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Optimal Simulation Techniques for Distributed Energy Store Railguns with Solid State Switches.

机译:具有固态开关的分布式储能铁路优化仿真技术。

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The objective of this paper is to present an optimal design methodology to determine the best firing strategy, energy store sizing, energy store spacing and maximum system efficiency for a Distributed Energy Store (DES) railgun. System simulations/designs will be based on the assumption that switching of the energy storage units will be accomplished using solid state devices. Candidate semiconductor technologies are promising in relation to solving the high energy, low weight requirements of a railgun system and other pulsed power systems requiring high energy, compact switching. A simulation code has been developed and used to produce non-dimensional data files that are then scaled to physical railgun values based on input parameters. Energy stores are assumed to be capacitive in nature with diodes to prevent negative currents and crowbar diodes to prevent voltage reversal of the capacitors. The main thrust of this simulation effort is to produce a DES design that optimizes the efficiency of the conversion of stored electrical energy to projectile kinetic energy, while also considering the abilities of near term solid state switching devices.

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