Tao Jiagui, Zhang Sicong, Dai Jianzhuo, Zhu Jinwei, Zhao Heng
Electrical Power Academy of Sciences, State Grid of Jiangsu Electric Power Co., Ltd., Nanjing 210024, China.
Sensors (Basel). 2024 Jun 21;24(13):4062. doi: 10.3390/s24134062.
As large-scale, high-proportion, and efficient distribution transformers surge into the grids, anti-short circuit capability testing of transformer windings in efficient distribution seems necessary and prominent. To deeply explore the influence of progressively short-circuit shock impulses on the core winding deformation of efficient power transformers, a finite element theoretical model was built by referring to a three-phase three-winding 3D wound core transformer with a model of S20-MRL-400/10-NX2. The distributions of internal equivalent force and total deformation of the 3D wound core transformer along different paths under progressively short-circuit shock impulses varying from 60% to 120% were investigated. Results show that the equivalent stress and total deformation change rate reach their maximum as the short-circuit current increases from 60% to 80%, and the maximum and average variation rate for the equivalent stress reach 177.75% and 177.43%, while the maximum and average variation rate for the total deformation corresponds to 178.30% and 177.45%, respectively. Meanwhile, the maximum equivalent stress and maximum total deformation reach 29.81 MPa and 38.70 μm, respectively, as the applied short-circuit current increased to 120%. In light of the above observations, the optimization and deployment of wireless sensor nodes was suggested. Therefore, a distributed monitoring system was developed for acquiring the vibration status of the windings in a 3D wound core transformer, which is a beneficial supplement to the traditional short-circuit reactance detection methods for an efficient grid access spot-check of distribution transformers.
随着大规模、高比例、高效能的配电变压器接入电网,高效配电中变压器绕组的抗短路能力测试显得必要且突出。为深入探究逐步短路冲击脉冲对高效电力变压器铁心绕组变形的影响,参照型号为S20-MRL-400/10-NX2的三相三绕组三维卷铁心变压器建立了有限元理论模型。研究了三维卷铁心变压器在60%至120%逐步短路冲击脉冲下沿不同路径的内部等效力和总变形分布。结果表明,随着短路电流从60%增加到80%,等效应力和总变形变化率达到最大值,等效应力的最大变化率和平均变化率分别为177.75%和177.43%,总变形的最大变化率和平均变化率分别为178.30%和177.45%。同时,当施加的短路电流增加到120%时,最大等效应力和最大总变形分别达到29.81MPa和38.70μm。鉴于上述观察结果,建议对无线传感器节点进行优化布置。因此,开发了一种分布式监测系统,用于获取三维卷铁心变压器绕组的振动状态,这是对传统短路电抗检测方法的有益补充,可用于高效电网接入点配电变压器的抽检。