C. F. Walters
Lawrence Livermore National Laboratory
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Featured researches published by C. F. Walters.
Physics of Plasmas | 2012
H. F. Robey; T. R. Boehly; Peter M. Celliers; Jon H. Eggert; Damien G. Hicks; R.F. Smith; R. Collins; M. W. Bowers; K. Krauter; P. S. Datte; D. H. Munro; J. L. Milovich; O. S. Jones; P. Michel; C. A. Thomas; R.E. Olson; Stephen M. Pollaine; R. P. J. Town; S. W. Haan; D. A. Callahan; D. S. Clark; J. Edwards; J. L. Kline; S. N. Dixit; M. B. Schneider; E. L. Dewald; K. Widmann; J. D. Moody; T. Döppner; H.B. Radousky
Capsule implosions on the National Ignition Facility (NIF) [Lindl et al., Phys. Plasmas 11, 339 (2004)] are underway with the goal of compressing deuterium-tritium (DT) fuel to a sufficiently high areal density (ρR) to sustain a self-propagating burn wave required for fusion power gain greater than unity. These implosions are driven with a carefully tailored sequence of four shock waves that must be timed to very high precision in order to keep the DT fuel on a low adiabat. Initial experiments to measure the strength and relative timing of these shocks have been conducted on NIF in a specially designed surrogate target platform known as the keyhole target. This target geometry and the associated diagnostics are described in detail. The initial data are presented and compared with numerical simulations. As the primary goal of these experiments is to assess and minimize the adiabat in related DT implosions, a methodology is described for quantifying the adiabat from the shock velocity measurements. Results ...
Fusion Science and Technology | 2018
C. F. Walters; E. T. Alger; Suhas Bhandarkar; Kurt Boehm; Tom Braun; Francisco Espinosa-Loza; Benjamin Haid; Ricardo Heredia; J. L. Kline; B. J. Kozioziemski; J. J. Kroll; Daniel Malone; A. Nikroo; Patrick Opsahl; J. D. Sater; A. Zylstra
Abstract Experiments at the National Ignition Facility (NIF) using targets containing a deuterium-tritium (D-T) fuel layer have, until recently, required that a high-quality layer of solid D-T (herein referred to as an ice layer) be formed in the capsule. The development of a process to line the inner surface of a target capsule with a foam layer of a thickness that is typical of ice layers has resulted in the ability to field targets with liquid layers wetting the foam. Successful fielding of liquid-layer targets on NIF required not only a foam-lined capsule but also changes to the capsule filling process and the manner with which the inventory is maintained in the capsule. Additionally, changes to target heater power and the temperature drops across target components were required in order to achieve the desired range of shot temperatures. These changes and the target’s performance during four target shots on NIF are discussed.
Fusion Science and Technology | 2016
J. Sater; Francisco Espinosa-Loza; B. J. Kozioziemski; E. R. Mapoles; R. Dylla-Spears; J. W. Pipes; C. F. Walters
Abstract Capsule implosion experiments on the National Ignition Facility (NIF) are driven with a carefully tailored laser pulse that delivers a sequence of shocks to the ablator and fuel. To ensure the shocks converge at the desired position, the shock strength and velocity are measured in experimental platforms referred to as keyhole targets. Shock measurements have been made on capsules completely filled with liquid deuterium for the solid deuterium tritide (D-T) layer campaigns. Modeling has been used to extend these results to form an estimate of the shock properties in solid D-T layers. To verify and improve the surrogacy of the liquid-filled keyhole measurements, we have developed a technique to form a solid layer inside the keyhole capsule. The layer is typically uniform over a 400-μm-diameter area. This is sufficient to allow direct measurement of the shock velocity. This layering technique has been successfully applied to 13 experiments on the NIF. The technique may also be applicable to fast-igniter experiments since some proposed designs resemble keyhole targets. We discuss our method in detail and give representative results.
Physical Review Letters | 2012
H. F. Robey; Peter M. Celliers; J. L. Kline; A. J. Mackinnon; T. R. Boehly; O. L. Landen; Jon H. Eggert; Damien G. Hicks; S. Le Pape; D. R. Farley; M. W. Bowers; K. Krauter; D. H. Munro; O. S. Jones; J. L. Milovich; D. S. Clark; B. K. Spears; R. P. J. Town; S. W. Haan; S. N. Dixit; M. B. Schneider; E. L. Dewald; K. Widmann; J. D. Moody; T. Doeppner; H.B. Radousky; A. Nikroo; J. J. Kroll; Alex V. Hamza; J. B. Horner
Archive | 2017
C. F. Walters; E. T. Alger; Suhas Bhandarkar; Kurt Boehm; Tom Braun; Francisco Espinosa-Loza; Benjamin Haid; Ricardo Heredia; John L. Kline; B. J. Kozioziemski; J. J. Kroll; Daniel Malone; A. Nikroo; Patrick Opsahl; J. D. Sater; Alex Zylstra
Bulletin of the American Physical Society | 2016
Alex Zylstra; R.E. Olson; R. J. Leeper; J. L. Kline; S. A. Yi; Robert R. Peterson; P. A. Bradley; Brian M. Haines; L. Yin; D. C. Wilson; Hans J. Herrmann; R. C. Shah; Juergen Biener; Tom Braun; B. J. Kozioziemski; L. Berzak Hopkins; Alex V. Hamza; A. Nikroo; N. B. Meezan; M. M. Biener; J. Sater; C. F. Walters
IFSA 2011: 7th International Conference on Inertial Fusion Sciences and Applications, Bordeaux, France, 12-16 September 2011 | 2013
Peter M. Celliers; H. F. Robey; T. R. Boehly; E. T. Alger; S. Azevedo; L. V. Berzins; S. D. Bhandarkar; M. W. Bowers; S.J. Brereton; D. A. Callahan; C. Castro; H. Chandrasekaran; C. Choate; D. S. Clark; K.R. Coffee; P.S. Datte; E. L. Dewald; P. DiNicola; S. Dixit; T. Döppner; E. G. Dzenitis; M. J. Edwards; Jon H. Eggert; J. Fair; D. R. Farley; G. Frieders; C.R. Gibson; E. Giraldez; S. W. Haan; B. J. Haid
EPJ Web of Conferences | 2013
H. F. Robey; Peter M. Celliers; J. L. Kline; A. J. Mackinnon; T. R. Boehly; O. L. Landen; Jon H. Eggert; D. G. Hicks; S. Le Pape; D. R. Farley; M. W. Bowers; K. Krauter; D. H. Munro; O. S. Jones; J. L. Milovich; D. S. Clark; B. K. Spears; R. P. J. Town; S. W. Haan; S. Dixit; M. B. Schneider; E. L. Dewald; K. Widmann; J. D. Moody; T. Döppner; H.B. Radousky; A. Nikroo; J. J. Kroll; Alex V. Hamza; J. B. Horner
Presented at: 7th International Conference on Inertial Fusion Sciences and Applications, Bordeaux, France, Sep 12 - Sep 16, 2011 | 2011
Peter M. Celliers; H. F. Robey; T. R. Boehly; E. T. Alger; S. Azevedo; L. V. Berzins; S. D. Bhandarkar; M. W. Bowers; S.J. Brereton; D. A. Callahan; C. Castro; H. Chandrasekaran; C. Choate; D. S. Clark; K.R. Coffee; P. S. Datte; E. L. Dewald; P. DiNicola; S. N. Dixit; T. Doeppner; E. G. Dzenitis; M. J. Edwards; Jon H. Eggert; J. Fair; D. R. Farley; G. Frieders; C. R. Gibson; E. Giraldez; S. W. Haan; B. J. Haid