An ultra-compact Marx-type high-voltage generator
This paper discusses the design of an ultra-compact, Marx-type, high-voltage generator. This system incorporates high-performance components that are closely coupled and integrated into an extremely compact assembly. Low profile, custom ceramic capacitors with coplanar extended electrodes provide pr...
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creator | Goerz, D. Ferriera, T. Nelson, D. Speer, R. Wilson, M. |
description | This paper discusses the design of an ultra-compact, Marx-type, high-voltage generator. This system incorporates high-performance components that are closely coupled and integrated into an extremely compact assembly. Low profile, custom ceramic capacitors with coplanar extended electrodes provide primary energy storage. Low-inductance, spark-gap switches incorporate miniature gas cavities imbedded within the central region of the annular shaped capacitors, with very thin dielectric sections separating the energy storage capacitors. Carefully shaped electrodes and insulator surfaces are used throughout to minimize field enhancements, reduce fields at triple-point regions, and enable operation at stress levels closer to the intrinsic breakdown limits of the dielectric materials. Specially shaped resistors and inductors are used for charging and isolation during operation. Forward-coupling ceramic capacitors are connected across successive switch-capacitor-switch stages to assist in switching. Pressurized SF/sub 6/ gas is used for electrical insulation in the spark-gap switches and throughout the unit. The pressure housing is constructed entirely of dielectric materials, with segments that interlock with the low-profile switch bodies to provide an integrated support structure for all of the components. This ultra-compact Marx generator employs a modular design that can be sized as needed for a particular application. Units have been assembled with 4, 10, and 30 stages and operated at levels up to 100 kV per stage. |
doi_str_mv | 10.1109/PPPS.2001.1002174 |
format | Conference Proceeding |
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This system incorporates high-performance components that are closely coupled and integrated into an extremely compact assembly. Low profile, custom ceramic capacitors with coplanar extended electrodes provide primary energy storage. Low-inductance, spark-gap switches incorporate miniature gas cavities imbedded within the central region of the annular shaped capacitors, with very thin dielectric sections separating the energy storage capacitors. Carefully shaped electrodes and insulator surfaces are used throughout to minimize field enhancements, reduce fields at triple-point regions, and enable operation at stress levels closer to the intrinsic breakdown limits of the dielectric materials. Specially shaped resistors and inductors are used for charging and isolation during operation. Forward-coupling ceramic capacitors are connected across successive switch-capacitor-switch stages to assist in switching. Pressurized SF/sub 6/ gas is used for electrical insulation in the spark-gap switches and throughout the unit. The pressure housing is constructed entirely of dielectric materials, with segments that interlock with the low-profile switch bodies to provide an integrated support structure for all of the components. This ultra-compact Marx generator employs a modular design that can be sized as needed for a particular application. 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Forward-coupling ceramic capacitors are connected across successive switch-capacitor-switch stages to assist in switching. Pressurized SF/sub 6/ gas is used for electrical insulation in the spark-gap switches and throughout the unit. The pressure housing is constructed entirely of dielectric materials, with segments that interlock with the low-profile switch bodies to provide an integrated support structure for all of the components. This ultra-compact Marx generator employs a modular design that can be sized as needed for a particular application. Units have been assembled with 4, 10, and 30 stages and operated at levels up to 100 kV per stage.</description><subject>Assembly systems</subject><subject>Capacitors</subject><subject>Ceramics</subject><subject>Dielectric materials</subject><subject>Dielectrics and electrical insulation</subject><subject>Electrodes</subject><subject>Energy storage</subject><subject>Spark gaps</subject><subject>Surface charging</subject><subject>Switches</subject><isbn>0780371208</isbn><isbn>9780780371200</isbn><fulltext>true</fulltext><rsrctype>conference_proceeding</rsrctype><creationdate>2001</creationdate><recordtype>conference_proceeding</recordtype><sourceid>6IE</sourceid><sourceid>RIE</sourceid><recordid>eNotj81OwzAQhC0hJKD0ARCXvIDD7sbG9rGq-JOKiAScK9ts0qC0iRyD6NtTqZ3L3L75RogbhBIR3F1d1-8lAWCJAIRGnYkrMBYqgwT2Qsyn6RsOUVopZy4FLnbFT5-Tl3HYjj7m4tWnP5n3Ixebrt3I36HPvuWi5R0nn4d0Lc4b3088P_VMfD4-fCyf5ert6WW5WMkOlc3SHTYIzEGKlDWsIzSNReSorQ33TP7LheA0oHYOUZEPQQNVmixxDNFVM3F75HbMvB5Tt_Vpvz69qv4BrcFA6g</recordid><startdate>2001</startdate><enddate>2001</enddate><creator>Goerz, D.</creator><creator>Ferriera, T.</creator><creator>Nelson, D.</creator><creator>Speer, R.</creator><creator>Wilson, M.</creator><general>IEEE</general><scope>6IE</scope><scope>6IH</scope><scope>CBEJK</scope><scope>RIE</scope><scope>RIO</scope></search><sort><creationdate>2001</creationdate><title>An ultra-compact Marx-type high-voltage generator</title><author>Goerz, D. ; Ferriera, T. ; Nelson, D. ; Speer, R. ; Wilson, M.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-i148t-90042071102487e5c0ff811ec588b6e2ad9bb95015991142abb50235282ecbc93</frbrgroupid><rsrctype>conference_proceedings</rsrctype><prefilter>conference_proceedings</prefilter><language>eng</language><creationdate>2001</creationdate><topic>Assembly systems</topic><topic>Capacitors</topic><topic>Ceramics</topic><topic>Dielectric materials</topic><topic>Dielectrics and electrical insulation</topic><topic>Electrodes</topic><topic>Energy storage</topic><topic>Spark gaps</topic><topic>Surface charging</topic><topic>Switches</topic><toplevel>online_resources</toplevel><creatorcontrib>Goerz, D.</creatorcontrib><creatorcontrib>Ferriera, T.</creatorcontrib><creatorcontrib>Nelson, D.</creatorcontrib><creatorcontrib>Speer, R.</creatorcontrib><creatorcontrib>Wilson, M.</creatorcontrib><collection>IEEE Electronic Library (IEL) Conference Proceedings</collection><collection>IEEE Proceedings Order Plan (POP) 1998-present by volume</collection><collection>IEEE Xplore All Conference Proceedings</collection><collection>IEEE Electronic Library (IEL)</collection><collection>IEEE Proceedings Order Plans (POP) 1998-present</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>Goerz, D.</au><au>Ferriera, T.</au><au>Nelson, D.</au><au>Speer, R.</au><au>Wilson, M.</au><format>book</format><genre>proceeding</genre><ristype>CONF</ristype><atitle>An ultra-compact Marx-type high-voltage generator</atitle><btitle>PPPS-2001 Pulsed Power Plasma Science 2001. 28th IEEE International Conference on Plasma Science and 13th IEEE International Pulsed Power Conference. Digest of Papers (Cat. No.01CH37251)</btitle><stitle>PPPS</stitle><date>2001</date><risdate>2001</risdate><volume>1</volume><spage>628</spage><epage>631 vol.1</epage><pages>628-631 vol.1</pages><isbn>0780371208</isbn><isbn>9780780371200</isbn><abstract>This paper discusses the design of an ultra-compact, Marx-type, high-voltage generator. This system incorporates high-performance components that are closely coupled and integrated into an extremely compact assembly. Low profile, custom ceramic capacitors with coplanar extended electrodes provide primary energy storage. Low-inductance, spark-gap switches incorporate miniature gas cavities imbedded within the central region of the annular shaped capacitors, with very thin dielectric sections separating the energy storage capacitors. Carefully shaped electrodes and insulator surfaces are used throughout to minimize field enhancements, reduce fields at triple-point regions, and enable operation at stress levels closer to the intrinsic breakdown limits of the dielectric materials. Specially shaped resistors and inductors are used for charging and isolation during operation. Forward-coupling ceramic capacitors are connected across successive switch-capacitor-switch stages to assist in switching. Pressurized SF/sub 6/ gas is used for electrical insulation in the spark-gap switches and throughout the unit. The pressure housing is constructed entirely of dielectric materials, with segments that interlock with the low-profile switch bodies to provide an integrated support structure for all of the components. This ultra-compact Marx generator employs a modular design that can be sized as needed for a particular application. Units have been assembled with 4, 10, and 30 stages and operated at levels up to 100 kV per stage.</abstract><pub>IEEE</pub><doi>10.1109/PPPS.2001.1002174</doi><oa>free_for_read</oa></addata></record> |
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ispartof | PPPS-2001 Pulsed Power Plasma Science 2001. 28th IEEE International Conference on Plasma Science and 13th IEEE International Pulsed Power Conference. Digest of Papers (Cat. No.01CH37251), 2001, Vol.1, p.628-631 vol.1 |
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language | eng |
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source | IEEE Electronic Library (IEL) Conference Proceedings |
subjects | Assembly systems Capacitors Ceramics Dielectric materials Dielectrics and electrical insulation Electrodes Energy storage Spark gaps Surface charging Switches |
title | An ultra-compact Marx-type high-voltage generator |
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