TRANSMISSION DEVICE FOR ENERGY TRANSMISSION BETWEEN MULTIPLE ELECTRICAL ENERGY NETWORKS
20200067310 ยท 2020-02-27
Inventors
Cpc classification
H02J3/06
ELECTRICITY
Y02E40/20
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
H02J3/1857
ELECTRICITY
International classification
H02J3/06
ELECTRICITY
Abstract
A transmission device transmits energy between multiple electrical energy networks, each providing a multi-phase connection voltage at a network frequency for electrical energy supply. The transmission device contains multi-phase multi-stage rectifiers and a control device, which adjusts the transmission of energy into at least one energy-receiving energy network according to an input by controlling the multi-stage rectifiers. The multi-stage rectifiers are each connected to one of the energy networks and to one another via at least one multi-phase transformer. Electrical energy flows via the transformer at a predefined transmission frequency from at least one energy-emitting energy network into at least one energy-receiving energy network. The transmission frequency is, in particular, multiple times the network frequency.
Claims
1-8. (canceled)
9. A transmission device for energy transmission between a plurality of electrical energy networks each of the electrical energy networks providing a multi-phase supply voltage at a network frequency as an electrical energy supply, the transmission device comprising: a first multi-phase transformer; multi-phase multilevel power converters each connected to one of the electrical energy networks and to one another via said first multi-phase transformer and therefore electrically isolated from each other, via said multi-phase multilevel power converters and at a specified transmission frequency electrical energy flows from at least one energy-supplying energy network of the electrical energy networks into at least one energy-consuming energy network of the electrical energy networks, wherein the specified transmission frequency is greater than any said network frequency; and a controller for adjusting a transmission of the electrical energy into at least one energy-receiving energy network of the electrical energy networks according to a setpoint value by controlling said multi-phase multilevel power converters of said electrical energy networks.
10. The transmission device according to claim 9, wherein the electrical energy networks are three-phase or two-phase and said multi-phase multilevel power converters have three or two phase connections corresponding thereto on a network side.
11. The transmission device according to claim 9, wherein said first multi-phase transformer is configured as either a three-phase or a two-phase on both connection sides, or a three-phase on one connection side and a two-phase on another side, and in that said multi-phase multilevel power converters have three or two phase connections corresponding thereto on a transformer side.
12. The transmission device according to claim 11, wherein said first multi-phase transformer has one three-phase connection side and three two-phase connection sides, wherein on each of said two-phase connection sides one of said multi-phase multilevel power converters is connected to the two phase connections on the transformer side.
13. The transmission device according to claim 9, further comprising a second transformer; wherein a first of said multi-phase multilevel power converters is connected via said first multi-phase transformer to a second of said multi-phase multilevel power converters and via said second transformer to a third of said multi-phase multilevel power converters; and wherein said second and third multi-phase multilevel power converters are connected via said first and second transformers.
14. The transmission device according to claim 9, wherein each of said multi-phase multilevel power converters for each phase is formed of two series-connected power converter modules, wherein electrical connections between said power converter modules form network-side phase connections which are connected to the electrical energy networks.
15. The transmission device according to claim 14, wherein each of said power converter modules is formed from a plurality of series-connected sub-modules and an inductance, said series-connected sub-modules have semiconductor switches controlled by said controller and are implemented in a full-bridge circuit.
16. The transmission device according to claim 9, wherein a current through said multi-phase multilevel power converters and supply voltages of the electrical energy networks are detected and used by said controller for adjusting the electrical energy to be transmitted.
Description
[0015] The invention is described hereafter by reference to an exemplary embodiment. Shown are:
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[0034] The two energy networks 1a, 1b are coupled via a transmission device 2a, 2c (also known as an electronic transformer), which are each connected to one of the energy networks 1a, 1b (to their supply busbars A1a, A1b).
[0035] By means of voltage sensors 4a, 4b (which here are embodied as measurement transformers), the supply voltages applied to the supply busbars A1a, A1b (AC supply voltages) are measured. In addition, current sensors 3a, 3b measure the electric currents flowing into and out of the energy networks 1a and 1b via the transmission device 2a, 2c. The current measurements 3a, 3b and the voltage measurements 4a, 4b are processed by a common control device 5, which adjusts the energy transfer from the energy-supplying energy network 1a or 1b into the energy-consuming energy network 1b or 1a on the basis of a setpoint value SW and the measurements of the sensors 3a, 3b, 4a, 4b. The setpoint value SW relates to both the active and/or reactive power to be transferred between the energy networks 1a, 1b.
[0036] The control device 5 calculates control signals SS in each case, which are transferred to the transmission device 2a, 2c. By means of the control signals SS, the transmission device 2a, 2c is controlled in such a way that the desired energy transmission is realized in each case. In this way the control device 5 monitors and controls the transmission device 2a, 2c.
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[0038] As shown in
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[0054] The transmission device 2a, 2b, 2c, 2d, 2e thus controls, independently of the specific design, the energy transfer between several electrical energy networks, each of which has a multi-phase supply voltage at a (usually equal) network frequency for the electrical energy supply. The transmission device 2a, 2b, 2c, 2d, 2e in this case has at least two multi-phase multilevel power converters 7a, 7b, 7c, which are each connected to one of the energy networks 1a, 1b, 1c and to one another via a first multi-phase transformer 8a, 8b, 8c, and are therefore electrically isolated from each other. Via the transformer 8a, 8b, 8c, electrical energy at a specified transmission frequency, which is higher than any of the network frequencies, flows from at least one energy-supplying energy network into at least one energy-consuming energy network 1a, 1b, 1c. The control device 5 adjusts the energy transfer into the at least one energy-consuming energy network 1a, 1b, 1c according to a setpoint value, by controlling the multilevel power converters 7a, 7b, 7c accordingly, so that on the transformer side the required AC voltage AC1, AC2 is available at a transmission frequency that is higher than any of the network frequencies. Advantageously, the transmission frequency is a multiple (for example, two or three times) of the network frequency, in the case of different network frequencies of the highest network frequency. The transformer is therefore sometimes also referred to as a high-frequency transformer.