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Upgrading Wolter Imagers for X-Ray Diagnostics in the Z Pulsed-Power Facility at Sandia National Laboratories

Vogel, J K.; Kozioziemski, B K.; Walton, C C.; Ayers, J A.; Bell, Perry M.; Bradley, David K.; Descalle, M-A D.; Hau-Riege, S H.; Fein, Jeffrey R.; Ampleford, David A.; Ball, Christopher R.; Gard, Paul D.; Jones, Michael J.; Maurer, A.; Wu, Ming W.; Champey, P C.; Davis, J D.; Griffith, C G.; Kolodziejczak, J K.; Ramsey, B R.; Sanchez, J S.; Speegle, C S.; Young, M Y.; Kilaru, K K.; Roberts, O R.; Ames, A A.; Bruni, R B.; Romaine, S R.; Sethares, L S.

Abstract not provided.

High-resolution imaging of warm x-ray sources with a Wolter optic on the Z Machine

Fein, Jeffrey R.; Ampleford, David A.; Vogel, J.K.V.; Kozioziemski, B.J.; Walton, C.C.W.; Wu, Ming W.; Ayers, J.A.; Ball, Christopher R.; Romaine, S.R.; Bell, Perry M.; Bourdon, Christopher B.; Bradley, Dalton A.; Bruni, R B.; Gard, Paul D.; Highstrete, Clark H.; Kilaru, K.K.; Lake, Patrick W.; Maurer, A.; Pickworth, L.A.P.; Pivovaroff, M.J.; Ramsey, B.R.; Ritter, Brian J.; Seals, Kathryn L.; Sethares, L S.

Abstract not provided.

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

Review of Scientific Instruments

Ao, Tommy A.; Schollmeier, Marius; Kalita, Patricia K.; Gard, Paul D.; Smith, Ian C.; Shores, Jonathon S.; 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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High-resolution imaging of warm x-ray sources with a Wolter optic on the Z Machine

Fein, Jeffrey R.; Ampleford, David A.; Vogel, J.K.V.; Kozioziemski, B.J.; Walton, C.C.W.; Wu, Ming W.; Ayers, J.A.; Ball, Christopher R.; Romaine, S.R.; Bell, Perry M.; Bourdon, Christopher B.; Bradley, Dave B.; Bruni, R B.; Gard, Paul D.; Highstrete, Clark H.; Kilaru, K.K.; Lake, Patrick W.; Maurer, A.; Pickworth, L.A.P.; Pivovaroff, M.J.; Ramsey, B.R.

Abstract not provided.

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

Ao, Tommy A.; Schollmeier, Marius; Kalita, Patricia K.; Gard, Paul D.; Williams, James R.; Blada, Caroline B.; Hanshaw, Heath L.; Smith, Ian C.; Shores, Jonathon S.; 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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A Wolter Imager on the Z Machine to Diagnose Warm X-ray Sources

Fein, Jeffrey R.; Ampleford, David A.; Vogel, Julia K.; Kozioziemski, Bernie J.; Walton, Christopher C.; Wu, Ming W.; Ames, Andrew O.; Ayers, J.A.; Ball, Christopher R.; Bell, Perry M.; Bourdon, Christopher B.; Bradley, David K.; Bruni, R B.; Gard, Paul D.; Kilaru, K.K.; Lake, Patrick W.; Maurer, A.; Pickworth, Louisa A.; Pivovaroff, Michael P.; Ramsey, Brian D.; Roberts, Oliver J.; Romaine, Suzanne R.; Sullivan, Michael A.; Kirtley, Christopher K.

Abstract not provided.

A Wolter Imager on the Z Machine to Diagnose Warm X-ray Sources

Ampleford, David A.; Fein, Jeffrey R.; Vogel, J.K.V.; Kozioziemski, B.J.; Walton, C.C.W.; Wu, Ming W.; Ball, Christopher R.; A. Ames, J.A.; Bell, P.B.; Bourdon, Christopher B.; D. Bradley, R.B.; Dunham, Gregory S.; Gard, Paul D.; Johnson, Drew J.; Kilaru, K.K.; Lake, Patrick W.; Maurer, A.; Nielsen-Weber, Linda B.; Pickworth, L.A.; Pivovaroff, M.J.; Ramsey, B.R.; Roberts, O.J.R.; Sullivan, Michael A.; Rochau, G.A.

Abstract not provided.

Engineering Design for Wolter Imaging Diagnostic on Z

Ball, Christopher R.; Ampleford, David A.; Gard, Paul D.; Maurer, A.; Bourdon, Christopher B.; Fein, Jeffrey R.; Wu, Ming W.; Lake, Patrick W.; Nielsen-Weber, Linda B.; Dunham, Gregory S.; Johnson, Drew J.; Johns, Owen J.; Sullivan, Michael A.; Kirtley, Christopher K.; Kozioziemski, B.J.; Pickworth, L.A.P.; Vogel, J.K.V.; Pivovaroff, M.JP.; Walton, C.C.W.; Ayers, J.A.; Bell, P.B.; Ramsey, B.R.; Romaine, S.R.

Abstract not provided.

Conceptual design of a 10 13 -W pulsed-power accelerator for megajoule-class dynamic-material-physics experiments

Physical Review Accelerators and Beams

Stygar, William A.; Reisman, David R.; Stoltzfus, Brian S.; Austin, Kevin N.; Benage, John F.; Breden, E.W.; Cooper, R.A.C.; Cuneo, M.E.; Davis, Jean-Paul D.; Ennis, J.B.E.; Gard, Paul D.; Greiser, G.W.G.; Gruner, Frederick R.; Haill, Thomas A.; Hutsel, Brian T.; Jones, Peter A.; LeChien, K.R.L.; Leckbee, Joshua L.; Lucero, Diego J.; McKee, George R.; Moore, James M.; Mulville, Thomas D.; Muron, David J.; Root, Seth R.; Savage, Mark E.; Sceiford, Matthew S.; Spielman, R.B.S.; Waisman, Eduardo M.; Wisher, Matthew L.

In this study, we have developed a conceptual design of a next-generation pulsed-power accelerator that is optmized for driving megajoule-class dynamic-material-physics experiments at pressures as high as 1 TPa. The design is based on an accelerator architecture that is founded on three concepts: single-stage electrical-pulse compression, impedance matching, and transit-time-isolated drive circuits. Since much of the accelerator is water insulated, we refer to this machine as Neptune. The prime power source of Neptune consists of 600 independent impedance-matched Marx generators. As much as 0.8 MJ and 20 MA can be delivered in a 300-ns pulse to a 16-mΩ physics load; hence Neptune is a megajoule-class 20-MA arbitrary waveform generator. Neptune will allow the international scientific community to conduct dynamic equation-of-state, phase-transition, mechanical-property, and other material-physics experiments with a wide variety of well-defined drive-pressure time histories. Because Neptune can deliver on the order of a megajoule to a load, such experiments can be conducted on centimeter-scale samples at terapascal pressures with time histories as long as 1 μs.

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17 Results
17 Results