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Reluktančni model transformatorja za analizo vpliva geomagnetno induciranih tokov
ID Šušteršič, Lucija (Author), ID Miljavec, Damijan (Mentor) More about this mentor... This link opens in a new window, ID Makuc, Danilo (Comentor)

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Abstract
V tem dokumentu je predstavljena izdelava izboljšanega reluktančnega modela trifaznega tristebrnega in petstebrnega transformatorja za analizo dogajanja v transformatorju ob pojavu geomagnetno induciranih tokov. Geomagnetno inducirani tokovi so posledica geomagnetne aktivnosti v Zemljini atmosferi in v močnostnih transformatorjih povzročijo enosmerno magnetizacijo feromagnetnega jedra. Enosmerna magnetizacija feromagnetnega jedra povzroči povišan in nesimetričen tok v primarnih navitjih transformatorja, kar lahko vodi do aktiviranja odklopnikov ter prekinitve dobave električne energije. Dandanes je naše življenje močno odvisno od dobave električne energije, zato želimo pojave, ki lahko vodijo do prekinitve njene dobave, dodobra preučiti. Za analizo vpliva geomagnetnih tokov tako razvijemo hibridni model transformatorja, ki združi nadomestno električno in magnetno (reluktančno) vezje. Razvoj modela izhaja iz osnovnega nadomestnega vezja transformatorja, kjer prečno vejo, ki predstavlja magnetenje feromagnetnega jedra, predstavimo z reluktančnim vezjem. V reluktančno vezje dodamo tudi elemente, s katerimi modeliramo stresani magnetni pretok, saj je njegov izvor magnetne narave. V električnem delu vezja ostaneta upornost navitij in inducirana napetost. Ob enosmerni magnetizaciji feromagnetnega jedra na razmere v transformatorju močno vplivajo tudi sofazne reluktance, saj se magnetni pretok zaključuje preko njih in jih zato vključimo v reluktančno vezje. Model je primeren za simulacije v programu SpiceOpus, ki je prosto dostopen in je namenjen analizi električnih vezij. Izvedba hibridnega modela nam omogoča vpogled v električne in magnetne veličine, ki vplivajo na razmere v transformatorju. V tem dokumentu se osredotočimo na tokov v primarnem navitju in na magnetne razmere v stebrih ter reluktancah. Model uporabimo na dveh različnih izvedbah transformatorskega jedra, tristebrni in petstebrni, kar omogoča primerjavo med njima in tako lahko ocenimo, katera izmed izvedb je bolj odporna na pojav geomagnetno induciranega toka. Simulacije so pokazale, da je model primeren, saj dovolj dobro opiše transformator in rezultati analiz so primerljivi z ostalimi. Model je primeren za obe izvedbi transformatorja, saj se poteki primarnega toka in magnetni pretoki ujemajo s pričakovanji. To potrjuje tudi naše izračune in umestitve stresane in sofazne reluktance v vezje. Analiza je pokazala tudi, da je na pojav geomagnetno induciranega toka bolj odporna tristebrna izvedba transformatorja, kar potrjuje teorijo in ustreznost našega modela.

Language:Slovenian
Keywords:geomagnetno induciran tok, reluktančni model transformatorja, nelinearna reluktanca, sofazna reluktanca, stresana reluktanca
Work type:Master's thesis/paper
Organization:FE - Faculty of Electrical Engineering
Year:2026
PID:20.500.12556/RUL-188606 This link opens in a new window
Publication date in RUL:24.09.2026
Views:110
Downloads:20
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Secondary language

Language:English
Title:A reluctance model of a transformer to analyse the effect of geomagnetically induced currents
Abstract:
This document presents the development of an improved reluctance model of a three-phase three-limb and five-limb transformer for analyzing the conditions within the transformer during the occurrence of geomagnetically induced currents. Geomagnetically induced currents result from geomagnetic activity in Earth's atmosphere and, in power transformers, cause direct-current magnetization of the ferromagnetic core. This DC magnetization of the ferromagnetic core causes an increased and asymmetric current in the transformer's primary windings, which can lead to circuit breaker tripping and interruption of the electricity supply. Nowadays, our lives are strongly dependent on the supply of electricity, which is why we aim to thoroughly examine phenomena that can lead to its interruption. To analyze the impact of geomagnetic currents, we therefore develop a hybrid transformer model that combines an equivalent electrical circuit with a magnetic (reluctance) circuit. The development of the model is based on the basic equivalent circuit of a transformer, in which the shunt branch representing the magnetization of the ferromagnetic core is represented by a reluctance circuit. Elements modeling the leakage magnetic flux are also added to the reluctance circuit, since its origin is magnetic in nature. The electrical part of the circuit retains the winding resistance and the induced voltage. Under DC magnetization of the ferromagnetic core, zero-sequence reluctances also strongly affect the conditions in the transformer, since the magnetic flux closes through them, and they are therefore included in the reluctance circuit. The model is suitable for simulations in the SpiceOpus program, which is freely available and intended for the analysis of electrical circuits. The implementation of the hybrid model provides insight into the electrical and magnetic quantities that affect the conditions in the transformer. In this document, we focus on the current in the primary winding and on the magnetic conditions in the limbs and reluctances. The model is applied to two different transformer core designs, three-limb and five-limb, allowing a comparison between them and thus an assessment of which design is more resistant to the occurrence of geomagnetically induced current. The simulations showed that the model is suitable, as it describes the transformer sufficiently well and the analysis results are comparable to other results. The model is suitable for both transformer designs, as the primary current waveforms and magnetic flux match expectations. This also confirms our calculations and the incorporation of leakage and zero-sequence reluctance into the circuit. The analysis also showed that the three-limb transformer design is more resistant to the occurrence of geomagnetically induced current, which confirms the theory and the validity of our model.

Keywords:geomagnetically induced current, reluctance transformer model, nonlinear reluctance, zero-sequence reluctance, leakage reluctance

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