Circuits for switched capacitor voltage converters
11515784 ยท 2022-11-29
Assignee
Inventors
Cpc classification
H02M3/07
ELECTRICITY
H02M3/072
ELECTRICITY
International classification
Abstract
A circuit comprising: a first switch having: a first side connected to a first node; and a second side connected to a second capacitor's first side (2C1S); a second switch having: a first side connected to a second capacitor's second side (2C2S); and a second side connected to a first capacitor's first side (1C1S); a third switch having: a first side connected to a first capacitor's second side (1C2S); and a second side connected to a second node (2VN); a fourth switch having: a first side connected to 2C2S; and a second side connected to a third node (3VN); a fifth switch having: a first side connected to 2C1S; and a second side connected to 1C1S; a sixth switch having: a first side connected to 1C2S; and a second side connected to 3VN; a seventh switch having: a first side connected to 1C1S; and a second side connected to 2VN.
Claims
1. A circuit for a switched capacitor voltage converter, comprising: a first capacitor having a first side and a second side; a second capacitor having a first side and a second side; a first switch having a first side connected to a first voltage node and having a second side connected to the first side of the second capacitor; a second switch having a first side connected to the second side of the second capacitor and having a second side connected to the first side of the first capacitor; a third switch having a first side connected to the second side of the first capacitor and having a second side connected to a second voltage node; a fourth switch having a first side connected to the second side of the second capacitor and having a second side connected to a third voltage node; a fifth switch having a first side connected to the first side of the second capacitor and having a second side connected to the first side of the first capacitor; a sixth switch having a first side connected to the second side of the first capacitor and having a second side connected to the third voltage node; and a seventh switch having a first side connected to the first side of the first capacitor and having a second side connected to the second voltage node, wherein, during a first configuration: the first switch is closed; the second switch is closed; the third switch is closed; the fourth switch is open; the fifth switch is open; the sixth switch is open; and the seventh switch is open, and wherein, during a second configuration: the first switch is open; the second switch is open; the third switch is closed; the fourth switch is closed; the fifth switch is closed; the sixth switch is open; and the seventh switch is open.
2. The circuit of claim 1, wherein the third voltage node is connected to ground.
3. The circuit of claim 1, wherein, during a third configuration: the third switch is open; the sixth switch is closed; and the seventh switch is closed.
4. The circuit of claim 3, wherein, during the third configuration: the first switch is open; the second switch is open; the third switch is open; the fourth switch is closed; the fifth switch is open; the sixth switch is closed; and the seventh switch is closed.
5. The circuit of claim 3, wherein, during the third configuration: the first switch is open; the second switch is open; the third switch is open; the fourth switch is open; the fifth switch is open; the sixth switch is closed; and the seventh switch is closed.
6. The circuit of claim 3, wherein, during the third configuration: the first switch is open; the second switch is closed; the third switch is open; the fourth switch is open; the fifth switch is open; the sixth switch is closed; and the seventh switch is closed.
7. The circuit of claim 3, wherein, during the third configuration: the first switch is open; the second switch is open; the third switch is open; the fourth switch is open; the fifth switch is closed; the sixth switch is closed; and the seventh switch is closed.
8. The circuit of claim 3, wherein, during the third configuration: the first switch is closed; the second switch is open; the third switch is open; the fourth switch is open; the fifth switch is open; the sixth switch is closed; and the seventh switch is closed.
9. The circuit of claim 3, wherein the circuit rotates through the first configuration, the second configuration, and the third configuration in the following order: the first configuration; the second configuration; and the third configuration.
10. The circuit of claim 3, wherein the circuit rotates through the first configuration, the second configuration, and the third configuration in the following order: the first configuration; the third configuration; and the second configuration.
11. The circuit of claim 1, wherein the first switch, the second switch, the third switch, the fourth switch, the fifth switch, the sixth switch, and the seventh switch are formed from MOSFETs.
12. The circuit of claim 1, wherein the first voltage node receives an input voltage and the second voltage node outputs an output voltage.
13. The circuit of claim 1, wherein the second voltage node receives an input voltage and the first voltage node outputs an output voltage.
14. The circuit of claim 1, wherein the circuit is used to form a multi-phase voltage converter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(5) Turning to
(6) Any suitable capacitors can be used for capacitors C.sub.1 and C.sub.2 in some embodiments. For example, in some embodiments, the capacitors can be formed on chip or can be discrete components.
(7) Capacitors C.sub.1 and C.sub.2 can have any suitable values in some embodiments. For example, in some embodiments, the capacitors can have values between 1 nF and 1 mF.
(8) Any suitable switches can be used for switches S.sub.1, S.sub.2, S.sub.3, S.sub.4, S.sub.5, S.sub.6, and S.sub.7. For example, in some embodiments, the switches can be formed from MOSFETs that are driven by any suitable drivers under the control of any suitable circuit.
(9) During operation, the switches of circuit 100 can be opened and closed to sequentially form circuit configurations 200, 300, and 400 shown in
(10) During operation, circuit 100 can rotate through the three configurations at any suitable frequency. For example, in some embodiments, the circuit can rotate through the three configurations at frequencies between 1 kHz (e.g., for 1 mF capacitor sizes) and 1 GHz (e.g., for 1 nF capacitor sizes).
(11) The following table shows the settings of switches S.sub.1, S.sub.2, S.sub.3, S.sub.4, S.sub.5, S.sub.6, and S.sub.7 when in configurations 200, 300, and 400:
(12) TABLE-US-00001 Switch Configuration 200 Configuration 300 Configuration 400 S.sub.1 Closed Open Open* S.sub.2 Closed Open Open* S.sub.3 Closed Closed Open S.sub.4 Open Closed Closed* S.sub.5 Open Closed Open* S.sub.6 Open Open Closed S.sub.7 Open Open Closed *Other configurations of these switches are possible in configuration 400 as long as: at least one side of capacitor C2 is disconnected from the remainder of the circuit, S.sub.1 and S.sub.5 are not closed at the same time, and S.sub.2 and S.sub.4 are not closed at the same time.
(13) In some embodiments, circuit 100 can be used to form a multi-phase voltage converter. In such an implementation, multiple copies of circuit 100 can be provided and their input and output nodes connected together (i.e., the V.sub.1 connections of all of the circuits 100 are connected together and the V.sub.2 connections all of the circuits 100 are connected together). In some embodiments, the switches of different circuits can be switched out of phase so that different circuits 100 switch from one configuration to another at different times. In some embodiments, two different circuits 100 of such a multi-phase voltage converter can be configured to be in different configurations at all points in time.
(14) Although the invention has been described and illustrated in the foregoing illustrative embodiments, it is understood that the present disclosure has been made only by way of example, and that numerous changes in the details of implementation of the invention can be made without departing from the spirit and scope of the invention, which is limited only by the claims that follow. Features of the disclosed embodiments can be combined and rearranged in various ways.