EP3232452B1 - Transformateur déphaseur triphasé du type combiné de forte capacité - Google Patents

Transformateur déphaseur triphasé du type combiné de forte capacité Download PDF

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Publication number
EP3232452B1
EP3232452B1 EP15868363.1A EP15868363A EP3232452B1 EP 3232452 B1 EP3232452 B1 EP 3232452B1 EP 15868363 A EP15868363 A EP 15868363A EP 3232452 B1 EP3232452 B1 EP 3232452B1
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EP
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Prior art keywords
phase
transformer
coil
series
excitation
Prior art date
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EP15868363.1A
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German (de)
English (en)
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EP3232452A1 (fr
EP3232452A4 (fr
Inventor
Zhiqiang Zhang
Liguo Zhang
Tongxun YANG
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shandong Electrical Engineering and Equipment Group Co Ltd
Shandong Power Equipment Co Ltd
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Shandong Electrical Engineering and Equipment Group Co Ltd
Shandong Power Equipment Co Ltd
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/42Circuits specially adapted for the purpose of modifying, or compensating for, electric characteristics of transformers, reactors, or choke coils
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/28Coils; Windings; Conductive connections
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/28Coils; Windings; Conductive connections
    • H01F27/29Terminals; Tapping arrangements for signal inductances
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/40Structural association with built-in electric component, e.g. fuse
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F29/00Variable transformers or inductances not covered by group H01F21/00
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F30/00Fixed transformers not covered by group H01F19/00
    • H01F30/06Fixed transformers not covered by group H01F19/00 characterised by the structure
    • H01F30/12Two-phase, three-phase or polyphase transformers
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F29/00Variable transformers or inductances not covered by group H01F21/00
    • H01F29/14Variable transformers or inductances not covered by group H01F21/00 with variable magnetic bias
    • H01F2029/143Variable transformers or inductances not covered by group H01F21/00 with variable magnetic bias with control winding for generating magnetic bias

Definitions

  • the invention relates to a phase-shift transformer, particularly a high-capacity three-phase combined type phase-shift transformer.
  • US 5 166 597 A relates to a phase-shifting transformer system for applying a desired phase shift to the voltage on a transmission line.
  • CN 101 692 398 A relates to a high-voltage booster transformer.
  • the phase-shift transformer makes the power system run more stably and efficiently by adjusting the phase difference between the input and output voltages.
  • the basic principle of phase-shift transformer's phase shift is to generate a voltage between the power supply side and the load side, and this voltage has a certain phase angle difference with the power supply side voltage and the effective value can be adjusted, and it superimposes the power supply side voltage to form the load side voltage, causing a phase change between the power supply side voltage and the load side voltage.
  • the current commonly used phase-shift transformers include two basic structures, single-core and double-core.
  • the basic principle of the single-core phase-shift transformer is to connect a part of the phase voltage to the other, so the structure is relatively simple, but the voltage regulation coil is located at the head end of the line, the tap switch voltage level is higher and directly under the power grid of the various overvoltage and over-current, thus it is not suitable for high voltage levels and large capacity conditions.
  • the double-core structure consists of a series transformer and an excitation transformer, which are mounted on two separate steel cores and are installed in two separate transformer tanks. Each phase of the excitation transformer is composed of a voltage regulation excitation coil and a voltage regulation coil, and the connection group is Y / Y.
  • the voltage regulation excitation coil provides excitation for the excitation transformer.
  • Each tape of the voltage regulation coil is connected to the on-load tap switch, and the on-load tap switch has a forward-reverse selector.
  • Double-core phase-shift transformer is complex in structure compared to single-core transformer, but is low in tap switch voltage levels, so it is suitable for high-capacity and high-voltage occasions.
  • the connection lead line's insulation level is nearly same with the line's insulation level, so the connection structure is more complex, and the installation difficulty of two tanks is also high.
  • the invention provides a high-capacity three-phase combined type phase-shift transformer which can achieve the purpose of reducing the voltage level of the tap switch by double- core phase-shift transformer and at the same time simplifying the connection structure between various devices and reducing the technical difficulty. It is suitable for the occasion of higher voltage levels and larger capacity.
  • the present invention provides a high-capacity three-phase combined type phase-shift transformer as defined in claim l.
  • the three-phase combined type phase-shift transformer respectively places the phase A, phase B and phase C in three different oil tanks, reducing the size and weight of a single transformer, facilitating transport and installation, and is therefore suitable for use at higher voltage levels and larger capacity.
  • the head end of the voltage regulation excitation coil is connected to the center tap of the series coil of the same phase in the same tank, it is not necessary to be connected with the special connection structure and be led out of the oil tank. Therefore, the structure here is greatly simplified and reduces technical difficulty.
  • Each line end leads out through the casing, and the three phases can achieve soft connection with cable and other materials, therefore the on-site installation , testing, operation and maintenance is also much simpler.
  • a current limiting reactor is series connected in the said voltage regulation coil.
  • the capacity of the phase-shift transformer When the capacity of the phase-shift transformer is large, it adopts the structure of several series coils series connection, several excitation coils parallel connection, several voltage regulation excitation coils parallel connection, and several voltage regulation coils series connection. As the current in voltage regulation coils is too large, several on-load tap switches are adopted.
  • a current limiting reactor is series connected in each of the voltage regulation coil branches to balance the current distribution in the branch and to limit the damage of possible short-circuit current to the on-load tap switch.
  • the present invention is simple in structure, can reduce the voltage level of a tap switch, can simplify a connection structure between various devices, reduces the mounting difficulty, and has high practicality in high-capacity and high-voltage-level phase-shift transformers.
  • 1, series transformer, 2, excitation transformer, SVA-SVC are phase A, phase B, phase C series coils, SVA1 and SVA2 are two coils of phase A series coil
  • EVA-EVC are phase A, phase B, phase C excitation coils
  • EVA1 and EVA2 are two coils the phase A excitation coil
  • TVA-TVC are phase A, phase B, phase C voltage regulation coils
  • TVA1 and TVA2 are two coils of phase A voltage regulation coil
  • TEVA-TEVC are the phase A, phase B, phase C voltage regulation excitation coils
  • TEVA1 and TEVA2 are the two coils of the phase A voltage regulation excitation coil
  • L1-L2 are the reactors.
  • a high-capacity three-phase combined type phase-shift transformer comprising three single-phase transformers, which are respectively used as a phase A, a phase B and a phase C and are combined with one another to form a three-phase transformer, each single-phase transformer comprises a series transformer 1 and an excitation transformer 2 that are arranged in a same oil tank and are two devices independent of each other. As shown in Fig.
  • a series transformer 1 comprises a series coil SVA and an excitation coil EVA, and leads out four terminals: a head end SA of the series coil and a tail end LA of the series coil being respectively taken as the power supply side input terminal and the load side output terminal, and the head end sa of the excitation coil and tail end la of the excitation coil are led out of the oil tank
  • the excitation transformer 2 includes the voltage regulation excitation coil TEVA and the voltage regulation coil TVA
  • the head end ta of the voltage regulation excitation coil is connected to a center tap of a series coil SVA of a series transformer 1 of a same phase, and a tail end is used as a neutral point to be led out of the oil tank
  • the head end TA of the voltage regulation coil is led out of the oil tank
  • a tail end is used as a neutral point to be led out of the oil tank.
  • Phase A, phase B and phase C are same in structure.
  • the head end and tail end of the three-phase series coil SVA-SVC are connected into an angle, and the head end and tail end of the three-phase excitation coil EVA-EVC arc connected into an angle;
  • the three-phase voltage regulation excitation coils TEVA-TEVC are in star-shaped connection,
  • three-phase voltage regulator coils TVA-TVC are in star-shaped connection.
  • the head end and tail end of the three-phase excitation coil EVA-EVC are connected into an angle, and a head end of the voltage regulation coil of the third phase is connected to an angular joint of the every two phases, and the on-load tap switch is used to adjust the series connected turns number of voltage regulation coil to change the voltage value and the polarity in the voltage regulation coil, the phase shift principle is shown in Figure 3 , the voltage in voltage regulation coil provides the excitation for the steel core of series transformer, so that the excitation coil angularly connected in the series transformer generates a voltage that is 90° advanced or lag of the voltage of the voltage regulation excitation coil in same phase excitation transformer.
  • the voltage in excitation coil Induced in the corresponding series coil, the voltage in excitation coil generate a voltage ⁇ UI and a voltage ⁇ U2 which have a phase difference of 90° with the same phase voltage regulation excitation coil.
  • the voltage ⁇ U1 and the voltage ⁇ U2 make the power supply side voltage U SA and the load side voltage U LA of the phase-shift transformer produce a phase angle change, while the input and output voltage are same, so as to realize the change of the phase angle between the power supply side and the load side voltage.
  • By adjusting the position of the on-load tap switch it can realize the adjustment between the phase difference and the advance or lag.
  • a high-capacity three-phase combined type phase-shift transformer as shown in Figure 4 , current limiting reactors L1, L2 are installed at the head end SA of the series coil and the tail end LA of the series coil to reduce the impact of the short circuit current on the phase-shift transformer in the grid.
  • the other configurations are the same as the Embodiment 1.
  • a high-capacity three-phase combined type phase-shift transformer due to the large capacity of the phase-shift transformer, it adopts the structure of two series coils SVA1 and SVA2 in series connection, two excitation coils EVA1 and EVA2 in parallel connection, two voltage regulation excitation coils TEVA1 and TEVA2 in parallel connection, and two voltage regulation coils TVA1 and TVA2 in series connection. Due to the current in voltage regulation coil is too large, it adopts three on-load tap switches, and series connects current limiting reactors L1 and L2 in three branches for the balance of current distribution in three branches and limitation of the damage caused by possible short-circuit current to the on-load tap switch. The other configurations are the same as the Embodiment 1.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Housings And Mounting Of Transformers (AREA)
  • Control Of Electrical Variables (AREA)

Claims (3)

  1. Transformateur-déphaseur triphasé à haute capacité de type combiné comprenant trois transformateurs monophasés, qui sont utilisés respectivement comme phases A, B et C et sont combinés pour constituer un transformateur triphasé, chaque transformateur monophasé comprenant un transformateur série (1) et un transformateur d'excitation (2), un transformateur série (1) de chaque phase comprenant un enroulement en série (SVA-SVC) et un enroulement d'excitation (EVA-EVC), dans lequel une extrémité de tête et une extrémité de queue de l'enroulement en série (SVA-SVC) sont prises respectivement comme borne d'entrée côté alimentation et borne de sortie côté charge, et l'extrémité de tête et l'extrémité de queue de l'enroulement d'excitation (EVA-EVC) sont menées hors du réservoir d'huile, et l'extrémité de tête et l'extrémité de queue de l'enroulement en série triphasé (SVA-SVC) sont connectées selon un angle, et l'extrémité de tête et l'extrémité de queue de l'enroulement d'excitation triphasé (EVA-EVC) sont connectées selon un angle ; le transformateur d'excitation (2) comprend un enroulement d'excitation de régulation de tension (TEVA-TEVC) et un enroulement de régulation de tension (TVA-TVC), une extrémité de tête de l'enroulement d'excitation de régulation de tension (TEVA-TEVC) est connectée à une prise centrale d'un enroulement en série (SVA-SVC) d'un transformateur série (1) d'une même phase, et une extrémité de queue est utilisée comme point neutre à mener hors du réservoir d'huile, une extrémité de tête de l'enroulement de régulation de tension (TVA-TVC) est menée hors du réservoir d'huile à connecter à un joint angulaire d'enroulements d'excitation (EVA-EVC) des deux autres phases, et une extrémité de queue est utilisée comme point neutre à mener hors du réservoir d'huile, l'enroulement de régulation de tension (TVA-TVC) est connecté à un commutateur de prise en charge qui est utilisé pour ajuster la valeur de tension et la polarité de l'enroulement de régulation de tension (TVA-TVC), les enroulements d'excitation de régulation de tension triphasée (TEVA-TEVC) présentent une connexion en forme d'étoile, les enroulements de régulation de tension triphasée (TVA-TVC) présentent une connexion en forme d'étoile ;
    caractérisé en ce que
    les phases A, B et C du transformateur-déphaseur triphasé de type combiné sont placées respectivement dans trois réservoirs d'huile différents, le transformateur série (1) et le transformateur d'excitation (2) de chaque transformateur monophasé sont agencés dans un même réservoir d'huile et sont deux dispositifs indépendants l'un de l'autre, une extrémité de tête de l'enroulement d'excitation de régulation de tension (TEVA-TEVC) est connectée à une prise centrale d'un enroulement en série (SVA-SVC) d'un transformateur série (1) d'une même phase dans le même réservoir.
  2. Transformateur-déphaseur triphasé à haute capacité de type combiné selon la revendication 1, dans lequel des réacteurs de limitation de courant (L1, L2) sont installés à l'extrémité de tête et à l'extrémité de queue de l'enroulement en série (SVA-SVC).
  3. Transformateur-déphaseur triphasé à haute capacité de type combiné selon la revendication 1 ou 2, dans lequel un réacteur de limitation de courant (L1, L2) est connecté en série dans l'enroulement de régulation de tension (TVA-TVC).
EP15868363.1A 2014-12-09 2015-12-04 Transformateur déphaseur triphasé du type combiné de forte capacité Active EP3232452B1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN201410744863.XA CN104465053B (zh) 2014-12-09 2014-12-09 一种大容量三相组合式移相变压器
PCT/CN2015/096443 WO2016091123A1 (fr) 2014-12-09 2015-12-04 Transformateur déphaseur triphasé du type combiné de forte capacité

Publications (3)

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EP3232452A1 EP3232452A1 (fr) 2017-10-18
EP3232452A4 EP3232452A4 (fr) 2018-01-31
EP3232452B1 true EP3232452B1 (fr) 2020-05-20

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CN (1) CN104465053B (fr)
WO (1) WO2016091123A1 (fr)

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CN104465053B (zh) * 2014-12-09 2016-08-03 山东电力设备有限公司 一种大容量三相组合式移相变压器
CN106053921B (zh) * 2016-08-02 2019-08-27 中国电力科学研究院 一种对称双芯移相变压器负载条件下的级电压计算方法
CN107968576A (zh) * 2017-12-27 2018-04-27 国网宁夏电力有限公司检修公司 一种相控大电流源发生器装置
EP3937198A1 (fr) * 2020-07-06 2022-01-12 General Electric Technology GmbH Ensemble de transformateur de puissance
CN113077977A (zh) * 2021-04-13 2021-07-06 保定天威保变电气股份有限公司 一种带有附加电抗器的大容量单器身高阻抗新型对称调压相移相变压器
CN113077978A (zh) * 2021-04-13 2021-07-06 保定天威保变电气股份有限公司 一种带有附加电抗器的大容量双器身高阻抗新型调压移相变压器
CN113283204B (zh) * 2021-05-19 2022-09-30 广东电网有限责任公司 一种有载调压控制器的电磁暂态建模方法及系统
CN113611513A (zh) * 2021-07-23 2021-11-05 保定天威保变电气股份有限公司 一种大移相角调相变压器
CN216672848U (zh) * 2021-12-01 2022-06-03 日立能源瑞士股份公司 用于直流输电的换流器系统、整流站和逆变站

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CN104465053B (zh) * 2014-12-09 2016-08-03 山东电力设备有限公司 一种大容量三相组合式移相变压器
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Also Published As

Publication number Publication date
EP3232452A1 (fr) 2017-10-18
CN104465053B (zh) 2016-08-03
WO2016091123A1 (fr) 2016-06-16
CN104465053A (zh) 2015-03-25
EP3232452A4 (fr) 2018-01-31

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