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Thermal Management and Resistive Rail Heating of a Large-Scale Naval Electromagnetic Launcher

机译:大型海军电磁发射器的热管理和电阻轨加热

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This paper presents a model that can be implemented to quickly estimate the resistive heating and the resulting transient temperature response. Quantifying the energy deposited in the rails and implementing an effective thermal management system will be key elements of an effective design for a large-scale electromagnetic launcher. The total current was divided between the inside, upper/lower, and outside surface based on the results of a current distribution calculation. The diffusion of the magnetic field into each surface was modeled in order to determine the current distribution and the resistive heating. Cooling between shots was taken into account by solving the one dimensional transient heat diffusion equation within each surface. Repeating these calculations for a number of discrete segments down the length of the rail enabled the prediction of the total resistive rail heating and the temperature profile along the length of the rail. Experimental tests were conducted that verify the presence of localized heating in the corners of a U-shaped conductor made of 7075 Aluminum. Taking into account the localized resistive heating near the surface of the conductor will become increasingly important with large-scale guns.
机译:本文提出了一个可用于快速估算电阻加热和由此产生的瞬态温度响应的模型。量化沉积在铁轨中的能量并实施有效的热管理系统将是大型电磁发射器有效设计的关键要素。根据电流分布计算的结果,将总电流分为内表面,上表面/下表面和外表面。为了确定电流分布和电阻加热,对磁场在每个表面的扩散进行了建模。通过求解每个表面内的一维瞬态热扩散方程,考虑了两次注射之间的冷却。对沿钢轨长度的多个离散段重复这些计算,就可以预测总电阻钢轨加热和沿钢轨长度的温度分布。进行了实验测试,以验证在由7075铝制成的U形导体的拐角处是否存在局部加热。考虑到导体表面附近的局部电阻加热对于大型喷枪将变得越来越重要。

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