisher's Note: X-ray shadow imprint of hydrodynamic instabilities on the surface of inertial confinement fusion capsules by the fuel fill tube [Phys. Rev. E 95, 031204(R) (2017)]
55. Examining the radiation drive asymmetries present in the high foot series of implosion experiments at the National Ignition Facility
56. Performance of beryllium targets with full-scale capsules in low-fill 6.72-mm hohlraums on the National Ignition Facility
57. The role of hot spot mix in the low-foot and high-foot implosions on the NIF
58. Improving ICF implosion performance with alternative capsule supports
59. Hydrodynamic instability growth of three-dimensional modulations in radiation-driven implosions with “low-foot” and “high-foot” drives at the National Ignition Facility
60. X-ray shadow imprint of hydrodynamic instabilities on the surface of inertial confinement fusion capsules by the fuel fill tube
61. Flow conditioning for improved optical propagation of beams through regions bounded by surfaces of high solidity.
62. Indirect drive ignition at the National Ignition Facility
63. Erratum: First Measurements of Fuel-Ablator Interface Instability Growth in Inertial Confinement Fusion Implosions on the National Ignition Facility [Phys. Rev. Lett.117, 075002 (2016)]
64. Experimental results of radiation-driven, layered deuterium-tritium implosions with adiabat-shaped drives at the National Ignition Facility
65. Update 2015 on Target Fabrication Requirements for NIF Layered Implosions, with Emphasis on Capsule Support and Oxygen Modulations in GDP
66. First Measurements of Fuel-Ablator Interface Instability Growth in Inertial Confinement Fusion Implosions on the National Ignition Facility
67. Measurement of Hydrodynamic Growth near Peak Velocity in an Inertial Confinement Fusion Capsule Implosion using a Self-Radiography Technique
68. Mitigating the impact of hohlraum asymmetries in National Ignition Facility implosions using capsule shims
69. Progress in detailed modelling of low foot and high foot implosion experiments on the National Ignition Facility
70. Hydrodynamic growth experiments with the 3-D, “native-roughness” modulations on NIF
71. Performance of indirectly driven capsule implosions on NIF using adiabat-shaping
72. First beryllium capsule implosions on the National Ignition Facility
73. Integrated modeling of cryogenic layered highfoot experiments at the NIF
74. Measurement of inflight shell areal density near peak velocity using a self backlighting technique
75. Performance of indirectly driven capsule implosions on the National Ignition Facility using adiabat-shaping
76. Inertially confined fusion plasmas dominated by alpha-particle self-heating
77. Three-dimensional simulations of low foot and high foot implosion experiments on the National Ignition Facility
78. Advances in shock timing experiments on the National Ignition Facility
79. Hydrodynamic growth and mix experiments at National Ignition Facility
80. Hydrodynamic instabilities and mix studies on NIF: predictions, observations, and a path forward
81. Generation and Beaming of Early Hot Electrons onto the Capsule in Laser-Driven Ignition Hohlraums
82. Demonstration of High Performance in Layered Deuterium-Tritium Capsule Implosions in Uranium Hohlraums at the National Ignition Facility
83. Design of indirectly driven, high-compression Inertial Confinement Fusion implosions with improved hydrodynamic stability using a 4-shock adiabat-shaped drive
84. Rayleigh-Taylor mixing in supernova experiments
85. Improved Performance of High Areal Density Indirect Drive Implosions at the National Ignition Facility using a Four-Shock Adiabat Shaped Drive
86. First results of radiation-driven, layered deuterium-tritium implosions with a 3-shock adiabat-shaped drive at the National Ignition Facility
87. Stabilization of high-compression, indirect-drive inertial confinement fusion implosions using a 4-shock adiabat-shaped drive
88. Demonstration of High Performance in Layered Deuterium-Tritium Capsule Implosions in Uranium Hohlraums at the National Ignition Facility
89. Hydrodynamic instability growth of three-dimensional, “native-roughness” modulations in x-ray driven, spherical implosions at the National Ignition Facility
90. Validating hydrodynamic growth in National Ignition Facility implosionsa)
91. A strategy for reducing stagnation phase hydrodynamic instability growth in inertial confinement fusion implosions
92. Adiabat-shaping in indirect drive inertial confinement fusion
93. First High-Convergence Cryogenic Implosion in a Near-Vacuum Hohlraum
94. In-flight observations of low-mode ρR asymmetries in NIF implosions
95. Thin Shell, High Velocity Inertial Confinement Fusion Implosions on the National Ignition Facility
96. Three-dimensional hydrodynamics of the deceleration stage in inertial confinement fusion
97. Instability growth seeded by oxygen in CH shells on the National Ignition Facility
98. High-density carbon capsule experiments on the national ignition facility
99. Radiation hydrodynamics modeling of the highest compression inertial confinement fusion ignition experiment from the National Ignition Campaign
100. Overview of Performance and Progress with Inertially Confined Fusion Implosions on the National Ignition Facility
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