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Materials Design - Towards a Functionally Graded Electrical Conductor

机译:材料设计 - 朝向功能分级电导体

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摘要

In this study, we discuss functionally graded (FG) materials as pulsed electrical conductors. These conductors can be designed to be more efficient and longer lasting by applying numerical modeling tools. One focus is on limiting the thermal fatigue damage in conductors caused by very high temperatures that develop during pulse heating. We have quantified the effect of various grading functions on the pulsed Joule heating generated and the peak temperature experienced in the conductors of an electromagnetic launcher by using a 1D numerical code and a state of the art 3D coupled finite element code, EMAP3D. Because FG materials incorporate applications-tailored compositions, structures, and dimensions, smoothly graded properties in lateral and longitudinal cross sections are obtainable. The Solid Freeform Fabrication (SFF) processing approach allows for architectures with a series of important features. These features include the selective use of high efficiency qonducting materials in the core, preconditioned conductor/structure interfaces, and built-in features for enhanced cooling where necessary.
机译:在这项研究中,我们讨论功能上分级(FG)材料作为脉冲电导体。通过应用数值建模工具,这些导体可以设计成更有效,更长的持久性。一个焦点是限制在脉冲加热期间产生的非常高的温度引起的导体中的热疲劳损坏。我们通过使用1D数值代码和现有技术的3D耦合有限元代码,EMAP3D,已经量化了各种分级功能对电磁发射器导体中所经历的脉冲焦耳加热的效果和电磁发射器的导体经历的峰值温度。因为FG材料包括应用程序定制的组合物,结构和尺寸,所以可以获得横向和纵向横截面的平滑分级性质。固体自由形式制造(SFF)处理方法允许具有一系列重要特征的架构。这些特征包括在核心,预处理导体/结构接口中的高效导电材料的选择性使用,以及必要时增强冷却的内置特征。

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