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Original design of field grading materials for high voltage power module applications

机译:高压电源模块应用领域分级材料的原创设计

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One of the main goals in aeronautic industry is to increase the total electrical power in on-board systems. The first approach is to increase the voltage while reducing the volume of converters. However, this approach induces very high electrical constraints on the insulating materials used for power module. These local high electric fields can cause premature failure, by partial discharge activity and insulation breakdown. In order to efficiently reduce the electrical stresses in high voltage power modules, the design of new stress-control encapsulating composite materials with graded properties has been developed using the particles electrophoresis auto assembling technique. It is a promising solution since it does not impact the volume of the power module and has a negligible impact on the overall mass. The aim of this paper is to evaluate different strategies to achieve such field grading encapsulating composite with local high relative permittivity ($arepsilon_{r} gt 10)$, tailored around critical areas where the electric field is high. The present paper mainly proposes two processes to enable the electrodeposition of a field grading layer within a composite encapsulation to cover multiple electrodes of a direct bonded copper (DBC) substrate with a complex layout. The first approach consists in adding a new and fixed electrode on the layout of DBC substrate that will not be polarized or used during normal operation of the module. The second method consists in adding a removable top electrode above the substrate. Results show that the latter approach is potentially the best choice to enable the electrodeposition of a homogenous thickness of field graded layer on a complex DBC layout with multiple adjacent copper tracks.
机译:航空行业的主要目标之一是在板载系统中增加电力总电力。第一种方法是增加电压,同时减少转换器的体积。然而,该方法在用于电力模块的绝缘材料上引起非常高的电气限制。这些局部高电场可能会导致局部放电活动和绝缘故障引起过早的故障。为了有效地降低高压功率模块中的电应力,采用颗粒电泳自动组装技术开发了具有分级性能的新应力控制的设计。这是一个有希望的解决方案,因为它不会影响电力模块的体积,并且对整体质量的影响可忽略不计。本文的目的是评估不同的策略,以实现用局部高相对介电常数($ varepsilon_ {r} gt 10)$的封装复合材料的场分级,而是在电场高的关键区域定制。本文主要提出了两个方法,使得在复合封装内的场分级层的电沉积能够覆盖具有复杂布局的直接粘合的铜(DBC)衬底的多个电极。第一种方法包括在模块正常操作期间在DBC基板的布局上添加新的和固定电极。第二种方法包括在基板上方添加可移除的顶电极。结果表明,后一种方法可能是最佳选择,使得在具有多个相邻的铜轨道的复杂DBC布局上使场分级层的均匀厚度电沉积。

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