POTENTIAL EQUALISATION SYSTEM FOR A MODULAR MULTILEVEL CONVERTER
20210152081 ยท 2021-05-20
Inventors
- Mathias Anheuer (Rosstal, DE)
- Daniel Boehme (Nuernberg, DE)
- Johannes Dallmeier (Aufhausen, DE)
- Christopher Eismann (Wendelstein, DE)
- Johann Holweg (Zirndorf, DE)
- Martin Kapelke (Nuernberg, DE)
- Michael Rudek (Nuernberg, DE)
- Torsten Stoltze (Herzogenaurach, DE)
- Marcus Wahle (Veitsbronn, DE)
- Felix Daeumler (Remptendorf, DE)
- Johannes Griessl (Forchheim, DE)
- Adrian Huber (Fuerth, DE)
- Christian Schrammel (Burgthann, DE)
- Johannes Weber (Erlangen, DE)
Cpc classification
H02M1/44
ELECTRICITY
H02M7/483
ELECTRICITY
H02M7/4835
ELECTRICITY
International classification
Abstract
A potential equalization system for a modular multi-level converter. The converter has a plurality of converter modules and each of the modules has a direct current source. The potential equalization system includes pole contacts, which are each electrically connected to one pole of a direct current source, and at least one electrically conductive contacting element, which can be moved between a first end position in which the contacting element is electrically isolated from the converter modules and a second end position in which the contacting element contacts pole contacts of different direct current sources and can be put on ground potential.
Claims
1-15. (canceled)
16. A potential equalization system for a modular multilevel power converter, the modular multilevel power converter having a plurality of power converter modules, each with a direct voltage source, the potential equalization system comprising: pole contacts each electrically connected to a pole of a respective direct voltage source; and at least one electrically conductive contacting element rotatably mounted about an axis or rotation between a first end position, in which said contacting element is electrically disconnected from the power converter modules, and a second end position, in which said contacting element contacts respective pole contacts of different direct voltage sources and in which said contacting element can be connected to ground potential; said at least one contacting element being an electrical shield for shielding a plurality of power converter modules.
17. The potential equalization system according to claim 16, further comprising a drive selected from the group consisting of a manual drive, a mechanical drive, and an electrical drive for moving the at least one contacting element between said first and second end positions.
18. The potential equalization system according to claim 16, wherein said electrical shield comprises a shield tube from which at least one shield contact protrudes which, in the second end position of the electrical shield, contacts at least one pole contact, and the axis of rotation of the electrical shield is a longitudinal axis of the shield tube.
19. The potential equalization system according to claim 18, wherein at least one shield contact is a handle arranged at said shield tube that contacts a plurality of the pole contacts in the second end position of the electrical shield.
20. The potential equalization system according to claim 16, wherein said electrical shield is an aluminum shield.
21. The potential equalization system according to claim 16, wherein said contacting element is an electrically conductive contact cable to be guided by an electrically insulating guide cable guided via pole contacts of different direct voltage sources, wherein said contact cable does not contact any pole contact in the first end position and said contact cable contacts the pole contacts in the second end position via which the guide cable is guided.
22. The potential equalization system according to claim 21, wherein said contact cable is a copper cable.
23. The potential equalization system according to claim 21, wherein said guide cable is guided by a first cable drum, said contact cable is guided by a second cable drum, and said first and second cable drums are mounted on a drive shaft that can be driven manually, mechanically, or electrically.
24. A modular multilevel power converter, comprising: a plurality of power converter modules each having a direct voltage source; and a potential equalization system according to claim 16.
25. The modular multilevel power converter according to claim 24, wherein each said direct voltage source is a capacitor or an electrical interconnection of a plurality of capacitors.
26. The modular multilevel power converter according to claim 24, comprising a plurality of module groups each formed with a plurality of power converter modules each having at least one pole contact, and wherein said potential equalization system includes a contacting element for each said module group and which, in the second end position, contacts all said pole contacts of said module group.
27. The modular multilevel power converter according to claim 26, wherein all of said contacting elements are electrically connected to one another in the second end positions thereof.
28. The modular multilevel power converter according to claim 26, further comprising a common drive configured for driving all of said contacting elements simultaneously.
29. The modular multilevel power converter according to claim 24, configured as a self-commutated power converter.
Description
[0014] The above-described properties, features and advantages of this invention, as well as the manner in which these are achieved, will be made clearer and more easily understandable in connection with the following description of exemplary embodiments that are explained in more detail in connection with the drawings. Here:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021] Parts that correspond to one another are given the same reference signs in the figures.
[0022]
[0023] Each power converter module 3 comprises a half-bridge of semiconductor switches 9 each of which is, for example, designed as a bipolar transistor with an insulated gate (IGBT: insulated gate bipolar transistor), with which a freewheeling diode 11 is connected antiparallel. Each power converter module 3 further comprises a direct voltage source 13 that is designed as a capacitor. One pole of the direct voltage source 13 is electrically connected to the pole contact 15 of the power converter module 3, via which the pole can be electrically contacted.
[0024] The contacting element 17 of each module group 5 to 7 can be moved between a first end position in which it is electrically disconnected from the power converter modules 3 of the module group 5 to 7, and a second end position, in which it contacts all of the pole contacts 15 of the module group 5 to 7 and connects the direct voltage sources 13 of the power converter modules 3 of the module group 5 to 7 in parallel. The contacting element 17 of a first module group 5 also contacts, in its second end position, a grounding contact 19 to which a ground potential can be applied via a first grounding switch 21. The contacting element 17 of a second module group 6 also contacts, in its second end position, a first connecting contact 23 that is electrically connected to a pole contact 15 of the first module group 5. The contacting element 17 of the third module group 7 also contacts, in its second end position, a second connecting contact 25 that is electrically connected to a pole contact 15 of the second module group 6. The ground potential can be applied via a second grounding switch 22 to a pole contact 15 of the third module group 7. When all of the contacting elements 17 are in their second end position, the ground potential can therefore be applied to all the pole contacts 15 by closing at least one grounding switch 21, 22.
[0025] Each contacting element 17 can be moved by a drive 27 between its two end positions. The drives 27 of the contacting elements 17 can also be implemented as a common drive 27 for all contacting elements 17.
[0026]
[0027] Each shield comprises a shield tube 29 and can be rotated between its two end positions about an axis of rotation 31 that is a longitudinal axis of the shield tube 29. A shield contact 33 protrudes from each shield tube 29, and is designed as a handle arranged at the shield tube 29. The shields are manufactured, for example, from aluminum.
[0028] The drive 27 comprises a drive bar 35 that can be rotated about its longitudinal axis under manual, mechanical or electrical drive, and for each shield tube 29 a gear element 37 that brings about a rotation of the shield tube 29 about the axis of rotation 31 from a rotation of the drive bar 35 about its longitudinal axis. For example, the drive bar 35 and each gear element 37 form a worm gear, wherein the drive bar 35 is designed as the worm of the worm gear, and the gear element 37 is designed as the worm wheel of the worm gear.
[0029] The
[0030]
[0031] The guide cable 39 is guided via a first cable drum 41, deflection rollers 43, the pole contacts 15 and a grounding contact 19.
[0032] When in its first end position, the contact cable is wound around a second cable drum 42, and is pulled by the guide cable 39 from the first end position, via an intermediate position shown in
[0033] The cable drums 41, 42 are mounted on a drive shaft 45 that can be driven manually, mechanically or electrically.
[0034] Although the invention has been illustrated and described in more detail through preferred exemplary embodiments, the invention is not restricted by the disclosed examples, and other variations can be derived from this by the expert without leaving the protective scope of the invention.
LIST OF REFERENCE SIGNS
[0035] 1 Power converter [0036] 3 Power converter module [0037] 5 to 7 Module group [0038] 9 Semiconductor switch [0039] 11 Freewheeling diode [0040] 13 Direct voltage source [0041] 15 Pole contact [0042] 17 Contacting element [0043] 19 Grounding contact [0044] 21, 22 Grounding switch [0045] 23, 25 Connecting contact [0046] 27 Drive [0047] 29 Shield tube [0048] 31 Axis of rotation [0049] 33 Shield contact [0050] 35 Drive bar [0051] 37 Gear element [0052] 39 Guide cable [0053] 41, 42 Cable drum [0054] 43 Deflection roller [0055] 45 Drive shaft