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Accurate and Efficient Thermal Analysis of Slow Wave Structures for Helix Traveling-Wave Tubes by Finite-Element Method

机译:通过有限元法测定螺旋行波管慢波结构的准确和高效的热分析

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In slow wave structures (SWSs) for helix traveling-wave tubes, both thermal conductivities (TCs) of materials and thermal contact resistances (TCRs) are temperature-dependent, which have a great influence on the heat dissipation of helix SWSs. This article presents an accurate and efficient thermal analysis method of helix SWSs by finite-element method (FEM). In this method, a novel contact boundary condition (CBC) approach is proposed. This CBC approach can easily integrate various TCR models to simulate temperature-dependent TCRs accurately and conveniently. Specially for double nonlinearities arising from temperature-dependent TCs and TCRs within helix SWSs, a fast nonlinear solver named FMONS is also proposed to significantly improve the efficiency of the thermal simulation for helix SWSs. Based on this method, we further developed a 3-D thermal design tool for helix SWSs called TS2. Different from all the present FEM codes, for example, ANSYS, our TS2 can directly model temperature-dependent TCRs. By simulating various helix SWSs including a global model of the entire helix SWS, it is found that our TS2 has very high accuracy and efficiency in the thermal analysis of helix SWSs, which would be very useful for the design of high-power helix traveling-wave tubes.
机译:在螺旋行波管的慢波结构(SWS)中,材料和热接触电阻(TCR)的热导流率(TCS)都是温度依赖性的,这对螺旋SWS的散热产生了很大影响。本文通过有限元方法(FEM)介绍了螺旋SWS的准确有效的热分析方法。在该方法中,提出了一种新的接触边界条件(CBC)方法。该CBC方法可以轻松集成各种TCR模型来精确方便地模拟温度依赖性TCR。特别是从螺旋SWS中的温度相关的TCS和TCR产生的双重非线性,还提出了一种名为FMONS的快速非线性解算器,以显着提高螺旋SWS的热模拟效率。基于此方法,我们进一步开发了一种用于称为TS2的螺旋SWS的3-D热设计工具。与所有本文的FEM代码不同,例如ANSYS,我们的TS2可以直接模拟温度相关的TCR。通过模拟包括整个螺旋SWS的全球模型的各种螺旋SWS,发现我们的TS2在螺旋SWS的热分析中具有非常高的准确性和效率,这对于大功率螺旋行程的设计非常有用 - 波管。

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