Excitation inrush current simulation method and device for ultra-high voltage transformer under condition of no-load closing

A technology of exciting inrush current and no-load closing, which is applied in the field of power system and can solve the problems that cannot truly reflect the characteristics of ferromagnetic materials.

Active Publication Date: 2014-12-10
STATE GRID CORP OF CHINA +3
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Problems solved by technology

[0006] In view of this, the present invention provides an excitation inrush current simulation method and device in the case of UHV transformer no-load closing, to solve the problem that the simulation meth...

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  • Excitation inrush current simulation method and device for ultra-high voltage transformer under condition of no-load closing
  • Excitation inrush current simulation method and device for ultra-high voltage transformer under condition of no-load closing
  • Excitation inrush current simulation method and device for ultra-high voltage transformer under condition of no-load closing

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Embodiment Construction

[0051] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only some, not all, embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by persons of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.

[0052] see figure 1 , is a schematic flow chart of a method for simulating an inrush current of an UHV transformer under no-load closing condition provided by an embodiment of the present invention, and the method may include:

[0053] Step S101 : Correcting the anhysteretic magnetization expressed by the Langvin function based on the transition region between the linear region and the nonlinear region of the anhysteresis curve.

[0054] The concept of magnetic...

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Abstract

The invention provides an excitation inrush current simulation method and device for an ultra-high voltage transformer under a condition of no-load closing. The excitation inrush current simulation method comprises the following steps: on the basis of the transitional area between the linear area and the non-linear area of the non-hysteresis curve, non-hysteresis magnetization intensity indicated by Langvin function is corrected; the corrected non-hysteresis magnetization intensity is utilized to establish a J-A magnetic hysteresis model; the parameters of the J-A magnetic hysteresis model are recognized; an analysis is conducted on the ultra-high voltage transformer and the differential magnetic susceptibility equation is determined; through the J-A magnetic hysteresis model and the differential magnetic susceptibility equation, the excitation inrush current of the ultra-high voltage transformer under the empty charging condition is determined. The excitation inrush current simulation method and device for the ultra-high voltage transformer under the condition of non-load losing correct the non-hysteresis magnetization intensity, enable the transitional area between the linear area and saturation area of the non-hysteresis curve to be closer to a true value and accurately simulate the magnetization characteristics of the transformer; moreover, the special construction of the ultra-high voltage transformer is considered and the excitation inrush current of the ultra-high voltage transformer under the condition of empty charging is simulated. Errors in the simulation are reduced.

Description

technical field [0001] The invention relates to the technical field of electric power systems, in particular to an excitation inrush current simulation method and device in the case of no-load closing of an UHV transformer. Background technique [0002] With the expansion of the power system scale, UHV power transmission is a brand-new business in the field of world power grid development. More and more large-capacity transformers are put into the power grid. As one of the core equipment, UHV transformers are increasingly required for their parameters and operation. . [0003] The magnetic circuit of the transformer is mainly composed of ferromagnetic material, called the core. When the alternating magnetic flux flows in the iron core, hysteresis and eddy current loss will be generated, so that the change of the magnetic induction intensity lags behind the magnetic field intensity, and the hysteresis loop is obtained after repeated magnetization for multiple cycles. Due to...

Claims

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Application Information

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IPC IPC(8): G06F17/50
CPCY02E60/00
Inventor 何云良裘愉涛杨松伟陈水耀邹晖陈川肖远清郑涛
Owner STATE GRID CORP OF CHINA
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