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Armature Structure Research of a Synchronous Induction Coil Launcher

机译:同步感应线圈发射器的电枢结构研究

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Armature is very important for a synchronous induction coil launcher which can transform the electric energy to kinetic energy and push the load forward. The structure of the armature will influence the kinetic energy conversion efficiency directly. This paper analyzes the armature structure of a capacitor-driven synchronous induction coil launcher. Length and thickness of the armature are analyzed that how these parameters influence the maximum velocity and system efficiency of the launcher. Current filaments model is used to calculate the motion characteristics of a tubular linear induction motors, which is verified by an experiment and finite-element code. Genetic algorithm optimizer is used to calculate the best trigger times of the coils and the maximum velocity under the conditions of different length and thickness of the armature. It is shown that when the armature mass is fixed, length and thickness of the armature will greatly increase the velocity of the armature. The best length of the armature should be almost 2–2.5 times the length of the coil. The best thickness of the armature could be estimated by skin depth.
机译:电枢对于同步感应线圈发射器非常重要,它可以将电能转换为动能并推动负载向前移动。电枢的结构将直接影响动能转换效率。本文分析了电容器驱动的同步感应线圈发射器的电枢结构。分析电枢的长度和厚度,以了解这些参数如何影响发射器的最大速度和系统效率。当前的细丝模型用于计算管状线性感应电动机的运动特性,并通过实验和有限元代码进行了验证。遗传算法优化器用于在电枢长度和厚度不同的情况下计算线圈的最佳触发时间和最大速度。结果表明,当电枢质量固定时,电枢的长度和厚度将大大提高电枢的速度。电枢的最佳长度应几乎是线圈长度的2–2.5倍。电枢的最佳厚度可以通过皮肤深度来估计。

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