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Cuneo, M.E.; Jones, Michael J.; Edens, Aaron E.; Lopez, Mike R.; McBride, Ryan D.; Rochau, G.A.; Jones, Brent M.; Ampleford, David A.; Sinars, Daniel S.; Bailey, James E.; Stygar, William A.; Savage, Mark E.
McBride, Ryan D.
Sinars, Daniel S.; Jobe, Marc R.; Lamppa, Derek C.; Lemke, Raymond W.; Martin, Matthew; Mckenney, John M.; Nakhleh, Charles N.; Owen, Albert C.; Peterson, Kyle J.; Herrmann, Mark H.; Smith, Ian C.; Vesey, Roger A.; Slutz, Stephen A.; Cuneo, M.E.; McBride, Ryan D.; Rovang, Dean C.; Sefkow, Adam B.; Jennings, Christopher A.
McBride, Ryan D.; Sinars, Daniel S.; Savage, Mark E.; Herrmann, Mark H.
Proposed for publication in Physical Review Letters.
Sinars, Daniel S.; McBride, Ryan D.; Cuneo, M.E.; Yu, Edmund Y.; Harding, Eric H.; Hansen, Stephanie B.; Ampleford, David A.; Jennings, Christopher A.
Sinars, Daniel S.; Jobe, Marc R.; Lamppa, Derek C.; Martin, Matthew; Nakhleh, Charles N.; Owen, Albert C.; Mckenney, John M.; McBride, Ryan D.; Rovang, Dean C.; Sefkow, Adam B.; Slutz, Stephen A.; Lemke, Raymond W.; Cuneo, M.E.; Herrmann, Mark H.; Jennings, Christopher A.
AIP Conference Proceedings
Lemke, R.W.; Martin, M.R.; McBride, Ryan D.; Davis, Jean-Paul D.; Knudson, Marcus D.; Sinars, Daniel S.; Smith, Ian C.; Savage, Mark E.; Stygar, William A.; Killebrew, K.; Flicker, Dawn G.; Herrmann, Mark H.
We describe a technique for measuring the pressure and density of a metallic solid, shocklessly compressed to multi-megabar pressure, through x-ray radiography of a magnetically driven, cylindrical liner implosion. Shockless compression of the liner produces material states that correspond approximately to the principal compression isentrope (quasi-isentrope). This technique is used to determine the principal quasi-isentrope of solid beryllium to a peak pressure of 2.4 Mbar from x-ray images of a high current (20 MA), fast (∼100 ns) liner implosion. © 2012 American Institute of Physics.
Physics of Plasmas
Martin, M.R.; Lemke, Raymond W.; McBride, Ryan D.; Davis, Jean-Paul D.; Dolan, Daniel H.; Knudson, Marcus D.; Cochrane, K.R.; Sinars, Daniel S.; Smith, Ian C.; Savage, Mark E.; Stygar, William A.; Killebrew, K.; Flicker, Dawn G.; Herrmann, Mark H.
Current pulse shaping techniques, originally developed for planar dynamic material experiments on the Z-machine [M. K. Matzen, Phys. Plasmas 12, 055503 (2005)], are adapted to the design of controlled cylindrical liner implosions. By driving these targets with a current pulse shape that prevents shock formation inside the liner, shock heating is avoided along with the corresponding decrease in electrical conductivity ahead of the magnetic diffusion wave penetrating the liner. This results in an imploding liner with a significant amount of its mass in the solid phase and at multi-megabar pressures. Pressures in the solid region of a shaped pulse driven beryllium liner fielded on the Z-machine are inferred to 5.5 Mbar, while simulations suggest implosion velocities greater than 50 kms-1. These solid liner experiments are diagnosed with multi-frame monochromatic x-ray backlighting which is used to infer the material density and pressure. This work has led to a new platform on the Z-machine that can be used to perform off-Hugoniot measurements at higher pressures than are accessible through magnetically driven planar geometries. © 2012 American Institute of Physics.
Proposed for publication in 5th Special Issue of the IEEE Transactions on Plasma Science Z-Pinch Plasmas.
Cuneo, M.E.; Mazarakis, Michael G.; Lamppa, Derek C.; Kaye, Ronald J.; Nakhleh, Charles N.; Bailey, James E.; Hansen, Stephanie B.; McBride, Ryan D.; Herrmann, Mark H.; Lopez, A.; Peterson, Kyle J.; Ampleford, David A.; Jones, Michael J.; Savage, Mark E.; Jennings, Christopher A.; Martin, Matthew; Slutz, Stephen A.; Lemke, Raymond W.; Christenson, Peggy J.; Sweeney, Mary A.; Jones, Brent M.; Yu, Edmund Y.; McPherson, Leroy A.; Harding, Eric H.; Knapp, Patrick K.; Gomez, Matthew R.; Awe, Thomas J.; Stygar, William A.; Leeper, Ramon J.; Ruiz, Carlos L.; Chandler, Gordon A.; Mckenney, John M.; Owen, Albert C.; McKee, George R.; Matzen, M.K.; Leifeste, Gordon T.; Atherton, B.W.; Vesey, Roger A.; Smith, Ian C.; Geissel, Matthias G.; Rambo, Patrick K.; Sinars, Daniel S.; Sefkow, Adam B.; Rovang, Dean C.; Rochau, G.A.
Physical Review Letters
McBride, Ryan D.; Peterson, Kyle J.; Sefkow, Adam B.; Nakhleh, Charles N.; Laspe, Amy R.; Lopez, Mike R.; Smith, Ian C.; Atherton, B.W.; Savage, Mark E.; Stygar, William A.; Slutz, Stephen A.; Rogers, Thomas J.; Jennings, Christopher A.; Sinars, Daniel S.; Cuneo, M.E.; Herrmann, Mark H.; Lemke, Raymond W.; Martin, Matthew; Vesey, Roger A.
Proposed for publication in Physical Review Letters (or Physics of Plasmas).
Sinars, Daniel S.; Jennings, Christopher A.; McBride, Ryan D.; Wenger, D.F.; Cuneo, M.E.; Yu, Edmund Y.; Ampleford, David A.
Jennings, Christopher A.; McBride, Ryan D.; Sinars, Daniel S.; Slutz, Stephen A.; Cuneo, M.E.; Herrmann, Mark H.
McBride, Ryan D.; Slutz, Stephen A.; Sinars, Daniel S.; Lemke, Raymond W.; Martin, Matthew; Jennings, Christopher A.; Cuneo, M.E.; Herrmann, Mark H.
Jennings, Christopher A.; McBride, Ryan D.; Sinars, Daniel S.; Slutz, Stephen A.; Cuneo, M.E.; Herrmann, Mark H.
Lamppa, Derek C.; Cuneo, M.E.; McBride, Ryan D.; Kaye, Ronald J.; Sefkow, Adam B.; Slutz, Stephen A.; Mckenney, John M.
Digest of Technical Papers-IEEE International Pulsed Power Conference
VanDevender, J.P.; Seidel, David B.; Mikkelson, Kenneth A.; Thomas, Rayburn D.; Peyton, B.P.; Harper-Slaboszewicz, V.H.; McBride, Ryan D.; Cuneo, M.E.; Schneider, Larry X.
A newly invented, multi-megampere inverse diode converts the currents in many electron beams to current in a single Magnetically Insulated Transmission Line (MITL) for driving a common load. Electrons are injected through a transparent anode, cross a vacuum gap, and are absorbed in the cathode of the inverse diode. The cathode current returns to the anode through a load and generates electric and magnetic fields in the anode-cathode gap. Counter streaming electron flow is prevented by self-magnetic insulation in most of the inverse diode and by self-electrostatic insulation where the magnetic field is insufficient. Two-dimensional simulations with a 40 MA, 4 MeV, 40 ns electron beam at 3.5 kA/cm 2 current density, 5 degree beam divergence, and up to 60 degree injection angle show 85% of the injected electron beam current is captured and fed into the MITL. Exploratory experiments with a 2.5 MA, 2.8 MeV, 40 ns electron beam at 2 kA/cm 2at injection normal to the anode gave 70+/-10% collection efficiency in an unoptimized inverse diode. The inverse diode appears to have the potential of coupling multiple pulsed power modules into a common load at rates of change of current ∼1.6× 10 15 A/s required for a fusion energy device called the Plasma Power Station with a Quasi Spherical Direct Drive fusion target. © 2011 IEEE.
Cuneo, M.E.; Jones, Michael J.; Edens, Aaron E.; Lopez, Mike R.; McBride, Ryan D.; Rochau, G.A.; Jones, Brent M.; Ampleford, David A.; Sinars, Daniel S.; Bailey, James E.; Stygar, William A.; Savage, Mark E.
Jennings, Christopher A.; McBride, Ryan D.; Sinars, Daniel S.; Slutz, Stephen A.; Cuneo, M.E.; Herrmann, Mark H.
McBride, Ryan D.; Slutz, Stephen A.; Sinars, Daniel S.; Lemke, Raymond W.; Martin, Matthew; Jennings, Christopher A.; Cuneo, M.E.; Herrmann, Mark H.
Lemke, Raymond W.; Flicker, Dawn G.; Herrmann, Mark H.; McBride, Ryan D.; Knudson, Marcus D.; Davis, Jean-Paul D.; Dolan, Daniel H.; Sinars, Daniel S.; Smith, Ian C.; Savage, Mark E.; Stygar, William A.
Lemke, Raymond W.; McBride, Ryan D.; Davis, Jean-Paul D.; Knudson, Marcus D.
Sinars, Daniel S.; Edens, Aaron E.; Lopez, Mike R.; Smith, Ian C.; Slutz, Stephen A.; Shores, Jonathon S.; Bennett, Guy R.; Atherton, B.W.; Savage, Mark E.; Stygar, William A.; Leifeste, Gordon T.; Herrmann, Mark H.; Cuneo, M.E.; Peterson, Kyle J.; McBride, Ryan D.; Jennings, Christopher A.; Vesey, Roger A.; Nakhleh, Charles N.
Cuneo, M.E.; Savage, Mark E.; Jones, Michael J.; Edens, Aaron E.; Lopez, Mike R.; Gomez, Matthew R.; McBride, Ryan D.; Rochau, G.A.; Jones, Brent M.; Ampleford, David A.; Sinars, Daniel S.; Bailey, James E.; Stygar, William A.
McBride, Ryan D.; Flicker, Dawn G.; Herrmann, Mark H.; Lemke, Raymond W.; Martin, Matthew; Davis, Jean-Paul D.; Knudson, Marcus D.; Sinars, Daniel S.; Slutz, Stephen A.; Jennings, Christopher A.; Cuneo, M.E.
Lemke, Raymond W.; Martin, Matthew; McBride, Ryan D.; Davis, Jean-Paul D.; Knudson, Marcus D.
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