DC VOLTAGE CONVERTER
20230134977 · 2023-05-04
Inventors
Cpc classification
Y02T10/64
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
Y02T10/70
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
Y02T10/72
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
H02M3/33576
ELECTRICITY
B60L15/007
PERFORMING OPERATIONS; TRANSPORTING
H02M1/0095
ELECTRICITY
International classification
Abstract
The invention relates to a DC voltage converter for transferring power from a high voltage network to a low voltage network. As a result, a circuit configuration which can be operated alternatively as an active-clamp flyback converter or an active-clamp buck converter is used.
Claims
1. A DC-DC voltage converter (1) for transferring power between a high-voltage grid and a low-voltage grid, the DC-DC voltage converter (1) comprising: an input connection (10), which is designed to be coupled to a DC voltage source (2); a transformer (T) with a primary side (Pri) and a secondary side (Sek); a capacitor ©; a first switching element (S1), a second switching element (S2), a third switching element (S3) and a fourth switching element (S4); wherein a first connection (21) of the primary side (Pri) of the transformer (T) is electrically coupled to a first connection element (11) of the first input connection (10); a first connection of the first switching element (S1) is connected to a second connection (22) of the primary side (Pri) of the transformer (T) and a second connection of the first switching element (S1) is connected to a second connection element (12) of the input connection (10); a first connection of the second switching element (S2) is connected to the first connection (21) of the primary side (Pri) of the transformer (T) and a second connection of the second switching element (S2) is connected to a node (K); a first connection of the capacitor © is connected to the node (K) and a second connection of the capacitor © is connected to the second connection (22) of the primary side (Pri) of the transformer (T); and a first connection of the third switching element (S3) is connected to the node (K), a second connection of the third switching element (S3) is connected to a first connection of the fourth switching element (S4) and a second connection of the fourth switching element (S4) is connected to the second connection element (12) of the input connection (10).
2. The DC-DC voltage converter (1) as claimed in claim 1, further comprising a rectifier (40), which is coupled to the secondary connection (Sek) of the transformer (T) and which is designed to rectify a voltage applied to the secondary connection (Sek) of the transformer (T).
3. The DC-DC voltage converter (1) as claimed in claim 2, wherein the rectifier (40) comprises a rectifier diode or a semiconductor switch (S5), which is designed to rectify the voltage applied to the secondary connection (Sek) of the transformer (T).
4. The DC-DC voltage converter (1) as claimed in claim 1, wherein the first switching element (S1), the second switching element (S2), the third switching element (S3) and the fourth switching element (S4) each comprise a semiconductor switch with a body diode.
5. The DC-DC voltage converter (1) as claimed in claim 4, wherein the body diode of the third switching element (S3) is arranged in the opposite orientation to the body diode of the fourth switching element (S4).
6. The DC-DC voltage converter (1) as claimed in claim 1, further comprising a control device (50), which is designed to actuate the first switching element (S1), the second switching element (S2), the third switching element (S3) and the fourth switching element (S4).
7. The DC-DC voltage converter (1) as claimed in claim 6, wherein the control device (50) is configured, in a first operating mode, to open the third switching element (S3) and the fourth switching element (S4) and to actuate the first switching element (S1) and the second switching element (S2) each in an alternately clocked manner, and, in a second operating mode, to open the first switching element (S1), to close the fourth switching element (S4) and to actuate the second switching element (S2) and the third switching element (S3) each in an alternately clocked manner.
8. The DC-DC voltage converter (1) as claimed in claim 1, wherein a value of an input voltage (U_in) at the input connection (10) for the actuation in the second operating mode is greater than a value of the input voltage (U_in) for the actuation in the first operating mode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Further features and advantages of the invention are explained below on the basis of the figures, in which:
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021]
[0022] The DC-DC voltage converter 1 comprises, in addition to the input connection 10 and the output connection 30, a transformer T. The transformer T has a primary side Pri and a secondary side Sek. Furthermore, the DC-DC voltage converter 1 has, between the input connection 10 and the primary side Pri of the transformer T, four switching elements S1, S2, S3 and S4 and a capacitor C. A rectifier 40 is provided on the secondary side Sek of the transformer T.
[0023] The input connection 10 of the DC-DC voltage converter 1 comprises a first connection element 11 and a second connection element 12. An input DC voltage U_in can correspondingly be provided between the first connection element 11 and the second connection element 12. The first connection 11 of the input connection 10 is connected to a first connection 21 on the primary side Pri of the transformer T. A first switching element S1 is arranged between a second connection 22 on the primary side Pri of the transformer T and the second connection element 12 of the input connection 10. Furthermore, a second switching element S2 is arranged between the first connection 21 on the primary side Pri of the transformer T and a node K. A capacitor C is arranged between the node K and the second connection 22 on the primary side Pri of the transformer T. Moreover, a first connection of a third switching element S3 is connected to the node K and a second connection of the third switching element S3 is connected to a first connection of a fourth switching element S4. The second connection of the fourth switching element S4 is connected to the second connection element 12 of the input connection 10 and thus also to the corresponding connection of the first switching element S1.
[0024] As already stated above, a rectifier 40 is provided between the secondary side Sek of the transformer T and the output connection 30 of the DC-DC voltage converter 1. The rectifier 40 can be, for example, a passive diode, which is provided between a connection on the secondary side Sek of the transformer T and a connection element of the output connection 30. Alternatively, an active rectification can also be performed by means of a switching element S5, in particular a semiconductor switching element, which is arranged between a connection on the secondary side Sek of the transformer T and a connection element of the output connection 30.
[0025] For actuating the switching elements, in particular the first, second, third and fourth switching elements S1-S4, and optionally the switching element in the rectifier 40, a control device 50 can be provided. The operating principle and the switching sequence for the actuation of the switching elements are explained in more detail below.
[0026]
[0027]
[0028] The third switching element S3 magnetizes the transformer T. In this case, too, the clamping circuit consists of the second switching element S2 and the capacitor C. In the second operating mode, the second switching element S2 and the third switching element S3 are alternately clocked with a predefined frequency and pulse width.
[0029] In particular since the rectifier 40 is embodied as a simple, unidirectional rectifier, the configuration of the circuit arrangement of the DC-DC voltage converter 1 requires the transformer T to be magnetized in the same direction both in the first operating mode and in the second operating mode. This task of magnetizing is undertaken by the first switching element S1 in the first operating mode and by the third switching element S3 in the second operating mode. In both cases, the transformer T is then demagnetized when the power is transferred to the secondary side Sek of the transformer T. This takes place when the first switching element S1 or the third switching element S3, respectively, is switched off and the second switching element S2 is correspondingly switched on.
[0030] In the first operating mode, the first switching element S1 experiences a voltage load which results from the sum of the input voltage U_in and the product of the output voltage U_out and the transfer ratio of the transformer T. The first switching element S1 must therefore have a correspondingly high dielectric strength. In the second operating mode, the maximum voltage load on the switching elements is simply predefined by the maximum input voltage U_in. The second operating mode is therefore suitable for higher input voltages U_in, while the first operating mode can be preferred for the lower input voltages U_in.
[0031] For example, the circuit arrangement described can be used for a DC-DC voltage converter 1 and thus, for example, for traction batteries with a relatively low voltage level, for example voltages of up to 500 volts. For a DC-DC voltage conversion with higher input voltages, for example above 500 volts up to 800 or potentially 1000 volts, the same DC-DC voltage converter 1 can be operated in the second operating mode. Simple and cost-effective DC-DC voltage conversion for input DC voltage over a large voltage range is thus possible with a relatively low circuit complexity.
[0032] In summary, the present invention relates to a DC-DC voltage converter for transferring power from a high-voltage grid to a low-voltage grid. To this end, a simple circuit configuration is proposed which can be operated alternatively as an active-clamp flyback converter or an active-clamp buck converter.