M. E. Sceiford
Sandia National Laboratories
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Featured researches published by M. E. Sceiford.
ieee international pulsed power conference | 2005
D. L. Johnson; V. Bailey; R. Altes; P. Corcoran; I. Smith; S. Cordova; Kelly Hahn; J.E. Maenchen; I. Molina; S. Portillo; E. Puetz; M. E. Sceiford; D. Van De Valde; D.V. Rose; B.V. Oliver; D.R. Welch; D. Droemer
The six-cell RITS-6 accelerator is an upgrade of the existing RITS-3 accelerator and is next in the sequence of Sandia IVA accelerators built to investigate/validate critical accelerator and radiographic diode issues for scaling to the Radiographic Integrated Test Stand (RITS) (nominally 16 MV, 156 kA, and 70 ns). In the RITS-6 upgrade to RITS-3 the number of cells/cavities, PFLs, laser triggered gas switches and intermediate stores is being doubled. A rebuilt single 61-nF Marx generator will charge the two intermediate storage capacitors. The RITS-3 experiments have demonstrated a MITL configuration matched to the PFL/induction cell impedance and a higher impedance MITL. RITS-6 is designed to utilize the higher impedance MITL providing a 10.5-MV, 123-kA output. The three years of pulsed power performance data from RITS-3 will be summarized and the design improvements being incorporated into RITS-6 will be outlined. The predicted output voltage and current for RITS-6 as a function of diode impedance will be shown. Particle-in-cell simulations of the vacuum power flow from the cell to the load for a range of diode impedances from matched to ~ 40 Ohms will be shown and compared with the re-trapped parapotential flow predictions. The status of the component fabrication and system integration will be given. Another potential upgrade under consideration is RITS-62. In this case the RITS-6 Marx, intermediate stores, gas switches, and PFLs would be duplicated and a tee would replace the elbow that now connects a single PFL to a cell thereby allowing two PFLs to be connected to one cell. The output of RITS-62 matched to the cell/PFL impedance would then be 8 MV, 312 kA or 25.6 ohms. The predicted operating curves for RITS-62 with other non-matched MITLs will be shown. The power delivered to a radiographic diode can be maximized by the correct choice of MITL impedance given the cell/PFL and radiographic diode impedances. If the radiated output for a given diode has a stronger than linear voltage dependence this dependence can also be included in the correct choice of MITL impedance. The optimizations and trade-offs will be shown for RITS-6 and RITS-62 for diode impedances characteristic of radiographic diodes.
IEEE Transactions on Plasma Science | 2010
Steven F. Glover; Larry X. Schneider; Kim W. Reed; Gary Pena; J.-P. Davis; C. A. Hall; R.J. Hickman; K.C. Hodge; J.M. Lehr; Diego Jose Lucero; D. H. McDaniel; J. G. Puissant; Joseph M. Rudys; M. E. Sceiford; S.J. Tullar; D. M. Van De Valde; Forest Eugene White
Enabling technologies are being developed at Sandia National Laboratories to improve the performance and flexibility of compact pulsed power drivers for magnetically driven dynamic materials properties research. We have designed a modular system capable of precision current pulse shaping through the selective triggering of pulse forming components into a disk transmission line feeding a strip line load. The system is comprised of two hundred and forty 200 kV, 60 kA modules in a low inductance configuration capable of producing 250–350 kbar of magnetic pressure in a 1.75 nH, 20 mm wide strip line load. The system, called Genesis, measures approximately 5 meters in diameter and is capable of producing shaped currents greater than 5 MA. This performance is enabled through the use of a serviceable solid dielectric insulator system which minimizes the system inductance and reduces the stored energy and operating voltage requirements. Genesis can be programmed by the user to generate precision pulse shapes with rise times of 220–500 ns, allowing characterization of a range of materials from tungsten to polypropylene. This paper provides an overview of the Genesis design including the use of genetic optimization to shape currents through selective module triggering.
ieee international pulsed power conference | 2009
Steven F. Glover; Larry X. Schneider; Kim W. Reed; Gary Pena; J.-P. Davis; C. A. Hall; R.J. Hickman; K.C. Hodge; J.M. Lehr; Diego Jose Lucero; D. H. McDaniel; J. G. Puissant; Joseph M. Rudys; M. E. Sceiford; S.J. Tullar; D. M. Van De Valde; Forest Eugene White
Enabling technologies are being developed at Sandia National Laboratories to improve the performance and flexibility of compact pulsed-power drivers for magnetically driven dynamic materials properties research. We have designed a modular system that is capable of precision current pulse shaping through the selective triggering of pulse-forming components into a disk transmission line feeding a strip line load. The system is composed of 240 200-kV 60-kA modules in a low-inductance configuration that is capable of producing 250-350 kbar of magnetic pressure in a 1.75-nH 20-mm-wide strip line load. The system, called Genesis , measures approximately 5 m in diameter and is capable of producing shaped currents that are greater than 5 MA. This performance is enabled through the use of a serviceable solid-dielectric insulator system which minimizes the system inductance and reduces the stored energy and operating voltage requirements. Genesis can be programmed by the user to generate precision pulse shapes with rise times of 220-500 ns, allowing characterization of a range of materials from tungsten to polypropylene. This paper provides an overview of the Genesis design, including the use of genetic optimization to shape currents through selective module triggering.
ieee international pulsed power conference | 2011
Steven F. Glover; Forest Eugene White; P. J. Foster; Diego Jose Lucero; Larry X. Schneider; Kim W. Reed; Gary Pena; J.-P. Davis; C. A. Hall; R.J. Hickman; K.C. Hodge; R.W. Lemke; J.M. Lehr; D. H. McDaniel; J. G. Puissant; Joseph M. Rudys; M. E. Sceiford; S.J. Tullar; D. Van De Valde
Genesis is a compact pulsed power platform designed by Sandia National Laboratories to generate precision shaped multi-MA current waves with a rise time of 200–500 ns. In this system, two hundred and forty, 200 kV, 80 kA modules are selectively triggered to produce 280 kbar of magnetic pressure (>500 kbar pressure in high Z materials) in a stripline load for dynamic materials properties research. This new capability incorporates the use of solid dielectrics to reduce system inductance and size, programmable current shaping, and gas switches that must perform over a large range of operating conditions. Research has continued on this technology base with a focus on demonstrating the integrated performance of key concepts into a Genesis-like prototype called Protogen. Protogen measures approximately 1.4 m by 1.4 m and is designed to hold twelve Genesis modules. A fixed inductance load will allow rep-rate operation for component reliability and system lifetime experiments at the extreme electric field operating conditions expected in Genesis.
IEEE Transactions on Plasma Science | 2012
Steven F. Glover; Forest Eugene White; P. J. Foster; Diego Jose Lucero; Larry X. Schneider; Kim W. Reed; Gary Pena; Jean-Paul Davis; C. A. Hall; R.J. Hickman; K.C. Hodge; R.W. Lemke; J.M. Lehr; D. H. McDaniel; J. G. Puissant; Joseph M. Rudys; M. E. Sceiford; S.J. Tullar; D. M. Van De Valde
Genesis is a compact pulsed power platform designed by Sandia National Laboratories to generate precision shaped multi-MA current waves with a rise time of 200-500 ns. In this system, two hundred and forty, 200 kV, 80 kA modules are selectively triggered to produce 280 kbar of magnetic pressure (>;500 kbar pressure in high Z materials) in a stripline load for dynamic materials properties research. This new capability incorporates the use of solid dielectrics to reduce system inductance and size, programmable current shaping, and gas switches that must perform over a large range of operating conditions. Research has continued on this technology base with a focus on demonstrating the integrated performance of key concepts into a Genesis-like prototype called Protogen. Protogen measures approximately 1.4 m by 1.4 m and is designed to hold 12 Genesis modules. A fixed inductance load will allow rep-rate operation for component reliability and system lifetime experiments at the extreme electric field operating conditions expected in Genesis.
ieee international pulsed power conference | 2011
Steven F. Glover; J.-P. Davis; Larry X. Schneider; Kim W. Reed; Gary Pena; C. A. Hall; H.L. Hanshaw; R.J. Hickman; K.C. Hodge; R.W. Lemke; J.M. Lehr; Diego Jose Lucero; D. H. McDaniel; J. G. Puissant; Joseph M. Rudys; M. E. Sceiford; S.J. Tullar; D. Van De Valde; Forest Eugene White; Larry K. Warne; R. S. Coats; William A. Johnson
The success of dynamic materials properties research at Sandia National Laboratories has led to research into ultra-low impedance, compact pulsed power systems capable of multi-MA shaped current pulses with rise times ranging from 220–500 ns. The Genesis design consists of two hundred and forty 200 kV, 80 kA modules connected in parallel to a solid dielectric disk transmission line and is capable of producing 280 kbar of magnetic pressure (>500 kbar pressure in high Z materials) in a 1.75 nH, 20 mm wide stripline load. Stripline loads operating under these conditions expand during the experiment resulting in a time-varying load that can impact the performance and lifetime of the system. This paper provides analysis of time-varying stripline loads and the impact of these loads on system performance. Further, an approach to reduce dielectric stress levels through active damping is presented as a means to increase system reliability and lifetime.
international conference on plasma science | 2007
D.E. Bliss; W.T. Clark; K. R. LeChien; J.E. Maenchen; M. E. Savage; M. E. Sceiford; Brian Stoltzfus; K.W. Struve; W. A. Stygar; J. R. Woodworth; D. Dalton; Peter Eric Wakeland
Summary form only given. The Z pulsed power driver at Sandia National Laboratories is in the process of being refurbished as part of the ZR project to improve reliability and increase the energy delivered to the load. The new ZR gas switches currently close at a peak voltage of 6.2 MV to generate a projected 26 MA load current as compared to 4.6 MV and ~20 MA for the old switches on Z. The Laser Trigger System (LTS) has been redesigned to meet requirements that it trigger this higher voltage switch with comparable optic lifetime (>100 shots) and jitter (1sigma < 5ns) to the old Z switches. We will discuss critical design features of the LTS and show performance results from the Z20 test bed which was used to study the operation of a single ZR module.
IEEE Transactions on Plasma Science | 2012
Steven F. Glover; Jean-Paul Davis; Larry X. Schneider; Kim W. Reed; Gary Pena; C. A. Hall; Heath L. Hanshaw; R.J. Hickman; K.C. Hodge; R.W. Lemke; J.M. Lehr; Diego Jose Lucero; D. H. McDaniel; J. G. Puissant; Joseph M. Rudys; M. E. Sceiford; S.J. Tullar; D. M. Van De Valde; Forest Eugene White; Larry K. Warne; R. S. Coats; William A. Johnson
The success of dynamic materials properties research at Sandia National Laboratories has led to research into ultralow impedance, compact pulsed power systems capable of multi-MA shaped current pulses with rise times ranging from 220 to 500 ns. The Genesis design consists of two hundred and forty 200 kV, 80 kA modules connected in parallel to a solid dielectric disk transmission line and is capable of producing 280 kbar of magnetic pressure (>; 500 kbar pressure in high Z materials) in a 1.75 nH, 20-mm wide stripline load. Stripline loads operating under these conditions expand during the experiment resulting in a time-varying load that can impact the performance and lifetime of the system. This paper provides analysis of time-varying stripline loads and the impact of these loads on system performance. Further, an approach to reduce dielectric stress levels through active damping is presented as a means to increase system reliability and lifetime.
ieee international pulsed power conference | 2009
P. Corcoran; B. A. Whitney; V. L. Bailey; I. Smith; W. A. Stygar; M. E. Savage; G. A. Rochau; J. E. Bailey; B. Jones; T. J. Nash; M. E. Sceiford; L. G. Schlitt; J. W. Douglas
We present an overview of a detailed transmission-line circuit model of the refurbished Z accelerator (ZR) [1, 2]. We also present comparisons of the models calculations to data taken on ZR shots with short circuit loads (shots 1780 and 1852) and wire-array z-pinch loads (shots 1785 and 1896). The circuit model includes a 2-D network of transmission lines that model ZRs output lines and water convolute. The development of the 2-D network is discussed along with benchmarks to a 3-D LSP-based model.
Physics of Plasmas | 2018
M.G. Mazarakis; Nichelle Bennett; Michael Edward Cuneo; Sean Donovan Fournier; Mark D. Johnston; Mark L. Kiefer; Joshua J. Leckbee; Dan S. Nielsen; B.V. Oliver; M. E. Sceiford; Sean Simpson; T. J. Renk; C. L. Ruiz; Timothy J. Webb; Derek Ziska; D. Droemer; Raymond E. Gignac; Robert J. Obregon; Frank L. Wilkins; D.R. Welch
Summary form only given. The results presented here were obtained with an SMP diode mounted at the front high voltage end of the RITS accelerator. RITS is a Self-Magnetically Insulated Transmission Line (MITL) voltage adder that adds the voltage pulses of six 1.3 MV inductively insulated cavities. Our experiments had two objectives: first to measure the contribution of the back-streaming ion currents emitted from the anode target to the diode beam current, and second to try to evaluate the energy of those ions and hence the actual Anode-Cathode (A-K) gap actual voltage. In any very high voltage inductive voltage adder (IVA) utilizing MITLs to transmit the power to the diode load, the precise knowledge of the accelerating voltage applied on the anode-cathode (A-K) gap is problematic. The accelerating voltage quoted in the literature is from estimates based on measurements of the anode and cathode currents of the MITL far upstream from the diode and utilizing the para-potential flow theories and inductive corrections. Thus it would be interesting to have another independent measurement to evaluate the A-K voltage. The diodes anode is made of a number of high Z metals in order to produce copious and energetic flash x-rays. The backstreaming currents are a strong fraction of the anode materials and their stage of cleanness and gas adsorption. We have measured the back-streaming ion currents emitted from the anode and propagating through a hollow cathode tip for various diode configurations and different techniques of target cleaning treatments, such as heating to very high temperatures with DC and pulsed current, with RF plasma cleaning and with both plasma cleaning and heating. We have also evaluated the A-K gap voltage by ion filtering techniques.