Journal Article10.1063/5.0047841
Achieving record hot spot energies with large HDC implosions on NIF in HYBRID-E
A. L. Kritcher,Alex Zylstra,Debra Callahan,Omar Hurricane,Chris Weber,J. E. Ralph,D. T. Casey,Arthur Pak,Kevin Baker,Benjamin Bachmann,Suhas Bhandarkar,Jürgen Biener,R. M. Bionta,T. Braun,M. Bruhn,C. Choate,David J. Clark,J. M. Di Nicola,Laurent Divol,Tilo Doeppner,V. Geppert-Kleinrath,S. W. Haan,John E. Heebner,V.J. Hernandez,Denise Hinkel,Matthias Hohenberger,H. Huang,C. Kong,S. Le Pape,Derek Mariscal,E. Marley,Laurent Masse,K. D. Meaney,Marius Millot,A. S. Moore,K. Newman,A. Nikroo,P. K. Patel,L. Pelz,Neal Rice,Harry Robey,James Ross,M. S. Rubery,Jay D. Salmonson,David Schlossberg,Scott Sepke,K. Sequoia,Michael Stadermann,David Strozzi,R. Tommasini,Petr Volegov,Christoph Wild,S. Yang,C. Young,Melissa Edwards,Otto Landen,Richard Town,Mark Herrmann +57 more
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TL;DR: Hybrid-E is an inertial confinement fusion implosion design that increases energy coupled to the hot spot by increasing the capsule scale in cylindrical hohlraums as discussed by the authors.
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Abstract: HYBRID-E is an inertial confinement fusion implosion design that increases energy coupled to the hot spot by increasing the capsule scale in cylindrical hohlraums while operating within the current experimental limits of the National Ignition Facility. HYBRID-E reduces the hohlraum scale at a fixed capsule size compared to previous HYBRID designs, thereby increasing the hohlraum efficiency and energy coupled to the capsule, and uses the cross-beam energy transfer (CBET) to control the implosion symmetry by operating the inner (23° and 30°) and outer (44° and 50°) laser beams at different wavelengths ( Δ λ > 0). Small case to capsule ratio designs can suffer from insufficient drive at the waist of the hohlraum. We show that only a small amount of wavelength separation between the inner and outer beams ( Δ λ 1–2 A) is required to control the symmetry in low-gas-filled hohlraums (0.3 mg/cm3 He) with enough drive at the waist of the hohlraum to symmetrically drive capsules 1180 μm in outer radius. This campaign is the first to use the CBET to control the symmetry in 0.3 mg/cm3 He-filled hohlraums, the lowest gas fill density yet fielded with Δ λ > 0. We find a stronger sensitivity of hot spot P2 in μm per Angstrom (40–50 μm/A wavelength separation) than observed in high-gas-filled hohlraums and previous longer pulse designs that used a hohlraum gas fill density of 0.6 mg/cm3. There is currently no indication of transfer roll-off with increasing Δ λ, indicating that even longer pulses or larger capsules could be driven using the CBET in cylindrical hohlraums. We show that the radiation flux symmetry is well controlled during the foot of the pulse, and that the entire implosion can be tuned symmetrically in the presence of the CBET in this system, with low levels of laser backscatter out of the hohlraum and low levels of hot electron production from intense laser–plasma interactions. Radiation hydrodynamic simulations can accurately represent the early shock symmetry and be used as a design tool, but cannot predict the late-time radiation flux symmetry during the peak of the pulse, and semi-empirical models are used to design the experiments. Deuterium–tritium (DT)-layered tests of 1100 μm inner radius implosions showed performance close to expectations from simulations at velocities up to ∼360 km/s, and record yields at this velocity, when increasing the DT fuel layer thickness to mitigate hydrodynamic mixing of the ablator into the hot spot as a result of defects in the ablator. However, when the implosion velocity was increased, mixing due to these defects impacted performance. The ratio of measured to simulated yield for these experiments was directly correlated with the level of observed mixing. These simulations suggest that reducing the mixing, e.g., by improving the capsule defects, could result in higher performance. In addition, future experiments are planned to reduce the coast time at this scale, delay between the peak compression and the end of the laser, to increase the hot spot convergence and pressure. To reduce the coast time by several hundred ps compared to the 1100 μm inner radius implosions, HYBRID-E has also fielded 1050 μm inner radius capsules, which resulted in higher hot spot pressure and a fusion energy yield of ∼170 kJ.
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Citations
Lawson Criterion for Ignition Exceeded In An Inertial Fusion Experiment
TL;DR: The first controlled fusion experiment on the National Ignition Facility to produce capsule gain greater than unity (here 5.8) and reach ignition by many different formulations of the Lawson criterion was reported in this paper .
Design of inertial fusion implosions reaching the burning plasma regime
Andrea Kritcher,Christopher Young,Harry Robey,C. R. Weber,Ab Zylstra,Omar Hurricane,Debra Callahan,Joseph Ralph,J. Steven Ross,Kevin Baker,D. T. Casey,Daniel S. Clark,Tilo Döppner,Laurent Divol,Matthias Hohenberger,L. F. Berzak Hopkins,S. Le Pape,Nathan Meezan,Art Pak,P. K. Patel,R. Tommasini,S.M. Usman Ali,Peter Amendt,L. J. Atherton,Benjamin Bachmann,D. S. Bailey,Laura Robin Benedetti,Riccardo Betti,Suhas Bhandarkar,Jürgen Biener,R. M. Bionta,N. Birge,E. J. Bond,D. K. Bradley,T. Braun,Tammie Marie Briggs,Matthew W. Bruhn,Peter M. Celliers,B. Chang,Thomas Chapman,H. Chen,C. Choate,A. R. Christopherson,J. Crippen,E. L. Dewald,T. R. Dittrich,M. J. Edwards,William Farmer,John K. Field,David N. Fittinghoff,Johan Frenje,Jim Gaffney,M. Gatu Johnson,Siegfried Glenzer,G. P. Grim,S. W. Haan,K. D. Hahn,Gareth Hall,B. A. Hammel,J. A. Harte,E. P. Hartouni,Jeff Heebner,V.J. Hernandez,Hans J. Herrmann,Mark Herrmann,Denise Hinkel,Dac Duc Ho,J. P. Holder,W. W. Hsing,H. Huang,Kelli Humbird,N. Izumi,Leonard Jarrott,Justin Jeet,O. S. Jones,G.D. Kerbel,Shaun Kerr,J. D. Kilkenny,Y Kim,Hermann Geppert-Kleinrath,V. Geppert-Kleinrath,C. Kong,Joseph Koning,Mark Kruse,Jeffrey J. Kroll,Bogdan Kustowski,Otto Landen,Sara Langer,D. Larson,Nuno Lemos,J. D. Lindl,T. Ma,M. J. MacDonald,B. J. MacGowan,A. J. Mackinnon,Steve MacLaren,Andrew MacPhee,M. M. Marinak,Dereck. A. Mariscal,E. Marley,Laurent Masse,K. D. Meaney,Pierre Michel,Michel Millot,Jose Milovich,J. D. Moody,Alastair Moore,John W. Morton,T. W. Murphy,Kaitlyn Beverly Newman,J. M. Di Nicola,A. Nikroo,Ryan Nora,Mehali Patel,Lawrence J. Pelz,J. L. Peterson,Yi Ping,Bradley H Pollock,M. Ratledge,Neal Rice,H. G. Rinderknecht,M. D. Rosen,M. S. Rubery,Jay D. Salmonson,J. D. Sater,Sergio Schiaffino,David Schlossberg,Marilyn Schneider,Christopher Schroeder,Howard A. Scott,Scott Sepke,K. L. Sequoia,Mark Sherlock,S Shin,V. A. Smalyuk,Brian Spears,P. T. Springer,Michael Stadermann,Stanislav Stoupin,David Strozzi,L. Suter,C. Thomas,Richard Town,C. Trosseille,Eleanor Tubman,Petr Volegov,Klaus Widmann,C. Wild,Carl Wilde,B. M. Van Wonterghem,D. Tod Woods,Brandon Woodworth,Mikio Yamaguchi,S. Yang,George B. Zimmerman +154 more
138
Experimental achievement and signatures of ignition at the National Ignition Facility.
Ab Zylstra,Andrea Kritcher,Omar Hurricane,Debra Callahan,Joseph Ralph,D. T. Casey,Art Pak,Otto Landen,Benjamin Bachmann,Kevin Baker,L. F. Berzak Hopkins,Suhas Bhandarkar,Juergen Biener,R. M. Bionta,N. Birge,T. Braun,Tammie Marie Briggs,Peter M. Celliers,H. Chen,C. Choate,Daniel S. Clark,Laurent Divol,Tilo Döppner,David N. Fittinghoff,M. J. Edwards,M. Gatu Johnson,N. Gharibyan,S. W. Haan,K. D. Hahn,E. P. Hartouni,Denise Hinkel,Dac Duc Ho,Matthias Hohenberger,J. P. Holder,H. Huang,N. Izumi,Justin Jeet,O. S. Jones,Shaun Kerr,H. Geppert Kleinrath,V. Geppert Kleinrath,C. Kong,Kalina M. Lamb,S. Le Pape,Nuno Lemos,J. D. Lindl,B. J. MacGowan,A. J. Mackinnon,Andrew MacPhee,E. Marley,K. D. Meaney,Michel Millot,Alastair Moore,Kaitlyn Beverly Newman,J. M. Di Nicola,A. Nikroo,Ryan Nora,P. M. Patel,Neal Rice,M. S. Rubery,J. D. Sater,David Schlossberg,Scott Sepke,K. L. Sequoia,Sung-Jin Shin,Michael Stadermann,Stanislav Stoupin,David Strozzi,C. Thomas,R. Tommasini,C. Trosseille,Eleanor Tubman,Petr Volegov,C. R. Weber,C. Wild,D. Tod Woods,S. Yang,Christopher Young +77 more
TL;DR: In this article , the authors describe the experimental improvements that enabled N210808 and present the first experimental measurements from an igniting plasma in the laboratory, showing that the product of hot-spot energy and pressure squared, in the absence of self-heating, increased by ∼35%.
133
Design of an inertial fusion experiment exceeding the Lawson criterion for ignition.
Andrea Kritcher,Ab Zylstra,Debra Callahan,Omar Hurricane,C. R. Weber,Daniel S. Clark,Christopher Young,Joseph Ralph,D. T. Casey,Art Pak,Otto Landen,Benjamin Bachmann,Kevin Baker,L. F. Berzak Hopkins,Suhas Bhandarkar,Jürgen Biener,R. M. Bionta,N. Birge,T. Braun,Tammie Marie Briggs,Peter M. Celliers,H. Chen,C. Choate,Laurent Divol,Tilo Döppner,David N. Fittinghoff,M. J. Edwards,M. Gatu Johnson,N. Gharibyan,S. W. Haan,K. D. Hahn,E. P. Hartouni,Denise Hinkel,Dac Duc Ho,Matthias Hohenberger,J. P. Holder,H. Huang,N. Izumi,Justin Jeet,O. S. Jones,Shaun Kerr,H. Geppert Kleinrath,V. Geppert Kleinrath,C. Kong,Kelley M. Lamb,S. Le Pape,Nuno Lemos,J. D. Lindl,B. J. MacGowan,A. J. Mackinnon,Andrew MacPhee,E. Marley,K. D. Meaney,Michel Millot,Alastair Moore,Kaitlyn Beverly Newman,J. M. Di Nicola,A. Nikroo,Ryan Nora,P. M. Patel,Neal Rice,M. S. Rubery,J. D. Sater,David Schlossberg,Scott Sepke,K. L. Sequoia,Sung-Jin Shin,Michael Stadermann,Stanislav Stoupin,David Strozzi,C. Thomas,R. Tommasini,C. Trosseille,Eleanor Tubman,Petr Volegov,C. Wild,D. Tod Woods,S. Yang +77 more
TL;DR: In this paper , the authors present the design of the first igniting fusion plasma in the laboratory by Lawson's criterion that produced 1.37 MJ of fusion energy, Hybrid-E experiment N210808 (August 8, 2021).
The Role of a Detailed Configuration Accounting (DCA) Atomic Physics Package in Explaing the Energy Balance in Ignition Scale Hohlraums
M Rosen,H Scott,D. Hinkel,E. Williams,D. A. Callahan,R Town,L Divol,P Michel,W L Kruer,L. J. Suter,R London,J Harte,G Zimmerman +12 more
- 10 Jan 2011
TL;DR: The High Flux Model (HFM) was used in the National Ignition Campaign (NIC) gas-filled/capsule-imploding hohlraum energetics campaign as discussed by the authors.
References
Application of cross-beam energy transfer to control drive symmetry in ICF implosions in low gas fill Hohlraums at the National Ignition Facility
Louisa Pickworth,Tilo Döppner,Denise Hinkel,Joseph Ralph,Benjamin Bachmann,Laurent Masse,Laurent Divol,Laura Robin Benedetti,Peter M. Celliers,Hui Chen,Matthias Hohenberger,Shahab Khan,Otto Landen,Nuno Lemos,B. J. MacGowan,Derek Mariscal,Pierre Michel,Marius Millot,Alastair Moore,J. Park,Marilyn Schneider,Debra Callahan,Omar Hurricane +22 more
TL;DR: In this paper, a detailed experimental study of using CBET in low gas fill Hohlraums near NIF's current peak power capability is presented, where a ∼2.5× higher sensitivity of the P2 Legendre mode with respect to Δλ changes compared to that of high gas fill designs is found.
Three-dimensional simulations of low foot and high foot implosion experiments on the National Ignition Facility
Daniel S. Clark,C. R. Weber,Jose Milovich,Jay D. Salmonson,Andrea Kritcher,S. W. Haan,B. A. Hammel,D. E. Hinkel,Omar Hurricane,O. S. Jones,M. M. Marinak,P. K. Patel,Harry Robey,S. M. Sepke,M. J. Edwards +14 more
TL;DR: Moses et al. as discussed by the authors described the current state of progress of 3D capsule-only simulations of NIF implosions aimed at accurately describing the performance of specific NIF experiments, including the effects of hohlraum radiation asymmetries, capsule surface defects, the capsule support tent and fill tube.
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TL;DR: The achievement of fusion fuel gains exceeding unity on the US National Ignition Facility is reported using a ‘high-foot’ implosion method, which is a manipulation of the laser pulse shape in a way that reduces instability in the implosion.
Hotspot conditions achieved in inertial confinement fusion experiments on the National Ignition Facility
P. K. Patel,P. T. Springer,C. R. Weber,Leonard Jarrott,Omar Hurricane,B. Bachmann,Kevin Baker,L. F. Berzak Hopkins,Debra Callahan,Daniel Casey,C. J. Cerjan,Daniel S. Clark,E. L. Dewald,Laurent Divol,Tilo Döppner,J. E. Field,David N. Fittinghoff,Jim Gaffney,V. Geppert-Kleinrath,Gary Grim,E. P. Hartouni,Robert Hatarik,Denise Hinkel,Matthias Hohenberger,Kelli Humbird,N. Izumi,O. S. Jones,Shahab Khan,A. L. Kritcher,Michael Kruse,Otto Landen,S. Le Pape,S. Le Pape,Tammy Ma,Steve MacLaren,Andrew MacPhee,Laurent Masse,Nathan Meezan,Jose Milovich,Ryan Nora,Arthur Pak,J. L. Peterson,Joseph Ralph,Harry Robey,Jay D. Salmonson,V. A. Smalyuk,Brian Spears,C. A. Thomas,Petr Volegov,Alex Zylstra,M. J. Edwards +50 more
TL;DR: In this article, the authors describe the overall performance of the major indirect-drive inertial confinement fusion campaigns executed at the National Ignition Facility (NIF) and describe the performance of current experiments both in terms of no-burn ignition metrics (metrics based on the hydrodynamic performance of targets in the absence of alpha-particle heating) and the thermodynamic properties of the hotspot and dense fuel at stagnation.
Gated x-ray detector for the National Ignition Facility
John A. Oertel,Robert Aragonez,T. N. Archuleta,Cris W. Barnes,Larry J. Casper,V. E. Fatherley,Todd Heinrichs,Robert King,Doug Landers,F. E. Lopez,Phillip Sanchez,George Sandoval,Lou Schrank,P. J. Walsh,Perry M. Bell,Matthew A. Brown,R. Costa,J. P. Holder,Sam Montelongo,Neal Pederson +19 more
TL;DR: In this article, two new gated x-ray imaging cameras have recently been designed, constructed, and delivered to the National Ignition Facility in Livermore, CA, where they are used to collect X-ray images.
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