Proceedings Article10.1109/IWIPP.2015.7295965
Power electronics packaging challenges for future warship applications
Rober M. Cuzner
- 03 May 2015
- pp 5-8
20
TL;DR: In this paper, the authors highlight the future packaging challenges in three areas: modularity, increased module functionality and retrofit, illustrated by three specific examples: medium voltage solid state transformer, medium voltage dc solid state circuit breaker and low voltage variable speed drive.
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Abstract: Power conversion and solid state protection technologies are critical enablers to the accomplishment of the Navy's vision for shipboard Next Generation Integrated Power Systems but for most commercial offerings of this equipment the simultaneous achievements of high power density with electromagnetic and thermal compatibility and high reliability are prohibitive cost drivers. The increasing availability of wide bandgap power semiconductors provides the opportunity for the development of power electronic systems with a smaller footprint, higher efficiency and lower demands for external thermal management — enabling more widespread introduction of power electronic systems into the shipboard environment with lower system integration costs. However, the shipboard environment poses challenging competing requirements that cannot be ignored. The purpose of this paper is to highlight the future packaging challenges in three areas: modularity, increased module functionality and retrofit. These challenges are illustrated by three specific examples: medium voltage solid state transformer, medium voltage dc solid state circuit breaker and low voltage variable speed drive.
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The next generation of high voltage (10 kV) silicon carbide power modules
Brandon Passmore,Zach Cole,Brad McGee,Matthew Wells,Jennifer Stabach,Josh Bradshaw,Robert Shaw,Daniel Martin,T. McNutt,Edward VanBrunt,Brett Hull,Dave Grider +11 more
- 01 Nov 2016
TL;DR: In this paper, a 10 kV / 240 A silicon carbide (SiC) metal-oxide field effect transistor (MOSFET) power module design is presented.
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Methodology for Characterization of Common-Mode Conducted Electromagnetic Emissions in Wide-Bandgap Converters for Ungrounded Shipboard Applications
Andrew N. Lemmon,Robert Cuzner,James Gafford,Rasoul Hosseini,Aaron D. Brovont,Michael S. Mazzola +5 more
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Design of a 10 kV SiC MOSFET-based high-density, high-efficiency, modular medium-voltage power converter
Slavko Mocevic,Jianghui Yu,Boran Fan,Ke Ping Sun,Yue Xu,J. Stewart,Yu Rong,He Song,Vladimir Mitrovic,Ning Yan,Jun Wang,Igor Cvetkovic,Rolando Burgos,Dushan Boroyevich,Christina DiMarino,Dong Dong,Jayesh Kumar Motwani,Richard S. Zhang +17 more
TL;DR: In this article , an enhanced gate-driver, auxiliary power supply network, PCB planar dc-bus, and high-density inductor are presented, enabling the SiC-based designs in modular medium-voltage (MV) power conversion.
Comprehensive Characterization of 10-kV Silicon Carbide Half-Bridge Modules
Andrew N. Lemmon,Ryan Graves +1 more
TL;DR: These modules are capable of switching inductive loads very rapidly, with minimal overshoot and manageable parasitic-induced ringing, and corroborate the excellent switching performance of these MVDC SiC MOSFET modules, which has been only sparsely documented in the literature to date.
39
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TL;DR: The Power Electronics Building Block (PEBB) concept is a platform-based approach where basic building blocks are consistent with one another, have a defined functionality and standardized hardware and control interfaces.
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TL;DR: The Power Electronics Building Block (PEBB) concept is a platform-based approach where basic building blocks are consistent with one another, have a defined functionality and standardized hardware and control interfaces.
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Integrated fight through power
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TL;DR: In this article, the selection and benefits of the future shipboard power system architecture are discussed, as well as how to switch between the normal and alternate power sources in the future.
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