CONVERTER STATION WITH DIODE RECTIFIER
20180076730 ยท 2018-03-15
Inventors
- Joerg Dorn (Buttenheim, DE)
- Dominik Ergin (Baiersdorf, DE)
- Thomas Hammer (Schwabach, DE)
- Hans-Joachim Knaak (Erlangen, DE)
- Peter Menke (Oberfuellbach, DE)
- Roland Schuster (Erlangen, DE)
Cpc classification
H02M7/003
ELECTRICITY
International classification
H02M1/14
ELECTRICITY
H02M7/00
ELECTRICITY
Abstract
A converter station for the transmission of electrical power has a diode rectifier with a DC terminal and an AC terminal. At least one transformer is connected to the AC terminal. In order to render the converter station as compact as possible, the diode rectifier is arranged in an insulating material.
Claims
1. A converter station for the transmission of electrical power, the converter station comprising: a converter being a thyristor rectifier or a diode rectifier having a DC-voltage connection and an AC-voltage connection; at least one transformer connected to said AC-voltage connection of said converter; a power supply device for supplying an AC-voltage network that is connected to said converter with electrical power, said power supply device including an AC-voltage line; said at least one transformer being connected to a switchgear assembly and said switchgear assembly being connectable to a coupling-in component via said power supply device; said coupling-in component being connected to a power supply grid on land or to an AC-voltage grid at sea.
2. The converter station according to claim 1, further comprising: at least one common encapsulation housing having at least a part of said converter and at least a part of said transformer disposed therein in common; and insulating material encasing said part of said transformer and said part of said converter, said common encapsulation housing being filled with said insulating material.
3. The converter station according to claim 2, further comprising at least one DC-voltage smoothing inductor connected to conduct direct current output at said DC-voltage connection of said converter, wherein at least a part of said smoothing inductor is arranged in said common encapsulation housing.
4. The converter station according to claim 2, wherein said insulating material is a protective gas or an insulating liquid.
5. The converter station according to claim 1, wherein said converter comprises a plurality of partial converters connected in series on a DC voltage side.
6. The converter station according to claim 5, wherein each said partial converter is connected on an AC voltage side to a partial transformer, and wherein said partial converter and said partial transformer are arranged in a common partial encapsulation housing.
7. The converter station according to claim 6, which comprises a partial smoothing inductor arranged in said partial encapsulation housing.
8. The converter station according to claim 5, wherein said partial converters are partial diode rectifiers.
9. The converter station according to claim 5, wherein each said partial converter has two DC-voltage terminals and a bypass switch configured to bridge said DC-voltage terminals.
10. The converter station according to claim 1, which comprises a filter unit connected on an AC voltage-side of said converter.
11. A converter station for a transmission of electrical power between a windfarm that is located at sea and a supply grid on land, the converter station comprising: a converter being a thyristor rectifier or a diode rectifier having a DC-voltage connection and an AC-voltage connection; at least one transformer connected to said AC-voltage connection of said converter; energy supply means for supplying an AC-voltage network connected to the converter station with electrical power from a power supply grid on land or a neighboring AC voltage grid at sea, the alternating voltage network connected to the converter station at sea having a plurality of wind energy generators connected thereto, and said energy supply means including an energy supply line being an AC-voltage line extending at least partly submerged in water; and a switchgear assembly connected to said at least one transformer and connected to a coupling-in component via the AC-voltage line, the coupling-in component being connected to the power supply grid on land or to the neighboring AC-voltage grid at sea;
12. The converter station according to claim 11, further comprising: at least one common encapsulation housing having at least a part of said converter and at least a part of said transformer disposed therein in common; and insulating material encasing said part of said transformer and said part of said converter, said common encapsulation housing being filled with said insulating material.
13. The converter station according to claim 12, further comprising at least one DC-voltage smoothing inductor connected to conduct direct current output at said DC-voltage connection of said converter, wherein at least a part of said smoothing inductor is arranged in said common encapsulation housing.
14. The converter station according to claim 12, wherein said insulating material is a protective gas or an insulating liquid.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
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DESCRIPTION OF THE INVENTION
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[0036] Moreover, the converter station 1 has two smoothing inductors 9 which are each connected to one of the two DC-voltage connections of the diode rectifier 2. Each DC-voltage inductor 9 is arranged in a separate encapsulation housing 10, which is likewise filled with said insulating oil and is at ground potential. In order to feed the DC-voltage lines through between smoothing inductor 9 and the respective DC-voltage connection of the diode rectifier 2, supply pipes 8 are again used. In addition, mechanical switches 11 are provided, with which the converter station 1 can be connected at a DC-voltage connection 13 to the two DC-voltage poles 14 and 15. The transformer 4 is connected to a switchgear assembly 17 having a plurality of three-pole switches via an AC-voltage conductor 16, which switchgear assembly is realized as gas-insulated high-voltage switchgear assembly 17. One of the switches of the switchgear assembly 17 is connected to an AC-voltage line 18 which is connected as part of power supply means to a coupling-in component on land which is used to feed electrical power into the AC-voltage line 18. The coupling-in component is, by way of example, a transformer. The switchgear assembly 17 is connected to various strings 22 of an AC-voltage grid, wherein a plurality of wind turbines are connected to each string 22. Since the electrical power can be transferred only from wind farm to land using the diode rectifier 2, the energy must be transmitted via the AC-voltage line 18 in the other direction. Said AC-voltage line 18 has an AC voltage between 50 and 70 kV, which is expedient for this.
[0037] As can be seen in
[0038] The construction of the diode rectifier 2 is illustrated in more detail in
[0039] The diode rectifier illustrated in
[0040]
[0041] The converter station 1 is arranged on an open-sea platform, which is not illustrated in the figures, approximately 100 km from a coast 34 in the sea, wherein a converter 35 on land is connected via a DC-voltage connection 36 to the converter station 1. It can be seen that each partial converter station 29 is connected to a string 22 of a wind farm 37, wherein the wind farm 37 consists of a multiplicity of wind turbines 38.
[0042] Even in the event of no wind, the wind farm 37 requires energy. This is provided thereto using the partial converter 30. For this purpose, for example, all of the partial diode rectifiers 29 are bypassed by closing the respective bypass switch 33, with the result that the partial converter 30 is directly connected to the converter 35 on land, which is a modular multi-level converter, for example. Said modular multi-level converter is connected to a power supply grid which is not illustrated in the figures and feeds the necessary power into the partial converter 30, which provides said power on the AC voltage-side for the wind farm 37.
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