next up previous
Next: About this document Up: Hydrodynamic Bibliography Previous: Hydrodynamic Bibliography

References

Abarzhi98
S. I. Abarzhi. Stable steady flows in Rayleigh-Taylor instability. Phys. Rev. Lett., 81(2):337, July 1998.

Alon95
U. Alon, J. Hecht, D. Ofer, and D. Shvarts. Power laws and similarity of Rayleigh-Taylor and Richtmyer-Meshkov mixing fronts at all density ratios. Phys. Rev. Lett., 74(4):534, January 1995.

Al'tshuler96
L. V. Al'tshuler, R. F. Trunin, K. K. Krupnikov, and N. V. Panov. Explosive laboratory devices for shock wave compression studies. Uspekhi Fizicheskikh Nauk, 166(5):575, 1996. English Translation: Physics-Uspekhi 39(5)539.

Andronov76
V. A. Andronov, S. M. Bakhrakh, E. E. Meshkov, V. N. Mokhov, V. V. Nikiforov, A. V. Pevnitskii, and A. I. Tolshmyakov. Turbulent mixing at contact surface accelerated by shock waves. Sov. Phys. JETP, 44(2):424, August 1976.

Azechi86
H. Azechi, N. Miyanaga, R. O. Stapf, K. Itoga, H. Nakaishi, M. Yamanaka, H. Shiraga, R. Tsuji, S. Ido, K. Nishihara, Y. Izawa, T. Yamanaka, and C. Yamanaka. Experimental determination of fuel density-radius product of inertial confinement fusion targets using secondary nuclear fusion reactions. Appl. Phys. Lett., 49(10):555, September 1986.

Azechi87
H. Azechi, R. O. Stapf, N. Miyanaga, R. Tsuji, M. Yamanaka, S. Ido, K. Nishihara, T. Yabe, and C. Yamanaka. Study of fuel-pusher mixing in laser-driven implosions, using secondary nuclear fusion reactions. Phys. Rev. Lett., 59(23):2635, December 1987.

Azechi97a
H. Azechi, M. Nakai, K. Shigemori, A. Nishiguchi, N. Miyanaga, M. Honda, H. Shiraga, R. Kodama, O. Maekawa, R. Ishizaki, H. Takabe, K. Nishihara, Y. Kato, T. Yamanaka, S. Nakai, and K. Mima. Hydrodynamic instability experiments at Gekko XII. In Plasma Physics and Controlled Nuclear Fusion Research, 1996. International Atomic Energy Agency, Vienna, 1997. F1-CN-64/BP-19 (Montreal Conference).

Baker80
Gregory R. Baker, Daniel I. Meiron, and Steven A. Orszag. Vortex simulations of the Rayleigh-Taylor instability. Phys. Fluids, 23(8):1485, August 1980.

Baker87
G. R. Baker, R. L. McCrory, C. P. Verdon, and S. A. Orszag. Rayleigh-Taylor instability of fluid layers. J. Fluid Mech., 178:161, 1987.

Barnes74
John F. Barnes, Patrick J. Blewett, Robert G. McQueen, Kenneth A. Meyer, and Douglas Venable. Taylor instability in solids. J. Appl. Phys., 45(2):727, February 1974.

Baumung94
K. Baumung, H. U. Karow, D. Rusch, H. J. Bluhm, P. Hopp/'e, G. I. Kanel, A. V. Utkin, and V. Licht. High-power proton beam-matter interaction diagnostics by analysis of the hydrodynamic response of solid targets. J. Appl. Phys., 75(12):7633, June 1994.

Baumung96
K. Baumung, H. J. Bluhm, B. Goel, P. Hoppé, H. U. Karow, D. Rusch, V. E. Fortov, G. I. Kanel, S. V. Razorenov, A. V. Utkin, and O. Yu. Vorobjev. Shock-wave physics experiments with high-power proton beams. Laser Part. Beams, 14(2):181, 1996.

Bell51
George I. Bell. Taylor instability on cylinders and spheres in the small amplitude approximation. Technical Report LA-1321, Los Alamos Scientific Laboratory, November 1951.

Belmonte98
Andrew Belmonte, Hagai Eisenberg, and Elisha Moses. From flutter to tumble: Inertial drag and Froude similarity in falling paper. Phys. Rev. Lett., 81(2):345, July 1998.

Besson97
J. M. Besson. Comment on ``metallization of fluid molecular hydrogen at 140 GPa (1.4 Mbar)''. Phys. Rev. Lett., 78(26):5026, June 1997. Comment on Weir96; see reply Nellis97.

Betti94
R. Betti, V. Goncharov, R. L. McCrory, E. Turano, and C. P. Verdon. Multiple cutoff wave numbers of the ablative Rayleigh-Taylor instability. Phys. Rev. E, 50(5):3968, 1994.

Betti95
R. Betti, V. N. Goncharov, R. L. McCrory, and C. P. Verdon. Self-consistent cutoff wave number of the ablative Rayleigh-Taylor instability. Phys. Plasmas, 2(10):3844, 1995.

Betti96a
R. Betti, V. N. Goncharov, R. L. McCrory, P. Sorotokin, and C. P. Verdon. Self-consistent stability analysis of ablation fronts in inertial confinement fusion. Phys. Plasmas, 3(5):2122, May 1996.

Birkhoff54
Garrett Birkhoff. Note on Taylor instability. Quart. Appl. Math., XII(3):306, 1954.

Birkhoff56
Garrett Birkhoff. Stability of spherical bubbles. Quart. Appl. Math., XIII(4):451, 1956.

Bodner74
Stephen E. Bodner. Rayleigh-Taylor instability and laser-pellet fusion. Phys. Rev. Lett., 33(13):761, September 1974.

Bodner81
Stephen E. Bodner. Critical elements of high gain laser fusion. J. Fusion Energy, 1(3):221, 1981.

Bodner87
S. E. Bodner, M. H. Emery, and J. H. Gardner. The Rayleigh-Taylor instability in direct-drive laser fusion. Plasma Phys. Controlled Fusion, 29(10A):1333, 1987.

Bodner95
Stephen E. Bodner. Time-dependent asymmetries in laser-fusion hohlraums. Comments Plasma Phys. Controlled Fusion, 16(6):351, 1995.

Book80
David L. Book and Ira B. Bernstein. Fluid instabilities of a uniformly imploding ablatively driven shell. J. Plasma Phys., 23(3):521, 1980.

Bradley92
D. K. Bradley, J. A. Delettrez, and C. P. Verdon. Measurements of the effect of laser beam smoothing on direct-drive inertial-confinement-fusion capsule implosions. Phys. Rev. Lett., 68(18):2774, 1992.

Brouillette94
M. Brouillette and B. Sturtevant. Experiments on the Richtmyer-Meshkov instability: single-scale perturbations on a continuous interface. J. Fluid Mech., 263:271, 1994.

Brueckner74a
Keith A. Brueckner and Siebe Jorna. Laser-driven fusion. Rev. Mod. Phys., 46(2):325, April 1974.

Brueckner74b
Keith A. Brueckner, Siebe Jorna, and Ralph Janda. Hydrodynamic stability of a laser-driven plasma. Phys. Fluids, 17(8):1554, August 1974.

Budil96a
K. S. Budil, B. A. Remington, T. A. Peyser, K. O. Mikaelian, P. L. Miller, N. C. Woolsey, W. M. Wood-Vasey, and A. M. Rubenchik. Experimental comparison of classical versus ablative Rayleigh-Taylor instability. Phys. Rev. Lett., 76(24):4536, June 1996.

Bud'ko92
A. B. Bud'ko and M. A. Liberman. Stabilization of the Rayleigh-Taylor instability by convection in smooth density gradient: Wentzel-Kramers-Brillouin analysis. Phys. Fluids B, 4(11):3499, 1992.

Bychkov94
V. V. Bychkov, S. M. Goiberg, and M. A. Liberman. Self-consistent model of the Rayleigh-Taylor instability in ablatively accelerated plasma. Phys. Plasmas, 1(9):2976, 1994.

Cable94
M. D. Cable, S. P. Hatchett, J. A. Caird, J. D. Kilkenny, H. N. Kornblum, S. M. Lane, C. Laumann, R. A. Lerche, T. J. Murphy, J. Murray, M. B. Nelson, D. W. Phillion, H. Powell, and D. B. Ress. Indirectly driven, high convergence inertial confinement fusion implosions. Phys. Rev. Lett., 73(17):2316, 1994.

Campbell80
E. Michael Campbell, William M. Ploeger, Peter H. Lee, and Stephen M. Lane. Exploding-pusher-tamper areal density measurements by neutron activation. Appl. Phys. Lett., 36(12):965, June 1980.

Campbell91
E. M. Campbell. Recent results from the Nova program at LLNL. Laser Part. Beams, 9(2):209, 1991.

Caruso94
A. Caruso and V. A. Pais. Hydrodynamical evolution and radiation confinement of rough surfaces exposed to thermal radiation in indirectly driven ICF targets. Laser Part. Beams, 12(3):343, 1994.

Catto78
Peter J. Catto. Model of the Rayleigh-Taylor stability of an ablating fluid. Phys. Fluids, 21(1):30, 1978.

Cauble93
R. Cauble, D. W. Phillion, T. J. Hoover, N. C. Holmes, J. D. Kilkenny, and R. W. Lee. Demonstration of 0.75 Gbar planar shocks in x-ray driven colliding foils. Phys. Rev. Lett., 70(14):2102, April 1993.

Cauble98
R. Cauble, T. S. Perry, D. R. Bach, K. S. Budil, B. A. Hammel, G. W. Collins, D. M. Gold, J. Dunn, P. Celliers, L. B. Da Silva, M. E. Foord, R. J. Wallace, R. E. Stewart, and N. C. Woolsey. Absolute equation-of-state data in the 10--40 Mbar (1--4 TPa) regime. Phys. Rev. Lett., 80(6):1248, February 1998.

Chandrasekhar61a
S. Chandrasekhar. Hydrodynamic and Hydromagnetic Stability, chapter X, page 428. Oxford University Press, 1961. The stability of superposed fluids: the Rayleigh-Taylor Instability.

Chandrasekhar61b
S. Chandrasekhar. Hydrodynamic and Hydromagnetic Stability, chapter XI, page 481. Oxford University Press, 1961. The stability of superposed fluids: the Kelvin-Helmholtz Instability.

Chang59
C. T. Chang. Dynamic instability of accelerated fluids. Phys. Fluids, 2(6):656, 1959.

Chapyak97
Edward J. Chapyuk and Robert P. Godwin. The effect of spherical convergence on the dynamics of instabilities. In Proceedings of the 11th Nuclear Explosives Design Physics Conference. Lawrence Livermore National Laboratory, Livermore, CA, October 20-24, 1997 1997. LA-UR-97-4689.

Cole82
A. J. Cole, J. D. Kilkenny, P. T. Rumsby, R. G. Evans, C. J. Hooker, and M. H. Key. Measurement of Rayleigh-Taylor instability in a laser-accelerated target. Nature, 299:329, 1982.

Craxton86
R. Stephen Craxton, Robert L. McCrory, and John M. Soures. Progress in laser fusion. Scientific American, 255(2):68, 1986.

Crow75
J. E. Crow, P. L. Auer, and J. E. Allen. The expansion of a plasma into a vacuum. J. Plasma Phys., 14, part 1:65, 1975.

Dahlburg90
Jill P. Dahlburg and John H. Gardner. Ablative Rayleigh-Taylor instability in three dimensions. Phys. Rev. A, 41(10):5695, 1990.

Dahlburg93
J. P. Dahlburg, J. H. Gardner, G. D. Doolen, and S. W. Haan. The effect of shape in the three-dimensional ablative Rayleigh-Taylor instability. I: Single-mode perturbations. Phys. Fluids B, 5(2):571, 1993.

Dahlburg95
Jill P. Dahlburg, David E. Fyfe, John H. Gardner, Steven W. Haan, Stephen E. Bodner, and Gary D. Doolen. Three-dimensional multimode simulations of the ablative Rayleigh-Taylor instability. Phys. Plasmas, 2(6):2453, June 1995.

Daly67
Bart J. Daly. Numerical study of two fluid Rayleigh-Taylor instability. Phys. Fluids, 10(2):297, February 1967.

DaSilva97
L. B. Da Silva, P. Celliers, G. W. Collins, K. S. Budil, N. C. Holmes, T. W. Barbee Jr., B. A. Hammel, J. D. Kilkenny, R. J. Wallace, M. Ross, and R. Cauble. Absolute equation of state measurements on shocked liquid deuterium up to 200 GPa (2 Mbar). Phys. Rev. Lett., 78(3):483, January 1997.

Delettrez90
J. Delettrez, D. K. Bradley, P. A. Jaanimagi, and C. P. Verdon. Effect of barrier layers in burnthrough experiments with 351-nm laser illumination. Phys. Rev. A, 41(10):5583, 1990.

Delettrez94
J. Delettrez, D. K. Bradley, and C. P. Verdon. The role of the Rayleigh-Taylor instability in laser-driven burnthrough experiments. Phys. Plasmas, 1(7):2342, July 1994.

Desselberger90
M. Desselberger, O. Willi, M. Savage, and M. J. Lamb. Measurement of the Rayleigh-Taylor instability in targets driven by optically smoothed laser beams. Phys. Rev. Lett., 65(24):2997, December 1990.

Desselberger93
M. Desselberger and O. Willi. Measurement and analysis of Rayleigh-Taylor instability in targets driven by incoherent laser radiation. Phys. Fluids B, 5(3):896, 1993.

Dimonte93
Guy Dimonte and Bruce Remington. Richtmyer-Meshkov experiments on the Nova laser at high compression. Phys. Rev. Lett., 70(12):1806, March 1993.

Dimonte96
Guy Dimonte and Marilyn Schneider. Turbulent Rayleigh-Taylor instability experiments with variable acceleration. Phys. Rev. E, 54(4):3740, October 1996.

Dimonte98
Guy Dimonte, Robert Gore, and Marilyn Schneider. Rayleigh-Taylor instability in elastic-plastic materials. Phys. Rev. Lett., 80(6):1212, February 1998.

Dittrich94
T. R. Dittrich, B. A. Hammel, C. J. Keane, R. McEachern, R. E. Turner, S. W. Haan, and L. J. Suter. Diagnosis of pusher-fuel mix in indirectly driven Nova implosions. Phys. Rev. Lett., 73(17):2324, October 1994.

Drake98
R. P. Drake, S. G. Glendinning, Kent Estabrook, B. A. Remington, Richard McCray, R. J. Wallace, L. J. Suter, T. B. Smith, J. J. Carroll III, R. A. London, and E. Liang. Observation of forward shocks and stagnated ejecta driven by high-energy-density plasma flow. Phys. Rev. Lett., 81(10):2068, September 1998.

Dunne00
M. Dunne, K. Oades, C. Barnes, S. Rothman, P. Graham, and D. Youngs. AWE experiments on laser-driven mix in planar and convergent geometry. In Proceedings of the 7th International Workshop on the Physics of Compressible Turbulent Mixing. 2000. (St. Petersburg, Russia, July 5-9, 1999).

Emery82a
Mark H. Emery, John H. Gardner, and Jay P. Boris. Rayleigh-Taylor and Kelvin-Helmholtz instabilities in targets accelerated by laser ablation. Phys. Rev. Lett., 48(10):677, March 1982.

Emery82b
Mark H. Emery, John H. Gardner, and Jay P. Boris. Nonlinear aspects of hydrodynamic instabilities in laser ablation. Appl. Phys. Lett., 41(9):808, November 1982.

Emery86
Mark H. Emery, John H. Gardner, and Stephen E. Bodner. Strongly inhibited Rayleigh-Taylor growth with 0.25-m lasers. Phys. Rev. Lett., 57(6):703, 1986. However, see retraction[Emery89a].

Emery88
Mark H. Emery, Jill P. Dahlburg, and John H. Gardner. The Rayleigh-Taylor instability in ablatively accelerated targets with 1, 1/2, and 1/4 m laser light. Phys. Fluids, 31(5):1007, May 1988. This article retracted by Emery89a.

Emery89a
Mark H. Emery, Jill P. Dahlburg, and John H. Gardner. Erratum: ``The Rayleigh-Taylor instability in ablatively accelerated targets with 1, 1/2, and 1/4 m laser light'' [Phys. Fluids 31, 1007 (1988)]. Phys. Fluids B, 1(4):964, April 1989. Retraction of Emery88.

Emery89b
Mark H. Emery, John H. Gardner, and Stephen E. Bodner. Errata: Strongly inhibited Rayleigh-Taylor growth with 0.25-m lasers. Phys. Rev. Lett., 62(6):694, 1989.

Emmett74
John L. Emmett, John Nuckolls, and Lowell Wood. Fusion power by laser implosion. Scientific American, page 24, June 1974.

Endo95
T. Endo, K. Shigemori, H. Azechi, A. Nishiguchi, K. Mima, M. Sato, M. Nakai, S. Nakaji, N. Miyanaga, S. Matsuoka, A. Ando, K. A. Tanaka, and S. Nakai. Dynamic behavior of rippled shock waves and subsequently induced areal-density-perturbation growth in laser-irradiated foils. Phys. Rev. Lett., 74(18):3608, 1995.

Evans82
R. G. Evans, A. J. Bennett, and G. J. Pert. Rayleigh-Taylor instabilities in laser-accelerated targets. Phys. Rev. Lett., 49(22):1639, November 1982.

Evans96
Allan K. Evans. Instability of converging shock waves and sonoluminescence. Phys. Rev. E, 54(5):5004, November 1996.

Fews93
A. P. Fews, M. J. Lamb, and M. Savage. A technique to study Rayleigh-Taylor instability by alpha-particle backlighting. Laser Part. Beams, 11(1):257, 1993.

Fews94
A. P. Fews, M. J. Lamb, and M. Savage. 3-dimensional alpha-particle imaging of laser-driven implosions. Laser Part. Beams, 12(1):1, 1994.

Feynman49
R. P. Feynman, N. Metropolis, and E. Teller. Equations of state of elements based on the generalized Fermi-Thomas theory. Phys. Rev., 75(10):1561, May 1949.

Fisher82a
Henry N. Fisher. Instabilities in converging compressible systems, September 1982. Los Alamos National Laboratory Internal Memo X-1(5/82)22.

Fraley74
G. S. Fraley, E. J. Linnebur, R. J. Mason, and R. L. Morse. Thermonuclear burn characteristics of compressed deuterium-tritium microspheres. Phys. Fluids, 17(2):474, February 1974.

Freeman55
N. C. Freeman. A theory of the stability of plane shock waves. Proc. Roy. Soc. (London), A228:341, 1955.

Freeman57
N. C. Freeman. On the stability of plane shock waves. J. Fluid Mech., 2:397, 1957.

Freeman77
J. R. Freeman, M. J. Clauser, and S. L. Thompson. Rayleigh-Taylor instabilities in inertial-confinement fusion targets. Nucl. Fusion, 17(2):223, 1977.

Gamalii75
E. G. Gamalii, S. Yu. Gus'kov, O. N. Krokhin, and V. B. Rozanov. Possibility of determining the characteristics of laser plasma by measuring the neutrons of the DT reaction. JETP Lett., 21(2):70, January 1975. (ZhETF Pis. Red. 21, No. 2, 156--160 (January 20, 1975).

Gamaly90
E. G. Gamaly, I. G. Lebo, V. B. Rozanov, A. P. Favorsky, A. O. Fedyanin, E. E. Myshetskaya, and V. F. Tishkin. Nonlinear stage in the development of hydrodynamic instability in laser targets. Laser Part. Beams, 8(1--2):173, 1990.

Gardner81
John H. Gardner and Stephen E. Bodner. Wavelength scaling for reactor-size laser-fusion targets. Phys. Rev. Lett., 47(16):1137, 1981.

Gardner82
J. H. Gardner, D. L. Book, and I. B. Bernstein. Stability of imploding shocks in the CCW approximation. J. Fluid Mech., 114:41, 1982.

Gardner91
John H. Gardner, Stephen E. Bodner, and Jill P. Dahlburg. Numerical simulation of ablative Rayleigh-Taylor instability. Phys. Fluids B, 3(4):1070, 1991.

Glendinning92
S. G. Glendinning, S. V. Weber, P. Bell, L. B. DaSilva, S. N. Dixit, M. A. Henesian, D. R. Kania, J. D. Kilkenny H. T. Powell, R. J. Wallace, P. J. Wegner, J. P. Knauer, and C. P. Verdon. Laser-driven planar Rayleigh-Taylor instability experiments. Phys. Rev. Lett., 69(8):1201, August 1992.

Glimm88
J. Glimm and X. L. Li. Validation of the Sharp-Wheeler bubble merger model from experimental and computational data. Phys. Fluids, 31(8):2077, August 1988.

Goldman00
S. R. Goldman, Cris W. Barnes, S. E. Caldwell, D. C. Wilson, S. H. Batha, J. W. Grove, M. L. Gittings, W. W. Hsing, R. J. Kares, K. A. Klare, G. A. Kyrala, R. W. Margevicius, R. P. Weaver, and M. D. Wilke. Production of enhanced pressure regions due to inhomogeneities in inertial confinement fusion targets. Phys. Plasmas, 2000.

Goldman99
S. R. Goldman, S. E. Caldwell, M. D. Wilke, D. C. Wilson, Cris W. Barnes, W. W. Hsing, N. D. Delamater, G. T. Schappert, J. W. Grove, E. L. Lindman, J. M. Wallace, and R. P. Weaver. Shock structuring due to fabrication joints in targets. Phys. Plasmas, 6(8):3327, August 1999.

Goncharov96a
V. N. Goncharov, R. Betti, R. L. McCrory, P. Sorotokin, and C. P. Verdon. Self-consistent stability analysis of ablation fronts with large Froude numbers. Phys. Plasmas, 3(4):1402, April 1996.

Goncharov96b
V. N. Goncharov, R. Betti, R. L. McCrory, and C. P. Verdon. Self-consistent stability analysis of ablation fronts with small Froude numbers. Phys. Plasmas, 3(12):4665, December 1996.

Grun84
J. Grun, M. H. Emery, S. Kacenjar, C. B. Opal, E. A. McLean, S. P. Obenschain, B. H. Ripin, and A. Schmitt. Observation of the Rayleigh-Taylor instability in ablatively accelerated foils. Phys. Rev. Lett., 53(14):1352, 1984.

Grun87
J. Grun, M. E. Emery, C. K. Manka, T. N. Lee, E. A. McLean, A. Mostovych, J. Stamper, S. Bodner, S. P. Obenschain, and B. H. Ripin. Rayleigh-Taylor instability growth rates in targets accelerated with a laser beam smoothed by induced spatial incoherence. Phys. Rev. Lett., 58(25):2672, June 1987.

Gupta86
N. K. Gupta and S. V. Lawande. Phys. Rev. A, 33:2813, 1986. Not aware of Plesset[Gupta87].

Gupta87
N. K. Gupta and S. V. Lawande. Reply to ``comment on `Rayleigh-Taylor instability in spherical geometry' ''. Phys. Rev. A, 36(1):413, July 1987. (reply to [Mikaelian87]).

Haan89a
Steven W. Haan. Onset of nonlinear saturation for Rayleigh-Taylor growth in the presence of a full spectrum of modes. Phys. Rev. A, 39(11):5812, June 1989.

Haan91
S. W. Haan. Weakly nonlinear hydrodynamic instabilities in inertial fusion. Phys. Fluids B, 3(8):2349, August 1991.

Hammel93
B. A. Hammel, D. Griswold, O. L. Landen, T. S. Perry, B. A. Remington, P. L. Miller, T. A. Peyser, and J. D. Kilkenny. X-ray radiographic measurements of radiation-driven shock and interface motion in solid density material. Phys. Fluids B, 5(7):2259, 1993.

Hammel94
B. A. Hammel, J. D. Kilkenny, D. Munro, B. A. Remington, H. N. Kornblum, T. S. Perry, D. W. Phillion, and R. J. Wallace. X-ray radiographic imaging of hydrodynamic phenomena in radiation-driven materials --- Shock propagation, material compression, and shear flow. Phys. Plasmas, 1(5):1662, 1994.

Hammer96
James H. Hammer, James L. Eddleman, Paul T. Springer, Max Tabak, Arthur Toor, Keith L. Wong, George B. Zimmerman, Chris Deeney, Russ Humphreys, Thomas J. Nash, Thomas W. L. Sanford, Rick B. Spielman, and John S. De Groot. Two-dimensional radiation-magnetohydrodynamic simulations of SATURN imploding Z pinches. Phys. Plasmas, 3(5):2063, May 1996.

Harlow66
Francis H. Harlow and J. Eddie Welch. Numerical study of large-amplitude free-surface motions. Phys. Fluids, 9(5):842, May 1966.

Harlow71
Francis H. Harlow and Anthony A. Amsden. Fluid dynamics. Technical Report LA-4700, Los Alamos National Laboratory, June 1971.

Harris62
E. G. Harris. Rayleigh-Taylor instabilities of a collapsing cylindrical shell in a magnetic field. Phys. Fluids, 5(9):1057, September 1962.

Hasegawa96
Susumu Hasegawa and Katsunobu Nishihara. Ablation effects in weakly nonlinear stage of the ablative Rayleigh-Taylor instability. Laser Part. Beams, 14(1):45, 1996.

Hattori86
F. Hattori, H. Takabe, and K. Mima. Rayleigh-Taylor instability in a spherically stagnating system. Phys. Fluids, 29(5):1719, 1986.

Hauer86
A. Hauer, R. D. Cowan, B. Yaakobi, O. Barnouin, and R. Epstein. Absorption-spectroscopy diagnosis of pusher conditions in laser-driven implosions. Phys. Rev. A, 34(1):411, July 1986.

Hazak96
G. Hazak. Lagrangian formalism for the Rayleigh-Taylor instability. Phys. Rev. Lett., 76(22):4167, May 1996.

Henderson74a
D. B. Henderson and R. L. Morse. Symmetry of laser-driven implosions. Phys. Rev. Lett., 32(7):355, February 1974.

Henderson74b
D. B. Henderson, R. L. McCrory, and R. L. Morse. Ablation stability of laser-driven implosions. Phys. Rev. Lett., 33(4):205, July 1974.

Henshaw87
M. J. de C. Henshaw, G. J. Pert, and D. L. Youngs. Non-linear Rayleigh-Taylor instability in (spherical) laser accelerated targets. Plasma Phys. Controlled Fusion, 29(3):405, 1987.

Hoffman95
Nelson M. Hoffman. Hydrodynamic instabilities in inertial confinement fusion. In M. B. Hooper, editor, Laser Plasma Interactions 5: Inertial Confinement Fusion, page 105. Institute of Physics Publishing, Bristol, 1995. (Proceedings of the 45th Scottish Universities Summer School in Physics, St Andrews, August 1994).

Hsing97a
Warren W. Hsing and Nelson M. Hoffman. Measurement of feedthrough and instability growth in radiation-driven cylindrical implosions. Phys. Rev. Lett., 78(20):3876, 1997.

Hsing97b
W. W. Hsing, Cris W. Barnes, J. B. Beck, N. Hoffman, D. Galmiche, A. Richard, J. Edwards, P. Graham, S. Rothman, and B. Thomas. Rayleigh-Taylor instability evolution in ablatively driven cylindrical implosions. Phys. Plasmas, 4(5):1832, 1997.

Huba87
J. D. Huba, J. G. Lyon, and A. B. Hassam. Theory and simulation of the Rayleigh-Taylor instability in the limit of large Larmor radius. Phys. Rev. Lett., 59(26):2971, December 1987.

Huba89
J. D. Huba, A. B. Hassam, and P. Satyanarayana. Nonlocal theory of the Rayleigh-Taylor instability in the limit of unmagnetized ions. Phys. Fluids B, 1(4):931, April 1989.

Humphries98
Jr. Stanley Humphries and Carl Ekdahl. Finite-element simulation code for high-power magnetohydrodynamics. Laser Part. Beams, 16(3):405--430, 1998.

Hussey80
T. W. Hussey, N. F. Roderick, and D. A. Kloc. Scaline of (MHD) instabilities in imploding plasma liners. J. Appl. Phys., 51(3):1452, March 1980.

Hussey95
T. W. Hussey, N. F. Roderick, U. Shumlak, R. B. Spielman, and C. Deeney. A heuristic model for the nonlinear Rayleigh-Taylor instability in fast Z pinches. Phys. Plasmas, 2(6):2055, June 1995.

Ishizaki96
R. Ishizaki, K. Nishihara, H. Sakagami, and Y. Ueshima. Instability of a contact surface driven by a nonuniform shock wave. Phys. Rev. E, 53(6):5592, 1996.

Ishizaki97
R. Ishizaki and K. Nishihara. Propagation of a rippled shock wave driven by nonuniform laser ablation. Phys. Rev. Lett., 78(10):1920, March 1997.

Jacobs88a
J. W. Jacobs and I. Catton. Three-dimensional Rayleigh-Taylor instability Part 1. Weakly nonlinear theory. J. Fluid Mech., 187:329, 1988.

Jacobs88b
J. W. Jacobs and I. Catton. Three-dimensional Rayleigh-Taylor instability Part 2. Experiment. J. Fluid Mech., 187:353, 1988.

Jourdan97
G. Jourdan, L. Houas, and M. Billiotte. Density evolution within a shock accelerated gaseous interface. Phys. Rev. Lett., 78(3):452, January 1997.

Kacenjar82
S. Kacenjar, S. Skupsky, A. Entenberg, L. Goldman, and M. Richardson. Direct measurement of the fuel density-radius product in laser-fusion experiments. Phys. Rev. Lett., 49(7):463, August 1982.

Kacenjar84
S. Kacenjar, L. M. Goldman, A. Entenberg, and S. Skupsky. measurements in laser-produced implosions using elastically scattered ions. J. Appl. Phys., 56(7):2027, October 1984.

Kane99
J. Kane, R. P. Drake, and B. A. Remington. An evaluation of the Richtmyer-Meshkov instability in supernova remnant formation. Astrophys. J., 511(1 part 1):335, 1999.

Keane95
C. J. Keane, R. C. Cook, T. R. Dittrich, B. A. Hammel, W. K. Levedahl, O. L. Landen, S. Langer, D. H. Munro, and H. A. Scott. Diagnosis of pusher-fuel mix in spherical implosions using x-ray spectroscopy. Rev. Sci. Instrum., 66(1):689, January 1995.

Kerr88
Robert M. Kerr. Simulation of Rayleigh-Taylor flows using vortex blobs. J. Comput. Phys., 76:48, 1988.

Kessel74
C. G. M. van Kessel and R. Sigel. Observation of laser-driven shock waves in solid hydrogen. Phys. Rev. Lett., 33(17):1020, October 1974.

Kidder76
R. E. Kidder. Laser-driven compression of hollow shells: Power requirements and stability limitations. Nucl. Fusion, 16:3, 1976.

Kilkenny80
J. D. Kilkenny, J. D. Hares, C. S. Lewis, and P. T. Rumsby. Search for Rayleigh-Taylor instability in laser irradiated layered thin foil targets. J. Phys. D: Appl. Phys., 13:L123, 1980.

Kilkenny90
J. D. Kilkenny. Experimental results on hydrodynamic instabilities in laser-accelerated planar packages. Phys. Fluids B, 2(6):1400, June 1990.

Kull86a
H. J. Kull. Nonlinear free-surface Rayleigh-Taylor instability. Phys. Rev. A, 33(3):1957, March 1986.

Kull86b
H. J. Kull. Ablative stabilization in the incompressible Rayleigh-Taylor instability. Phys. Fluids, 29(7):2067, 1986.

Kull89
H. J. Kull. Incompressible description of Rayleigh-Taylor instabilities in laser-ablated plasmas. Phys. Fluids B, 1(1):170, 1989.

Larsen94
Jon T. Larsen and Stephen M. Lane. HYADES -- a plasma hydrodynamics code for dense plasma studies. J. Quant. Spectrosc. Radiat. Transfer, 51(1/2):179, 1994.

Layzer55
David Layzer. On the instability of superposed fluids in a gravitational field. Astrophys. J., 122(1):1, 1955.

LeLevier55
R. Le Levier, G. J. Lasher, and F. Bjorklund. Effect of a density gradient on Taylor instability. Technical Report UCRL-4459, LLNL, Livermore, 1955.

Lewis50
D. J. Lewis. The instability of liquid surfaces when accelerated in a direction perpendicular to their planes. II. Proc. Roy. Soc. (London), A202:81, 1950.

Lindl75
J. D. Lindl and W. C. Mead. Two-dimensional simulation of fluid instability in laser-fusion pellets. Phys. Rev. Lett., 34(20):1273, May 1975.

Lindl95
John Lindl. Development of the indirect-drive approach to inertial confinement fusion and the target physics basis for ignition and gain. Phys. Plasmas, 2(11):3933, November 1995. Preprint in UCRL-JC-119015 L-19821-1 PREPRINT.

Lindl96a
John D. Lindl. Time-dependent asymmetries in laser-fusion hohlraums: A response (part I). Comments Plasma Phys. Controlled Fusion, 1996.

Lindl96b
John D. Lindl. Time-dependent asymmetries in laser-fusion hohlraums: A response (part II). Comments Plasma Phys. Controlled Fusion, 1996.

Malone75
R. C. Malone, R. L. McCrory, and R. L. Morse. Indications of strongly flux-limited electron thermal conduction in laser-target experiments. Phys. Rev. Lett., 34(12):721, March 1975.

Manheimer84a
Wallace M. Manheimer and Denis G. Colombant. Slab model for Rayleigh-Taylor stabilization by vortex shedding, compressibility, thermal conduction, and ablation. Phys. Fluids, 27(4):983, April 1984.

Manheimer84b
Wallace Manheimer, Denis Colombant, and Edward Ott. Three-dimensional, nonlinear evolution of the Rayleigh-Taylor instability of a thin layer. Phys. Fluids, 27(8):2164, August 1984.

Marinak95
M. M. Marinak, B. A. Remington, S. V. Weber, R. E. Tipton, S. W. Haan, K. S. Budil, O. L. Landen, J. D. Kilkenny, and R. Wallace. Three-dimensional single mode Rayleigh-Taylor experiments on Nova. Phys. Rev. Lett., 75(20):3677, November 1995.

Marinak96
M. M. Marinak, R.E. Tipton, O. L. Landen, T. J. Murphy, P. Amendt, S. W. Haan, S. P. Hatchett, C. J. Keane, R. McEachern, and R. Wallace. Three-dimensional simulations of Nova high growth factor capsule implosion experiments. Phys. Plasmas, 3(5):2070, May 1996.

Marshall89
F. J. Marshall, S. A. Letzring, C. P. Verdon, S. Skupsky, R. L. Keck, J. P. Knauer, R. L. Kremens, D. K. Bradley, T. kessler, J. Delettrez, H. Kim, J. M. Soures, and R. L. McCrory. Cryogenic-laser-fusion target implosion studies performed with the OMEGA uv-laser system. Phys. Rev. A, 40(5):2547, September 1989.

Mason75
R. J. Mason. The calculated performance of structured laser fusion pellets. Nucl. Fusion, 15:1031, 1975.

McCrory76
R. L. McCrory and R. L. Morse. Turbulent pusher behavior. Phys. Fluids, 19(1):175, January 1976.

McCrory77
R. L. McCrory, R. L. Morse, and K. A. Taggart. Growth and saturation of instability of spherical implosions driven by laser or charged particle beams. Nucl. Sci. Eng., 64:163, 1977.

McCrory81a
R. L. McCrory, L. Montierth, R. L. Morse, and C. P. Verdon. Nonlinear evolution of ablation-driven Rayleigh-Taylor instability. Phys. Rev. Lett., 46(5):336, February 1981.

McCrory88
R. L. McCrory, J. M. Soures, C. P. Verdon, F. J. Marshall, S. A. Letzring, S. Skupsky, T. J. Kessler, R. L. Kremens, J. P. Knauer, H. Kim, J. Delettrez, R. L. Keck, and D. K. Bradley. Laser-driven implosion of thermonuclear fuel to 20 to 40 g cm. Nature, 335:225, September 1988.

McCrory90
R. L. McCrory, J. M. Soures, C. P. Verdon, F. J. Marshall, S. A. Letzring, T. J. Kessler, J. P. Knauer, H. Kim, R. L. Kremens, S. Skupsky, R. L. Keck, D. K. Bradley, W. D. Seka, P. A. Jaanimagi, J. A. Delettrez, and P. W. McKenty. High-density, direct-drive implosion experiments. Laser Part. Beams, 8(1--2):27, 1990.

Menikoff77
R. Menikoff, R. C. Mjolsness, D. H. Sharp, and C. Zemach. Unstable normal modes for Rayleigh-Taylor instability in viscous fluids. Phys. Fluids, 20(12):2000, December 1977.

Menikoff78
R. Menikoff, R. C. Jmolsness, D. H. Sharp, C. Zemach, and B. J. Doyle. Initial value problem for Rayleigh-Taylor instability of viscous fluids. Phys. Fluids, 21(10):1674, October 1978.

Menikoff83
Ralph Menikoff and Charles Zemach. Rayleigh-Taylor instability and the use of conformal maps for ideal fluid flow. J. Comput. Phys., 51:28, 1983.

Meshkov69
E. E. Meshkov. Instability of the interface of two gases accelerated by a shock wave. Izv. AN SSSR. Mekhanika Zhidkosti i Gaza, 4(5):151--157, 1969. (English Translation: Fluid Dynamics, page 101).

Meyer-ter-Vehn82
J. Meyer ter Vehn. On energy gain of fusion targets: The model of Kidder and Bodner improved. Nucl. Fusion, 22(4):561, April 1982.

Meyer72
K. A. Meyer and P. J. Blewett. Numerical investigation of the stability of a shock-accelerated interface between two fluids. Phys. Fluids, 15(5):753, May 1972.

Mikaelian85
Karnig O. Mikaelian. Richtmyer-Meshkov instabilities in stratified fluids. Phys. Rev. A, 31(1):410, 1985.

Mikaelian87
Karnig O. Mikaelian. Comment on ``Rayleigh=Taylor instability in spherical geometry''. Phys. Rev. A, 36(1):411, July 1987. (comment on [Gupta86]).

Mikaelian90a
Karnig O. Mikaelian. Rayleigh-Taylor and Richtmyer-Meshkov instabilities and mixing in stratified spherical shells. Phys. Rev. A, 42(6):3400, September 1990.

Mikaelian90b
Karnig O. Mikaelian. LASNEX simulations of the classical and laser-driven Rayleigh-Taylor instability. Phys. Rev. A, 42(8):4944, October 1990.

Mikaelian92
Karnig O. Mikaelian. Simple model for ablative stabilization. Phys. Rev. A, 46(10):6621, 1992.

Mikaelian96
Karnig O. Mikaelian. Rayleigh-Taylor instability in finite-thickness fluids with viscosity and surface tension. Phys. Rev. E, 54(4):3676, October 1996.

Mikaelian98
Karnig O. Mikaelian. Analytic approach to nonlinear Rayleigh-Taylor and Richtmyer-Meshkov instabilities. Phys. Rev. Lett., 80(3):508, January 1998.

Miles66
J. W. Miles. Taylor instability of a flat plate. Technical Report GAMD-7335 Category A, General Dynamics, General Atomic Division, August 1966. General Atomic Project 6000 under Contract No. AF26(601)-7155 to the Air Force Special Weapons Center.

Mitchner64
M. Mitchner and R. K. M. Landshoff. Rayleigh-Taylor instability for compressible fluids. Phys. Fluids, 7(6):863, June 1964.

Munro88
David H. Munro. Analytic solutions for Rayleigh-Taylor growth rates in smooth density gradients. Phys. Rev. A, 38(3):1433, 1988.

Munro89
David H. Munro. Rippled shock front solutions for testing hydrodynamic stability simulations. Phys. Fluids B, 1(1):134, 1989.

Nellis97
W. J. Nellis and S. T. Weir. Nellis and Weir reply. Phys. Rev. Lett., 78(26):5027, June 1997. Reply to comment by Besson97 about Weir96.

Nishimura88
H. Nishimura, H. Takabe, K. Mima, F. Hattori, H. Hasegawa, H. Azechi, M. Nakai, K. Kondo, T. Norimatsu, Y. Izawa, C. Yamanaka, and S. Nakai. Hydrodynamic instability in an ablatively imploded target irradiated by high power green lasers. Phys. Fluids, 31(10):2875, 1988.

Nuckolls72
John Nuckolls, Lowell Wood, Albert Thiessen, and George Zimmerman. Laser compression of matter to super-high densities: Thermonuclear (CTR) applications. Nature, 239:139, September 1972.

Ofer92
Dror Ofer, Dov Shvarts, Ze'ev Zinamon, and Steven A. Orszag. Mode coupling in nonlinear Rayleigh-Taylor instability. Phys. Fluids B, 4(11):3549, 1992.

Ofer96
D. Ofer, U. Alon, D. Shvarts, R. L. McCrory, and C. P. Verdon. Modal model for the nonlinear multimode Rayleigh-Taylor instability. Phys. Plasmas, 3(8):3073, August 1996.

Ott72
Edward Ott. Nonlinear evolution of the Rayleigh-Taylor instability in a thin layer. Phys. Rev. Lett., 29(21):1429, November 1972.

Peterson96
D. L. Peterson, R. L. Bowers, J. H. Brownell, A. E. Greene, K. D. McLenithan, T. A. Oliphant, N. F. Roderick, and A. J. Scannapieco. Two-dimensional modeling of magnetically driven Rayleigh-Taylor instabilities in cylindrical Z pinches. Phys. Plasmas, 3(1):368, January 1996.

Peyser95
T. A. Peyser, P. L. Miller, P. E. Stry, K. s. Budil, E. W. Burke, D. A. Wojtowicz, D. L. Griswold, B. A. Hammel, and D. W. Phillion. Measurement of radiation-driven shock-induced mixing from nonlinear initial perturbations. Phys. Rev. Lett., 75(12):2332, September 1995.

Plesset54a
M. S. Plesset. On the stability of fluid flows with spherical symmetry. J. Appl. Phys., 25(1):96, January 1954.

Plesset56a
M. S. Plesset and T. P. Mitchell. On the stability of the spherical shape of a vapor cavity in a liquid. Quart. Appl. Math., 13:419, 1956.

Plesset64
Milton S. Plesset and Din-Yu Hsieh. General analysis of the stability of superposed fluids. Phys. Fluids, 7(8):1099, August 1964.

Ratafia73
M. Ratafia. Experimental investigation of Rayleigh-Taylor instability. Phys. Fluids, 16(8):1207, August 1973.

Rayleigh00
Lord Rayleigh. Scientific Papers, volume II, chapter 100, page 200. Cambridge University Press, 1900. Investigation of the Character of the Equilibrium of an Incompressible Heavy Fluid of Variable Density.

Read84
K. I. Read. Experimental investigation of turbulent mixing by Rayleigh-Taylor instability. Physica, 12D:45, 1984.

Remington91
B. A. Remington, S. W. Haan, S. G. Glendinning, J. D. Kilkenny, D. H. Munro, and R. J. Wallace. Large growth Rayleigh-Taylor experiments using shaped laser pulses. Phys. Rev. Lett., 67(23):3259, December 1991.

Remington92
B. A. Remington, S. W. Haan, S. G. Glendinning, J. D. Kilkenny, D. H. Munro, and R. J. Wallace. Large growth, planar Rayleigh-Taylor experiments on Nova. Phys. Fluids B, 4(4):967, 1992.

Remington93a
B. A. Remington, S. V. Weber, S. W. Haan, J. D. Kilkenny, S. G. Glendinning, R. J. Wallace, W. H. Goldstein, B. G. Wilson, and J. K. Nash. Laser-driven hydrodynamic instability experiments. Phys. Fluids B, 5(7):2589, July 1993.

Remington94
B. A. Remington, S. V. Weber, M. M. Marinak, S. W. Haan, J. D. Kilkenny, R. Wallace, and G. Dimonte. Multimode Rayleigh-Taylor experiments on Nova. Phys. Rev. Lett., 73(4):545, July 1994.

Remington95a
B. A. Remington, S. V. Weber, M. M. Marinak, S. W. Haan, J. D. Kilkenny, R. J. Wallace, and G. Dimonte. Single-mode and multimode Rayleigh-Taylor experiments on Nova. Phys. Plasmas, 2(1):241, January 1995.

Richtmyer60
Robert D. Richtmyer. Taylor instability in shock acceleration of compressible fluids. Comm. Pure Appl. Mathematics, XIII:297, 1960.

Rightley97
P. M. Rightley, P. Vorobieff, and R. F. Benjamin. Evolution of a shock-accelerated thin fluid layer. Phys. Fluids, 9(6):1770, June 1997.

Roberts62
K. V. Roberts and J. B. Taylor. Magnetohydrodynamic equations for finite Larmor radius. Phys. Rev. Lett., 8(5):197, Mar 1962.

Roberts96
P. H. Roberts and C. C. Wu. Structure and stability of a spherical implosion. Phys. Lett. A, 213:59, April 1996.

Roderick83
N. F. Roderick, B. J. Kohn, W. F. McCullough, C. W. Beason, J. A. Lupo, J. D. Letterio, D. A. Kloc, and T. W. Hussey. Theoretical modeling of electromagnetically imploded plasma liners. Laser Part. Beams, 1(part 2):181, 1983.

Roderick86
N. F. Roderick and T. W. Hussey. Magnetic diffusion smoothing with application to the hydromagnetic Rayleigh-Taylor instability. J. Appl. Phys., 59(2):662, January 1986.

Rosen99
Mordecai D. Rosen. The physics issues that determine inertial confinement fusion target gain and driver requirements: A tutorial. Phys. Plasmas, 6(5):1690, May 1999.

Ruden97
E. L. Ruden and D. E. Bell. Rayleigh-Taylor stability criteria for elastic-plastic solid plates and shells. J. Appl. Phys., 82(1):163, July 1997.

Sakagami90a
H. Sakagami and K. Nishihara. Rayleigh-Taylor instability on the pusher-fuel contact surface of stagnating targets. Phys. Fluids B, 2(11):2715, 1990.

Sakagami90b
H. Sakagami and K. Nishihara. Three-dimensional Rayleigh-Taylor instability of spherical systems. Phys. Rev. Lett., 65(4):432, 1990.

Sanz94
J. Sanz. Self-consistent analytical model of the Rayleigh-Taylor instability in inertial confinement fusion. Phys. Rev. Lett., 73(20):2700, 1994.

Saumon91
Didier Saumon and Gilles Chabrier. Fluid hydrogen at high density: Pressure dissociation. Phys. Rev. A, 44(8):5122, October 1991.

Saumon92
Didier Saumon and Gilles Chabrier. Fluid hydrogen at high density: Pressure ionization. Phys. Rev. A, 46(4):2084, August 1992.

Saumon95
D. Saumon, G. Chabrier, and H. M. van Horn. An equation of state for low-mass stars and giant planets. Astrophys. J., 99:713, August 1995.

Scannapieco81
A. J. Scannapieco. Atmospheric type modes in laser fusion targets. Phys. Fluids, 24(9):1699, September 1981.

Schneider98
Marilyn B. Schneider, Guy Dimonte, and Bruce Remington. Large and small scale structure in Rayleigh-Taylor mixing. Phys. Rev. Lett., 80(16):3507, April 1998.

Sharp84a
D. H. Sharp. An overview of Rayleigh-Taylor instability. Physica, 12D:3, 1984.

Shiau74
J. N. Shiau, E. B. Goldman, and C. I. Weng. Linear stability analysis of laser-driven spherical implosions. Phys. Rev. Lett., 32(7):352, February 1974.

Shigemori97
K. Shigemori, H. Azechi, M. Nakai, M. Honda, K. Meguro, N. Miyanaga, H. Takabe, and K. Mima. Measurements of Rayleigh-Taylor growth rate of planar targets irradiated directly by partially coherent light. Phys. Rev. Lett., 78(2):250, January 1997.

Shvarts95
D. Shvarts, U. Alon, D. Ofer, R. L. McCrory, and C. P. Verdon. Nonlinear evolution of multimode Rayleigh-Taylor instability in two and trhee dimensions. Phys. Plasmas, 2(6):2465, June 1995.

Skupsky81
Stanley Skupsky and Steve Kacenjar. Measuring fuel for inertial fusion experiments using neutron elastic-scattering reactions. J. Appl. Phys., 52(4):2608, April 1981.

Steinberg80
D. J. Steinberg, S. G. Cochran, and M. W. Guinan. A constitutive model for metals applicable at high-strain rate. J. Appl. Phys., 51(3):1498, March 1980.

Sweeney81
M. A. Sweeney and F. C. Perry. Investigation of shell stability in imploding cylindrical targets. J. Appl. Phys., 52(7):4487, 1981.

Swegle85
J. W. Swegel and D. E. Grady. Shock viscosity and the prediction of shock wave rise times. J. Appl. Phys., 58(2):692, July 1985.

Tabak90
M. Tabak, D. H. Munro, and J. D. Lindl. Hydrodynamic stability and the direct drive approach to laser fusion. Phys. Fluids B, 2(5):1007, 1990.

Tahir98
Naeem A. Tahir and Dieter H. H. Hoffmann. Burn characteristics of advanced fuel inertial fusion targets. Fusion Tech., 33:164, March 1998.

Takabe83
H. Takabe, L. Montierth, and R. L. Morse. Self-consistent eigenvalue analysis of Rayleigh-Taylor instability in an ablating plasma. Phys. Fluids, 26(8):2299, August 1983.

Takabe85
H. Takabe, K. Mima, L. Montierth, and R. L. Morse. Self-consistent growth rate of the Rayleigh-Taylor instability in an ablatively accelerating plasma. Phys. Fluids, 28(12):3676, December 1985.

Taylor50
Geoffrey Taylor. The instability of liquid surfaces when accelerated in a direction perpendicular to their planes. I. Proc. Roy. Soc. (London), A201:192, 1950.

Taylor97
R. J. Taylor, A. L. Velikovich, J. P. Dahlburg, and J. H. Gardner. Saturation of laser imprint on ablatively driven plastic targets. Phys. Rev. Lett., 79(10):1861, September 1997.

Town91
R. P. J. Town and A. R. Bell. Three-dimensional simulations of the implosion of inertial confinement fusion targets. Phys. Rev. Lett., 67(14):1863, 1991.

Town94
R. P. J. Town, B. J. Jones, J. D. Findlay, and A. R. Bell. Three-dimensional simulations of the Rayleigh-Taylor instability during the deceleration phase. Laser Part. Beams, 12(2):163, 1994.

Trainor79
R. J. Trainor, J. W. Shaner, J. M. Auerbach, and N. C. Holmes. Ultrahigh-pressure laser-driven shock-wave experiments in aluminum. Phys. Rev. Lett., 42(17):1154, April 1979.

Tryggvason88
Grétar Tryggvason. Numerical simulations of the Rayleigh Taylor instability. J. Comput. Phys., 75(2):253, April 1988.

Tubbs99a
D. L. Tubbs, C. W. Barnes, J. B. Beck, N. M. Hoffman, J. A. Oertel, R. G. Watt, T. Boehly, D. Bradley, and J. Knauer. Direct drive cylindrical implosion experiments: Simulations and data. Laser Part. Beams, 17(3):437, 1999.

Tubbs99b
David L. Tubbs, Cris W. Barnes, J. Bradley Beck, Nelson M. Hoffman, John A. Oertel, Robert G. Watt, Thomas Boehly, David Bradley, Paul Jaanimagi, and James Knauer. Cylindrical implosion experiments using laser direct drive. Phys. Plasmas, 6(5):2095, May 1999.

Veeser78
L. R. Veeser and J. C. Solem. Studies of laser-driven shock waves in aluminum. Phys. Rev. Lett., 40(21):1391, May 1978.

Velikovich95
A. L. Velikovich and J. Davis. Implosions, equilibria, and stability of rotating, radiating Z-pinch plasmas. Phys. Plasmas, 2(12):4513, December 1995.

Velikovich96a
Alexander L. Velikovich and Guy Dimonte. Nonlinear perturbation theory of the incompressible Richtmyer-Meshkov instability. Phys. Rev. Lett., 76:3112, 1996.

Velikovich96b
Alexander L. Velikovich, F. L. Cochran, and J. Davis. Suppression of Rayleigh-Taylor instability in Z-pinch loads with tailored density profiles. Phys. Rev. Lett., 77(5):853, July 1996.

Verdon82a
C. P. Verdon, R. L. McCrory, R. L. Morse, G. R. Baker, D. I. Meiron, and S. A. Orszag. Nonlinear effects of multifrequency hydrodynamic instabilities on ablatively accelerated thin shells. Phys. Fluids, 25(9):1653, September 1982.

Wark86
J. S. Wark, J. D. Kilkenny, A. J. Cole, M. H. Key, and P. T. Rumsby. Observations of the Rayleigh-Taylor instability in laser imploded microballoons. Appl. Phys. Lett., 48(15):969, 1986.

Watanabe92
Masato Watanabe and Kazuyoshi Takayama. Stability of converging cylindrical shock waves. JSME International Journal, 35(2):218, 1992. Series II.

Weber94
S. V. Weber, B. A. Remington, S. W. Haan, B. G. Wilson, and J. K. Nash. Modeling of Nova indirect drive Rayleigh-Taylor experiments. Phys. Plasmas, 1(11):3652, 1994.

Weir96
S. T. Weir, A. C. Mitchell, and W. J. Nellis. Metallization of fluid molecular hydrogen at 140 GPa (1.4 Mbar). Phys. Rev. Lett., 76(11):1860, March 1996. See comment by Besson97 and response Nellis97.

Weir98
S. T. Weir, E. A. Chandler, and B. T. Goodwin. Rayleigh-Taylor instability experiments examining feedthrough growth in an incompressible, convergent geometry. Phys. Rev. Lett., 80(17):3763, April 1998.

Whitlock84
R. R. Whitlock, M. H. Emery, J. A. Stamper, E. A. McLean, S. P. Obenschain, and M. C. Peckerar. Observation of Rayleigh-Taylor-like structures in a laser-accelerated foil. Phys. Rev. Lett., 52(10):819, 1984.

Wilson98
Douglas C. Wilson, Paul A. Bradley, Nelson M. Hoffman, Fritz J. Swenson, David P. Smitherman, Robert E. Chrien, Robert W. Margevicius, D. J. Thoma, Larry R. Foreman, James K. Hoffer, S. Robert Goldman, Stephen E. Caldwell, Thomas R. Dittrich, Steven W. Haan, Michael M. Marinak, Stephen M. Pollaine, and Jorge J. Sanchez. The development and advantages of beryllium capsules for the National Ignition Facility. Phys. Plasmas, 5(5):1953, May 1998.

Winske96
D. Winske. Regimes of the magnetized Rayleigh-Taylor instability. Phys. Plasmas, 3(11):3966, November 1996.

Winske97
D. Winske. The magnetized Rayleigh-Taylor instability with a temporally variable gravity. Phys. Plasmas, 4(7):2454, 1997.

Woodward84
Paul Woodward and Phillip Colella. The numerical simulation of two-dimensional fluid flow with strong shocks. J. Comput. Phys., 54:115, 1984.

Woolsey97
N. C. Woolsey, B. A. Hammel, C. J. Keane, A. Asfaw, C. A. BAck, J. C. Moreno, J. K. Nash, A. Calisti, C. Mossé, R. Stamm, B. Talin, L. Klein, and R. W. Lee. Evolution of electron temperature and electron density in indirectly driven spherical implosions. Phys. Rev. E, 56(2):2314, August 1997.

Wouchuk95
J. G. Wouchuk and A. R. Piriz. Growth rate reduction of the Rayleigh-Taylor instability by ablative convection. Phys. Plasmas, 2(2):493, 1995.

Wouchuk96
Juan Gustavo Wouchuk and Katsunobu Hishihara. Linear perturbation growth at a shocked interface. Phys. Plasmas, 3(10):3761, October 1996.

Yaakobi80
B. Yaakobi, S. Skupsky, R. L. McCrory, C. F. Hooper, H. Deckman, P. Bourke, and J. M. Soures. Symmetric laser compression of argon-filled glass shells to densities of 4--6 g/cm. Phys. Rev. Lett., 44(16):1072, April 1980.

Yabe91
T. Yabe, H. Hoshino, and T. Tsuchiya. Two- and three-dimensional behavior of Rayleigh-Taylor and Kelvin-Helmholtz instabilities. Phys. Rev. A, 44(4):2756, 1991.

Yang94
Yumin Yang, Qiang Zhang, and David H. Sharp. Small amplitude theory of Richtmyer-Meshkov instability. Phys. Fluids, 6(5):1856, 1994.

Youngs84
David L. Youngs. Numerical simulation of turbulent mixing by Rayleigh-Taylor instability. Physica, 12D:32, 1984.

Youngs89
David L. Youngs. Modelling turbulent mixing by Rayleigh-Taylor instability. Physica D, 37:270, 1989.

Youngs91
David L. Youngs. Three-dimensional numerical simulation of turbulent mixing by Rayleigh-Taylor instability. Phys. Fluids A, 3(5):1312, May 1991.

Youngs92
D. L. Youngs. Rayleigh-Taylor instability: Numerical simulation and experiment. Plasma Phys. Controlled Fusion, 34(13):2071, 1992.

Zhang96
Qiang Zhang and Sung-Ik Sohn. An analytical nonlinear theory of Richtmyer-Meshkov instability. Phys. Lett. A, 212:149, March 1996.

Zhang97
Qiang Zhang and Sung-Ik Sohn. Nonlinear theory of unstable fluid mixing driven by shock wave. Phys. Fluids, 9(4):1106, April 1997.

Zimmerman75a
G. B. Zimmerman and W. L. Kruer. Numerical simulation of laser-initiated fusion. Comments Plas. Phys, 2(2):51, 1975. (LASNEX).


Cris W. Barnes
Thu Apr 6 13:10:06 MDT 2000