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Dive into the research topics where A. L. Kritcher is active.

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Featured researches published by A. L. Kritcher.


Science | 2008

Ultrafast x-ray Thomson scattering of shock-compressed matter.

A. L. Kritcher; Paul Neumayer; John I. Castor; T. Döppner; R. W. Falcone; O. L. Landen; Haeja Lee; R.W. Lee; Edward C. Morse; A. Ng; Steve Pollaine; D. Price; S. H. Glenzer

Spectrally resolved scattering of ultrafast K-α x-rays has provided experimental validation of the modeling of the compression and heating of shocked matter. The elastic scattering component has characterized the evolution and coalescence of two shocks launched by a nanosecond laser pulse into lithium hydride with an unprecedented temporal resolution of 10 picoseconds. At shock coalescence, we observed rapid heating to temperatures of 25,000 kelvin when the scattering spectra show the collective plasmon oscillations that indicate the transition to the dense metallic plasma state. The plasmon frequency determines the material compression, which is found to be a factor of 3, thereby reaching conditions in the laboratory relevant for studying the physics of planetary formation.


Physics of Plasmas | 2014

The high-foot implosion campaign on the National Ignition Facilitya)

O. A. Hurricane; D. A. Callahan; D. T. Casey; E. L. Dewald; T. R. Dittrich; T. Döppner; M. A. Barrios Garcia; D. E. Hinkel; L. Berzak Hopkins; P. Kervin; J. L. Kline; S. Le Pape; T. Ma; A. G. MacPhee; J. L. Milovich; J. D. Moody; A. Pak; P. K. Patel; H.-S. Park; B. A. Remington; H. F. Robey; J. D. Salmonson; P. T. Springer; R. Tommasini; L. R. Benedetti; J. A. Caggiano; Peter M. Celliers; C. Cerjan; Rebecca Dylla-Spears; D. H. Edgell

The “High-Foot” platform manipulates the laser pulse-shape coming from the National Ignition Facility laser to create an indirect drive 3-shock implosion that is significantly more robust against instability growth involving the ablator and also modestly reduces implosion convergence ratio. This strategy gives up on theoretical high-gain in an inertial confinement fusion implosion in order to obtain better control of the implosion and bring experimental performance in-line with calculated performance, yet keeps the absolute capsule performance relatively high. In this paper, we will cover the various experimental and theoretical motivations for the high-foot drive as well as cover the experimental results that have come out of the high-foot experimental campaign. At the time of this writing, the high-foot implosion has demonstrated record total deuterium-tritium yields (9.3×1015) with low levels of inferred mix, excellent agreement with implosion simulations, fuel energy gains exceeding unity, and evidenc...


Physics of Plasmas | 2016

Three-dimensional simulations of low foot and high foot implosion experiments on the National Ignition Facility

D. S. Clark; C. R. Weber; J. L. Milovich; J. D. Salmonson; A. L. Kritcher; S. W. Haan; B. A. Hammel; D. E. Hinkel; O. A. Hurricane; O. S. Jones; M. M. Marinak; P. K. Patel; H. F. Robey; S. M. Sepke; M. J. Edwards

In order to achieve the several hundred Gbar stagnation pressures necessary for inertial confinement fusion ignition, implosion experiments on the National Ignition Facility (NIF) [E. I. Moses et al., Phys. Plasmas 16, 041006 (2009)] require the compression of deuterium-tritium fuel layers by a convergence ratio as high as forty. Such high convergence implosions are subject to degradation by a range of perturbations, including the growth of small-scale defects due to hydrodynamic instabilities, as well as longer scale modulations due to radiation flux asymmetries in the enclosing hohlraum. Due to the broad range of scales involved, and also the genuinely three-dimensional (3D) character of the flow, accurately modeling NIF implosions remains at the edge of current simulation capabilities. This paper describes the current state of progress of 3D capsule-only simulations of NIF implosions aimed at accurately describing the performance of specific NIF experiments. Current simulations include the effects of hohlraum radiation asymmetries, capsule surface defects, the capsule support tent and fill tube, and use a grid resolution shown to be converged in companion two-dimensional simulations. The results of detailed simulations of low foot implosions from the National Ignition Campaign are contrasted against results for more recent high foot implosions. While the simulations suggest that low foot performance was dominated by ablation front instability growth, especially the defect seeded by the capsule support tent, high foot implosions appear to be dominated by hohlraum flux asymmetries, although the support tent still plays a significant role. For both implosion types, the simulations show reasonable, though not perfect, agreement with the data and suggest that a reliable predictive capability is developing to guide future implosions toward ignition.


Physics of Plasmas | 2014

Metrics for long wavelength asymmetries in inertial confinement fusion implosions on the National Ignition Facility

A. L. Kritcher; R. P. J. Town; D. K. Bradley; D. S. Clark; B. K. Spears; O. S. Jones; S. W. Haan; P. T. Springer; J. D. Lindl; R. H. H. Scott; D. A. Callahan; M. J. Edwards; O. L. Landen

We investigate yield degradation due to applied low mode P2 and P4 asymmetries in layered inertial confinement fusion implosions. This study has been performed with a large database of >600 2D simulations. We show that low mode radiation induced drive asymmetries can result in significant deviation between the core hot spot shape and the fuel ρR shape at peak compression. In addition, we show that significant residual kinetic energy at peak compression can be induced by these low mode asymmetries. We have developed a metric, which is a function of the hot spot shape, fuel ρR shape, and residual kinetic energy at peak compression, that is well correlated to yield degradation due to low mode shape perturbations. It is shown that the ρR shape and residual kinetic energy cannot, in general, be recovered by inducing counter asymmetries to make the hot core emission symmetric. In addition, we show that the yield degradation due to low mode asymmetries is well correlated to measurements of time dependent shape throughout the entire implosion, including early time shock symmetry and inflight fuel symmetry.


Physics of Plasmas | 2014

Dynamic symmetry of indirectly driven inertial confinement fusion capsules on the National Ignition Facilitya)

R. P. J. Town; D. K. Bradley; A. L. Kritcher; O. S. Jones; J. R. Rygg; R. Tommasini; M. A. Barrios; L. R. Benedetti; L. Berzak Hopkins; Peter M. Celliers; T. Döppner; E. L. Dewald; David C. Eder; J. E. Field; S. M. Glenn; N. Izumi; S. W. Haan; S. F. Khan; J. L. Kline; G. A. Kyrala; T. Ma; J. L. Milovich; J. D. Moody; S. R. Nagel; A. Pak; J. L. Peterson; H. F. Robey; J. S. Ross; R. H. H. Scott; B. K. Spears

In order to achieve ignition using inertial confinement fusion it is important to control the growth of low-mode asymmetries as the capsule is compressed. Understanding the time-dependent evolution of the shape of the hot spot and surrounding fuel layer is crucial to optimizing implosion performance. A design and experimental campaign to examine sources of asymmetry and to quantify symmetry throughout the implosion has been developed and executed on the National Ignition Facility (NIF) [E. I. Moses et al., Phys. Plasmas 16, 041006 (2009)]. We have constructed a large simulation database of asymmetries applied during different time intervals. Analysis of the database has shown the need to measure and control the hot-spot shape, areal density distribution, and symmetry swings during the implosion. The shape of the hot spot during final stagnation is measured using time-resolved imaging of the self-emission, and information on the shape of the fuel at stagnation can be obtained from Compton radiography [R. Tommasini et al., Phys. Plasmas 18, 056309 (2011)]. For the first time on NIF, two-dimensional inflight radiographs of gas-filled and cryogenic fuel layered capsules have been measured to infer the symmetry of the radiation drive on the capsule. These results have been used to modify the hohlraum geometry and the wavelength tuning to improve the inflight implosion symmetry. We have also expanded our shock timing capabilities by the addition of extra mirrors inside the re-entrant cone to allow the simultaneous measurement of shock symmetry in three locations on a single shot, providing asymmetry information up to Legendre mode 4. By diagnosing the shape at nearly every step of the implosion, we estimate that shape has typically reduced fusion yield by about 50% in ignition experiments.


Physics of Plasmas | 2015

Higher velocity, high-foot implosions on the National Ignition Facility lasera)

D. A. Callahan; O. A. Hurricane; D. E. Hinkel; T. Döppner; T. Ma; H.-S. Park; M. A. Barrios Garcia; L. Berzak Hopkins; D. T. Casey; C. Cerjan; E. L. Dewald; T. R. Dittrich; M. J. Edwards; S. W. Haan; Alex V. Hamza; J. L. Kline; J. P. Knauer; A. L. Kritcher; O. L. Landen; S. LePape; A. G. MacPhee; J. L. Milovich; A. Nikroo; A. Pak; P. K. Patel; J. R. Rygg; J. E. Ralph; J. D. Salmonson; B. K. Spears; P. T. Springer

By increasing the velocity in “high foot” implosions [Dittrich et al., Phys. Rev. Lett. 112, 055002 (2014); Park et al., Phys. Rev. Lett. 112, 055001 (2014); Hurricane et al., Nature 506, 343 (2014); Hurricane et al., Phys. Plasmas 21, 056314 (2014)] on the National Ignition Facility laser, we have nearly doubled the neutron yield and the hotspot pressure as compared to the implosions reported upon last year. The implosion velocity has been increased using a combination of the laser (higher power and energy), the hohlraum (depleted uranium wall material with higher opacity and lower specific heat than gold hohlraums), and the capsule (thinner capsules with less mass). We find that the neutron yield from these experiments scales systematically with a velocity-like parameter of the square root of the laser energy divided by the ablator mass. By connecting this parameter with the inferred implosion velocity ( v), we find that for shots with primary yield >1 × 1015 neutrons, the total yield ∼ v9.4. This incre...


Physics of Plasmas | 2014

Mode 1 drive asymmetry in inertial confinement fusion implosions on the National Ignition Facility

B. K. Spears; M.J. Edwards; S. Hatchett; J. D. Kilkenny; J. Knauer; A. L. Kritcher; J. D. Lindl; D. H. Munro; P. K. Patel; H. F. Robey; R. P. J. Town

Mode 1 radiation drive asymmetry (pole-to-pole imbalance) at significant levels can have a large impact on inertial confinement fusion implosions at the National Ignition Facility (NIF). This asymmetry distorts the cold confining shell and drives a high-speed jet through the hot spot. The perturbed hot spot shows increased residual kinetic energy and reduced internal energy, and it achieves reduced pressure and neutron yield. The altered implosion physics manifests itself in observable diagnostic signatures, especially the neutron spectrum which can be used to measure the neutron-weighted flow velocity, apparent ion temperature, and neutron downscattering. Numerical simulations of implosions with mode 1 asymmetry show that the resultant simulated diagnostic signatures are moved toward the values observed in many NIF experiments. The diagnostic output can also be used to build a set of integrated implosion performance metrics. The metrics indicate that P1 has a significant impact on implosion performance a...


Physics of Plasmas | 2010

X-ray radiography and scattering diagnosis of dense shock-compressed matter

Sebastien Le Pape; Paul Neumayer; C. Fortmann; T. Döppner; Paul Davis; A. L. Kritcher; O. L. Landen; S. H. Glenzer

Highly coupled Boron plasma has been probed by spectrally resolving an x-ray source scattered by the plasma. Electron density was inferred from the inelastic feature in the collective scattering regime. In addition, the mass density inferred from the noncollective x-ray Thomson scattering has been tested with independent characterization using x-ray radiography in the same drive condition. High-intensity laser produced K-alpha radiation was used as a backlighter for these dynamically compressed plasma experiments providing a high temporal resolution of the measurements. Mass density measurements from both methods are in good agreement. The measurements yield a compression of 1.3 in agreement with detailed radiation-hydrodynamic modeling. From the charge state measured in the noncollective regime and the electron density measured in the collective regime mass density can then be constrained to 3.15±0.7.


Physics of Plasmas | 2016

Integrated modeling of cryogenic layered highfoot experiments at the NIF

A. L. Kritcher; D. E. Hinkel; D. A. Callahan; O. A. Hurricane; D. S. Clark; D. T. Casey; E. L. Dewald; T. R. Dittrich; T. Döppner; M. A. Barrios Garcia; S. W. Haan; L. Berzak Hopkins; O. S. Jones; O. L. Landen; T. Ma; N. B. Meezan; J. L. Milovich; A. Pak; H.-S. Park; P. K. Patel; J. E. Ralph; H. F. Robey; J. D. Salmonson; S. M. Sepke; B. K. Spears; P. T. Springer; C. A. Thomas; R. P. J. Town; Peter M. Celliers; M. J. Edwards

Integrated radiation hydrodynamic modeling in two dimensions, including the hohlraum and capsule, of layered cryogenic HighFoot Deuterium-Tritium (DT) implosions on the NIF successfully predicts important data trends. The model consists of a semi-empirical fit to low mode asymmetries and radiation drive multipliers to match shock trajectories, one dimensional inflight radiography, and time of peak neutron production. Application of the model across the HighFoot shot series, over a range of powers, laser energies, laser wavelengths, and target thicknesses predicts the neutron yield to within a factor of two for most shots. The Deuterium-Deuterium ion temperatures and the DT down scattered ratios, ratio of (10–12)/(13–15) MeV neutrons, roughly agree with data at peak fuel velocities <340 km/s and deviate at higher peak velocities, potentially due to flows and neutron scattering differences stemming from 3D or capsule support tent effects. These calculations show a significant amount alpha heating, 1–2.5× fo...


Physics of Plasmas | 2015

Three-dimensional simulations of National Ignition Facility implosions: Insight into experimental observablesa)

B. K. Spears; David H. Munro; Scott M. Sepke; Joseph A. Caggiano; Daniel Clark; R. Hatarik; A. L. Kritcher; D. B. Sayre; C. B. Yeamans; J. P. Knauer; Terry Hilsabeck; J.D. Kilkenny

We simulate in 3D both the hydrodynamics and, simultaneously, the X-ray and neutron diagnostic signatures of National Ignition Facility (NIF) implosions. We apply asymmetric radiation drive to study the impact of low mode asymmetry on diagnostic observables. We examine X-ray and neutron images as well as neutron spectra for these perturbed implosions. The X-ray images show hot spot evolution on small length scales and short time scales, reflecting the incomplete stagnation seen in the simulation. The neutron images show surprising differences from the X-ray images. The neutron spectra provide additional measures of implosion asymmetry. Flow in the hot spot alters the neutron spectral peak, namely, the peak location and width. The changes in the width lead to a variation in the apparent temperature with viewing angle that signals underlying hot spot asymmetry. We compare our new expectations based on the simulated data with NIF data. We find that some recent cryogenic layered experiments show appreciable temperature anisotropy indicating residual flow in the hot spot. We also find some trends in the data that do not reflect our simulation and theoretical understanding.

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O. L. Landen

Lawrence Livermore National Laboratory

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T. Ma

Lawrence Livermore National Laboratory

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S. H. Glenzer

SLAC National Accelerator Laboratory

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R. W. Falcone

University of California

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T. Doeppner

Lawrence Livermore National Laboratory

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D. A. Callahan

Lawrence Livermore National Laboratory

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D. E. Hinkel

Lawrence Livermore National Laboratory

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L. Berzak Hopkins

Lawrence Livermore National Laboratory

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P. K. Patel

Lawrence Livermore National Laboratory

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D. T. Casey

Lawrence Livermore National Laboratory

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