ARRANGEMENT FOR CONNECTING A RAILWAY POWER SUPPLY FOR A RAILWAY TRACK TO A THREE-PHASE SUPPLY NETWORK
20170288560 · 2017-10-05
Inventors
Cpc classification
H02J3/26
ELECTRICITY
Y02E40/50
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
H02M5/14
ELECTRICITY
B60M3/00
PERFORMING OPERATIONS; TRANSPORTING
H02M7/4835
ELECTRICITY
International classification
Abstract
An arrangement for connecting a railway power supply for a railway track to a three-phase supply network. The arrangement has a three-phase AC transformer and a balancing device for a uniform electric load of the three phases of the three-phase supply network. The three-phase AC transformer is configured for connecting to the three-phase supply network on the primary side and is connected to the balancing device on the secondary side. The three-phase AC transformer is configured for connecting to a railway power supply which has an autotransformer system with two contact lines and two conductors that are carried along the railway track in an insulated manner.
Claims
1-13. (canceled)
14. An arrangement for connecting a railroad power supply for a railroad track to a three-phase supply network, the arrangement comprising: a balancing device for a uniform electric load of three phases of the three-phase supply network; a three-phase AC transformer having a primary side to be connected to the three-phase supply network and a secondary side connected to said balancing device; said three-phase AC transformer being configured for connection to a railroad power supply which has an autotransformer system with two contact lines and two conductors that are carried along the railroad track in an insulated manner.
15. The arrangement according to claim 14, wherein said three-phase AC transformer is a three-winding transformer.
16. The arrangement according to claim 14, wherein said three-phase AC transformer has a star connection on said primary side.
17. The arrangement according to claim 15, wherein said three-phase AC transformer has a first delta connection on said secondary side which causes a phase shift of a voltage of 150° with respect to said primary side.
18. The arrangement according to claim 17, wherein said three-phase AC transformer on said secondary side has a second delta connection which causes a phase shift of a voltage of 330° with respect to said primary side.
19. The arrangement according to claim 18, wherein a connection point of said first delta connection and said second delta connection is connected to ground potential and to said balancing device.
20. The arrangement according to claim 17, wherein said first delta connection of said three-phase AC transformer is connected to the balancing device and is configured for supplying said two conductors that are carried along the railroad track in an insulated manner.
21. The arrangement according to claim 18, wherein said second delta connection of said three-phase AC transformer is configured for supplying said two contact lines.
22. The arrangement according to claim 14, wherein said three-phase AC transformer comprises a vector group YNd5dll according to standard DIN VDE 0532.
23. The arrangement according to claim 14, which further comprises at least one of an additional three-phase AC transformer or an additional balancing device connected to enable the arrangement to supply energy to two electrically separate contact line sections, each having two contact lines.
24. The arrangement according to claim 23, wherein said additional three-phase AC transformer and/or said additional balancing device is configured to supply the two electrically separate contact line sections with energy if a three-phase AC transformer and/or a balancing device fails.
25. The arrangement according to claim 14, wherein said balancing device has a three-phase self-commutated voltage-controlled converter.
26. The arrangement according to claim 14, wherein said balancing device has a modular multilevel converter.
Description
[0026] To better explain the invention, the figures show
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] The interconnection of the aforementioned elements will now be explained hereinafter. On the secondary side of the transformer 4 shown on the left, a first three-phase line 8 exits in which one phase is connected to the ground potential RCBB and the remaining two phases are supplied to the busbars 11, 12. A second three-phase line 9 is connected to the ground potential and via the remaining two phases to the busbars 11, 12. The balancing device 6, which is connected to the busbar 11 by way of a line 13, is connected to the ground potential by way of a line 10. The first balancing device 6 is connected to the busbar 12 by the line 14.
[0033] A second phase is supplied to the busbar 11 by the second balancing device 7 by way of the line 15. A further phase is also supplied to the busbar 12 by the balancing device 7. The third phase of the balancing device 7 is connected to the ground potential RCBB via the line 16. On the secondary side of the transformer 5 a three-phase line 17 exits from which one phase is connected to the ground potential RCBB and the remaining two phases are fed to the busbar 12. Moreover, from the transformer 5 a second three-phase line 18 exits from which one phase is supplied to the ground potential RCBB and the remaining two phases supply the busbars 11, 12.
[0034] An advantage of the arrangement shown is that the feeding of the railroad power supply can still be maintained if one of the two balancing devices 6, 7 and/or one of the two transformers 4, 5 fails. The two balancing devices are connected in parallel in the embodiment shown.
[0035]
[0036] A first delta connection (represented by broken lines) on the secondary side consists of the three windings L31, L23, L12. A second delta connection (represented by dotted lines) consists of the three windings L23, L12, L31. The two triangles are displaced relative to each other such that in each case the angle between R of the first delta connection and T of the second delta connection is 30°, i.e. there is an angular displacement of 180° between both delta connections. A connection of the two points of the first and second delta connection characterized by S produces a circuit diagram like that in the subsequent
[0037] The circuit diagram 3 according to
[0038] On the right of the circuit diagram there is a first delta connection consisting of the three windings L12, L23, L31. The point of contact of the windings L12 and L31 is connected to a second negative feeder NF2 and to the balancing device (reference character 35). The point of contact of the two windings L23 and L31 is connected to a first negative feeder NF1 and to the balancing device (reference character 32).
[0039] On the left of the circuit diagram there is a second delta connection consisting of the three windings L12, L31, and L23. A first contact line 31 is connected at the point of contact of the two windings L12 and L31. A second contact line 33 is connected at the point of contact of the two windings L31 and L23.
[0040] The vector group of the three-phase AC transformer shown is YNd5dll.
[0041]
[0042] Moreover, on the secondary side there is a second delta connection consisting of the three windings 57, 58, 65. The point of contact of the two windings 57 and 58 is connected to the line 50 and to the point of contact of the two windings 55 and 56 of the first delta connection. A second positive feeder PF2 is connected at the point of contact of the windings 57 and 65 by way of a line 54. A first positive feeder PF1 is connected at the point of contact of the windings 58 and 65 by way of the line 53.
[0043] By means of the vector group YNd5dll shown of the three-phase AC transformer and its connection to the negative feeders NF1, NF2 and the balancing device it is possible to avoid asymmetries in the electric load of the windings 42, 43, 44 on the primary side of the transformer in a particularly efficient manner.