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cyracc.def =mcyr10 scaled

References

Ag84
Á. Ág, Gy. Páris, and G. Németh. Magnetic surfaces in a non-linear time-dependent compact torus. Plasma Phys. Controlled Fusion, 26(8):959--969, 1984.

al-Karkhy93
A. al Karkhy, P. K. Browning, G. Cunningham, S. J. Gee, and M. G. Rusbridge. Observations of the magnetohydrodynamic dynamo effect in a spheromak plasma. Phys. Rev. Lett., 70(12):1814, 1993.

Alfven60
H. Alfvén, L. Lindberg, and P. Mitlid. Experiments with plasma rings. Journal of Nuclear Energy, Part C: Plasma Physics, 1:116, 1960.

An80
Z. G. An, A. Bondeson, H. Bruhns, H. H. Chen, Y. P. Chong, J. M. Finn, G. C. Goldenbaum, H. R. Griem, G. W. Hart, R. Hess, J. H. Irby, Y. C. Lee, C. S. Liu, W. M. Manheimer, G. Marklin, and E. Ott. Spheromak tilting instability: Experiment and theory. In Plasma Physics and Controlled Nuclear Fusion Research, 1980, volume I, page 493. IAEA, Vienna, 1980. Brussels Conference.

Armstrong80
W. T. Armstrong, D. C. Barnes, R. R. Bartsch, R. J. Commisso, C. A. Ekdahl, I. Henins, D. W. Hewitt, H. W. Hoida, T. R. Jarboe, C. J. Lilliequist, R. K. Linford, J. Marshall, K. F. McKenna, J. P. Mondt, D. A. Platts, C. E. Seyler, A. R. Sherwood, E. G. Sherwood, R. E. Siemon, and M. G. Tuszewski. Compact toroid experiments and theory. In Plasma Physics and Controlled Nuclear Fusion Research, 1980, volume I, page 481. IAEA, Vienna, 1981. Brussels Conference.

Auerbach81
S. P. Auerbach. Classical diffusion in a field-reversed mirror. Nucl. Fusion, 21:927, 1981.

Auerbach82
Steven P. Auerbach. Analytic model of the radiation-dominated decay of a compact toroid. Phys. Fluids, 25(7):1108, 1982.

Barnes84
Cris W. Barnes, T. R. Jarboe, I. Henins, A. R. Sherwood, S. O. Knox, R. Gribble, H. W. Hoida, P. L. Klingner, C. G. Lilliequist, R. K. Linford, D. A. Platts, R. L. Spencer, and M. Tuszewski. Spheromak formation and operation with background filling gas and a solid flux conserver in CTX. Nucl. Fusion, 24(3):267, 1984.

Barnes85a
Cris W. Barnes, T. R. Jarboe, H. W. Hoida, B. L. Wright, Russell A. Hulse, and D. E. Post. Zero-dimensional energy balance modeling of the CTX spheromak experiment. Nucl. Fusion, 25(11):1657, 1985.

Barnes85b
Cris W. Barnes, H. W. Hoida, I. Henins, J. C. Fernández, T. R. Jarboe, and G. J. Marklin. Increased particle confinement observed with the use of an external dc bias field in a spheromak experiment. Phys. Fluids, 28(12):3443, 1985.

Barnes86
Cris W. Barnes, J. C. Fernández, I. Henins, H. W. Hoida, T. R. Jarboe, S. O. Knox, G. J. Marklin, and K. F. McKenna. Experimental determination of the conservation of magnetic helicity from the balance between source and spheromak. Phys. Fluids, 29(10):3415, 1986.

Barnes88
D. C. Barnes. Mechanical injection of magnetic helicity. Phys. Fluids, 31(8):2214, 1988.

Barnes90
Cris W. Barnes, T. R. Jarboe, G. J. Marklin, S. O. Knox, and I. Henins. The impedance and energy efficiency of a coaxial magnetized plasma source used for spheromak formation and sustainment. Phys. Fluids B, 2(8):1871, 1990.

Barrow92
B. J. Barrow and G. C. Goldenbaum. Vacuum-plasma boundary helicity injection. Phys. Fluids B, 4(8):2577, 1992.

Bellan84
P. M. Bellan. Physical model of current drive by ac helicity injection. Phys. Fluids, 27(8):2191, 1984.

Bellan85
P. M. Bellan. Mode-beating model of ac helicity injection. Phys. Rev. Lett., 54(13):1381, 1985.

Bellan91
P. M. Bellan. Current drive by (I) spheromak injection into a tokamak and (II) low frequency RF waves. In S. Ortolani and E. Sindoni, editors, Physics of Alternative Magnetic Confinement Schemes, page 733. Società Italiana de Fisica, Bologna, Italy, 1991. Proceedings of the Workshop held at Varenna, Italy, October 1990.

Bellan98
P. M. Bellan and J. F. Hansen. Laboratory simulations of solar prominence eruptions. Phys. Plasmas, 5(5):1991, May 1998.

Berger84
Mitchell A. Berger and George B. Field. The topological properties of magnetic helicity. J. Fluid Mech., 147:133, 1984.

Berk82
Herbert L. Berk, James H. Hammer, and James W. Shearer. Reconnection conditions for a coaxial plasma gun. Phys. Fluids, 25(1):102, 1982.

Bhattacharjee82
A. Bhattacharjee and R. L. Dewar. Energy principle with global invariants. Phys. Fluids, 25(5):887, 1982.

Bhattacharjee86
A. Bhattacharjee and Y-C. Kwok. Relaxation of toroidal plasmas with finite pressure. Phys. Fluids, 29(4):1156, 1986.

Bhattacharjee86b
A. Bhattacharjee and Eliezer Hameiri. Self-consistent dynamolike activity in turbulent plasmas. Phys. Rev. Lett., 57(2):206, 1986.

Bohnet95
M. A. Bohnet, J. P. Galambos, T. R. Jarboe, A. T. Mattick, and G. G. Spanjers. The transient internal probe: A novel method for measuring internal magnetic field profiles. Rev. Sci. Instrum., 66(2):1197, 1995.

Bondeson81
A. Bondeson, G. Marklin, Z. G. An, H. H. Chen, Y. C. Lee, and C. S. Liu. Tilting instability of a cylindrical spheromak. Phys. Fluids, 24(9):1682, 1981.

Boozer88
Allen H. Boozer. Power requirements for current drive. Phys. Fluids, 31(3):59, 1988.

Boozer88b
Allen H. Boozer. Oscillating field current drive in spheromaks. Phys. Fluids, 31(11):3338, 1988.

Bostick63
Winston H. Bostick and Daniel R. Wells. Azimuthal magnetic field in the conical theta pinch. Phys. Fluids, 6(9):1325, 1963.

Brennan99
D. Brennan, P. K. Browning, R. A. M. Van der Linden, A. W. Hood, and S. Woodruff. Stability studies and the origin of the n=1 mode in the SPHEX spheromak experiment. Phys. Plasmas, 6(11):4248, November 1999.

Brown90a
M. R. Brown and P. M. Bellan. Current drive by spheromak injection into a tokamak. Phys. Rev. Lett., 64(18):2144, 1990.

Brown90b
M. R. Brown and P. M. Bellan. Spheromak injection into a tokamak. Phys. Fluids B, 2(6):1306, 1990.

Brown91a
M. R. Brown, D. M. Cutrer, and P. M. Bellan. Motion and equilibrium of a spheromak in a toroidal flux conserver. Phys. Fluids B, 3(5):1198, 1991.

Brown91b
M. R. Brown, A. D. Bailey III, and P. M. Bellan. Characterization of a spheromak plasma gun: The effect of refractory electrode coatings. J. Appl. Phys., 69(9):6302, 1991.

Brown92
M. R. Brown and P. M. Bellan. Efficiency and scaling of current drive and refuelling by spheromak injection into a tokamak. Nucl. Fusion, 32(7):1125, 1992.

Brown96
Michael R. Brown and Adam Martin. Spheromak experiment using separate guns for formation and sustainment. Fusion Tech., 30:300, Dec 1996.

Browning91a
P. K. Browning, R. Duck, R. Martin, and M. G. Rusbridge. Magnetic equilibria in spheromaks and low aspect ratio tokamaks. In Controlled Fusion and Plasma Physics, page 257, Berlin, 1991. European Physical Society. Volume II (Berlin Conference).

Browning91b
P. K. Browning, G. Cunningham, S. J. Gee, A. al Karkhy, D. A. Kitson, R. Martin, and M. G. Rusbridge. Observations of plasma behaviour in the SPHEX spheromak. In S. Ortolani and E. Sindoni, editors, Physics of Alternative Magnetic Confinement Schemes, page 171. Società Italiana de Fisica, Bologna, Italy, 1991. Proceedings of the Workshop held at Varenna, Italy, October 1990.

Browning91c
P. K. Browning, G. Cunningham, S. J. Gee, D. A. Kitson, R. Martin, and M. G. Rusbridge. The operation of the spheromak SPHEX with a central conductor. In S. Ortolani and E. Sindoni, editors, Physics of Alternative Magnetic Confinement Schemes, page 1047. Società Italiana de Fisica, Bologna, Italy, 1991. Proceedings of the Workshop held at Varenna, Italy, October 1990.

Browning92a
P. K. Browning, G. Cunningham, S. J. Gee, K. J. Gibson, A. al Karkhy, D. A. Kitson, R. Martin, and M. G. Rusbridge. Power flow in a gun-injected spheromak plasma. Phys. Rev. Lett., 68(11):1718, 1992.

Browning92b
P. K. Browning, G. Cunningham, R. Duck, S. J. Gee, K. J. Gibson, D. A. Kitson, R. Martin, and M. G. Rusbridge. Injection and sustainment of plasma in a preexisting toroidal field using a coaxial helicity source. Phys. Rev. Lett., 68(11):1722, 1992.

Browning93
P. K. Browning, J. R. Clegg, R. C. Duck, and M. G. Rusbridge. Relaxed and partially relaxed magnetic equilibria in tight-aspect-ratio tori. Plasma Phys. Controlled Fusion, 35:1563, 1993.

Bruhns83
H. Bruhns, C. Chin-Fatt, Y. P. Chong, A. W. DeSilva, G. C. Goldenbaum, H. R. Griem, G. W. Hart, R. A. Hess, J. H. Irby, and R. S. Shaw. Experimental studies of spheromak formation. Phys. Fluids, 26(6):1616, 1983.

Bruhns87
H. Bruhns, R. Brendel, G. Raupp, and J. Steiger. Study of the low aspect ratio limit tokamak in the Heidelberg Spheromak Experiment. Nucl. Fusion, 27(12):2178, 1987.

Brushlinskii74
K. V. Brushlinskii and A. I. Morozov. Calculation of two-dimensional plasma flows in channels. In M. A. Leontovich, editor, Reviews of Plasma Physics, volume 8, page 105. Consultants Bureau, New York, 1980.

Bussac79
M. N. Bussac, H. P. Furth, M. Okabayashi, M. N. Rosenbluth, and A. M. M. Todd. Los-aspect-ratio limit of the toroidal reactor: The spheromak. In Plasma Physics and Controlled Nuclear Fusion Research, 1978, volume III, page 249. IAEA, Vienna, 1979. Innsbruck Conference.

Caramana83
E. J. Caramana, R. A. Nebel, and D. D. Schnack. Nonlinear, single-helicity magnetic reconnection in the reversed-field pinch. Phys. Fluids, 26(5):1305, 1983.

Carolan83
P. G. Carolan and V. A. Piotrowicz. The behaviour of impurities out of coronal equilibrium. Plasma Phys., 25(10):1065, 1983.

Chin-Fatt93
C. Chin-Fatt, A. W. DeSilva, G. C. Goldenbaum, R. Hess, C. Coté, A. Filuk, J.-L. Gauvreau, and F. K. Hwang. Formation and decay of a spheromak plasma. Phys. Fluids B, 5(6):1816, 1993.

Chodura75
R. Chodura, C. T. Dum, M. Keilhacker, M. Kornherr, H. Niedermeyer, R. Protz, F. Söldner, and K. H. Steuer. Numerical and experimental results on the production of weakly compressed thermonuclear plasmas in the Garching high-voltage theta and belt pinch. In Plasma Physics and Controlled Nuclear Fusion Research, 1974, volume III, page 397. IAEA, Vienna, 1975. Tokyo Conference.

Chrien91
R. E. Chrien, J. C. Fernández, I. Henins, R. M. Mayo, and F. J. Wysocki. Evidence for runaway electrons in a spheromak plasma. Nucl. Fusion, 31(7):1390, 1991.

Cohen97
R. H. Cohen, E. B. Hooper, L. L. LoDestro, N. Mattor, L. D. Pearlstein, and D. D. Ryutov. Theoretical issues in spheromak research. Technical Report UCRL-ID-127002, Lawrence Livermore National Laboratory, April 1997.

Cunningham97
G. Cunningham. Impurities and impurity transport in the spheromak SPHEX. Plasma Phys. Controlled Fusion, 39:1339, 1997.

Darrow90
D. S. Darrow, M. Ono, C. B. Forest, G. J. Greene, Y. S. Hwang, H. K. Park, R. J. Taylor, P. A. Pribyl, J. D. Evans, K. F. Lai, and J. R. Liberati. Properties of dc helicity injected tokamak plasmas. Phys. Fluids B, 2(6):1415, 1990.

Darrow91
D. S. Darrow, C. B. Forest, G. J. Greene, Y. S. Hwang, M. Ono, R. J. Taylor, P. A. Pribyl, J. D. Evans, K. F. Lai, and J. R. Liberati. Results of dc helicity injection experiments for tokamak current drive. In Plasma Physics and Controlled Nuclear Fusion Research, 1990. IAEA, Vienna, 1991. (Washington Conference).

Dasgupta95
Brahmananda Dasgupta, Tetsuya Sato, Takaya Hayashi, Kunihiko Watanabe, and Tomohiko Watanabe. Formation of a field-reversed configuration by coalescence of spheromaks. Trans. Fusion Tech., 27:374, April 1995. Proceedings Toki.

Degnan91
J. H. Degnan, B. W. Mullins, J. D. Beason, M. E. Dearborn, D. Deitz, K. E. Hackett, J. L. Holmes, E. L. Ruden, D. W. Price, C. R. Sovinec, G. Bird, S. K. Coffey, S. W. Seiler, G. F. Kiuttu, R. E. Peterkin, N. F. Roderick, and P. J. Turchi. Compact toroid formation experiments at the Weapons Laboratory. In S. Ortolani and E. Sindoni, editors, Physics of Alternative Magnetic Confinement Schemes, page 965. Società Italiana de Fisica, Bologna, Italy, 1991. Proceedings of the Workshop held at Varenna, Italy, October 1990.

Degnan93
J. H. Degnan, R. E. Peterkin, Jr., G. P. Baca, J. D. Beason, D. E. Bell, M. E. Dearborn, D. Dietz, M. R. Douglas, S. E. Englert, T. J. Englert, K. E. Hackett, J. H. Holmes, T. W. Hussey, G. F. Kiuttu, F. M. Lehr, G. J. Marklin, B. W. Mullins, D. W. Price, N. F. Roderick, E. L. Ruden, C. R. Sovinec, P. J. Turchi, G. Bird, S. K. Coffey, S. W. Seiler, Y. G. Chen, D. Gale, J. D. Graham, M. Scott, and W. Sommars. Compact toroid formation, compression, and acceleration. Phys. Fluids B, 5(8):2938, 1993.

Degnan95
J. H. Degnan, G. P. Baca, D. E. Bell, g. Bird, A. L. Chesley, S. K. coffey, M. E. Dearborn, M. R. Douglas, S. E. Englert, T. J. Englert, D. Gale, J. D. Graham, K. E. Hackett, J. H. Holmes, T. W. Hussey, G. F. Kiuttu, F. M. Lehr, G. J. Marklin, B. W. Mullins, R. E. Peterkin, Jr., D. W. Price, N. F. Roderick, E. L. Ruden, M. Scott, S. W. Seiler, W. Sommars, and P. J. Turchi. Compression of compact toroids in conical-coaxial geometry. Fusion Tech., 27:107, March 1995.

DeLucia84a
J. DeLucia, S. C. Jardin, and A. H. Glasser. Resistive stability of the cylindrical spheromak. Phys. Fluids, 27(6):1470, 1984.

DeLucia84b
J. DeLucia and S. C. Jardin. Nonlinear evolution of the resistive interchange mode in the cylindrical spheromak. Phys. Fluids, 27(7):1773, 1984.

Dixon90
A. M. Dixon, P. K. Browning, M. K. Bevir, C. G. Gimblett, and E. R. Priest. Relaxed states in a spheromak with inhomogeneous boundary fields. J. Plasma Phys., 43, Part 3:357, 1990.

Farengo94
Ricardo Farengo and Jorge R. Sobehart. Minimum ohmic dissipation and DC helicity injection in tokomak-like plasmas. Plasma Phys. Controlled Fusion, 36:1691, 1994.

Fernandez88
J. C. Fernández, Cris W. Barnes, T. R. Jarboe, I. Henins, H. W. Hoida, P. Klingner, S. O. Knox, G. J. Marklin, and B. L. Wright. Energy confinement studies in spheromaks with mesh flux conservers. Nucl. Fusion, 28(9):1555, 1988.

Fernandez89
J. C. Fernández, B. L. Wright, G. J. Marklin, D. A. Platts, and T. R. Jarboe. The m=1 helicity source spheromak experiment. Phys. Fluids B, 1(6):1254, 1989.

Fernandez90
J. C. Fernández, T. R. Jarboe, S. O. Knox, I. Henins, and G. J. Marklin. Ion heating and current drive from relaxation in decaying spheromaks in mesh flux conservers. Nucl. Fusion, 30(1):67, 1990.

Fernandez90b
Juan Fernandez. Spheromak capable of accelerating hypervelocity projectiles. Defense Science Update, 2(6):1, August 1990. LA-CP-90-395.

Fernandez91
J. C. Fernández, R. E. Chrien, F. J. Wysocki, R. M. Mayo, and I. Henins. A view on advances in spheromak understanding and parameters. In S. Ortolani and E. Sindoni, editors, Physics of Alternative Magnetic Confinement Schemes, page 191. Società Italiana de Fisica, Bologna, Italy, 1991. Proceedings of the Workshop held at Varenna, Italy, October 1990.

Finn81
John M. Finn, Wallace M. Manheimer, and Edward Ott. Spheromak tilting instability in cylindrical geometry. Phys. Fluids, 24(7):1336, 1981.

Finn81b
John Finn and Allan Reiman. Free boundary n=1 magnetohydrodynamic modes in spheromaks with line tying. Phys. Rev. A, 24(5):2835--2838, 1981.

Finn82
John M. Finn and Allan Reiman. Tilt and shift mode stability in spheromaks with line tying. Phys. Fluids, 25(1):116, 1982.

Finn83
John M. Finn, Wallace M. Manheimer, and Thomas M. Antonsen. Drift-resistive interchange and tearing modes in cylindrical geometry. Phys. Fluids, 26(4):962, 1983.

Finn83b
John M. Finn and Thomas M. Antonsen, Jr. Turbulent relaxation of compressible plasmas with flow. Phys. Fluids, 26(12):3540, 1983.

Finn84
John M. Finn and J. F. Drake. Magnetic curvature-drift instability. Phys. Rev. Lett., 53(24):2308, 1984.

Finn84b
John M. Finn. Tilt and shift mode stability in a spheromak with a flux core. Phys. Fluids, 27(12):2973--2975, 1984.

Finn85
John M. Finn and T. M. Antonsen, Jr. Magnetic helicity: What is it, and what is it good for? Comments Plasma Phys. Controlled Fusion, 9(3):111, 1985.

Finn86
John M. Finn and J. F. Drake. Magnetic curvature drift instability. PF, 29:3672, 1986.

Finn88
John M. Finn and Thomas M. Antonsen, Jr. Magnetic helicity injection for configurations with field errors. Phys. Fluids, 31:3012, 1988.

Finn91
John M. Finn and Parvez N. Guzdar. Formation of a flux core spheromak. Phys. Fluids B, 3(4):1041, 1991.

Fowler94
T. Kenneth Fowler, Jill S. Hardwick, and Thomas R. Jarboe. On the possibility of Ohmic ignition in a spheromak. Comments Plasma Phys. Controlled Fusion, 16(2):91, 1994.

Freire85
E. M. Freire and R. A. Clemente. Critical beta for analytical spheromak equilibria. Plasma Phys. Controlled Fusion, 27(4):389--394, 1985.

Furth83
H. P. Furth. Compact tori. Nucl. Instrum. Methods, 207:93--110, 1983.

Gautier81
P. Gautier, R. Gruber, and F. Troyon. Numerical study of the ideal-MHD stability limits in oblate spheromaks. Nucl. Fusion, 21(11):1399, 1981.

Gibson91
K. J. Gibson, S. J. Gee, G. Cunningham, M. G. Rusbridge, and P. G. Carolan. Ion energy measurements in the SPHEX spheromak. In Controlled Fusion and Plasma Physics, page 253, Berlin, 1991. European Physical Society. Volume II (Berlin Conference).

Gibson95
K. J. Gibson, S. J. Gee, and M. G. Rusbridge. Ion energy measurements in the SPHEX spheromak. Plasma Phys. Controlled Fusion, 37:31, 1995.

Goldenbaum80
G. C. Goldenbaum, J. H. Irby, Y. P. Chong, and G. W. Hart. Formation of a spheromak plasma configuration. Phys. Rev. Lett., 44(6):393, 1980.

Goldenbaum82
G. C. Goldenbaum. The physics of spheromak. Physica Scripta, T2(2):359, 1982.

Goldenbaum83
G. C. Goldenbaum, H. Bruhns, C. Chin-Fatt, Y. P. Chong, A. W. DeSilva, H. R. Griem, G. W. Hart, R. A. Hess, J. H. Irby, R. S. Shaw, and Z. Y. Zhu. Experimental spheromak MHD stability studies. Nucl. Instrum. Methods, 207:129, 1983.

Goldenbaum86
G. C. Goldenbaum, R. A. Hess, and R. S. Shaw. Critical field index for passive coil stabilization of the spheromak shift instability. Rev. Sci. Instrum., 57(12):2961--2965, 1986.

Goldenbaum91
G. C. Goldenbaum. Magnetic helicity injection in spheromaks. In S. Ortolani and E. Sindoni, editors, Physics of Alternative Magnetic Confinement Schemes, page 527. Società Italiana de Fisica, Bologna, Italy, 1991. Proceedings of the Workshop held at Varenna, Italy, October 1990.

Granatstein84
V. L. Granatstein and K. R. Chu. Electron cyclotron resonance heating (ECRH) of a spheromak plasma. IEEE Trans. Plasma Sci., PS-12(2):144--149, 1984.

Gribble85
Rita Gribble, T. R. Jarboe, H. W. Hoida, J. Lipson, and E. W. Newman. Multipoint Thomson scattering system and measurements on the Los Alamos spheromak compact toroid experiment. Technical Report LA-10528-MS, Los Alamos National Laboratory, September 1985.

Guzdar85
P. N. Guzdar, John M. Finn, K. W. Whang, and A. Bondeson. The role of magnetic reconnection and differential rotation in spheromak formation. Phys. Fluids, 28(10):3154, 1985.

Hagenson85
R. L. Hagenson and R. A. Krakowski. Steady-state spheromak reactor studies. Fusion Tech., 8:1606, 1985.

Hameiri87
Eleizer Hameiri and A. Bhattachargee. Turbulent magnetic diffusion and magnetic field reversal. Phys. Fluids, 30(6):1743, 1987.

Hammer81
J. H. Hammer. MHD tilting modes for nearly spherical compact toroids with arbitrary plasma pressure. Nucl. Fusion, 21(4):488, 1981.

Hammer82
J. Hammer and H. Berk. A steady-state beam-driven field-reversed mirror. Nucl. Fusion, 22:89, 1982.

Hammer84
J. H. Hammer. Reconnection in spheromak formation and sustainment. In Edward W. Hones, Jr., editor, Magnetic Reconnection in Space and Laboratory Plasmas, page 319, Washington, D.C., 1984. American Geophysical Union. Geophysical Monograph 30.

Hammer86
J. H. Hammer. Theoretical aspects of magnetic helicity. In Advances in Compact Torus Research, page 75. IAEA, Vienna, 1986. IAEA-TECDOC-369 (Proceedings of a Technical Committee Meeting held in Sydney, Australia, 4--7 March 1985).

Hammer88
James H. Hammer, Charles W. Hartman, James L. Eddleman, and Harry S. McLean. Experimental demonstration of acceleration and focusing of magnetically confined plasma rings. Phys. Rev. Lett., 61(25):2843, 1988.

Hammer91
James H. Hammer, James L. Eddleman, Charles W. Hartman, Harry S. McLean, and Arthur W. Molvik. Experimental demonstration of compact torus compression and acceleration. Phys. Fluids B, 3(8):2236, 1991. (Invited paper from 1990 APS/DPP Meeting).

Hammett83
G. W. Hammett and W. M. Tang. Kinetic and resistive effects on interchange instabilities for a cylindrical model spheromak. Nucl. Fusion, 23(11):1503, 1983.

Hart83
G. W. Hart, C. Chin-Fatt, A. W. DeSilva, G. C. Goldenbaum, R. Hess, and R. S. Shaw. Finite-pressure-gradient influences on ideal spheromak equilibrium. Phys. Rev. Lett., 51(17):1558, 1983.

Hart86
G. W. Hart, A. Janos, D. D. Meyerhofer, and M. Yamada. Verification of the Taylor (minimum energy) state in a spheromak. Phys. Fluids, 29(6):1994, 1986.

Hart86b
G. W. Hart, F. M. Levinton, and D. H. McNeill. Study of the effects of photoelectron statistics on Thomson scattering data. Rev. Sci. Instrum., 57(9):2218, 1986.

Hartman82
Charles W. Hartman and James H. Hammer. New type of collective accelerator. Phys. Rev. Lett., 48(14):929, 1982.

Hartman89
C. W. Hartman, W. L. Barr, J. L. Eddleman, M. Gee, J. H. Hammer, S. K. Ho, B. G. Logan, D. J. Meeker, A. A. Mirin, W. M. Nevins, L. J. Perkins, D. E. Shumaker, A. W. Leonard, P. B. Parks, H. McLean, E. Morse, and D. R. Solvin. Acceleration of compact toroid plasma rings for fusion applications. In Plasma Physics and Controlled Nuclear Fusion Research, 1988, volume 3, page 547. IAEA, Vienna, 1989. Nice Conference.

Hartman91
C. W. Hartman, J. L. Eddleman, J. H. Hammer, B. G. Logan, H. S. McLean, and A. W. Molvik. Acceleration of compact toruses and fusion applications. In S. Ortolani and E. Sindoni, editors, Physics of Alternative Magnetic Confinement Schemes, page 545. Società Italiana de Fisica, Bologna, Italy, 1991. Proceedings of the Workshop held at Varenna, Italy, October 1990.

Hayashi84
Takaya Hayashi and Tetsuya Sato. Simulation studies on line-tying stabilization of spheromak tilting instability. Phys. Fluids, 27(4):778, 1984.

Hayashi85
Takaya Hayashi and Tetsuya Sato. Spheromak global instabilities and stabilization by nearby conductors. Phys. Fluids, 28(12):3654, 1985.

Hayashi85b
T. Hayashi, T. Sato, F. Wysocki, D.D. Meyerhofer, and M. Yamada. Spheromak tilting instability and magnetic reconnection: Simulation and experiment. J. Phys. Soc. Jpn, 54:4172, 1985.

Hayashi87
Takaya Hayashi and Tetsuya Sato. A three dimensional study of spinning spheromak. J. Phys. Soc. Jpn, 56(6):2039--2045, 1987.

Heidbrink82
W. Heidbrink, S. Jardin, and M. Chance. Tearing-mode stability of a forming spheromak plasma. Nucl. Fusion, 22:459, 1982.

Hoida85
H. W. Hoida, Cris W. Barnes, I. Henins, T. R. Jarboe, G. Marklin, C. J. Buchenauer, and S. O. Knox. Local drift parameter, and resistivity anomaly measurements in CTX spheromaks. In Controlled Fusion and Plasma Physics, page 643, Budapest, 1985. European Physical Society. Volume 9F, Part 1 (Budapest Conference).

Honda88
Yoshihide Honda, Yushi Kato, Norio Satomi, Masahiro Nishikawa, and Kenji Watanabe. The instability observed in the CTCC-I spheromak plasma. J. Phys. Soc. Jpn, 57(4):1273, 1988.

Hooper96a
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Cris W. Barnes
Thu Apr 6 13:49:22 MDT 2000