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Conceptual designs of two petawatt-class pulsed-power accelerators for high-energy-density-physics experiments

Authors :
F. R. Gruner
Joshua J. Leckbee
Michael G. Mazarakis
Dale Welch
R. J. Leeper
D. J. Lucero
J. K. Moore
David Reisman
P. A. Jones
Brian Hutsel
D.B. Sinars
Matthew R. Gomez
Jens Schwarz
J. B. Ennis
Brent Manley Jones
G. E. Rochau
J. R. Woodworth
Ryan D. McBride
R. E. Clark
Carsten Thoma
E. A. Madrid
Christopher Jennings
S. A. Slutz
F. W. Long
E. M. Campbell
Mark E. Savage
Paul Schmit
D. O. Jobe
S. A. Lewis
Roger Alan Vesey
Gregory Rochau
C. B. Mostrom
Thomas James Awe
M. E. Cuneo
J. S. Lash
William A. Stygar
P. E. Wakeland
Patrick Knapp
K. R. LeChien
Dean C. Rovang
Mark Herrmann
G. W. Greiser
Matthew Martin
Kyle Peterson
M. C. Jones
Brian Stoltzfus
Nichelle Bennett
Adam B Sefkow
E. W. Breden
D. V. Rose
D. L. Fehl
Maurice Keith Matzen
R. F. Schneider
C. L. Miller
M. E. Sceiford
R. A. Cooper
T. D. Mulville
T. C. Genoni
James E. Bailey
R. B. Spielman
G. R. McKee
John L. Porter
M. L. Wisher
Source :
Physical Review Special Topics. Accelerators and Beams, Vol 18, Iss 11, p 110401 (2015)
Publication Year :
2015
Publisher :
American Physical Society, 2015.

Abstract

Here, we have developed conceptual designs of two petawatt-class pulsed-power accelerators: Z 300 and Z 800. The designs are based on an accelerator architecture that is founded on two concepts: single-stage electrical-pulse compression and impedance matching [Phys. Rev. ST Accel. Beams 10, 030401 (2007)]. The prime power source of each machine consists of 90 linear-transformer-driver (LTD) modules. Each module comprises LTD cavities connected electrically in series, each of which is powered by 5-GW LTD bricks connected electrically in parallel. (A brick comprises a single switch and two capacitors in series.) Six water-insulated radial-transmission-line impedance transformers transport the power generated by the modules to a six-level vacuum-insulator stack. The stack serves as the accelerator’s water-vacuum interface. The stack is connected to six conical outer magnetically insulated vacuum transmission lines (MITLs), which are joined in parallel at a 10-cm radius by a triple-post-hole vacuum convolute. The convolute sums the electrical currents at the outputs of the six outer MITLs, and delivers the combined current to a single short inner MITL. The inner MITL transmits the combined current to the accelerator’s physics-package load. Z 300 is 35 m in diameter and stores 48 MJ of electrical energy in its LTD capacitors. The acceleratormore » generates 320 TW of electrical power at the output of the LTD system, and delivers 48 MA in 154 ns to a magnetized-liner inertial-fusion (MagLIF) target [Phys. Plasmas 17, 056303 (2010)]. The peak electrical power at the MagLIF target is 870 TW, which is the highest power throughout the accelerator. Power amplification is accomplished by the centrally located vacuum section, which serves as an intermediate inductive-energy-storage device. The principal goal of Z 300 is to achieve thermonuclear ignition; i.e., a fusion yield that exceeds the energy transmitted by the accelerator to the liner. 2D magnetohydrodynamic (MHD) simulations suggest Z 300 will deliver 4.3 MJ to the liner, and achieve a yield on the order of 18 MJ. Z 800 is 52 m in diameter and stores 130 MJ. This accelerator generates 890 TW at the output of its LTD system, and delivers 65 MA in 113 ns to a MagLIF target. The peak electrical power at the MagLIF liner is 2500 TW. The principal goal of Z 800 is to achieve high-yield thermonuclear fusion; i.e., a yield that exceeds the energy initially stored by the accelerator’s capacitors. 2D MHD simulations suggest Z 800 will deliver 8.0 MJ to the liner, and achieve a yield on the order of 440 MJ. Z 300 and Z 800, or variations of these accelerators, will allow the international high-energy-density-physics community to conduct advanced inertial-confinement-fusion, radiation-physics, material-physics, and laboratory-astrophysics experiments over heretofore-inaccessible parameter regimes.« less

Details

Language :
English
ISSN :
10984402
Volume :
18
Issue :
11
Database :
OpenAIRE
Journal :
Physical Review Special Topics. Accelerators and Beams
Accession number :
edsair.doi.dedup.....156488a864639116811ff0d558f295f4