A. Bose
University of Rochester
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Featured researches published by A. Bose.
Physics of Plasmas | 2014
R. Nora; R. Betti; Karen S. Anderson; A. Shvydky; A. Bose; K. M. Woo; A. R. Christopherson; J.A. Marozas; T.J.B. Collins; P. B. Radha; S. X. Hu; R. Epstein; F. J. Marshall; R.L. McCrory; T. C. Sangster; D. D. Meyerhofer
The theory of ignition for inertial confinement fusion capsules [R. Betti et al., Phys. Plasmas 17, 058102 (2010)] is used to assess the performance requirements for cryogenic implosion experiments on the Omega Laser Facility. The theory of hydrodynamic similarity is developed in both one and two dimensions and tested using multimode hydrodynamic simulations with the hydrocode DRACO [P. B. Radha et al., Phys. Plasmas 12, 032702 (2005)] of hydro-equivalent implosions (implosions with the same implosion velocity, adiabat, and laser intensity). The theory is used to scale the performance of direct-drive OMEGA implosions to the National Ignition Facility (NIF) energy scales and determine the requirements for demonstrating hydro-equivalent ignition on OMEGA. Hydro-equivalent ignition on OMEGA is represented by a cryogenic implosion that would scale to ignition on the NIF at 1.8 MJ of laser energy symmetrically illuminating the target. It is found that a reasonable combination of neutron yield and areal density...
Physics of Plasmas | 2015
A. Bose; K. M. Woo; R. Nora; R. Betti
The scaling of the deceleration phase of inertial fusion direct-drive implosions is investigated for OMEGA and National Ignition Facility (NIF)-size targets. It is shown that the deceleration-phase Rayleigh–Taylor instability (RTI) does not scale hydro-equivalently with implosion size. This is because ablative stabilization resulting from thermal conduction and radiation transport in a spherically converging geometry is different on the two scales. As a consequence, NIF-scale implosions show lower hot-spot density and mass ablation velocity, allowing for higher RTI growth. On the contrary, stabilization resulting from density-gradient enhancement, caused by reabsorption of radiation emitted from the hot spot, is higher on NIF implosions. Since the RTI mitigation related to thermal conduction and radiation transport scale oppositely with implosion size, the degradation of implosion performance caused by the deceleration RTI is similar for NIF and OMEGA targets. It is found that a minimum threshold for the no-α Lawson ignition parameter of χΩ ≈ 0.2 at the OMEGA scale is required to demonstrate hydro-equivalent ignition at the NIF scale for symmetric direct-drive implosions.
Physics of Plasmas | 2017
W. Theobald; A. Bose; R. Yan; R. Betti; M. Lafon; D. Mangino; A. R. Christopherson; C. Stoeckl; W. Seka; W. Shang; D.T. Michel; C. Ren; R. Nora; A. Casner; J. L. Peebles; F. N. Beg; X. Ribeyre; E. Llor Aisa; Colaïtis A; V. T. Tikhonchuk; M. S. Wei
Experiments were performed with CH, Be, C, and SiO2 ablators interacting with high-intensity UV laser radiation (5 × 1015 W/cm2, λ = 351 nm) to determine the optimum material for hot-electron production and strong-shock generation. Significantly more hot electrons are produced in CH (up to ∼13% instantaneous conversion efficiency), while the amount is a factor of ∼2 to 3 lower in the other ablators. A larger hot-electron fraction is correlated with a higher effective ablation pressure. The higher conversion efficiency in CH is attributed to stronger damping of ion-acoustic waves because of the presence of light H ions.
Physics of Plasmas | 2017
E. Llor Aisa; X. Ribeyre; G. Duchateau; T. Nguyen-bui; V. T. Tikhonchuk; A. Colaïtis; R. Betti; A. Bose; W. Theobald
Experiments on strong shock excitation in spherical plastic targets conducted at the Omega Laser Facility are interpreted with the radiation–hydrodynamics code CHIC to account for parametric instabilities excitation and hot-electron generation. The effects of hot electrons on the shock-pressure amplification and upstream preheat are analyzed. It is demonstrated that both effects contribute to an increase in the shock velocity. Comparison of the measured laser reflectivity and shock flash time with numerical simulations makes it possible to reconstitute the time history of the ablation and shock pressures. Consequences of this analysis for the shock-ignition target design are discussed.
Physical Review E | 2016
A. Bose; K. M. Woo; R. Betti; E.M. Campbell; D. Mangino; A. R. Christopherson; R.L. McCrory; R. Nora; S. P. Regan; V.N. Goncharov; T. C. Sangster; C.J. Forrest; J. A. Frenje; M. Gatu Johnson; V. Yu. Glebov; J. P. Knauer; F. J. Marshall; C. Stoeckl; W. Theobald
Nuclear Fusion | 2018
S. P. Regan; V.N. Goncharov; Thomas C. Sangster; E.M. Campbell; R. Betti; Jason Bates; Katelynn Bauer; Tom Bernat; Suhas Dattatreya Bhandarkar; T. R. Boehly; M.J. Bonino; A. Bose; Duc Cao; Raymond Chapman; Thomas Chapman; G. W. Collins; T.J.B. Collins; R. S. Craxton; J. A. Delettrez; Dana H Edgell; Reuben Epstein; M. Farrell; C.J. Forrest; R.K. Follett; Johan A. Frenje; D. H. Froula; Maria Gatu Johnson; Chuck Gibson; Clement Goyon; V. Yu. Glebov
Bulletin of the American Physical Society | 2016
W. Theobald; R. Betti; A. Bose; W. Seka; C. Stoeckl; D. Mangino; A. Casner; F. N. Beg; E. Llor Aisa; X. Ribeyre; Wei; M.E. Schoff; R. Florido; R.C. Mancini
Bulletin of the American Physical Society | 2016
R. Betti; A. Bose; A. R. Christopherson; E.M. Campbell; T.J.B. Collins; J. P. Knauer; A.V. Maximov; P. B. Radha; S. P. Regan; W. Shang; C. Stoeckll
Bulletin of the American Physical Society | 2016
A. Bose; K. M. Woo; R. Betti; D. Mangino; A. R. Christopherson; W. Theobald; E.M. Campbell; R. L. McCrory; S. P. Regan; V.N. Goncharov; T. C. Sangster; C.J. Forrest; V. Yu. Glebov; J. P. Knauer; F. J. Marshall; C. Stoeckl; R. Nora; J. A. Frenje; M. Gatu Johnson; D. Shvarts
Bulletin of the American Physical Society | 2016
T.J.B. Collins; R. Betti; A. Bose; A. R. Christopherson; J. P. Knauer; J.A. Marozas; A.V. Maximov; A. Mora; P. B. Radha; W. Shang; A. Shvydky; C. Stoeckl; K. M. Woo; G. Varchas