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Simulation study of influence of the outlet elastic baffle on pressure in arc chamber during the interrupting process of low-voltage circuit breaker

机译:出口弹性挡板对低压断路器中断过程中电弧室压力影响的仿真研究

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In this paper, a bidirectional fluid–solid interaction method is established to investigate the influence of the outlet elastic baffle on the pressure in the arc chamber in the breaking process of a low-voltage circuit breaker. Based on the computational fluid dynamic method, the flow model in the arc chamber is established. The model of the outlet baffle, with consideration of the nonlinear behavior, is established by the finite element method. By introducing dynamic grid technology, the interaction process of deformation of the outlet baffle and arc chamber pressure can be analyzed. A simple arc extinguishing chamber with an outlet baffle is designed, and experiments with a LC oscillating circuit are carried out. By using a high-speed camera and a pressure sensor, the deformation of the baffle and the pressure of the arc chamber are measured in the breaking process. The simulation model is verified by experimental results. It is worth noting that the flutter behavior of the elastic baffle was observed in the experiments and in the numerical simulation. Through simulation analysis, it is found that the flutter behavior is caused by the first-order mode of the elastic baffle under the excitation of arc chamber pressure.
机译:本文建立了双向流体固体相互作用方法,以研究出口弹性挡板对低压断路器断裂过程中电弧室中的压力的​​影响。基于计算流体动态方法,建立了电弧室中的流动模型。考虑到非线性行为,出口挡板的模型由有限元方法建立。通过引入动态电网技术,可以分析出口挡板和电弧室压力变形的相互作用过程。设计具有出口挡板的简单灭弧室,并进行LC振荡电路的实验。通过使用高速相机和压力传感器,在断开过程中测量挡板的变形和电弧室的压力。仿真模型通过实验结果验证。值得注意的是,在实验中观察到弹性挡板的颤动行为,并在数值模拟中观察到。通过仿真分析,发现颤动行为是由电弧室压力激发下弹性挡板的一阶模式引起的。

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