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AN ADVANCED MODEL OF A HIGH PRESSURE LIQUID DIELECTRIC SWITCH FOR DIRECTED ENERGY APPLICATIONS

机译:用于定向能源应用的高压液介质开关的先进模型

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A high power liquid dielectric switch is being developed to satisfy the requirements for future Directed Energy Applications. A flowing, high-pressure liquid dielectric was chosen for the design of a megavolt class switch operating at 100pps. This paper reports on the modeling efforts commensurate with the design of a full size, prototype 250-300kV concept validation test (CVT), switch which can transfer kilojoules per pulse. The flow system required to clear the discharge bubble and byproducts is intimately tied to the dynamics of energy deposition, and bubble formation. A circuit model has been developed to predict the discharge temporal characteristics including the voltage, current, risetime, arc energy deposition profile, time varying arc inductance, bubble formation timescales and oscillatory bubble effects. The model utilizes both the Braginskii equation and Charlie Martin's equations to calculate the energy dissipated in the arc. A comparison of the two methods is presented. An integrated model also includes the hydrodynamic equations to predict the gas bubble volume and oscillation period which are dramatically reduced with increasing pressure. Optimization studies indicate that a 1000-2000psi switch appears to have ideal attributes including minimal dielectric flow requirements, compact size and low weight for implementation of a kilojoule, rep-rate switch.
机译:正在开发出高功率液体介质开关来满足未来定向能源应用的要求。选择流动的高压液体电介质,用于在100pps下操作的MegaVolt级开关的设计。本文报告了与全尺寸的设计相称的建模工作,原型250-300kV概念验证测试(CVT),开关,可脉冲传输千焦耳。清除放电气泡和副产物所需的流动系统与能量沉积的动态相关,和气泡形成密切相关。已经开发了一种电路模型来预测包括电压,电流,提升时间,电弧能量沉积轮廓,时变电弧电感,气泡形成时间尺度和振荡气泡效应的放电时间特性。该模型利用Braginskii等式和查理Martin的方程来计算弧形中散发的能量。提出了两种方法的比较。集成模型还包括用于预测气泡体积和随着压力的增加而显着减小的气泡体积和振荡周期的流体动力学方程。优化研究表明,1000-2000PSI开关似乎具有理想的属性,包括最小的介电流量要求,电压尺寸和低重量,以实现千焦耳,代表率开关。

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