The invention relates to a switching module for a chain link, which switching module comprises at least one switching cell comprising switching units, capacitor units and terminals.
The invention also relates to chain link converters, and especially to a chain link for a converter, which chain link comprises at least two switching modules linked in a chain, the switching modules are configured for serial connection into a multilevel chain link.
Multilevel chain link converters are used in many high power applications. In particular, modular converters, where a number of switching cells, each including a number of switching elements, or switching units, and an energy storing element in the form of a DC capacitor, are connected in series in a chain link to form a variable voltage source, have found increased use. These modular converters are used in HVDC (High Voltage Direct Current) and FACTS (Flexible Alternating Current Transmission Systems) applications.
A commonly used modular converter consists of serially connected full-bridge switching cells, each switching cell comprising four switching units, in the form of semiconductor switches, for example IGBTs (Insulated-Gate Bipolar Transistor) or IGCTs (Integrated Gate-Commutated Thyristor), and one DC capacitor unit.
The losses in semiconductor switches is dependent on both the switching of, as well as the conduction by, the switches. In many FACTS converters, the conduction losses have a greater impact on total loss than the switching losses.
Semiconductor switches having higher voltages can be used in full-bridge converters to reduce the number of switching cells in order to reduce the conduction losses. However, reducing the number of switching levels reduces the available number of intermediate voltage levels. Thus, a trade-off will be made between harmonic performance of the converter and the switching frequency of the switches. In for example FACTS applications comprising full-bridge converters, it is difficult to reduce the number of switching cells beyond a certain point without negatively affecting the harmonic requirements so that the harmonic requirements of the power system cannot be met.
WO 2013/186006 describes an alternative to full-bridge switching cells, wherein the number of switching units are reduced for a converter having the equal number of switching levels. The number of switching units, for each capacitor of the converter, is half compared to the number of switches in a converter with full-bridge switching cells. For a five-level chain link, the number of switching units in the conduction path is three compared to four switching units in a full-bridge converter. Using the chain link described in WO 2013/186006, it is therefore possible to reduce the conduction losses in comparison to converters with full-bridge switching cells.
The paper “Five level cross connected cell for cascaded converters”, by Alireza Nami, Liwei Wang, Frans Dijkhuizen, presented at EPE, Lille, France, Sep. 3, 2013 (Nami et al) describes the same type of five level four quadrant multilevel converter cell configuration as in WO 2013/186006. Nami et al points out that a purpose of this cell configuration is to reduce costs and losses in a multilevel converter, by providing a large number of voltage levels with a low number of devices. The five-level four quadrant cell configuration of Nami et al is suitable for HVDC and FACTS converters and is depicted in
The chain link of Nami et al and WO 2013/186006 provides a way to reduce the number of switching units in the conduction path, and thereby reduce losses. However, there is still a need to reduce the losses even further, without lowering the quality in terms of harmonic performance of the chain-link converters
For these purposes, the present invention provides a switching module for a chain link.
An aim of the invention is to reduce the number of switching units, still providing a comparatively large number of voltage levels in the output.
In a first aspect, the invention provides a switching module for a chain link comprising at least one switching cell. Each switching cell comprises a first side comprising a first terminal and a second terminal and a second side comprising a third terminal and a fourth terminal. Each switching cell comprises a first switching unit, a second switching unit, and a first and a second capacitor unit. The first terminal is connected to the second terminal via the first capacitor unit, wherein the first capacitor unit has its positive side facing the first terminal. The third terminal is connected to the fourth terminal via the second capacitor unit, wherein the second capacitor has its positive side facing the fourth terminal. The second terminal is connected to the fourth terminal via the second switching unit. Especially, each switching cell comprises a third capacitor unit, wherein:
Thus, the switching module can be provided as a single switching cell. However, it is preferred to provide switching modules that comprise two identical switching cells connected to each other, wherein the two switching cells are arranged in opposite directions.
In a preferred embodiment, the switching module comprises at least two switching cells, preferably one pair of identical switching cells, wherein the first switching cell and a second switching cell are connected in series in opposing directions, wherein the second side of the first switching cell is connected to the second side of the second switching cell.
This provides switching modules, each consisting of two switching cells, which switching modules are suitable for linking to further switching modules into a chain link. Preferably, such a chain link of at least one switching module comprises an input and an output comprising a respective half-bridge of semiconductor switches.
In an alternative embodiment, the switching cells are interconnected by means of their first sides.
In a first further embodiment (to the preferred embodiment), the first switching cell and the second switching cell are interconnected only by means of the fourth terminal of the first switching cell being directly connected to the fourth terminal of the second switching cell.
In a second further embodiment, the first switching cell and the second switching cell are interconnected only by means of the third terminal of the first switching cell being directly connected to the third terminal of the second switching cell.
In a third further embodiment the first switching cell and the second switching cell are interconnected by means of the fourth terminal of the first switching cell being directly connected to the fourth terminal of the second switching cell, and the first switching cell and the second switching cell are also interconnected by means of the third terminal of the first switching cell being directly connected to the third terminal of the second switching cell.
In a fourth further embodiment the first switching cell and the second switching cell are interconnected only by means of the third terminal of the first switching cell being directly connected to the fourth terminal of the second switching cell.
In a second aspect, the present invention provides a multilevel chain link for providing the voltage levels of each phase leg of a converter.
The chain link comprises an input have two switching units in a half-bridge configuration, an output comprising two switching units in a half-bridge configuration and a number of switching modules arranged in series between the input and the output. Each switching module comprises two switching cells, preferably one pair of identical switching cells, wherein the first switching cell and a second switching cell are connected in series in opposing directions, wherein the second side of the first switching cell is connected to the second side of the second switching cell, wherein each switching cell being made in accordance with the switching cell of the first aspect of the invention.
In a first embodiment of the second aspect, the first switching cell and the second switching cell of each switching module are interconnected only by means of the fourth terminal of the first switching cell and the fourth terminal of the second switching cell.
In a further embodiment of the first embodiment of the second aspect, every first switching module in every pair of consecutive switching modules is connected to the other switching module of the pair of consecutive switching modules only by means of the second terminal of the second switching cell of the first switching module being connected to the second terminal of the first switching cell of the other switching module.
In an alternative to this further embodiment, consecutive switching modules are interconnected by means of respective first terminals, instead of respective second terminals.
In a second embodiment of the second aspect, the first switching cell and the second switching cell of each switching module (SM1, are interconnected only by means of the third terminal of the first switching cell and the third terminal of the second switching cell.
In a further embodiment of the second embodiment of the second aspect, every first switching module in every pair of consecutive switching modules is connected to the other switching module of the pair of consecutive switching modules only by means of the first terminal of the second switching cell of the first switching module being connected to the first terminal of the first switching cell of the other switching module.
In an alternative to this further embodiment, consecutive switching modules are interconnected by means of respective second terminals, instead of respective first terminals.
In a third embodiment of the second aspect, the first switching cell and the second switching cell of each switching module are interconnected only by means of the third terminal of the first switching cell and the fourth terminal of the second switching cell.
In a further embodiment of the third embodiment of the second aspect, every first switching module in every pair of consecutive switching modules is connected to the other switching module of the pair of consecutive switching modules only by means of the first terminal of the second switching cell of the first switching module being connected to the second terminal of the first switching cell of the other switching module.
In a fourth embodiment of the second aspect, the first switching cell and the second switching cell of each switching module are interconnected by means of:
In a further embodiment of the fourth embodiment of the second aspect, every first switching module in every pair of consecutive switching modules is connected to the other switching module of the pair of consecutive switching modules by means of:
In a third aspect, the invention provides a switching module that is a variant to the second further embodiment of the first aspect, by providing a switching module comprising a first switching cell and a second switching cell. In this switching module, each switching cell comprises:
In a forth aspect, the invention provides a switching module that is a variant to the third further embodiment of the first aspect, by providing a switching module that comprises a first switching cell and a second switching cell, wherein each switching cell comprises:
Please note that the third terminal referred to in this forth aspect corresponds to the fourth terminal referred to in the first, second and the third aspect of the invention. However, since there are only three terminals used according to the forth aspect, the terminals has been numbered the “first”, the “second” and the “third” terminal, so as to avoid confusion by referring to the three terminals as the “first”, the “second” and the “fourth” terminal.
Embodiments of the invention will be described with references to the accompanying drawings wherein:
The switching cell SC in
The first side S1 and the second side S2 are interconnected by means of two connections. A first connection between the first terminal T1 and the third terminal T3, which first connection comprises a first switching unit SU1 and a third capacitor unit C3, so that the first terminal T1 is connected to the third terminal T3 via the first switching unit SU1 and the third capacitor unit C3, wherein the first switching unit SU1 and the third capacitor unit C3 are arranged in series. The third capacitor unit C3 has its positive side facing in the direction towards the third terminal T3. A second connection connects the second terminal T2 to the fourth terminal, which second connection comprises a second switching unit SU2. Thus, the second terminal T2 is connected to the fourth terminal T4 via the second switching unit SU2. The switching cell SC provides a circuit with three capacitor units C1, C2, C3 in a loop.
Each switching unit SU1, SU2, comprises a semiconductor switch in anti-parallel configuration with a diode, e.g. each switching unit SU1, SU2 consists of an IGBT or IGCT semiconductor unit.
The first side S11 of the first switching cell SC1 is connected to a first switch SS1 and a second switch SS2 arranged in a half-bridge to the first terminal T11 and the second terminal T21, respectively. The first and second switch SS1, SS2 provides an output for the switching module SM. The first side S12 of the second switching cell SC2 is connected to a third switch S3 and a fourth switch S4 arranged in a half-bridge to the first terminal T12 and the second terminal T22, respectively, of the second switching cell SC2. The third switch SS3 and fourth switch SS4 provides an input for the switching module SM.
Each switching unit SS1, SS2, SS3 and SS4 of the input and output half-bridges comprises a semiconductor switch in anti-parallel configuration with a diode.
It should be noted that the second capacitor units C21, C22, can be exchanged for a single second capacitor unit C2 between the third terminals T31, T32 and the fourth terminals T41, T42 in an electrically equivalent circuit. In both cases, with one or two second capacitor units, the switching module SM can be provided as one unit for interconnection to further switching modules SM to provide a chain link of desired size. Alternatively, the switching cells SC1, SC2 can be provided as single units and used as building blocks for creating a chain link of switching cells SC1, SC2.
Each capacitor unit C11, C21, C31, C12, C22, and C32 provides the same voltage U volts in the directions illustrated in the
Each switching unit SU11, SU21, SU12, SU22, of the first switching cell SC1 and of the second switching cell SC2 has a reverse blocking voltage level of 3 U volts.
Each switching unit SS1, SS2, SS3, SS4 of the input and output half-bridges has a reverse blocking voltage level of U volts.
Table 1 illustrates a switching scheme for the switching module SM of
The switching module SM of
Table 2 shows a switching scheme for the switching module SM of
Thus the chain link of
Table 3 shows a switching scheme for the switching module SM of
The chain link of
The fourth terminal T41 of the first switching cell SC1 is not connected, and the third terminal T32 of the second switching cell SC2 is not connected.
An alternative to the embodiment of
Each one of the switching modules SM1, SM2, SMn of
Each one of the switching modules SM1, SM2, SMn of
Also each one of the switching modules SM1, SM2, SMn of
Each one of the switching modules SM1, SM2, SMn of
Each one of the switching modules SM1, SM2, SMn of
Each switching module SM1, SM2, SMn comprises pair of oppositely connected switching cells, each pair comprising a first and a second switching cell SC1 and SC2, SC3 and SC4, SC2n-1 and SC2n, respectively. Each switching module SM1, SM2, . . . SMn is connected to a neighboring switching module SM1, SM2, SMn, by a first side of one of its switching cells (i.e. its second switching cell SC2, SC4), except for the last switching module SMn that is connected by its second switching cell to the input switching units SS3, SS4 by means of its first and second terminals, respectively, of its second switching cell SC2n.
The first switching module SM1 is connected to the output half-bridge at the other end of the chain link by means of its first side terminals T11, T21 of its first switching cell SC1.
Every second switching cell SC2, SC4, SC2n of every switching module SM1, SM2, . . . , SMn in the chain link in
Each one of the switching modules SM1, SM2, SMn of
Each one of the switching modules SM1, SM2, SMn of
In
In
Thus consecutive switching cells SC1-SC2n are connected in alternating fashion by a fourth terminal connection for every second switching cell interconnection, and a second terminal connection for every second switching cell interconnection.
In an alternative to
Each one of the switching modules SM1, SM2, SMn of
In
In
A bypass can more easily be arranged for switching cells SC having only one single connection in its two sides, such as the switching cells in the chain links of
For the switching cells SC that have one single connection on one side and both terminals connected on its other side, such as the switching cells in the chain link of
The chain link has been described in embodiments, but can be generalized to comprise a number of, preferably an even number of, identical switching cells SC1, SC2, each in accordance with the switching cell of
The second side connections can be any of:
A switching cell (SC1, SC2) for a chain link has thus been described, which switching cell (SC1, SC2) comprises a first side (S1) comprising a first terminal (T1) and a second terminal (T2), a second side (S2) comprising a third terminal (T3) and a fourth terminal (T4), a first switching unit (SU1), a second switching unit (SU2), and a first and a second capacitor unit (C1, C2). The first terminal (T1) is connected to the second terminal (T2) via the first capacitor unit (C1), wherein the first capacitor unit (C1) has its positive side facing the first terminal (T1). The third terminal (T3) is connected to the fourth terminal (T4) via the second capacitor unit (C2), wherein the second capacitor has its positive side facing the fourth terminal (T4). The second terminal (T2) is connected to the fourth terminal (T4) via the second switching unit (SU2). The switching cell also comprises a third capacitor unit (C3), and the first terminal (T1) is connected to the third terminal (T3) via a first series connection comprising the first switching unit (SU1) and the third capacitor unit (C3), wherein the third capacitor unit (C3) has its positive side facing the third terminal (T3).
A switching module (SM) comprises at least one such switching cell (SC1, SC2) has also been described in embodiments. Preferred embodiments of the switching module (SM) comprises at least two such switching cells (SC1, SC2), wherein the first switching cell (SC1) and the second switching cell (SC2) are connected in series in opposing directions, wherein the second side (S21) of the first switching cell (SC1) is connected to the second side (S22) of the second switching cell (SC2).
A chain link (CL) comprising a number of switching modules (SM1, SM2, . . . , SMn) in serial connection has also been described in embodiments. The invention is not limited to these embodiments, but may be varied within the scope of the claims.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/067100 | 8/8/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2016/020016 | 2/11/2016 | WO | A |
Number | Name | Date | Kind |
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5473526 | Svensson | Dec 1995 | A |
7105948 | Steimer | Sep 2006 | B2 |
7817451 | Barbosa | Oct 2010 | B2 |
20030151448 | Fujiyama | Aug 2003 | A1 |
20050083716 | Marquardt | Apr 2005 | A1 |
20070025126 | Barbosa | Feb 2007 | A1 |
20080150621 | Lesso | Jun 2008 | A1 |
20080231347 | Yen | Sep 2008 | A1 |
20090231896 | Barbosa | Sep 2009 | A1 |
Number | Date | Country |
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102 17 889 | Nov 2003 | DE |
WO 2013186006 | Nov 2003 | WO |
Entry |
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Nami et al., “A new T-type NPC-based submodule for Modular Multilevel Cascaded Converters”, the 5th Power Electronics, Drive Systems and Technologies Conference (PEDSTC 2014), Feb. 5-6, 2014, XP032587014, pp. 137-142, Figure 1. |
Nami et al., “Five level cross connected cell for cascaded converters”, 2013 15th European Conference on Power Electronics and Applications ( EPE) , IEEE, Sep. 2, 2013, XP032505608, pp. 1-9, Figure 3. |
Nami et al., “Modular Multilevel Converters for HVDC Applications: Review on Converter Cells and Functionalities”, IEEE Transactions on Power Electronics, Jan. 2015, vol. 30, No. 1, XP011557523, pp. 18-36, the whole document. |
Peng et al., “Recent Advances in Multilevel Converter/Inverter Topologies and Applications”, the 2010 International Power Electronics Conference: IPEC-SAPPORO 2010, Jun. 21, 2010, XP031729761, pp. 492-501, Figure 6c, paragraph [0lll]. |
Number | Date | Country | |
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20170237330 A1 | Aug 2017 | US |