POWER TRANSFORMER ASSEMBLY
20230282413 ยท 2023-09-07
Assignee
Inventors
Cpc classification
Y02E40/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
The present application concerns a transformer assembly. The transformer assembly includes a step-up transformer, a step-down transformer, and a phase shifting transformer having a source side and a load side connected, respectively, to the step-down transformer and the step-up transformer.
Claims
1. A transformer assembly which comprises: a step-up transformer; a step-down transformer; a phase shifting transformer having a source side and a load side connected, respectively, to the step-down transformer and the step-up transformer.
2. The assembly according to claim 1, wherein the phase shifting transformer comprises a single-core phase shifting transformer with delta connected excitation windings and tap windings.
3. The assembly according to claim 2, wherein each tap windings comprises a load tap winding and a source tap winding connected, respectively, to the step-up transformer and the step-down transformer.
4. The assembly according to claim 1, wherein the step-up transformer and/or the step-down transformer comprises an autotransformer.
5. The assembly according to claim 4, wherein the step-up transformer and the step-down transformer are identical.
6. The assembly according to claim 4, wherein the step-down transformer comprises a voltage regulation function, while the step-up transformer comprises a constant phase shift angle function.
7. The assembly according to claim 6, wherein the voltage regulation function comprises secondary tap winding magnetically associated with windings of the considered autotransformer.
8. The assembly according to claim 4, wherein one and/or the other of the step-down transformer and the step-up transformer comprises constant phase shift angle function.
9. A three phase power transmission line which comprises the assembly according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Other characteristics and advantages shall appear in the following description of embodiments of the transformer assembly according to the invention, given by way of non-limiting examples, in reference to the annexed drawings wherein:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
[0034] The present invention concerns a transformer assembly 10 which comprises: [0035] a step-down transformer 20; [0036] a step-up transformer 30; [0037] a phase shifting transformer 40 having a source side and a load side connected, respectively, to the step-down transformer and the step-up transformer.
[0038] The present invention is described in the context of a three-phase network. In particular, without it being necessary to specify it and unless otherwise indicated, the mention of a winding will refer to a given phase.
[0039]
[0040] Notably, the phase shifting transformer 40 comprises three excitation windings 41, 42, 43 connected in series, and in particular in a delta arrangement. This phase shifting transformer 40, denoted D S0-3/9 in the standard [1], is generally housed in a single tank.
[0041] The phase shifting transformer 40 further comprises windings, said tap windings, for which voltage is made adjustable with a tap regulator. In particular, the phase shifting transformer 40 comprises, at each node N41, N42, N43 of the delta arrangement, a source tap winding 41s, 42s, 43s and a load tap winding 411, 421, 431. The source tap windings 41s, 42s, 43s and the load tap windings 411, 421, 431 form, respectively, a source side and a load side of the phase shift transformer 40.
[0042] Each source tap winding 41s, 42s, 43s comprises a source side terminal S41, S42, S43, while each load tap winding 411, 421, 431 comprises a load side terminal L41, L42, L43.
[0043]
[0044] According to this first embodiment, the step-down transformer 20 as well as the step-up transformer 30 comprise an auto-transformer.
[0045] In this embodiment, the phase shifting transformer 40 is intercalated in between the step-down transformer 20 and the step-up transformer 30.
[0046] According the present invention, an autotransformer comprises three windings arranged in a star configuration.
[0047] In particular, the step-down transformer 20 comprises three windings 21, 22, 23 arranged in a star configuration. Each winding 21, 22, 23 comprises a source terminal 521, 522, S23 intended to be connected to the source side of a three phase transmission line. Each of said windings also comprises a load terminal L21, L22, L23 connected, respectively, to the source tap windings 411, 421, 431 of the phase shifting transformer.
[0048] In a similar manner, the step-up transformer 30 comprises three windings 31, 32, 33 arranged in a star configuration. Each winding 31, 32, 33 comprises a load terminal L31, L32, L33 intended to be connected to the load side of the three phase transmission line. Each of said windings also comprises a source terminal L31, L32, L33 connected, respectively, to the load tap windings 411, 421, 431 of the phase shifting transformer 40.
[0049] Therefore, according to this arrangement, wherein the phase shifting transformer 40 is intercalated in between the step-down transformer 20 and the step-up transformer 30, it is possible to adapt the operating voltage via said step-down and step-up transformers. In other words, a transformer operating at low voltage, for example less than 245 kV, can be considered. In particular, a phase shifting transformer having a single core symmetric design (i.e: D S0-3/9) can advantageously be implemented.
[0050] Furthermore, this arrangement with the two transformers 20 and 30 insures a minimum impedance of the assembly even at zero phase-shift angle so that no additional protection against short-circuit is required.
[0051] Besides, the footprint and the cost of this assembly are reduced compared to two sets of two-core phase shifting assembly which may be required when operated a higher voltages, and in particular at voltages higher than 245 kV.
[0052]
[0053] This second embodiment differs from the first embodiment in that at least one of the step-down transformer 20 and the step-up transformer 30 comprises a constant phase-shift angle function 24, 34. In particular, this constant phase-shift angle function is intended to impose a phase-shift angle to compensate an angle drop stemming from the load. For example, the step-down transformer 20 and the step-up transformer 30 may be arranged to induce the same phase-shift angle to the voltage. As exemplified in
[0054]
[0055] This third embodiment differs from the first embodiment in that the step-down transformer 20 comprises a voltage regulation function whereas the step-up transformer 30 comprises the constant phase-shift angle function 34 as described in the second embodiment.
[0056] In particular, the step-down transformer 20 comprises star connected windings 21, 22, 23, having source terminals S21, S22, S23, and load terminals L21, L22, L23. The step-down transformer 20 further comprises tap windings T21, T22, T23, and star connected primary windings P21, P22, P23 for the voltage regulation. The step-down transformer 20 also comprises secondary windings M21, M22, M23 magnetically coupled with the primary windings P21, P22, P23.
REFERENCES
[0057] [1] IEC IEEE 60076-57-1202.