Differential B-dot and D-dot monitors for current and voltage measurements on a 20-MA 3-MV pulsed-power accelerator
Creators
- Shoup, Roy Willlam1
- Gilliland, Terrance Leo2
- Lee, James R.3
- Speas, Christopher Shane3
- Kim, Alexandre A.3
- Struve, Kenneth William2
- York, Mathew William2
- Leifeste, Gordon T.2
- Rochau, Gregory Alan2
- Sharpe, Arthur William2
- Stygar, William A.2
- Porter, John Larry Jr.2
- Wagoner, Tim C.2
- Reynolds, Paul Gerard4
- Slopek, Jeffrey Scott2
- Moore, William B.S.2
- Dinwoodie, Thomas Albert2
- Woodring, R.M.2
- Broyles, Robin Scott2
- Mills, Jerry Alan5
- Melville, J.A.5
- Dudley, M.E.2
- Androlewicz, K.E.2
- Mourning, R.W.2
- Moore, J.K.2
- Serrano, Jason Dimitri2
- Ives, H.C.6
- Johnson, M.F.4
- Peyton, B.P.2
- Leeper, Ramon Joe2
- Savage, Mark Edward2
- Donovan, Guy Louis2
- Spielman, R.B.2
- Seamen, Johann F.
- Sandia National Laboratories (United States)
- 1. ITT Industries, Albuquerque, NM (United States)
- 2. Ktech Corporation, Albuquerque, NM (United States)
- 3. High Current Electronic Institute, Russian Academy of Sciences, Tomsk (Russian Federation)
- 4. Team Specialty Products Corporation, Albuquerque, NM (United States)
- 5. Prodyn Technologies Incorporated, Albuquerque, NM (United States)
- 6. EG and G, Albuquerque, NM (United States)
Description
We have developed a system of differential-output monitors that diagnose current and voltage in the vacuum section of a 20-MA 3-MV pulsed-power accelerator. The system includes 62 gauges: 3 current and 6 voltage monitors that are fielded on each of the accelerator's 4 vacuum-insulator stacks, 6 current monitors on each of the accelerator's 4 outer magnetically insulated transmission lines (MITLs), and 2 current monitors on the accelerator's inner MITL. The inner-MITL monitors are located 6 cm from the axis of the load. Each of the stack and outer-MITL current monitors comprises two separate B-dot sensors, each of which consists of four 3-mm-diameter wire loops wound in series. The two sensors are separately located within adjacent cavities machined out of a single piece of copper. The high electrical conductivity of copper minimizes penetration of magnetic flux into the cavity walls, which minimizes changes in the sensitivity of the sensors on the 100-ns time scale of the accelerator's power pulse. A model of flux penetration has been developed and is used to correct (to first order) the B-dot signals for the penetration that does occur. The two sensors are designed to produce signals with opposite polarities; hence, each current monitor may be regarded as a single detector with differential outputs. Common-mode-noise rejection is achieved by combining these signals in a 50-(Omega) balun. The signal cables that connect the B-dot monitors to the balun are chosen to provide reasonable bandwidth and acceptable levels of Compton drive in the bremsstrahlung field of the accelerator. A single 50-ω cable transmits the output signal of each balun to a double-wall screen room, where the signals are attenuated, digitized (0.5-ns/sample), numerically compensated for cable losses, and numerically integrated. By contrast, each inner-MITL current monitor contains only a single B-dot sensor. These monitors are fielded in opposite-polarity pairs. The two signals from a pair are not combined in a balun; they are instead numerically processed for common-mode-noise rejection after digitization. All the current monitors are calibrated on a 76-cm-diameter axisymmetric radial transmission line that is driven by a 10-kA current pulse. The reference current is measured by a current-viewing resistor (CVR). The stack voltage monitors are also differential-output gauges, consisting of one 1.8-cm-diameter D-dot sensor and one null sensor. Hence, each voltage monitor is also a differential detector with two output signals, processed as described above. The voltage monitors are calibrated in situ at 1.5 MV on dedicated accelerator shots with a short-circuit load. Faraday's law of induction is used to generate the reference voltage: currents are obtained from calibrated outer-MITL B-dot monitors, and inductances from the system geometry. In this way, both current and voltage measurements are traceable to a single CVR. Dependable and consistent measurements are thus obtained with this system of calibrated diagnostics. On accelerator shots that deliver 22 MA to a low-impedance z-pinch load, the peak lineal current densities at the stack, outer-MITL, and inner-MITL monitor locations are 0.5, 1, and 58 MA/m, respectively. On such shots the peak currents measured at these three locations agree to within 1%
Availability note (English)
Available from http://prst-ab.aps.org/abstract/PRSTAB/v11/i10/e100401Additional details
Identifiers
Publishing Information
- Imprint Pagination
- 60 p.
- Report number
- SAND--2007-7793J
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 40026379
- Subject category
- S24: POWER TRANSMISSION AND DISTRIBUTION; S43: PARTICLE ACCELERATORS;
- Resource subtype / Literary indicator
- Non-conventional Literature
- Descriptors DEI
- ACCELERATORS; BREMSSTRAHLUNG; CABLES; CAVITIES; COPPER; ELECTRIC CONDUCTIVITY; GEOMETRY; INDUCTION; MAGNETIC FLUX; MONITORS; POWER TRANSMISSION LINES; RESISTORS; SCREENS; SENSITIVITY
- Descriptors DEC
- ELECTRICAL EQUIPMENT; ELECTRICAL PROPERTIES; ELECTROMAGNETIC RADIATION; ELEMENTS; EQUIPMENT; MATHEMATICS; MEASURING INSTRUMENTS; METALS; PHYSICAL PROPERTIES; RADIATIONS; TRANSITION ELEMENTS
Optional Information
- Contract/Grant/Project number
- AC04-94AL85000
- Notes
- Published in Physical Review Special Topics - Accelerators and Beams, Volume 11, No. 10, paper 100401.
- Funding organization
- US Department of Energy (United States)