Method and device for matching the voltage of the smoothing capacitor of a DC/DC converter before a high-voltage battery is connected
11496042 · 2022-11-08
Assignee
Inventors
Cpc classification
H02M3/33573
ELECTRICITY
H02M1/0064
ELECTRICITY
H02M1/32
ELECTRICITY
H02M1/0058
ELECTRICITY
H02M1/322
ELECTRICITY
H02M3/33592
ELECTRICITY
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
H02H9/001
ELECTRICITY
Y02B70/10
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
International classification
H02H11/00
ELECTRICITY
H02H9/00
ELECTRICITY
H02M1/32
ELECTRICITY
Abstract
The invention relates to a method and to a device for operating a bidirectional voltage transformer connectable to a primary battery and having a primary-side smoothing capacitor, an inductive transformer, and a secondary-side clamping capacitor, wherein, before the primary battery is connected, a voltage at the primary-side smoothing capacitor is matched to a voltage of the primary battery by a cyclical transfer of charge from the secondary-side clamping capacitor. The voltage of the primary-side smoothing capacitor is matchable in this way to the voltage of the primary battery before the primary battery is connected, and current spikes thus avoided during connection of the primary battery.
Claims
1. A method of operating a bidirectional voltage transformer connectable to a primary battery, the bidirectional voltage transformer comprising a primary-side smoothing capacitor, an inductive transformer, and a secondary-side clamping capacitor, wherein the inductive transformer has a primary winding and a split secondary winding with a leakage inductance, a first terminal of the primary winding is connectable to a negative primary voltage terminal via a first switch and to a positive primary voltage terminal via a second switch, a second terminal of the primary winding is connectable to the negative primary voltage terminal via a third switch and to the positive primary voltage terminal via a fourth switch, the two end terminals of the secondary winding are connectable to a negative secondary voltage terminal via a fifth and a sixth switch, the two end terminals of the secondary winding are also connectable to the clamping capacitor via a seventh and an eighth switch, a center terminal of the split secondary winding is connected to a positive secondary voltage terminal via a smoothing inductor on a secondary side, and the secondary voltage terminals are connected to a secondary battery, wherein the method comprises: before the primary battery is connected, matching a voltage at the primary-side smoothing capacitor to a voltage of the primary battery by a cyclical transfer of charge from the clamping capacitor; and carrying out in cycles following operations: during a first period of time, making the seventh and sixth switches conductive, such that a discharge current of the clamping capacitor flowing through the secondary coil generates a charging current of the smoothing capacitor via the second and third switches on a primary side, wherein a duration of the first period corresponds to half an oscillation period (π) of a series resonance of the clamping capacitor and the leakage inductance; during a second period, making the seventh and eighth switches conductive, such that the clamping capacitor is charged by the positive secondary voltage terminal via the smoothing inductor of the secondary battery; during a third period, making the first and fourth switches and the fifth and eighth switches conductive, such that a discharge current of the clamping capacitor flowing through the secondary coil generates a charging current of the smoothing capacitor on the primary side; and during a fourth time period, making the switch positions correspond to those of the second period.
2. The method according to claim 1, wherein the method comprises determining a length of charge cycles as half a period of a series resonance of the clamping capacitor with a leakage inductance.
3. The method according to claim 1, wherein the method comprises ending a charging process of the smoothing capacitor when a voltage difference between the smoothing capacitor and the primary battery falls below a threshold value.
4. The method according to claim 1, wherein a duration of the third time period corresponds to a duration of the first time period.
5. A device comprising: a bidirectional voltage transformer connectable to a primary battery, the bidirectional voltage transformer comprising a primary-side smoothing capacitor, an inductive transformer, and a secondary-side clamping capacitor, wherein the inductive transformer has a primary winding and a split secondary winding with a leakage inductance, a first terminal of the primary winding is connectable to a negative primary voltage terminal via a first switch and to a positive primary voltage terminal via a second switch, a second terminal of the primary winding is connectable to the negative primary voltage terminal via a third switch and to the positive primary voltage terminal via a fourth switch, the two end terminals of the secondary winding are connectable to a negative secondary voltage terminal via a fifth and a sixth switch, the two end terminals of the secondary winding are also connectable to the clamping capacitor via a seventh and an eighth switch, a center terminal of the split secondary winding is connected to a positive secondary voltage terminal via a smoothing inductor on a secondary side, and the secondary voltage terminals are connected to a secondary battery; a relay switch configured to connect the primary battery; and a control unit configured to control the relay switch and a plurality of switches in the bidirectional voltage transformer such that before the primary battery is connected, a voltage at the primary-side smoothing capacitor is matched to a voltage of the primary battery by a cyclical transfer of charge from the clamping capacitor, wherein the control unit is configured to carry out in cycles following operations: during a first period of time, making the seventh and sixth switches conductive, such that a discharge current of the clamping capacitor flowing through the secondary coil generates a charging current of the smoothing capacitor via the second and third switches on a primary side, wherein a duration of the first period corresponds to half an oscillation period (π) of a series resonance of the clamping capacitor and the leakage inductance; during a second period, making the seventh and eighth switches conductive, such that the clamping capacitor is charged by the positive secondary voltage terminal via the smoothing inductor of the secondary battery; during a third period, making the first and fourth switches and the fifth and eighth switches conductive, such that a discharge current of the clamping capacitor flowing through the secondary coil generates a charging current of the smoothing capacitor on the primary side; and during a fourth time period, making the switch positions correspond to those of the second period.
6. The device according to claim 5, wherein the plurality of switches is designed as a plurality of MOSFET switches with body diodes.
7. The device according to claim 6, wherein the control unit is configured to block a combination of two MOSFET switches selected from the plurality of MOSFET switches, causing the MOSFET switches that are blocked to act as body diodes.
8. The device according to claim 5, wherein the device comprises a matching inductor connected in series with a primary winding of the bidirectional voltage transformer.
9. The device according to claim 5, wherein the control unit is configured to determine a length of charge cycles as half a period of a series resonance of the clamping capacitor with a leakage inductance.
10. The device according to claim 5, wherein the control unit is configured to end a charging process of the smoothing capacitor when a voltage difference between the smoothing capacitor and the primary battery falls below a threshold value.
11. The device according to claim 5, wherein a duration of the third time period corresponds to a duration of the first time period.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further advantages, features, and details result from the following description, in which—if necessary with reference to the drawings—at least one embodiment is described in detail. Identical, similar, and/or functionally identical parts are provided with the same reference signs.
(2) In the drawings:
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8)
(9) Initially, the relay switch 14 is blocked in the non-operative state, such that no voltage is applied to the high-voltage bus 15, and thus no voltage is applied to the smoothing capacitor 16. A suitable voltage detector can be installed in the relay switch 14 to detect the voltage difference between the primary battery 12 and the high-voltage bus 15.
(10) Reference is now made to
(11) Otherwise, the control device 22 operates the DC/DC converter 18 within the (precharging) method, according to the invention, of charging the smoothing capacitor 16 (steps 56-62) until the control device 22 determines, in step 52, that the charging of the smoothing capacitor 16 by means of the secondary battery 20 has resulted in a drop below the voltage threshold value at the relay switch 14—that is, the smoothing capacitor 16 is almost charged to the voltage of the primary battery 12.
(12) A third operating mode of the DC/DC converter 18 is also possible in which the high-voltage bus 15 can be provided with voltage by means of the low-voltage secondary battery 20 (so-called boost mode).
(13) The circuit of the DC/DC converter 18 is shown in
(14) On the secondary side of the transformer T.sub.r1, the external terminals of the secondary winding are connected via a fifth MOSFET switch QS1 and a sixth MOSFET switch QS3 to a secondary-side negative secondary voltage terminal (−). The external terminals of the secondary winding are also connected to a terminal of a clamping capacitor C.sub.clamp via a seventh MOSFET switch QS2 and an eighth MOSFET switch QS4. The other terminal of the clamping capacitor C.sub.clamp is also connected to the negative secondary voltage terminal (−). The center tap of the secondary winding of the transformer T.sub.r1 is connected via a smoothing inductor L2 to a secondary-side smoothing capacitor C2.sub.DC. The secondary voltage terminals (+) and (−) can be connected to the secondary battery 20 shown in
(15) The waveform diagram of
(16) The four time intervals according to steps 56-62 of
(17)
(18) Starting from a state in which the smoothing capacitor C1 Dc is discharged and the clamping capacitor C.sub.clamp is charged, its charge flows via the switch QS2, the entire secondary winding of the transformer T.sub.r1 and the switch QS3. The current induced in the primary winding charges the smoothing capacitor C1.sub.DC via switches QP2 and QP3 and/or their body diodes.
(19) As can be seen in the waveform diagram for the switch QS3 (diagram 6 from above in
(20) The duration of the time interval T0-T1 is determined based on the resonance frequency, which in turn depends on the capacitance of the clamping capacitor C.sub.clamp and the leakage inductance L.sub.leak; or, conversely, the required capacitance of the clamping capacitor C.sub.clamp is determined based on a desired switching frequency, for example 60 kHz.
(21) For example, to charge a smoothing capacitor C1.sub.DC with a capacitance of 2 mF to an assumed voltage of the primary battery 12 of 475V, about 225 kJ of energy is required. Assuming an efficiency of 90%, the capacitance of the clamping capacitor C.sub.clamp is found as:
(22)
where:
Chv=2 mF capacity of the smoothing capacitor C1.sub.DC
Vcaphv=475V primary battery voltage
Fswpre=60 kHz switching frequency
Tcharge=0.2 s time to charge the smoothing capacitor C1.sub.DC to Vcaphv
Hpre=90% efficiency
Vclamp=35V initial voltage at the clamping capacitor C.sub.clamp
(23) A typical capacitance of the clamp capacitor C.sub.clamp is 20 μF, to compensate for tolerances and voltage drops of resistive components. If a higher switching frequency is selected, the capacitance C.sub.clamp can be selected as a lower value.
(24) The resonance frequency is thus determined according to:
(25)
(26) Where “L_I_sec” is the leakage inductance L.sub.leak of the transformer for the two sub-portions of the secondary winding in series. The leakage inductance L.sub.leak must be selected in such a manner that the peak current is less than the rated current of the secondary-side switches QS1-QS4. An optimal value for L_I_sec/L.sub.leak is approximately 90 nH. This results in a resonance frequency of approximately 117 kHz.
(27) According to an advantageous refinement, if the transformer T.sub.r cannot be designed with a suitably high leakage inductance, an additional matching inductor can be connected in series with the primary winding of the transformer T.sub.r.
(28)
(29) At time T1, switch QS3 is opened, such that now the clamping capacitor C.sub.clamp is charged with the secondary voltage V2.sub.DC via the low-voltage secondary battery 20 (
(30)
(31) In this time interval T2-T3, the secondary-side switch QS2 is open and QS1 is conductive, and the switch QS4 remains conductive (such that, analogously to the first time interval T0-T1, the clamping capacitor C.sub.clamp is discharged again—only the current flows through the secondary winding of the transformer T.sub.r1 in the opposite direction. In this way, analogously to the first time interval T0-T1, a current is induced on the primary side, which flows in the opposite direction as in the first time interval T0-T1. The smoothing capacitor C1.sub.DC is charged again by means of this current—specifically at least via the body diodes of the two primary-side switches QP1 and QP4, which can also be conductive to reduce losses. At time T3, the voltage on the clamping capacitor C.sub.clamp has dropped again to almost zero.
(32)
(33) Another charging cycle then takes place with steps 58-62.
(34) Although the invention has been illustrated and explained in greater detail by means of preferred embodiments, the invention is not limited by the disclosed examples and other variations may be derived therefrom by a person skilled in the art without departing from the scope of protection of the invention. It is therefore clear that there are a plurality of possible variations. It is also clear that embodiments cited by way of example actually only constitute examples that are not to be interpreted in any way as a limitation of the scope, of the potential applications, or of the configuration of the invention. Instead, the preceding description and the description of the figures allow the person skilled in the art to specifically implement the embodiments, wherein the person skilled in the art has knowledge of the disclosed inventive concept and is able to make numerous changes, for example, with respect to the function or the arrangement of individual elements cited in an embodiment, without departing from the scope of protection, which is defined by the claims and their legal equivalents, such as a further explanation in the description.
LIST OF REFERENCE SIGNS
(35) 10 Battery/converter system 12 Primary battery 14 Relay switch 15 High-voltage bus 16 Smoothing capacitor 18 DC/DC converter 20 Secondary battery 22 Control device 50-62 steps C.sub.clamp Clamp capacitor C1.sub.DC Smoothing capacitor L.sub.leak. Leakage inductance of the transformer L2 Smoothing inductance QP1 . . . 4 MOSFET switch QS1 . . . 4 MOSFET switch T.sub.r1 Transformer T0-T1 Time interval T1-T2 Time interval T2-T3 Time interval T3-T4 Time interval