All Stories

  1. Formation of spikes and bubbles in the linear phase of Rayleigh-Taylor instability in elastic-plastic media
  2. Production of diamond using intense heavy ion beams at the FAIR facility and application to planetary physics
  3. Cylindrical convergence effects on the Rayleigh-Taylor instability in elastic and viscous media
  4. Planetary physics research at the Facility for Antiprotons and Ion Research using intense ion beams
  5. Muonic Rydberg states in dense plasmas of inertial confinement interest
  6. Elastic-plastic Rayleigh-Taylor instability at a cylindrical interface
  7. Production of warm dense water in the laboratory using intense ion beams at FAIR: Application to planetary physics
  8. Rayleigh-Taylor instability in elastic-plastic solid slabs bounded by a rigid wall
  9. High-energy-density-science capabilities at the Facility for Antiproton and Ion Research
  10. Studies of equation of state properties of high-energy-density matter generated by intense ion beams at the facility for antiprotons and ion research
  11. Stability boundaries for the Rayleigh-Taylor instability in accelerated elastic-plastic solid slabs
  12. FCC-hh: The Hadron Collider
  13. HE-LHC: The High-Energy Large Hadron Collider
  14. FCC Physics Opportunities
  15. FCC-ee: The Lepton Collider
  16. Magneto-Rayleigh–Taylor instability in an elastic finite-width medium overlying an ideal fluid
  17. Application of intense ion beams to planetary physics research at the Facility for Antiprotons and Ion Research facility
  18. Equation‐of‐state studies of high‐energy‐density matter using intense ion beams at the Facility for Antiprotons and Ion Research
  19. Simulation of hydrodynamic tunneling induced by high-energy proton beam in copper by coupling computer codes
  20. Letter: Magneto-Rayleigh-Taylor instability in an elastic-medium slab
  21. Ion-beam-driven Planetary Physics Research at FAIR
  22. Review of hydrodynamic tunneling issues in high power particle accelerators
  23. Linear Rayleigh-Taylor instability in an accelerated Newtonian fluid with finite width
  24. Rayleigh-Taylor instability in accelerated elastic-solid slabs
  25. Planetary physics research programme at the Facility for Antiprotons and Ion Research at Darmstadt
  26. High energy density matter issues related to Future Circular Collider: Simulations of full beam impact with a solid copper cylindrical target
  27. Studies of the Core Conditions of the Earth and Super-Earths Using Intense Ion Beams at FAIR
  28. High energy density physics issues related to Future Circular Collider
  29. Finite-thickness effects on the Rayleigh-Taylor instability in accelerated elastic solids
  30. High energy density physics effects predicted in simulations of the CERN HiRadMat beam–target interaction experiments
  31. Rayleigh–Taylor instability in accelerated solid media
  32. Entropy shaping by shock decay
  33. Beam Induced Hydrodynamic Tunneling in the Future Circular Collider Components
  34. Hydrodynamic growth and decay of planar shock waves
  35. Ablation driven by hot electrons in shock ignition
  36. High Energy Density Physics Research Using Intense Heavy Ion Beam at FAIR: The HEDgeHOB Program
  37. Analysis of 440 GeV proton beam–matter interaction experiments at the High Radiation Materials test facility at CERN
  38. Analytic model for the dynamic Z-pinch
  39. Hydrodynamic instability of elastic-plastic solid plates at the early stage of acceleration
  40. Simulations of beam-matter interaction experiments at the CERN HiRadMat facility and prospects of high-energy-density physics research
  41. Developments toward hard X-ray radiography on heavy-ion heated dense plasmas
  42. First experimental evidence of hydrodynamic tunneling of ultra–relativistic protons in extended solid copper target at the CERN HiRadMat facility
  43. Rayleigh-Taylor linear growth at an interface between an elastoplastic solid and a viscous liquid
  44. Three-dimensional thermal simulations of thin solid carbon foils for charge stripping of high current uranium ion beams at a proposed new heavy-ion linac at GSI
  45. Imprint reduction in rotating heavy ions beam energy deposition
  46. Multiple scattering in electron fluid and energy loss in multi-ionic targets
  47. High pressure generation by hot electrons driven ablation
  48. Rayleigh-Taylor stability boundary at solid-liquid interfaces
  49. Prospects of warm dense matter research at HiRadMat facility at CERN using 440 MeV SPS proton beam
  50. Ion Beam Driven High Energy Density Physics Studies at FAIR at Darmstadt: The HEDgeHOB Collaboration
  51. Physics of ablative Rayleigh–Taylor and Landau–Darrieus instabilities
  52. Dynamic stabilization of Rayleigh-Taylor instability: Experiments with Newtonian fluids as surrogates for ablation fronts
  53. Dynamic stabilization of Rayleigh-Taylor instability in ablation fronts
  54. High energy density physics studies using intense particle beams at the FAIR facility at Darmstadt
  55. Ablation driven by hot electrons generated during the ignitor laser pulse in shock ignition
  56. Two-dimensional thermal simulations of aluminum and carbon ion strippers for experiments at SPIRAL2 using the highest beam intensities
  57. Impact of high energy high intensity proton beams on targets: Case studies for Super Proton Synchrotron and Large Hadron Collider
  58. Two-dimensional thermal simulations of an aluminum beam stripper for experiments at SPIRAL2
  59. Harmonic analysis of irradiation asymmetry for cylindrical implosions driven by high-frequency rotating ion beams
  60. Application of intense heavy ion beams to study high energy density physics
  61. Dynamic stabilization of classical Rayleigh-Taylor instability
  62. Vibration waveform effects on dynamic stabilization of ablative Rayleigh-Taylor instability
  63. High Energy Density Physics Studies at the Facility for Antiprotons and Ion Research: the HEDgeHOB Collaboration
  64. The Large Hadron Collider and the Super Proton Synchrotron at CERN as tools to Generate Warm Dense Matter and Non-Ideal Plasmas
  65. Generation of plane shocks using intense heavy ion beams: Application to Richtmyer–Meshkov instability growth studies
  66. Laboratory planetary physics using intense heavy ion beams at the Facility for Antiprotons and Ion Research at Darmstadt: the HEDgeHOB collaboration
  67. Comment on “Viscous Rayleigh-Taylor Instability Experiments at High Pressure and Strain Rate”
  68. Parket al.Reply:
  69. Dynamic stabilization of Rayleigh-Taylor instability in Newtonian fluids
  70. Rayleigh – Taylor instability in elastic-plastic solids
  71. Heavy ion hollow beam formation at the energy of 1 AGeV for implosion experiments using an original RF system for fast rotation
  72. Ultrahigh compression of water using intense heavy ion beams: laboratory planetary physics
  73. High Energy Density Physics with Heavy Ion Beams and related Interaction Phenomena
  74. Linear analysis of incompressible Rayleigh-Taylor instability in solids
  75. Generation of warm dense matter and strongly coupled plasmas using the High Radiation on Materials facility at the CERN Super Proton Synchrotron
  76. Rayleigh–Taylor instability in ion beam driven ablation fronts
  77. Simulations of full impact of the Large Hadron Collider beam with a solid graphite target
  78. Interaction of Super Proton Synchrotron beam with solid copper target: Simulations of future experiments at HiRadMat facility at CERN
  79. Laboratory planetary science studies using intense heavy ion beams at FAIR: The HEDgeHOB collaboration
  80. Proposed High Energy Density Physics Research Using Intense Particle Beams at FAIR: The HEDgeHOB Collaboration
  81. Review of high energy density physics: The HEDgeHOB Collaboration
  82. Richtmyer–Meshkov instability as a tool for evaluating material strength under extreme conditions
  83. Rayleigh–Taylor instability in elastic-plastic solids
  84. Large Hadron Collider at CERN: Beams generating high-energy-density matter
  85. A study on fabrication, manipulation and survival of cryogenic targets required for the experiments at the Facility for Antiproton and Ion Research: FAIR
  86. High energy density physics generated by intense heavy ion beams
  87. HIGH ENERGY DENSITY PHYSICS WITH INTENSE PARTICLE AND LASER BEAMS
  88. High Energy Density physics and Laboratory Planetary Science using intense heavy ion beams at FAIR facility at Darmstadt: the HEDgeHOB collaboration
  89. Three–dimensional simulations of a solid graphite target for high intensity fast extracted uranium beams for the Super–FRS
  90. Studies of high-energy density states using isochoric heating of matter by intense heavy ion beams: the HEDgeHOB Collaboration
  91. Richtmyer-Meshkov instability in elastic-plastic media
  92. Temperature measurement of warm-dense-matter generated by intense heavy-ion beams
  93. The status of the Super-FRS in-flight facility at FAIR
  94. Controlled Transport and Focusing of Laser-Accelerated Protons with Miniature Magnetic Devices
  95. The CERN Super Proton Synchrotron as a tool to study high energy density physics
  96. Simulations of a solid graphite target for high intensity fast extracted uranium beams for the Super-FRS
  97. High energy density and beam induced stress related issues in solid graphite Super-FRS fast extraction targets
  98. High energy density matter research using intense heavy ion beams at the future FAIR facility at Darmstadt: the HEDgeHOB collaboration
  99. Theoretical investigation of shock wave stability in metals
  100. Numerical modeling of heavy ion induced stress waves in solid targets
  101. Prospects of high energy density physics research using the CERN super proton synchrotron (SPS)
  102. The status of the Super-FRS at FAIR
  103. A new approach to Rayleigh–Taylor instability: Application to accelerated elastic solids
  104. HEDgeHOB: High-energy density matter generated by heavy ion beams at the future facility for antiprotons and ion research
  105. High-energy-density physics experiments with intense heavy ion beams
  106. Inertial fusion energy issues of intense heavy ion and laser beams interacting with ionized matter studied at GSI-Darmstadt
  107. Measurements of electrical resistivity of heavy ion beam produced high energy density matter: Latest results for lead and tungsten
  108. Analytical Models for the Design of the LAPLAS Experiment
  109. Survey of Theoretical Work for the Proposed HEDgeHOB Experimental Schemes: HIHEX and LAPLAS
  110. High energy density physics problems related to liquid jet lithium target for Super-FRS fast extraction scheme
  111. The Rayleigh-Taylor instability
  112. Fusion reactions and matter–antimatter annihilation for space propulsion
  113. Richtmyer-Meshkov flow in elastic solids
  114. Numerical simulations of Rayleigh-Taylor instability in elastic solids
  115. Particle accelerator physics and technology for high energy density physics research
  116. Advances of dense plasma physics with particle accelerators
  117. Electrical resistivity of high energy density matter generated by high intensity heavy ion beams
  118. Numerical simulations and theoretical analysis of High Energy Density experiments at the next generation of ion beam facilities at Darmstadt: The HEDgeHOB collaboration
  119. Potential of CERN large hadron collider to study high-energy-density states in matter
  120. Pyrometric system for temperature measurements of HED matter generated by intense heavy ion beams
  121. Studies of thermophysical properties of high-energy-density states in matter using intense heavy ion beams at the future FAIR accelerator facilities: The HEDgeHOB collaboration
  122. Thin plate effects in the Rayleigh–Taylor instability of elastic solids
  123. Electrical resistivity measurements of heavy ion beam generated high energy density aluminium
  124. Proposed studies of strongly coupled plasmas at the future FAIR and LHC facilities: the HEDgeHOB collaboration
  125. Studies of equation of state properties of high-energy density matter using intense heavy ion beams at the future FAIR facility: The HEDgeHOB collaboration
  126. Frontiers of dense plasma physics with intense ion and laser beams and accelerator technology
  127. Rayleigh-Taylor instability in elastic solids
  128. High energy heavy ion jets emerging from laser plasma generated by long pulse laser beams from the NHELIX laser system at GSI
  129. Proposal for the Study of Thermophysical Properties of High-Energy-Density Matter Using Current and Future Heavy-Ion Accelerator Facilities at GSI Darmstadt
  130. Studies of Strongly Coupled Plasmas Using Intense Heavy Ion Beams at the Future FAIR Facility: the HEDgeHOB Collaboration
  131. Compression of a cylindrical hydrogen sample driven by an intense co-axial heavy ion beam
  132. Calculations of high-power production target and beamdump for the GSI future Super-FRS for a fast extraction scheme at the FAIR Facility
  133. Studies of heavy ion-induced high-energy density states in matter at the GSI Darmstadt SIS-18 and future FAIR facility
  134. Target design for the cylindrical compression of matter driven by heavy ion beams
  135. The CERN Large Hadron Collider as a Tool to Study High-Energy Density Matter
  136. Impact of 7-TeV∕c large hadron collider proton beam on a copper target
  137. Elastoplastic effects on the Rayleigh-Taylor instability in an accelerated solid slab
  138. Target heating in high-energy-density matter experiments at the proposed GSI FAIR facility: Non-linear bunch rotation in SIS100 and optimization of spot size and pulse length
  139. Intense heavy ion beams as a tool to induce high‐energy‐density states in matter
  140. Symmetry analysis of cylindrical implosions driven by high-frequency rotating ion beams
  141. The creation of strongly coupled plasmas using an intense heavy ion beam: low-entropy compression of hydrogen and the problem of hydrogen metallization
  142. Influence of the equation of state on the compression and heating of hydrogen
  143. High-power production targets for the Super-FRS using a fast extraction scheme
  144. Fundamental studies of intense heavy-ion beam interaction with solid targets
  145. Generation of a hollow ion beam: Calculation of the rotation frequency required to accommodate symmetry constraint
  146. Unique capabilities of an intense heavy ion beam as a tool for equation-of-state studies
  147. Analytic model for studying heavy-ion-imploded cylindrical targets
  148. Energy loss dynamics of intense heavy ion beams interacting with solid targets
  149. Experimental investigations of multiple weak shock waves induced by intense heavy ion beams in solid matter
  150. High-energy-density matter research at GSI Darmstadt using intense heavy ion beams
  151. Studies of high energy density in matter driven by heavy ion beams in solid targets
  152. Designing future heavy-ion–matter interaction experiments for the GSI Darmstadt heavy ion synchrotron
  153. Experiments using the high current upgrade of the GSI accelerators: response of converters to heating by intense heavy ion beams
  154. Metallization of Hydrogen Using Heavy Ion Imploded Multi-Layered Cylindrical Targets
  155. Time-resolved energy loss spectroscopy of energetic heavy ion beams generating a dense plasma
  156. Necessity of bunch compression for heavy-ion-induced hydrodynamics and studies of beam fragmentation in solid targets at a proposed synchrotron facility
  157. Influence of hydrodynamic expansion on specific power deposition by a heavy ion beam in matter
  158. Metallization of hydrogen using heavy-ion-beam implosion of multilayered cylindrical targets
  159. Shaping of Intense Ion Beams into Hollow Cylindrical Form
  160. Creation of strongly coupled plasmas using intense beams of 400 MeV/u uranium ions to be generated at the Gesellschaft für Schwerionenforschung (GSI) Darmstadt SIS-200
  161. Erratum: Shock compression of condensed matter using intense beams of energetic heavy ions [Phys. Rev. E61, 1975 (2000)]
  162. Heavy-ion-induced hydrodynamic motion in lead targets
  163. Equation-of-state properties of high-energy-density matter using intense heavy ion beams with an annular focal spot
  164. Hydrogen metallization in heavy-ion imploded multi-layered targets
  165. Interaction experiments with intense heavy ion beams using solid state targets
  166. Plasma physics with intense laser and ion beams
  167. Shock compression of condensed matter using intense beams of energetic heavy ions
  168. Heavy-ion-beam–induced hydrodynamic effects in solid targets
  169. Observation of MeV ions in long-pulse, large-scale laser-produced plasmas
  170. Numerical simulations and theoretical analysis of proposed heavy-ion-matter experiments at the GSI Darmstadt accelerator facility
  171. Creation of metallic hydrogen in imploding cylindrical targets with intense heavy ion beams to be produced at the GSI Darmstadt SIS Facility
  172. Hohlraum targets driven by cluster ion beams for inertial confinement fusion
  173. A study of tritium seeded advanced fuel targets
  174. High density plasma physics with heavy-ion beams
  175. High energy density in solid rare gas targets and solid hydrogen
  176. Burn Characteristics of Advanced Fuel Inertial Fusion Targets
  177. Development of advanced fuel inertial fusion targets
  178. Inertial confinement fusion using hohlraum radiation generated by heavy-ion clusters
  179. Inertial Fusion Driven by Intense Cluster Ion Beams
  180. Influence of DT fuel composition on the energy output and its implications on reactor safety and environmental acceptability
  181. Efficiency and symmetry of heavy ion driven inertial fusion hohlraum targets
  182. A Study of Energy Output from Implosion of a Reactor-Size Indirect Drive Reduced Tritium Inertial Fusion Target
  183. Fragmentation and stopping of heavy cluster ions in a lithium target
  184. Analysis of compression, thermonuclear burn and hydrodynamic stability of a reactor-size radiation driven inertial fusion target
  185. Development of high gain reduced tritium targets for inertial fusion
  186. Indirect drive inertial fusion using heavy ion cluster beams
  187. Cluster ion stopping and fragmentation for ICF
  188. Simulations of compression and thermonuclear burn of a radiation-driven inertial-fusion target
  189. Studies on radiation symmetrization
  190. On the Theory of a Charged Particle Stopping in Non-ideal Plasmas
  191. A two-dimensional study of symmetrization of thermal radiation in a hohlraum including hydrodynamics
  192. Simulations of compression and thermonuclear burn of an indirect drive reactor-size inertial fusion target
  193. Fragmentation and stopping of heavy cluster ions in a lithium target−Application to target implosion
  194. Theoretical analysis and numerical simulations of implosions of reactor size indirect drive inertial confinement fusion
  195. Design and numerical simulations of an indirectly driven reactor-size inertial fusion capsule
  196. Radiation-driven inertial fusion targets for implosion experiments: Theoretical analysis and numerical simulations
  197. Radiation transport effects in heavy-ion beam–target interaction studies: Measurement of target opacity and beam conversion efficiency
  198. A survey of radiation transport effects in homogeneous targets heated by heavy-ion beams from the GSI darmstadt SIS
  199. Conversion efficiency for producing thermal radiation using high-energy heavy-ion beams
  200. Efficiency of production of thermal radiation from homogeneous heavy-ion-heated targets
  201. Inertial fusion using heavy-ion beams
  202. Inertial confinement fusion target design for a reactor system using light ions
  203. Fusion power implosion of laser-type light-ion beam driven reactor-size inertial fusion targets including radiation transport effects
  204. A STUDY OF IGNITION, PROPAGATION OF BURN AND ACHIEVEMENT OF HIGH-GAIN IN INERTIAL FUSION TARGETS
  205. THERMAL CONVERSION EFFICIENCY FOR HEAVY-ION BEAM HEATED CYLINDERS
  206. A laser-type light ion-beam-driven, reactor-size inertial fusion target
  207. A study of ignition and burn propagation in reactor-size inertial fusion targets using a three-temperature plasma simulation model
  208. Range shortening, radiation transport, and Rayleigh-Taylor instability phenomena in ion-beam-driven inertial-fusion-reactor-size targets: Implosion, ignition, and burn phases
  209. The influence of plasma-induced energy deposition effects, the equation of state, thermal ionization, pulse shaping, and radiation on ion-beam-driven expansions of plane metal targets
  210. Method of solution of a three-temperature plasma model and its application to inertial confinement fusion target design studies
  211. Theory and calculation of the energy loss of charged particles in inertial confinement fusion burning plasmas
  212. Plasma induced energy deposition and radiation transport effects in ion beam heated plane metal targets and analytic solutions of the non-linear radiation conduction equation
  213. Importance of radiation effects in ion-beam-driven inertial fusion target calculations: Compensation of range shortening by radiation transport in ion-beam-generated plasmas
  214. Analysis of compression and burn of ion-beam inertial fusion targets including radiation transport
  215. Plasma dynamics of the interaction of intense ion beams with ‘‘sub’’ and ‘‘super’’ range plane targets
  216. A proposal and calculation of a benchmark problem for inertial fusion computer codes
  217. Numerical modelling of radiation Marshak Waves
  218. Numerical simulation and theoretical analysis of implosion, ignition and burn of heavy-ion-beam reactor-size ICF targets
  219. Heavy ion beam driven inertial confinement fusion target studies and reactor chamber neutronic analysis
  220. Heavy ion beam ICF fusion: The thermodynamics of ignition and the achievement of high gain in ICF fusion targets
  221. Fusion power from heavy ion-beam imploded targets
  222. Radiation effects in laser compression simulations
  223. Ionization effects in laser-produced plasmas
  224. Radiation effects in gas filled microballoons