Title :
HV Energy Store in Organic Composite Dielectrics for Compact Pulsed Power
Author :
Rossi, J.O. ; Castro, P. ; Roybal, M. ; Schamiloglu, E. ; Sawhill, S. ; Savrun, E.
Author_Institution :
ECE Dept., Univ. of New Mexico, Albuquerque, NM
Abstract :
With the aim of developing novel planar transmission lines that improve prospects for compact pulsed power, the ECE Department at the University of New Mexico (UNM) has played an important role in a collaborative research project with Sienna Technologies, Inc. supported by DoE. In future envisioned pulsed power-driven systems on mobile platforms it is well know that ceramic dielectrics with large iquest have great potential for decreasing the volume required for the system. Such ceramic dielectrics are also important for higher energy density capacitors. Unfortunately, ceramics with higher dielectric constant normally have lower breakdown strength (< 1.0 MV/cm) compared with organic materials or thermoplastic materials. In view of this, to achieve high energy densities (> 0.5 J/cm3) in dielectrics the present trend consists of casting in a mold a composite material composed of granulated ceramic embedded in an organic dielectric matrix. In an effort to accomplish this, Sienna Technologies has been responsible for fabrication of the ceramic composite samples while UNM has been performing pulsed breakdown characterization. In addition, another objective of this work is to investigate the behavior of the dielectric constant of the composite material as ceramic materials generally present a nonlinear dependence, i.e., epsiv varies as a function of the applied voltage. There has been a paucity of research on this nonlinear behavior for ceramic composites and it is necessary to understand the epsiv variation for two basic applications in pulsed power: linear & nonlinear transmission lines (NLTLs).
Keywords :
ceramics; composite materials; dielectric materials; organic compounds; permittivity; planar waveguides; power integrated circuits; pulse circuits; HV energy store; ceramic dielectrics; compact pulsed power; dielectric constant; mobile platforms; nonlinear transmission line; organic composite dielectrics; organic dielectric matrix; planar transmission lines; pulsed breakdown characterization; pulsed power-driven systems; Capacitors; Casting; Ceramics; Collaboration; Composite materials; Dielectric breakdown; Dielectric materials; High-K gate dielectrics; Organic materials; Planar transmission lines;
Conference_Titel :
IEEE International Power Modulators and High Voltage Conference, Proceedings of the 2008
Conference_Location :
Las Vegas, NE
Print_ISBN :
978-1-4244-1534-2
Electronic_ISBN :
978-1-4244-1535-9
DOI :
10.1109/IPMC.2008.4743716