DocumentCode :
3205077
Title :
Application of a quasi-static EM solver to optimization of low inductance film capacitors
Author :
Qin, Shanshan ; Boggs, Steven A.
Author_Institution :
Inst. of Mater. Sci., Univ. of Connecticut, Storrs, CT, USA
fYear :
2009
fDate :
June 28 2009-July 2 2009
Firstpage :
790
Lastpage :
794
Abstract :
A large high voltage film capacitor typically consists of numerous ¿windings¿ connected in series and parallel, as necessary to achieve the desired voltage and capacitance rating. The discharge properties of such a capacitor are determined by the equivalent series resistance (ESR) and equivalent series inductance (ESL) of the overall assembly, as determined by the properties of the individual windings combined with the structure into which they are assembled, as well as the frequency dependent impedance of the load. A quasi-static electromagnetic solver has been used to compute the frequency-dependent ESR and ESL of capacitor structures which minimize capacitor inductance. The properties are frequency-dependent as a result of the variation in the relative values of resistive and inductive impedances with frequency, which changes the current distribution in the structure and, therefore, the magnetic field (and resulting inductance) as well as power dissipation (resistance) generated by current flow. The ultimate objective is to optimize film capacitors for ns discharge applications and compute the discharge characteristics into a given load.
Keywords :
capacitors; inductance; windings; capacitance rating; capacitor inductance; capacitor structures; current distribution; current flow; discharge properties; equivalent series inductance; equivalent series resistance; frequency dependent impedance; high voltage film capacitor; inductive impedance; low inductance film capacitors; magnetic field; optimization; power dissipation; quasistatic electromagnetic solver; resistive impedance; windings; Assembly; Capacitance; Capacitors; Electromagnetic induction; Frequency dependence; Impedance; Inductance; Magnetic properties; Paramagnetic resonance; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pulsed Power Conference, 2009. PPC '09. IEEE
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4244-4064-1
Electronic_ISBN :
978-1-4244-4065-8
Type :
conf
DOI :
10.1109/PPC.2009.5386362
Filename :
5386362
Link To Document :
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