Hostname: page-component-76fb5796d-9pm4c Total loading time: 0 Render date: 2024-04-29T13:56:29.125Z Has data issue: false hasContentIssue false

Status of the development of ignition capsules in the U.S. effort to achieve thermonuclear ignition on the national ignition facility

Published online by Cambridge University Press:  28 November 2006

A. NOBILE
Affiliation:
Los Alamos National Laboratory, Los Alamos, New Mexico
A. NIKROO
Affiliation:
General Atomics, San Diego, California
R.C. COOK
Affiliation:
Lawrence Livermore National Laboratory, Livermore, California
J.C. COOLEY
Affiliation:
Los Alamos National Laboratory, Los Alamos, New Mexico
D.J. ALEXANDER
Affiliation:
Los Alamos National Laboratory, Los Alamos, New Mexico
R.E. HACKENBERG
Affiliation:
Los Alamos National Laboratory, Los Alamos, New Mexico
C.T. NECKER
Affiliation:
Los Alamos National Laboratory, Los Alamos, New Mexico
R.M. DICKERSON
Affiliation:
Los Alamos National Laboratory, Los Alamos, New Mexico
J.L. KILKENNY
Affiliation:
General Atomics, San Diego, California
T.P. BERNAT
Affiliation:
General Atomics, San Diego, California
K.C. CHEN
Affiliation:
General Atomics, San Diego, California
H. XU
Affiliation:
General Atomics, San Diego, California
R.B. STEPHENS
Affiliation:
General Atomics, San Diego, California
H. HUANG
Affiliation:
General Atomics, San Diego, California
S.W. HAAN
Affiliation:
Lawrence Livermore National Laboratory, Livermore, California
A.C. FORSMAN
Affiliation:
General Atomics, San Diego, California
L.J. ATHERTON
Affiliation:
Lawrence Livermore National Laboratory, Livermore, California
S.A. LETTS
Affiliation:
Lawrence Livermore National Laboratory, Livermore, California
M.J. BONO
Affiliation:
Lawrence Livermore National Laboratory, Livermore, California
D.C. WILSON
Affiliation:
Los Alamos National Laboratory, Los Alamos, New Mexico

Abstract

An important component of the U.S. effort to achieve thermonuclear ignition in 2010 on the National Ignition Facility is the development of high quality 2 mm diameter spherical capsules to function as the ablator and contain the cryogenic DT fuel. Three ignition capsule designs have been developed, and detailed fabrication specifications for each design have been established and placed under change control. A research program with activities coordinated mainly between Lawrence Livermore, General Atomics and Los Alamos is underway to demonstrate fabrication of capsules meeting specifications. The point design for ignition campaigns beginning in 2010 is a Cu-doped Be capsule that has a radial gradient in Cu dopant level in the capsule wall. This capsule is being produced by sputter deposition of Be and Cu onto either a hollow glow discharge polymer (GDP) spherical mandrel or a solid spherical mandrel, followed by removal of the mandrel and polishing of the capsule. A key goal in the U.S. is to demonstrate fabrication of this capsule by the end of 2006. Two other ignition capsule designs are also being developed as contingencies to the point design. One contingency design is a GDP capsule that has a radial Ge dopant level in its wall. This capsule is produced by co-deposition of Ge and GDP onto a PAMS mandrel followed by thermal removal of the mandrel. The second contingency design is a uniform Cu-doped Be capsule that is fabricated from high purity fine grain Be0.3at.%Cu alloy using a precision machining route followed by polishing. Ignition targets to be fielded in 2010 will be filled with DT fuel through a small fill hole. Laser drilling capability has been developed and used to drill approximately 5 μm diameter holes through capsule walls for DT filling. Characterization methods necessary for characterizing capsules are being developed.

Type
Research Article
Copyright
© 2006 Cambridge University Press

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

Alexander, D.J., Cooley, J.C., Cameron, B.J., Dauelsberg, L.B., Dickerson, R.M., Hackenberg, R.E., Mauro, M.E., Nobile, A., Papin, P.A. & Rivera, G. (2006). Progress in the production of materials and fabrication of NIF beryllium-copper ignition capsules at Los Alamos National Laboratory. Fusion Sci. Technol. 49, 796801.Google Scholar
Alexander, D.J., Cooley, J.C., Thoma, D.J. & Nobile, A. (2004a). Grain refinement of arc-melted beryllium-6 wt% copper. Ultrafine Grained Materials 3, 267272.Google Scholar
Alexander, D.J., Cooley, J.C., Thoma, D.J. & Nobile, A. (2004b). Production of fine-grained beryllium-6 wt% copper for fusion ignition capsules by arc melting and equal channel angular extrusion. Fusion Sci. Technol. 45, 137143.Google Scholar
Bono, M.J. & Hibbard, R.L. (2004). Machining, assembly and characterization of a meso-scale double shell target. J. Manuf. Proc. 6, 97100.Google Scholar
Canaud, B., Fortin, X., Garaude, F., Meyer, C. & Philippe, F. (2004). Progress in direct-drive fusion studies for the Laser Megajoule. Laser Part. Beams 22, 109114.Google Scholar
Chen, K.C., Cook, R.C., Huang, H., Letts, S.A. & Nikroo, A. (2006). Fabrication of graded germanium-doped CH shells. Fusion Sci. Technol. 49, 750756.Google Scholar
Chizhkov, M.N., Karlykhanov, N.G., Lykov, V.A., Shushlebin, A.N., Sokolov, L. & Timakova, M.S. (2005). Computational optimization of indirect-driven targets for ignition on the Iskra-6 laser facility. Laser Part. Beams 23, 261265.Google Scholar
Fernandez, J.C., Hegelich, B.M., Cobble, J.A., Flippo, K.A., Letzring, S.A., Johnson, R.P., Gautier, D.C., Shimada, T., Kyrala, G.A., Wang, Y.Q., Wettland, C.J. & Schreiber, J. (2005). Laser-ablation treatment of short-pulse laser targets: Toward an experimental program on energetic-ion interactions with dense plasmas. Laser Part. Beams 23, 267273.Google Scholar
Haan, S.W. & Wilson, D.C. (2005). Specifications for Ignition Targets. Livermore, CA: Lawrence Livermore National Laboratory.
Hibbard, R.L., Bono, M.J., Amendt, P.A., Bennett, D.W. & Castro, C. (2004). Precision manufacturing of inertial confinement fusion double shell laser targets for OMEGA. Fusion Sci. Technol. 45, 117123.Google Scholar
Khalenkov, A.M., Borisenko, N.G., Kondrashov, V.N., Merkuliev, Y.A., Limpouch, J. & Pimenov, V.G. (2006). Experience of micro-heterogeneous target fabrication to study energy transport in plasma near critical density. Laser Part. Beams 24, 283290.Google Scholar
Kilkenny, J.D., Alexander, N.B., Nikroo, A., Steinman, D.A., Nobile, A., Bernat, T., Cook, R., Letts, S., Takagi, M. & Harding, D. (2005). Laser targets compensate for limitations in inertial confinement fusion drivers. Laser Part. Beams 23, 475482.Google Scholar
Koresheva, E.R., Osipov, I.E. & Aleksanrdova, I.V. (2005). Free standing target technologies for inertial fusion energy: Target fabrication, characterization, and delivery. Laser Part. Beams 23, 563571.Google Scholar
Kyrala, G.A., Delamater, N., Wilson, D., Guzik, J., Haynes, D., Gunderson, M., Klare, K., Watt, R.W., Wood, W.M. & Varnum, W. (2005). Direct drive double shell target implosion hydrodynamics on OMEGA. Laser Part. Beams 23, 187192.Google Scholar
McElfresh, M., Gunther, J., Alford, C., Fought, E., Cook, R., Nikroo, A., Xu, H., Cooley, J.C., Field, R.D., Hackenberg, R. & Nobile, A. (2006). Fabrication of beryllium capsules with copper-doped layers for NIF targets: A progress report. Fusion Sci. Technol. 49, 786795.Google Scholar
Morlens, A.S., Zeitoun, P., Vanbostal, L., Mercere, P., Faivre, G., Hubert, S., Troussel, P., Remond, C., Marmoret, R., Delmotte, F., Ravet, M.F. & Rouillay, M. (2004). Study of XUV beam splitter flatness for use on a Michelson interferometer. Laser Part. Beams 22, 279284.Google Scholar
Nikroo, A., Chen, K.C., Hoppe, M.L., Huang, H., Wall, J.R., Xu, H., McElfresh, M.W., Alford, C.S., Cook, R.C., Cooley, J.C., Field, R.D., Hackenberg, R., Doerner, R.P. & Baldwin, M. (2006). Progress toward fabrication of graded doped beryllium and CH capsules for the National Ignition Facility. Phys. Plasmas 13, 56302–1/6.Google Scholar
Nobile, A., Cooley, J.C., Alexander, D.J., Thoma, D.J., Field, R.D., Day, R.D., Cameron, B.J., Rivera, G., Kelly, A.M., Papin, P.A., Schulze, R.K., Dauelsberg, L.B., Alexander, N.B. & Galix, R. (2003). Development of beryllium-copper alloy ignition capsules, pp. 758761. LaGrange Park, IL: American Nuclear Society.