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Designing a Rogowski Coil with Particle Swarm Optimization

机译:使用粒子群优化设计Rogowski线圈

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Rogowski coils are inductive sensors based on Faraday’s and Ampère’s Laws to measure currents through conductors without galvanic contact. The main advantage of Rogowski coils when compared with current transformers is the fact that the core is air so they never saturate and the upper cut-off current can be higher. These characteristics make Rogowski coils ideal candidates to measure high-amplitude pulsed currents. However, there are two main drawbacks. On the one hand, the output voltage is the derivative of the primary current so it has to be integrated to measure the original signal; on the other hand, the transfer function is resonant as a result of the capacitance and the self-inductance of the coil. The solution is the use of a passive integration with a terminating resistor at the output of the sensor that splits the two complex poles and gives a constant transfer function for a determined bandwidth. The downside is a loss of sensitivity. Since it is possible to calculate the electrical parameters of the coil based on its geometrical dimensions, the geometry can be adapted to design sensors for different applications depending on the time characteristics of the input current. This paper proposes the design of Rogowski coils based on their geometric characteristics maximizing the gain-bandwidth product using particle swarm optimization and adapting the coils to the specific requirements of the application.
机译:Rogowski线圈是基于法拉第’ s和amp&egrave的电感传感器; Re’ s的定律,通过导体测量电流,没有电流接触。与电流互感器相比Rogowski线圈的主要优点是核心是空气的事实,因此它们永远不会饱和,上截止电流可以更高。这些特性使Rogowski线圈成为测量高幅度脉冲电流的理想候选者。但是,有两个主要缺点。一方面,输出电压是初级电流的导数,因此必须集成以测量原始信号;另一方面,由于线圈的电容和自电感,传递函数是谐振。该解决方案是在传感器的输出处使用与终端电阻的被动集成,该传感器分割两个复合极并且给出了所确定的带宽的恒定传递函数。缺点是敏感性的丧失。由于可以基于其几何尺寸来计算线圈的电参数,因此几何体可以根据输入电流的时间特性适用于不同应用的传感器。本文提出了基于其几何特性的rogowski线圈的设计最大化利益带宽产品,使用粒子群优化并将线圈调整到应用的特定要求。

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