Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where J. L. Peterson is active.

Publication


Featured researches published by J. L. Peterson.


Physics of Plasmas | 2014

An in-flight radiography platform to measure hydrodynamic instability growth in inertial confinement fusion capsules at the National Ignition Facility

K. S. Raman; V. A. Smalyuk; D. T. Casey; S. W. Haan; D. Hoover; O. A. Hurricane; J. J. Kroll; A. Nikroo; J. L. Peterson; B. A. Remington; H. F. Robey; D. S. Clark; B. A. Hammel; O. L. Landen; M. M. Marinak; D. H. Munro; Kyle Peterson; J. D. Salmonson

A new in-flight radiography platform has been established at the National Ignition Facility (NIF) to measure Rayleigh–Taylor and Richtmyer–Meshkov instability growth in inertial confinement fusion capsules. The platform has been tested up to a convergence ratio of 4. An experimental campaign is underway to measure the growth of pre-imposed sinusoidal modulations of the capsule surface, as a function of wavelength, for a pair of ignition-relevant laser drives: a “low-foot” drive representative of what was fielded during the National Ignition Campaign (NIC) [Edwards et al., Phys. Plasmas 20, 070501 (2013)] and the new high-foot [Dittrich et al., Phys. Rev. Lett. 112, 055002 (2014); Park et al., Phys. Rev. Lett. 112, 055001 (2014)] pulse shape, for which the predicted instability growth is much lower. We present measurements of Legendre modes 30, 60, and 90 for the NIC-type, low-foot, drive, and modes 60 and 90 for the high-foot drive. The measured growth is consistent with model predictions, including much less growth for the high-foot drive, demonstrating the instability mitigation aspect of this new pulse shape. We present the design of the platform in detail and discuss the implications of the data it generates for the on-going ignition effort at NIF.


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 | 2014

Hydrodynamic instability growth and mix experiments at the National Ignition Facilitya)

V. A. Smalyuk; M. A. Barrios; J. A. Caggiano; D. T. Casey; C. Cerjan; D. S. Clark; M. J. Edwards; J. A. Frenje; M. Gatu-Johnson; Vladimir Yu. Glebov; G. P. Grim; S. W. Haan; B. A. Hammel; Alex V. Hamza; D. Hoover; W. W. Hsing; O. A. Hurricane; J. D. Kilkenny; J. L. Kline; J. P. Knauer; J. J. Kroll; O. L. Landen; J. D. Lindl; T. Ma; J. McNaney; M. Mintz; A. S. Moore; A. Nikroo; T. Parham; J. L. Peterson

Hydrodynamic instability growth and its effects on implosion performance were studied at the National Ignition Facility [G. H. Miller, E. I. Moses, and C. R. Wuest, Opt. Eng. 443, 2841 (2004)]. Implosion performance and mix have been measured at peak compression using plastic shells filled with tritium gas and containing embedded localized carbon-deuterium diagnostic layers in various locations in the ablator. Neutron yield and ion temperature of the deuterium-tritium fusion reactions were used as a measure of shell-gas mix, while neutron yield of the tritium-tritium fusion reaction was used as a measure of implosion performance. The results have indicated that the low-mode hydrodynamic instabilities due to surface roughness were the primary culprits for yield degradation, with atomic ablator-gas mix playing a secondary role. In addition, spherical shells with pre-imposed 2D modulations were used to measure instability growth in the acceleration phase of the implosions. The capsules were imploded using ig...


Physics of Plasmas | 2015

Near-vacuum hohlraums for driving fusion implosions with high density carbon ablatorsa)

L. Berzak Hopkins; S. Le Pape; L. Divol; N. B. Meezan; A. J. Mackinnon; D. Ho; O. S. Jones; S. F. Khan; J. L. Milovich; J. S. Ross; Peter A. Amendt; D. T. Casey; Peter M. Celliers; A. Pak; J. L. Peterson; J. E. Ralph; J. R. Rygg

Recent experiments at the National Ignition Facility [M. J. Edwards et al., Phys. Plasmas 20, 070501 (2013)] have explored driving high-density carbon ablators with near-vacuum hohlraums, which use a minimal amount of helium gas fill. These hohlraums show improved efficiency relative to conventional gas-filled hohlraums in terms of minimal backscatter, minimal generation of suprathermal electrons, and increased hohlraum-capsule coupling. Given these advantages, near-vacuum hohlraums are a promising choice for pursuing high neutron yield implosions. Long pulse symmetry control, though, remains a challenge, as the hohlraum volume fills with material. Two mitigation methodologies have been explored, dynamic beam phasing and increased case-to-capsule ratio (larger hohlraum size relative to capsule). Unexpectedly, experiments have demonstrated that the inner laser beam propagation is better than predicted by nominal simulations, and an enhanced beam propagation model is required to match measured hot spot symm...


Physics of Plasmas | 2014

A survey of pulse shape options for a revised plastic ablator ignition design

D. S. Clark; J. L. Milovich; D. E. Hinkel; J. D. Salmonson; J. L. Peterson; L. Berzak Hopkins; David C. Eder; S. W. Haan; O. S. Jones; M. M. Marinak; H. F. Robey; V. A. Smalyuk; C. R. Weber

Recent experimental results using the “high foot” pulse shape for inertial confinement fusion ignition experiments on the National Ignition Facility (NIF) [Moses et al., Phys. Plasmas 16, 041006 (2009)] have shown encouraging progress compared to earlier “low foot” experiments. These results strongly suggest that controlling ablation front instability growth can significantly improve implosion performance even in the presence of persistent, large, low-mode distortions. Simultaneously, hydrodynamic growth radiography experiments have confirmed that ablation front instability growth is being modeled fairly well in NIF experiments. It is timely then to combine these two results and ask how current ignition pulse shapes could be modified to improve one-dimensional implosion performance while maintaining the stability properties demonstrated with the high foot. This paper presents such a survey of pulse shapes intermediate between the low and high foot extremes in search of an intermediate foot optimum. Of the design space surveyed, it is found that a higher picket version of the low foot pulse shape shows the most promise for improved compression without loss of stability.


Physics of Plasmas | 2015

Stabilization of high-compression, indirect-drive inertial confinement fusion implosions using a 4-shock adiabat-shaped drive

A. G. MacPhee; J. L. Peterson; D. T. Casey; D. S. Clark; S. W. Haan; O. S. Jones; O. L. Landen; J. L. Milovich; H. F. Robey; V. A. Smalyuk

Hydrodynamic instabilities and poor fuel compression are major factors for capsule performance degradation in ignition experiments on the National Ignition Facility. Using a recently developed laser drive profile with a decaying first shock to tune the ablative Richtmyer-Meshkov (ARM) instability and subsequent in-flight Rayleigh-Taylor growth, we have demonstrated reduced growth compared to the standard ignition pulse whilst maintaining conditions for a low fuel adiabat needed for increased compression. Using in-flight x-ray radiography of pre-machined modulations, the first growth measurements using this new ARM-tuned drive have demonstrated instability growth reduction of ∼4× compared to the original design at a convergence ratio of ∼2. Corresponding simulations give a fuel adiabat of ∼1.6, similar to the original goal and consistent with ignition requirements.


Physics of Plasmas | 2016

Performance of indirectly driven capsule implosions on the National Ignition Facility using adiabat-shaping

H. F. Robey; V. A. Smalyuk; J. L. Milovich; T. Döppner; D. T. Casey; K. L. Baker; J. L. Peterson; B. Bachmann; L. Berzak Hopkins; E. Bond; J. A. Caggiano; D. A. Callahan; Peter M. Celliers; C. Cerjan; D. S. Clark; S. Dixit; M. J. Edwards; N. Gharibyan; S. W. Haan; B. A. Hammel; Alex V. Hamza; R. Hatarik; O. A. Hurricane; K. S. Jancaitis; O. S. Jones; G.D. Kerbel; J. J. Kroll; K. N. Lafortune; O. L. Landen; T. Ma

A series of indirectly driven capsule implosions has been performed on the National Ignition Facility to assess the relative contributions of ablation-front instability growth vs. fuel compression on implosion performance. Laser pulse shapes for both low and high-foot pulses were modified to vary ablation-front growth and fuel adiabat, separately and controllably. Three principal conclusions are drawn from this study: (1) It is shown that reducing ablation-front instability growth in low-foot implosions results in a substantial (3-10X) increase in neutron yield with no loss of fuel compression. (2) It is shown that reducing the fuel adiabat in high-foot implosions results in a significant (36%) increase in fuel compression together with a small (10%) increase in neutron yield. (3) Increased electron preheat at higher laser power in high-foot implosions, however, appears to offset the gain in compression achieved by adiabat-shaping at lower power. These results taken collectively bridge the space between t...


Physics of Plasmas | 2015

First results of radiation-driven, layered deuterium-tritium implosions with a 3-shock adiabat-shaped drive at the National Ignition Facility

V. A. Smalyuk; H. F. Robey; T. Döppner; O. S. Jones; J. L. Milovich; B. Bachmann; K. L. Baker; L. Berzak Hopkins; E. Bond; D. A. Callahan; D. T. Casey; Peter M. Celliers; C. Cerjan; D. S. Clark; S. Dixit; M. J. Edwards; E. Giraldez; S. W. Haan; Alex V. Hamza; M. Hohenberger; D. Hoover; O. A. Hurricane; K. S. Jancaitis; J. J. Kroll; K. N. Lafortune; O. L. Landen; B. J. MacGowan; A. G. MacPhee; A. Nikroo; A. Pak

Radiation-driven, layered deuterium-tritium plastic capsule implosions were carried out using a new, 3-shock “adiabat-shaped” drive on the National Ignition Facility. The purpose of adiabat shaping is to use a stronger first shock, reducing hydrodynamic instability growth in the ablator. The shock can decay before reaching the deuterium-tritium fuel leaving it on a low adiabat and allowing higher fuel compression. The fuel areal density was improved by ∼25% with this new drive compared to similar “high-foot” implosions, while neutron yield was improved by more than 4 times, compared to “low-foot” implosions driven at the same compression and implosion velocity.


Physics of Plasmas | 2014

The effects of early time laser drive on hydrodynamic instability growth in National Ignition Facility implosions

J. L. Peterson; D. S. Clark; L. P. Masse; L. J. Suter

Defects on inertial confinement fusion capsule surfaces can seed hydrodynamic instability growth and adversely affect capsule performance. The dynamics of shocks launched during the early period of x-ray driven National Ignition Facility (NIF) implosions determine whether perturbations will grow inward or outward at peak implosion velocity and final compression. In particular, the strength of the first shock, launched at the beginning of the laser pulse, plays an important role in determining Richtmyer-Meshkov (RM) oscillations on the ablation front. These surface oscillations can couple to the capsule interior through subsequent shocks before experiencing Rayleigh-Taylor (RT) growth. We compare radiation hydrodynamic simulations of NIF implosions to analytic theories of the ablative RM and RT instabilities to illustrate how early time laser strength can alter peak velocity growth. We develop a model that couples the RM and RT implosion phases and captures key features of full simulations. We also show how three key parameters can control the modal demarcation between outward and inward growth.


Physics of Plasmas | 2015

Validating hydrodynamic growth in National Ignition Facility implosionsa)

J. L. Peterson; D. T. Casey; O. A. Hurricane; K. S. Raman; H. F. Robey; V. A. Smalyuk

We present new hydrodynamic growth experiments at the National Ignition Facility, which extend previous measurements up to Legendre mode 160 and convergence ratio 4, continuing the growth factor dispersion curve comparison of the low foot and high foot pulses reported by Casey et al. [Phys. Rev. E 90, 011102(R) (2014)]. We show that the high foot pulse has lower growth factor and lower growth rate than the low foot pulse. Using novel on-capsule fiducial markers, we observe that mode 160 inverts sign (changes phase) for the high foot pulse, evidence of amplitude oscillations during the Richtmyer-Meshkov phase of a spherically convergent system. Post-shot simulations are consistent with the experimental measurements for all but the shortest wavelength perturbations, reinforcing the validity of radiation hydrodynamic simulations of ablation front growth in inertial confinement fusion capsules.

Collaboration


Dive into the J. L. Peterson's collaboration.

Top Co-Authors

Avatar

D. S. Clark

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar

J. L. Milovich

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar

H. F. Robey

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar

S. W. Haan

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar

D. T. Casey

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar

O. S. Jones

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

L. Berzak Hopkins

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar

O. L. Landen

Lawrence Livermore National Laboratory

View shared research outputs
Top Co-Authors

Avatar

J. E. Field

Lawrence Livermore National Laboratory

View shared research outputs
Researchain Logo
Decentralizing Knowledge