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X-ray Conversion Efficiencies for Diffraction Experiments on Z

Geissel, Matthias; Ao, Tommy; Fulford, Karin W.; Looker, Quinn M.; Rambo, Patrick K.; Seagle, Christopher T.; Shores, Jonathon; Speas, Robert J.; Yang, Chi; Porter, John L.

We have used a deep-depletion CCD camera in single-hit mode to measure X-ray conversion efficiencies with Z-Beamlet and Z-Petawatt. Z-Petawatt is superior to Z-Beamlet for X-rays harder than 10 keV. For diffraction samples with Z > 42, we likely require X-rays with 15 keV or higher photon energy (Z-Petawatt). We are developing a robust, reproducible setup for X-ray polycapillaries as a part for X-ray diffraction experiments (XRD).

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Demonstration of improved laser preheat with a cryogenically cooled magnetized liner inertial fusion platform

Review of Scientific Instruments

Harvey-Thompson, Adam J.; Geissel, Matthias; Crabtree, J.A.; Weis, Matthew R.; Gomez, Matthew R.; Fein, Jeffrey R.; Foulk, James W.; Ampleford, David J.; Awe, Thomas J.; Chandler, Gordon A.; Hansen, Stephanie B.; Jennings, Christopher A.; Knapp, P.F.; Kimmel, Mark; Mangan, Michael A.; Peterson, K.J.; Porter, John L.; Rochau, G.A.; Ruiz, Daniel E.; Hanson, J.; Harding, Eric H.; Perea, L.; Robertson, G.K.; Shores, Jonathon; Slutz, Stephen A.; Smith, G.E.; Speas, Christopher S.; Yager-Elorriaga, David A.; York, A.

We report on progress implementing and testing cryogenically cooled platforms for Magnetized Liner Inertial Fusion (MagLIF) experiments. Two cryogenically cooled experimental platforms were developed: an integrated platform fielded on the Z pulsed power generator that combines magnetization, laser preheat, and pulsed-power-driven fuel compression and a laser-only platform in a separate chamber that enables measurements of the laser preheat energy using shadowgraphy measurements. The laser-only experiments suggest that ∼89% ± 10% of the incident energy is coupled to the fuel in cooled targets across the energy range tested, significantly higher than previous warm experiments that achieved at most 67% coupling and in line with simulation predictions. The laser preheat configuration was applied to a cryogenically cooled integrated experiment that used a novel cryostat configuration that cooled the MagLIF liner from both ends. The integrated experiment, z3576, coupled 2.32 ± 0.25 kJ preheat energy to the fuel, the highest to-date, demonstrated excellent temperature control and nominal current delivery, and produced one of the highest pressure stagnations as determined by a Bayesian analysis of the data.

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Helium as a Surrogate for Deuterium in LPI Studies

Laser and Particle Beams

Geissel, Matthias; Harvey-Thompson, Adam J.; Weis, Matthew R.; Fein, Jeffrey R.; Bliss, David E.; Kimmel, Mark; Shores, Jonathon; Smith, Ian C.; Jennings, Christopher A.; Porter, John L.; Rambo, Patrick K.; Ampleford, David J.; Hansen, Aaron

Helium or neopentane can be used as surrogate gas fill for deuterium (D2) or deuterium-tritium (DT) in laser-plasma interaction studies. Surrogates are convenient to avoid flammability hazards or the integration of cryogenics in an experiment. To test the degree of equivalency between deuterium and helium, experiments were conducted in the Pecos target chamber at Sandia National Laboratories. Observables such as laser propagation and signatures of laser-plasma instabilities (LPI) were recorded for multiple laser and target configurations. It was found that some observables can differ significantly despite the apparent similarity of the gases with respect to molecular charge and weight. While a qualitative behaviour of the interaction may very well be studied by finding a suitable compromise of laser absorption, electron density, and LPI cross sections, a quantitative investigation of expected values for deuterium fills at high laser intensities is not likely to succeed with surrogate gases.

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Magnetic field effects on laser energy deposition and filamentation in magneto-inertial fusion relevant plasmas

Physics of Plasmas

Lewis, Sean M.; Weis, Matthew R.; Speas, Christopher S.; Kimmel, Mark; Bengtson, Roger D.; Breizman, Boris; Geissel, Matthias; Gomez, Matthew R.; Harvey-Thompson, Adam J.; Kellogg, Jeffrey; Long, Joel; Quevedo, Hernan J.; Rambo, Patrick K.; Riley, Nathan R.; Schwarz, Jens; Shores, Jonathon; Stahoviak, John; Ampleford, David J.; Porter, John L.; Ditmire, Todd; Looker, Quinn M.; Struve, Kenneth

We report on experimental measurements of how an externally imposed magnetic field affects plasma heating by kJ-class, nanosecond laser pulses. The experiments reported here took place in gas cells analogous to magnetized liner inertial fusion targets. We observed significant changes in laser propagation and energy deposition scale lengths when a 12T external magnetic field was imposed in the gas cell. We find evidence that the axial magnetic field reduces radial electron thermal transport, narrows the width of the heated plasma, and increases the axial plasma length. Reduced thermal conductivity increases radial thermal gradients. This enhances radial hydrodynamic expansion and subsequent thermal self-focusing. Our experiments and supporting 3D simulations in helium demonstrate that magnetization leads to higher thermal gradients, higher peak temperatures, more rapid blast wave development, and beam focusing with an applied field of 12T.

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Lasergate: a windowless gas target for enhanced laser preheat in MagLIF

Galloway, Benjamin R.; Slutz, Stephen A.; Kimmel, Mark; Rambo, Patrick K.; Schwarz, Jens; Geissel, Matthias; Harvey-Thompson, Adam J.; Weis, Matthew R.; Jennings, Christopher A.; Field, Ella; Kletecka, Damon; Looker, Quinn M.; Colombo, Anthony; Edens, Aaron; Smith, Ian C.; Shores, Jonathon; Speas, Christopher S.; Speas, Robert J.; Spann, Andrew; Sin, Justin; Gautier, Sophie; Sauget, Vincent; Treadwell, Paul; Rochau, G.A.; Porter, John L.

Abstract not provided.

Lasergate: A windowless gas target for enhanced laser preheat in magnetized liner inertial fusion

Physics of Plasmas

Galloway, Benjamin R.; Slutz, Stephen A.; Kimmel, Mark; Rambo, Patrick K.; Schwarz, Jens; Geissel, Matthias; Harvey-Thompson, Adam J.; Weis, Matthew R.; Jennings, Christopher A.; Field, Ella; Kletecka, Damon; Looker, Quinn M.; Colombo, Anthony; Edens, Aaron; Smith, Ian C.; Shores, Jonathon; Speas, Christopher S.; Speas, Robert J.; Spann, A.P.; Sin, J.; Gautier, S.; Sauget, V.; Treadwell, P.A.; Rochau, G.A.; Porter, John L.

At the Z Facility at Sandia National Laboratories, the magnetized liner inertial fusion (MagLIF) program aims to study the inertial confinement fusion in deuterium-filled gas cells by implementing a three-step process on the fuel: premagnetization, laser preheat, and Z-pinch compression. In the laser preheat stage, the Z-Beamlet laser focuses through a thin polyimide window to enter the gas cell and heat the fusion fuel. However, it is known that the presence of the few μm thick window reduces the amount of laser energy that enters the gas and causes window material to mix into the fuel. These effects are detrimental to achieving fusion; therefore, a windowless target is desired. The Lasergate concept is designed to accomplish this by "cutting"the window and allowing the interior gas pressure to push the window material out of the beam path just before the heating laser arrives. In this work, we present the proof-of-principle experiments to evaluate a laser-cutting approach to Lasergate and explore the subsequent window and gas dynamics. Further, an experimental comparison of gas preheat with and without Lasergate gives clear indications of an energy deposition advantage using the Lasergate concept, as well as other observed and hypothesized benefits. While Lasergate was conceived with MagLIF in mind, the method is applicable to any laser or diagnostic application requiring direct line of sight to the interior of gas cell targets.

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Increased preheat energy to MagLIF targets with cryogenic cooling

Harvey-Thompson, Adam J.; Geissel, Matthias; Crabtree, J.A.; Weis, Matthew R.; Gomez, Matthew R.; Fein, Jeffrey R.; Ampleford, David J.; Awe, Thomas J.; Chandler, Gordon A.; Galloway, Benjamin R.; Hansen, Stephanie B.; Hanson, Jeffrey; Harding, Eric H.; Jennings, Christopher A.; Kimmel, Mark; Knapp, P.F.; Lamppa, Derek C.; Foulk, James W.; Mangan, Michael A.; Maurer, Andrew J.; Perea, Lawrence; Peterson, Kara J.; Porter, John L.; Rambo, Patrick K.; Robertson, G.K.; Rochau, G.A.; Ruiz, Daniel E.; Shores, Jonathon; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Yager-Elorriaga, David A.; York, A.; Paguio, R.R.; Smith, G.E.

Abstract not provided.

IMPROVED PERFORMANCE OF MAGNETIZED LINER INERTIAL FUSION EXPERIMENTS WITH HIGH-ENERGY LOW-MIX LASER PREHEAT CONFIGURATIONS

Harvey-Thompson, Adam J.; Geissel, Matthias; Weis, Matthew R.; Jennings, Christopher A.; Gomez, Matthew R.; Fein, Jeffrey R.; Ampleford, David J.; Bliss, David E.; Chandler, Gordon A.; Glinsky, Michael E.; Hahn, Kelly; Hansen, Stephanie B.; Hanson, J.; Harding, Eric H.; Knapp, P.F.; Mangan, Michael A.; Perea, Lawrence; Peterson, K.J.; Porter, John L.; Rambo, Patrick K.; Robertson, G.K.; Rochau, G.A.; Ruiz, Carlos; Schwarz, Jens; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Whittemore, Kelly A.; Paguio, Reny; Smith, Gary L.; York, A.

Abstract not provided.

Update on MagLIF preheat experiments

Harvey-Thompson, Adam J.; Geissel, Matthias; Weis, Matthew R.; Galloway, Benjamin R.; Fein, Jeffrey R.; Awe, Thomas J.; Crabtree, J.A.; Ampleford, David J.; Bliss, David E.; Glinsky, Michael E.; Gomez, Matthew R.; Hanson, J.; Harding, Eric H.; Jennings, Christopher A.; Kimmel, Mark; Perea, Lawrence; Peterson, K.J.; Porter, James D.; Rambo, Patrick K.; Robertson, G.K.; Ruiz, Daniel E.; Schwarz, Jens; Shores, Jonathon; Slutz, Stephen A.; Smith, Ian C.; York, A.; Paguio, R.R.; Smith, G.E.; Maudlin, M.; Pollock, B.

Abstract not provided.

A spherical crystal diffraction imager for Sandia’s Z Pulsed Power Facility

Review of Scientific Instruments

Ao, Tommy; Schollmeier, Marius; Foulk, James W.; Gard, Paul D.; Smith, Ian C.; Shores, Jonathon; Speas, Christopher S.; Seagle, Christopher T.

Sandia’s Z Pulsed Power Facility is able to dynamically compress matter to extreme states with exceptional uniformity, duration, and size, which are ideal for investigating fundamental material properties of high energy density conditions. X-ray diffraction (XRD) is a key atomic scale probe since it provides direct observation of the compression and strain of the crystal lattice and is used to detect, identify, and quantify phase transitions. Because of the destructive nature of Z-Dynamic Material Property (DMP) experiments and low signal vs background emission levels of XRD, it is very challenging to detect a diffraction signal close to the Z-DMP load and to recover the data. We have developed a new Spherical Crystal Diffraction Imager (SCDI) diagnostic to relay and image the diffracted x-ray pattern away from the load debris field. The SCDI diagnostic utilizes the Z-Beamlet laser to generate 6.2-keV Mn–Heα x rays to probe a shock-compressed material on the Z-DMP load. Finally, a spherically bent crystal composed of highly oriented pyrolytic graphite is used to collect and focus the diffracted x rays into a 1-in. thick tungsten housing, where an image plate is used to record the data.

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Characterization of Distributed Phase Plates for use on Z-Beamlet

Geissel, Matthias; Schwarz, Jens; Smith, Ian C.; Shores, Jonathon

Distributed Phase Plates (DPP) are used in laser experiments to create homogenous intensity distributions of a distinct shape at the location of the laser focus. Such focal shaping helps with controlling the intensity that is impeding on the target. To efficiently use a DPP, the exact size and shape of the focal distribution is of critical importance. We recorded direct images of the focal distribution with ideal continuous-wave (CW) alignment lasers and with laser pulses delivered by the Z-Beamlet facility. As necessary to protect the imaging sensors, laser pulses will not be performed by full system shots, but rather with limited energy on so-called 'rod-shots', in which Z-Beamlet's main amplifiers do not engage. The images are subsequently analyzed for characteristic radii and shape. All characterizations were performed at the Pecos target area of Sandia with a lens of 3.2 m focal length.

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Progress in Implementing High-Energy Low-Mix Laser Preheat for MagLIF

Harvey-Thompson, Adam J.; Geissel, Matthias; Jennings, Christopher A.; Weis, Matthew R.; Ampleford, David J.; Bliss, David E.; Chandler, Gordon A.; Fein, Jeffrey R.; Galloway, Benjamin R.; Glinsky, Michael E.; Gomez, Matthew R.; Hahn, K.D.; Hansen, Stephanie B.; Harding, Eric H.; Kimmel, Mark; Knapp, P.F.; Perea, Lawrence; Peterson, Kara J.; Porter, John L.; Rambo, Patrick K.; Robertson, G.K.; Rochau, G.A.; Ruiz, Daniel E.; Schwarz, Jens; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Whittemore, Kelly A.; Woodbury, Daniel; Smith, G.E.

Abstract not provided.

The Impact on Mix of Different Preheat Protocols

Harvey-Thompson, Adam J.; Geissel, Matthias; Jennings, Christopher A.; Weis, Matthew R.; Ampleford, David J.; Bliss, David E.; Chandler, Gordon A.; Fein, Jeffrey R.; Galloway, Benjamin R.; Glinsky, Michael E.; Gomez, Matthew R.; Hahn, K.D.; Hansen, Stephanie B.; Harding, Eric H.; Kimmel, Mark; Knapp, P.F.; Perea, Lawrence; Peterson, Kara J.; Porter, John L.; Rambo, Patrick K.; Robertson, G.K.; Rochau, G.A.; Ruiz, Daniel E.; Schwarz, Jens; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Ian C.; Speas, Christopher S.; Whittemore, Kelly A.; Woodbury, Daniel; Smith, G.E.

Abstract not provided.

X-ray diffraction of dynamically compressed matter on Sandia's Z Pulsed Power Facility

Ao, Tommy; Schollmeier, Marius; Foulk, James W.; Gard, Paul D.; Williams, James R.; Blada, Caroline B.; Hanshaw, Heath L.; Smith, Ian C.; Shores, Jonathon; Speas, Christopher S.; Seagle, Christopher T.

Sandia's Z Pulsed Power Facility is able to dynamically compress matter to extreme states with exceptional uniformity, duration, and size, which are ideal for investigations of fundamental material properties of high energy density conditions. X-ray diffraction (XRD) is a key atomic scale probe since it provides direct observation of the compression and strain of the crystal lattice, and is used to detect, identify, and quantify phase transitions. Because of the destructive nature of Z-Dynamic Materials Properties (DMP) experiments and low signal vs background emission levels of XRD, it is very challenging to detect the XRD pattern close to the Z-DMP load and to recover the data. We developed a new Spherical Crystal Diffraction Imager (SCDI) diagnostic to relay and image the diffracted x-ray pattern away from the load debris field. The SCDI diagnostic utilizes the Z-Beamlet laser to generate 6.2-keV Mn-He c , x-rays to probe a shock-compressed sample on the Z-DMP load. A spherically bent crystal composed of highly oriented pyrolytic graphite is used to collect and focus the diffracted x-rays into a 1-inch thick tungsten housing, where an image plate is used to record the data. We performed experiments to implement the SCDI diagnostic on Z to measure the XRD pattern of shock compressed beryllium samples at pressures of 1.8-2.2 Mbar.

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Constraining preheat energy deposition in MagLIF experiments with multi-frame shadowgraphy

Physics of Plasmas

Harvey-Thompson, Adam J.; Geissel, Matthias; Jennings, Christopher A.; Weis, Matthew R.; Foulk, James W.; Fein, Jeffrey R.; Ampleford, David J.; Chandler, Gordon A.; Glinsky, Michael E.; Hahn, K.D.; Hansen, Stephanie B.; Harding, Eric H.; Knapp, P.F.; Paguio, R.R.; Perea, Lawrence; Peterson, K.J.; Porter, John L.; Rambo, Patrick K.; Robertson, G.K.; Rochau, G.A.; Schwarz, Jens; Shores, Jonathon; Sinars, Daniel; Slutz, Stephen A.; Smith, Gary L.; Smith, Ian C.; Speas, Christopher S.; Whittemore, Kelly A.; Woodbury, D.

A multi-frame shadowgraphy diagnostic has been developed and applied to laser preheat experiments relevant to the Magnetized Liner Inertial Fusion (MagLIF) concept. The diagnostic views the plasma created by laser preheat in MagLIF-relevant gas cells immediately after the laser deposits energy as well as the resulting blast wave evolution later in time. The expansion of the blast wave is modeled with 1D radiation-hydrodynamic simulations that relate the boundary of the blast wave at a given time to the energy deposited into the fuel. This technique is applied to four different preheat protocols that have been used in integrated MagLIF experiments to infer the amount of energy deposited by the laser into the fuel. The results of the integrated MagLIF experiments are compared with those of two-dimensional LASNEX simulations. The best performing shots returned neutron yields ∼40-55% of the simulated predictions for three different preheat protocols.

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Results 1–25 of 82
Results 1–25 of 82