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Dive into the research topics where Michael Edward Cuneo is active.

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Featured researches published by Michael Edward Cuneo.


Physics of Plasmas | 2001

Development and characterization of a Z-pinch-driven hohlraum high-yield inertial confinement fusion target concept

Michael Edward Cuneo; Roger A. Vesey; John L. Porter; Gordon Andrew Chandler; D. L. Fehl; T. Gilliland; D.L. Hanson; J. McGurn; Paul Reynolds; Laurence E. Ruggles; Hans Seamen; Rick B. Spielman; K.W. Struve; W. A. Stygar; Walter W. Simpson; J. Torres; David Franklin Wenger; James H. Hammer; Peter W. Rambo; D.L. Peterson; George C. Idzorek

Initial experiments to study the Z-pinch-driven hohlraum high-yield inertial confinement fusion (ICF) concept of Hammer, Tabak, and Porter [Hammer et al., Phys. Plasmas 6, 2129 (1999)] are described. The relationship between measured pinch power, hohlraum temperature, and secondary hohlraum coupling (“hohlraum energetics”) is well understood from zero-dimensional semianalytic, and two-dimensional view factor and radiation magnetohydrodynamics models. These experiments have shown the highest x-ray powers coupled to any Z-pinch-driven secondary hohlraum (26±5 TW), indicating the concept could scale to fusion yields of >200 MJ. A novel, single-sided power feed, double-pinch driven secondary that meets the pinch simultaneity requirements for polar radiation symmetry has also been developed. This source will permit investigation of the pinch power balance and hohlraum geometry requirements for ICF relevant secondary radiation symmetry, leading to a capsule implosion capability on the Z accelerator [Spielman et...


IEEE Transactions on Plasma Science | 1997

Results of vacuum cleaning techniques on the performance of LiF field-threshold ion sources on extraction applied-B ion diodes at 1-10 TW

Michael Edward Cuneo; P.R. Menge; D.L. Hanson; William E. Fowler; Michael A. Bernard; Gerold R. Ziska; A.B. Filuk; T.D. Pointon; Roger A. Vesey; Dale R. Welch; J. E. Bailey; Michael P. Desjarlais; T.R. Lockner; Thomas Alan Mehlhorn; Steven A. Slutz; Michael A. Stark

Uncontrolled plasma formation on electrode surfaces limits performance in a wide variety of pulsed power devices such as electron and ion diodes, transmission lines, radio frequency (RF) cavities, and microwave devices. Surface and bulk contaminants on the electrodes in vacuum dominate the composition of these plasmas, formed through processes such as stimulated and thermal desorption followed by ionization. We are applying RF discharge cleaning, anode heating, cathode cooling, and substrate surface coatings to the control of the effects of these plasmas in the particular case of applied-B ion diodes on the SABRE (1 TW) and PBFA-X (30 TW) accelerators. Evidence shows that our LiF ion source provides a 200-700 A/cm/sup 2/ lithium beam for 10-20 ns which is then replaced by a contaminant beam of protons and carbon. Other ion sources show similar behavior. Our electrode surface and substrate cleaning techniques reduce beam contamination, anode and cathode plasma formation, delay impedance collapse, and increase lithium energy, power, and production efficiency. Theoretical and simulation models of electron-stimulated and thermal-contaminant desorption leading to anode plasma formation show agreement with many features from experiment. Decrease of the diode electron loss by changing the shape and magnitude of the insulating magnetic field profiles increases the lithium output and changes the diode response to cleaning. We also show that the LiF films are permeable, allowing substrate contaminants to affect diode behavior. Substrate coatings of Ta and Au underneath the LiF film allow some measure of control of substrate contaminants, and provide direct evidence for thermal desorption. We have increased lithium current density by a factor of four and lithium energy by a factor of five through a combination of in situ surface and substrate cleaning, substrate coatings, and field profile modifications.


Physics of Plasmas | 2002

Radiation science using Z-pinch x rays

J. E. Bailey; Gordon Andrew Chandler; David H. Cohen; Michael Edward Cuneo; M. E. Foord; R. F. Heeter; D. Jobe; P. Lake; J. J. MacFarlane; T. J. Nash; D. S. Nielson; R. Smelser; J. Torres

Present-day Z-pinch experiments generate 200 TW peak power, 5–10 ns duration x-ray bursts that provide new possibilities to advance radiation science. The experiments support both the underlying atomic and plasma physics, as well as inertial confinement fusion and astrophysics applications. A typical configuration consists of a sample located 1–10 cm away from the pinch, where it is heated to 10–100 eV temperatures by the pinch radiation. The spectrally-resolved sample-plasma absorption is measured by aiming x-ray spectrographs through the sample at the pinch. The pinch plasma thus both heats the sample and serves as a backlighter. Opacity measurements with this source are promising because of the large sample size, the relatively long radiation duration, and the possibility to measure opacities at temperatures above 100 eV. Initial opacity experiments are under way with CH-tamped NaBr foil samples. The Na serves as a thermometer and absorption spectra are recorded to determine the opacity of Br with a pa...


IEEE Transactions on Plasma Science | 2012

Magnetically Driven Implosions for Inertial Confinement Fusion at Sandia National Laboratories

Michael Edward Cuneo; Mark Herrmann; Daniel Brian Sinars; Stephen A. Slutz; W. A. Stygar; Roger Alan Vesey; A. B. Sefkow; Gregory A. Rochau; Gordon Andrew Chandler; J. E. Bailey; John L. Porter; R. D. McBride; D. C. Rovang; M.G. Mazarakis; E. P. Yu; Derek C. Lamppa; Kyle Peterson; C. Nakhleh; Stephanie B. Hansen; A. J. Lopez; M. E. Savage; Christopher A. Jennings; M. R. Martin; R.W. Lemke; Briggs Atherton; I. C. Smith; P. K. Rambo; M. Jones; M.R. Lopez; P. J. Christenson

High current pulsed-power generators efficiently store and deliver magnetic energy to z-pinch targets. We review applications of magnetically driven implosions (MDIs) to inertial confinement fusion. Previous research on MDIs of wire-array z-pinches for radiation-driven indirect-drive target designs is summarized. Indirect-drive designs are compared with new targets that are imploded by direct application of magnetic pressure produced by the pulsed-power current pulse. We describe target design elements such as larger absorbed energy, magnetized and pre-heated fuel, and cryogenic fuel layers that may relax fusion requirements. These elements are embodied in the magnetized liner inertial fusion (MagLIF) concept [Slutz “Pulsed-power-driven cylindrical liner implosions of laser pre-heated fuel magnetized with an axial field,” Phys. Plasmas, 17, 056303 (2010), and Stephen A. Slutz and Roger A. Vesey, “High-Gain Magnetized Inertial Fusion,” Phys. Rev. Lett., 108, 025003 (2012)]. MagLIF is in the class of magneto-inertial fusion targets. In MagLIF, the large drive currents produce an azimuthal magnetic field that compresses cylindrical liners containing pre-heated and axially pre-magnetized fusion fuel. Scientific breakeven may be achievable on the Z facility with this concept. Simulations of MagLIF with deuterium-tritium fuel indicate that the fusion energy yield can exceed the energy invested in heating the fuel at a peak drive current of about 27 MA. Scientific breakeven does not require alpha particle self-heating and is therefore not equivalent to ignition. Capabilities to perform these experiments will be developed on Z starting in 2013. These simulations and predictions must be validated against a series of experiments over the next five years. Near-term experiments are planned at drive currents of 16 MA with D2 fuel. MagLIF increases the efficiency of coupling energy (=target absorbed energy/driver stored energy) to targets by 10-150X relative to indirect-drive targets. MagLIF also increases the absolute energy absorbed by the target by 10-50X relative to indirect-drive targets. These increases could lead to higher fusion gains and yields. Single-shot high yields are of great utility to national security missions. Higher efficiency and higher gains may also translate into more compelling (lower cost and complexity) fusion reactor designs. We will discuss the broad goals of the emerging research on the MagLIF concept and identify some of the challenges. We will also summarize advances in pulsed-power technology and pulsed-power driver architectures that double the efficiency of the driver.


Physics of Plasmas | 2012

Electrothermal instability growth in magnetically driven pulsed power liners

Kyle Peterson; Daniel Brian Sinars; Edmund P. Yu; Mark Herrmann; Michael Edward Cuneo; Stephen A. Slutz; Ian Craig Smith; Briggs W. Atherton; M. D. Knudson; Charles Nakhleh

This paper explores the role of electro-thermal instabilities on the dynamics of magnetically accelerated implosion systems. Electro-thermal instabilities result from non-uniform heating due to temperature dependence in the conductivity of a material. Comparatively little is known about these types of instabilities compared to the well known Magneto-Rayleigh-Taylor (MRT) instability. We present simulations that show electrothermal instabilities form immediately after the surface material of a conductor melts and can act as a significant seed to subsequent MRT instability growth. We also present the results of several experiments performed on Sandia National Laboratories Z accelerator to investigate signatures of electrothermal instability growth on well characterized initially solid aluminum and copper rods driven with a 20 MA, 100 ns risetime current pulse. These experiments show excellent agreement with electrothermal instability simulations and exhibit larger instability growth than can be explained by MRT theory alone.


Applied Optics | 2003

Evaluation of bent-crystal x-ray backlighting and microscopy techniques for the Sandia Z machine

Daniel Brian Sinars; Guy R. Bennett; David Franklin Wenger; Michael Edward Cuneo; John L. Porter

X-ray backlighting and microscopy systems for the 1-10-keV range based on spherically or toroidally bent crystals are discussed. These systems are ideal for use on the Sandia Z machine, a megajoule-class x-ray facility. Near-normal-incidence crystal microscopy systems have been shown to be more efficient than pinhole cameras with the same spatial resolution and magnification [Appl. Opt. 37, 1784 (1998)]. We show that high-resolution (< or = 10 microm) x-ray backlighting systems using bent crystals can be more efficient than analogous point-projection imaging systems. Examples of bent-crystal-backlighting results that demonstrate 10-microm resolution over a 20-mm field of view are presented.


Physics of Plasmas | 2004

Equilibrium flow structures and scaling of implosion trajectories in wire array Z pinches

J. P. Chittenden; S. V. Lebedev; B.V. Oliver; E. P. Yu; Michael Edward Cuneo

The hypothesis that wire array Z-pinch radiation sources can be represented as an ablating mass source embedded within a Lorentz force field is examined and the effects that this has upon the trajectory and spatial structure of the ensuing implosion are studied. Two-dimensional (2D) resistive magnetohydrodynamic (MHD) simulations of the ablating core regions and of the array cross-section indicate that the core ablation rate is determined by force balance at the ablation surface. This implies a weak dependence of the ablation velocity (the ratio of the magnitude of the Lorentz force to the mass ablation rate) on the array parameters (current, radius, mass, etc.). In the case of a constant ablation rate, the radial profiles in the flow region between the wires and the axis are found to converge to a set of time independent equilibria. These profiles represent a unique solution to the ideal MHD equations for super-Alfvenic flow in cylindrical geometry. Comparisons of simulated implosion trajectories with ex...


Journal of Quantitative Spectroscopy & Radiative Transfer | 2001

Neon Photoionization Experiments Driven By Z-Pinch Radiation

J. E. Bailey; David H. Cohen; G. A. Chandler; Michael Edward Cuneo; M. E. Foord; R. F. Heeter; D. Jobe; P. Lake; Duane A. Liedahl; J. J. MacFarlane; T. J. Nash; D. S. Nielson; R. Smelser; W. A. Stygar

Abstract Present-day Z-pinch experiments generate ∼2×10 21 erg / s peak power, ∼6 ns full-width at half-maximum X-ray bursts that provide new possibilities to study radiation-heated matter. This source is being used to investigate the production of plasmas in which photoionization dominates collisional ionization. Spectroscopic measurements of such plasmas can serve to benchmark atomic physics models of the photoionized plasmas. Beyond intrinsic interest in the atomic physics, these models will be applied to the interpretation of data from the new generation of satellite X-ray spectrographs that will promote the understanding of accretion-powered objects such as X-ray binaries and active galactic nuclei. Moreover, this information is needed for X-ray laser research. Our experiments use a 1-cm-scale neon gas cell to expose 10 18 atoms / cm 3 to an X-ray flux of ∼5×10 18 erg / cm 2 / s . Thin mylar ( 1.5 μm ) windows confine the gas and allow the radiation to flow into the cell. The ionization is monitored with absorption spectra recorded with crystal spectrometers, using the pinch as a backlight source. In initial experiments we acquired an absorption spectrum from Li- and He-like Ne, confirming the ability to produce a highly ionized neon plasma.


Physics of Plasmas | 2015

Demonstration of thermonuclear conditions in magnetized liner inertial fusion experimentsa)

M. R. Gomez; Stephen A. Slutz; Adam B Sefkow; Kelly Hahn; Stephanie B. Hansen; P. F. Knapp; Paul Schmit; C. L. Ruiz; Daniel Brian Sinars; Eric Harding; Christopher A. Jennings; Thomas James Awe; Matthias Geissel; Dean C. Rovang; I. C. Smith; Gordon Andrew Chandler; G. W. Cooper; Michael Edward Cuneo; A. J. Harvey-Thompson; Mark Herrmann; Mark Hess; Derek C. Lamppa; M. R. Martin; R. D. McBride; Kyle Peterson; John L. Porter; Gregory A. Rochau; M. E. Savage; D. G. Schroen; W. A. Stygar

The magnetized liner inertial fusion concept [S. A. Slutz et al., Phys. Plasmas 17, 056303 (2010)] utilizes a magnetic field and laser heating to relax the pressure requirements of inertial confinement fusion. The first experiments to test the concept [M. R. Gomez et al., Phys. Rev. Lett. 113, 155003 (2014)] were conducted utilizing the 19 MA, 100 ns Z machine, the 2.5 kJ, 1 TW Z Beamlet laser, and the 10 T Applied B-field on Z system. Despite an estimated implosion velocity of only 70 km/s in these experiments, electron and ion temperatures at stagnation were as high as 3 keV, and thermonuclear deuterium-deuterium neutron yields up to 2 × 1012 have been produced. X-ray emission from the fuel at stagnation had widths ranging from 50 to 110 μm over a roughly 80% of the axial extent of the target (6–8 mm) and lasted approximately 2 ns. X-ray yields from these experiments are consistent with a stagnation density of the hot fuel equal to 0.2–0.4 g/cm3. In these experiments, up to 5 × 1010 secondary deuterium-...


Physics of Plasmas | 2003

Symmetric inertial confinement fusion capsule implosions in a high-yield-scale double-Z-pinch-driven hohlraum on Z

Greg R. Bennett; Roger A. Vesey; Michael Edward Cuneo; John L. Porter; R. G. Adams; Rafael A. Aragon; Patrick K. Rambo; Dean C. Rovang; Laurence E. Ruggles; Walter W. Simpson; I. C. Smith; Christopher Speas; K.W. Struve; David Franklin Wenger; O. L. Landen

Detailed radiation-hydrodynamics calculations indicate that the dual-63-MA Z-pinch high-yield (HY) 220-eV inertial confinement fusion concept [Phys. Plasmas 6, 2129 (1999)] may release 400 MJ of fusion yield, if pulse shaping, capsule preheat, and x-radiation drive uniformity can be acceptably controlled. Radiation symmetry is under detailed investigation in an advanced, 70-eV HY-scale scoping hohlraum [Phys. Rev. Lett. 88, 215004 (2002)] driven by the single 20-MA power feed of Sandia National Laboratories’ Z accelerator. The time-averaged polar radiation asymmetry, 〈ΔI〉/I, is inferred from direct distortion measurements of an imploding capsule’s limb-darkened (“backlit”) shell, via 6.7 keV point projection x-ray imaging. Thus far, 〈ΔI〉/I has been measured at the 3.0±1.4 (%) level, on the best shots, in hohlraums (cylindrical) with length/radius ratios L/R of 1.61 and 1.69, either side of a L/R=1.66 predicted optimum for a zeroed P2 Legendre mode. Simulations suggest that when scaled to 220 eV with zeroe...

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Daniel Brian Sinars

Sandia National Laboratories

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John L. Porter

Sandia National Laboratories

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W. A. Stygar

Sandia National Laboratories

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Stephen A. Slutz

Sandia National Laboratories

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B. Jones

Sandia National Laboratories

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David J. Ampleford

Sandia National Laboratories

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Roger Alan Vesey

Sandia National Laboratories

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E.M. Waisman

Sandia National Laboratories

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Mark Herrmann

Sandia National Laboratories

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