Internal energy supply of energy storage modules for an energy storage device, and energy storage device with such an internal energy supply
09843075 ยท 2017-12-12
Assignee
Inventors
- Hans Partes (Asperg, DE)
- Matthias Heil (Moeglingen, DE)
- Rostislav Rogov (Stuttgart, DE)
- Bernhard Seubert (Korntai-Muenchingen, DE)
Cpc classification
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
H01M10/4257
ELECTRICITY
Y02E60/10
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
B60L58/21
PERFORMING OPERATIONS; TRANSPORTING
B60L58/18
PERFORMING OPERATIONS; TRANSPORTING
H02M7/483
ELECTRICITY
H02J7/0024
ELECTRICITY
Y02T10/92
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
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
H01M10/42
ELECTRICITY
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
H02M7/483
ELECTRICITY
H02J7/00
ELECTRICITY
Abstract
The invention relates to an energy storage module for an energy storage device, comprising an energy storage cell module which has a storage cell series circuit of at least two energy storage cells, comprising a coupling device, which comprises a plurality of coupling elements and is designed to selectively connect the energy storage cell module into an energy supply line of the energy storage device or to bypass the energy storage cell module in an energy supply line, and comprising a driver module which is designed to generate drive signals for the plurality of coupling elements. The driver module has a first energy supply connection and a second energy supply connection. The first energy supply connection is connected to a first end connection of the energy storage cell module via a first supply line and to a first node point between two energy storage cells of the storage cell series circuit via a second supply line. The second energy supply connection is connected to a second end connection of the energy storage cell module via a third supply line and to a second node point between two energy storage cells of the storage cell series circuit via a fourth supply line. The second node point lies between the first node point and the first end connection.
Claims
1. An energy storage module for an energy storage device, the energy storage module comprising: an energy storage cell module, the energy storage cell module having a storage cell series circuit of at least two energy storage cells; a coupling device, the coupling device having a plurality of coupling elements and configured to selectively connect the energy storage cell module into an energy supply line of the energy storage device or to bypass said energy storage cell module in an energy supply line; and a driver module configured to generate drive signals for the plurality of coupling elements, wherein the driver module has a first energy supply connection and a second energy supply connection, the first energy supply connection being connected to a first end connection of the energy storage cell module via a first supply line and to a first node point between two energy storage cells of the storage cell series circuit via a second supply line, the second energy supply connection being connected to a second end connection of the energy supply cell module via a third supply line and to a second node point between two energy storage cells of the storage cell series circuit via a fourth supply line, and wherein the second node point lies between the first node point and the first end connection.
2. The energy storage module according to claim 1, wherein the coupling devices each have a plurality of coupling elements in a full bridge circuit.
3. The energy storage module according to claim 1, wherein the coupling devices each have a plurality of coupling elements in a half-bridge circuit.
4. The energy storage module according to claim 1, wherein the energy storage cells each have lithium-ion accumulators.
5. The energy storage module according to claim 1, further comprising: a second diode, the second diode disposed in the first supply line and the forward direction of which extends from the first end connection to the first energy supply connection.
6. The energy storage module according to claim 1, further comprising: a second diode, the second diode disposed in the second supply line and the forward direction of which extends from the first node point to the first energy supply connection.
7. The energy storage module according to claim 1, further comprising: a third diode, the third diode disposed in the fourth supply line and the forward direction of which extends from the second energy supply connection to the second node point.
8. The energy storage module according to claim 1, wherein the driver module has a signal control circuit coupled between the energy supply connections and a driver circuit connected in parallel to the signal control circuit, the signal control circuit configured to actuate the driver circuit for the generation of driver signals for the plurality of coupling elements.
9. The energy storage device, comprising: at least one energy supply line coupled between two output connections of the energy storage device, the energy supply line comprising a plurality of energy storage modules according to claim 1 that are connected in series.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further features and advantages of embodiments of the invention ensue from the following description with reference to the attached drawings.
(2) In the drawings:
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7)
(8) The energy supply lines 10a, 10b can in each case be coupled to the output connection 4a of the energy supply device 1 via storage inductances 2a, 2b. The storage inductances 2a, 2b can, for example, be concentrated or distributed components. Alternatively, parasitic inductances of the energy supply lines 10a, 10b can also be used as storage inductances 2a, 2b. The energy supply lines 10a, 10b can be switchably coupled to the output connection 4 via a switching/coupling device 2c.
(9) In the case of a single energy supply line 10a, the storage inductances 2a or 2b and the switching/coupling device 2c can also be eliminated; thus enabling the energy supply line to be directly coupled between the output connections 4a, 4b of the energy supply device 1.
(10) Each of the energy supply lines 10a, 10b has at least two energy storage modules 3 connected in series. By way of example, the number of the energy storage modules 3 per energy storage line is two in
(11) Exemplary designs of the energy storage modules 3 are shown in greater detail in
(12) The energy storage cell module 5 can, for example, comprise batteries 5a, 5i, 5j, 5k, 5z that are connected in series, for example lithium-ion batteries or accumulators. In this regard, the number of the energy storage cells 5a to 5k in the energy storage module 3 depicted in
(13) The energy storage cell modules 5 are connected to input connections of an associated coupling device 7. The coupling device 7 is designed by way of example in
(14) The coupling elements 7a, 7b, 7c, 7d in
(15) With reference to
(16) The total output voltage of an energy supply line 10a, 10b can thereby be adjusted in each case in stages, wherein the number of the stages is scaled to the number of the energy storage modules 3. In relation to a number of n first and second energy storage modules 3, the total output voltage of the energy supply line 10a, 10b can be set in 2n+1 stages.
(17) The coupling elements 7a, 7b, 7c, 7d of an energy storage module 3 can also be actuated in a clocked manner, for example by a method of pulse width modulation (PWM), so that the affected energy storage module 3 delivers a module voltage averaged over time, which can have a value between zero and the maximum possible module voltage determined by the energy storage cells 5a to 5z. The actuation of the coupling elements 7a, 7b, 7c, 7d can, for example, be performed by a control device, such as the control device 6 in
(18) Besides providing a module output voltage, the energy storage cell module 5 also is used to supply a driver module 11 with energy from the energy storage cells 5a, 5i, 5j, 5k, 5z. To this end, the driver module 11 comprising energy supply connections 11a, 11b is connected in each case to output connections 9a, 9b of the energy storage cell module 5. During normal operation of the energy storage module 5, the module output voltage is applied between the output connection 9a and 9b of the energy storage cell module 5, said module output voltage being emitted to the driver module 11 via a first supply line 16a and a third supply line 16c.
(19) The driver module 11 can, for example, have a pre-stabilizer 12 and a stabilizer 13, which are used to stabilize the supply voltage for the driver module 11. The stabilizer 13 is thereby connected to a parallel circuit consisting of a driver circuit 14 and a signal control circuit 15. The signal control circuit 15 is thereby designed to actuate the driver circuit for generating actuation signals for the coupling elements 7a to 7d of the coupling device 7. The signal control circuit 15 can, for example, comprise a microprocessor, an application specific integrated circuit (ASIC) or a field programmable switch matrix (FPGA) or another logic circuit. The pre-stabilizer 12 and the stabilizer 13 can, for example, comprise filter circuits or transformer circuits which are suited to ensuring a correspondingly adapted supply voltage that is also resistant to fluctuation for the driver circuit 14 and the signal control circuit 15.
(20) In addition to the first supply line 16a, the first energy supply connection of the driver module 11 is connected to a first node point between two energy storage cells 5j and 5k of the series circuit consisting of energy storage cells 5a to 5z via a second supply line 16b. In addition to the third supply line, the second energy supply connection 11b is similarly connected to a second node point between two energy storage cells 5i and 5j of the series circuit consisting of energy storage cells 5a to 5z via a fourth supply line 16d. The second node point lies between the first node point and the first end connection 9a. In other words, the second and fourth supply line 16b or, respectively, 16d serve as redundant supply lines to the first and third supply lines 16a or, respectively, 16c if a malfunction should occur in the series circuit consisting of energy storage cells 5a to 5z, for example if one of the energy storage cells 5a to 5z should fail.
(21) By means of the node points, the series circuit consisting of energy storage cells 5a to 5z is divided in each case into two sections, a lower and an upper section. As a result of the first node point lying between the first end connection 9a and the second node point, the lower and upper sections formed by the (virtual) division have in each case overlapping regions to which respectively the same energy storage cells belong. In the example of
(22) Disjoint groups of energy storage cells lie respectively in the subsections of the upper and lower sections which in each case do not overlap. For example, the upper section has the energy storage cells 5a to 5i, which are different from the energy storage cells 5k to 5z that form the lower section. The number of the energy storage cells in the disjoint groups can likewise lie between one and an arbitrary number of energy storage cells which are adapted to suit the respective requirements.
(23) The supply lines 16a, 16b and 16d each have a diode 17a, 17b or 17d. These diodes ensure that the correct polarity is applied in each case to the energy supply connections 11a, 11b of the driver module 11. To this end, a first diode 17a is disposed in the first supply line 16a; thus enabling the forward direction thereof to extend from the first end connection 9a to the first energy supply connection 11a. A second diode 17b is likewise disposed in the second supply line 16b so that the forward direction thereof extends from the first node point to the first energy supply connection 11a. Finally, the fourth supply line 16d has a third diode 17d, the forward direction of which extends from the second energy supply connection 11b to the second node point.
(24) During normal operation, i.e. without a malfunction or breakdown in the storage cell series circuit, the supply current for the driver module 11 always flows across the first diode 17a. If, however, an interruption of the current path occurs in the upper section of the storage cell series circuit, which upper section is formed by the energy storage cells 5a to 5i, the driver module 11 is supplied with current via the second diode 17b and the second supply line 16b. Conversely, the driver module 11 is supplied with current via a supply current through the third diode 17d and the fourth supply line 16d in the event of an interruption of the current path in the lower section of the storage cell series circuit, said lower section being formed by the energy storage cells 5k to 5z. In the event of an interruption of the current path between the two node points, the driver module 11 is supplied with current by that section of energy storage cells, which has the larger nominal voltage.
(25) In each case, the driver module 11 can always be supplied with current from at least one portion of the energy storage cells 5a to 5z, no matter where in the storage cell series circuit a breakdown occurs. The generation of the supply voltage can thereby be started in a conventional manner via a wake-up mechanism.
(26)
(27) In the embodiment variants shown, the active switching elements can be embodied as power semiconductor switches, for example in the form of IGBTs (insulated-gate bipolar transistors), JFETs (junction field-effect transistors) or as MOSFETs (metal oxide semiconductor field-effect transistors). The driver circuit 14 can thereby constitute a gate driver circuit for generating gate signals for the power semiconductor switches. As a result of the driver circuit 14 always being supplied with energy from at least one portion of the energy storage cells 5a to 5z, even in the event of a malfunction in the energy storage cell module 5, the switches of a respective half bridge which adjust a bypass state can be opened in the event of a malfunction in order to guide the current past the energy storage cell module 5 and prevent an overloading of the energy storage module 5 or, respectively, of the coupling elements 7a, 7b, 7c, 7d of an energy storage module 3. This can, for example, be performed during a charging operation of the energy storage module 3 in order to eliminate the danger of a fire in the energy storage device 1 in the event that charging current is being inputted into a defective energy storage cell module 5 in an uncontrolled manner.
(28)
(29) The energy supply lines 10a, 10b, 10c are respectively connected at the ends thereof to output connections, which in turn can be connected, for example, to a reference potential. The energy storage modules 3 of the energy storage device 1 in
(30) The energy storage device 1 has an integrated inverter functionality; thus enabling the output connections 4d, 4e and 4f to be directly connected to phase lines 8a, 8b, 8c of the three-phase electrical machine 8. By way of example, the energy storage device in