Balancing charge pump circuits

US9998000B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9998000-B2
Application numberUS-201715465339-A
CountryUS
Kind codeB2
Filing dateMar 21, 2017
Priority dateJul 15, 2016
Publication dateJun 12, 2018
Grant dateJun 12, 2018

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

Methods and systems of controlling a switched capacitor converter are provided. Upon determining that a voltage across a flying capacitor is above a first threshold, a first current is drawn from a first terminal of the flying capacitor by a first current source, and a second current is provided to a second terminal of the flying capacitor by a second current source. Upon determining that the voltage across the flying capacitor is below a second threshold, the first current is provided to the first terminal of the flying capacitor by the first current source, and the second current is drawn from the second terminal of the flying capacitor by the second current source. Upon determining that the voltage across the flying capacitor is above the second threshold and below the first threshold from the reference voltage, the first and second current sources are turned OFF.

First claim

Opening claim text (preview).

What is claimed is: 1. A circuit for controlling a switched capacitor converter, comprising: a first comparator circuit coupled to a first current source and a second current source; and a voltage divider configured to sample an input voltage at an input node and provide a reference voltage to the first comparator circuit, wherein the first comparator circuit is configured to: control the first and second current sources such that the first current source draws a first current from a first terminal of a flying capacitor of the switched capacitor converter, and the second current source provides a second current to a second terminal of the flying capacitor upon determining that a voltage across the flying capacitor is above a first threshold from the reference voltage; control the first and second current sources such that the first current source provides the first current to the first terminal of the flying capacitor, and the second current source draws the second current from the second terminal of the flying capacitor upon determining that the voltage across the flying capacitor is below a second threshold from the reference voltage; and turn OFF the first and second current sources upon determining that the voltage across the flying capacitor is above the second threshold and below the first threshold from the reference voltage. 2. The circuit of claim 1 , further comprising a second comparator circuit coupled to a third current source, wherein: the voltage divider is further configured to provide the reference voltage to the second comparator circuit; and the second comparator is configured to control the third current source such that: the third current source draws a third current from a first terminal of an output capacitor of the switched capacitor converter upon determining that a voltage across the output capacitor is above a third threshold from the reference voltage; the third current source provides the third current to the first terminal of the output capacitor upon determining that the voltage across the output capacitor is below a fourth threshold from the reference voltage; and the third current source is turned OFF upon determining that the voltage across the output capacitor is below the third threshold and above the fourth threshold from the reference voltage. 3. The circuit of claim 1 , wherein the first comparator circuit comprises: a first comparator comprising: a positive input coupled to the reference voltage; and a negative input coupled to a voltage across the flying capacitor; and a second comparator comprising: a negative input coupled to the reference voltage; and a positive input coupled to the voltage across the flying capacitor. 4. The circuit of claim 2 , further comprising: a first hysteresis source coupled between the positive input of the first comparator and the reference voltage; and a second hysteresis source coupled between the negative input of the first comparator and the reference voltage. 5. The circuit of claim 4 , wherein the first hysteresis source and the second hysteresis source together provide a tolerance range between the voltage across the flying capacitor and the reference voltage. 6. The circuit of claim 4 , wherein the first hysteresis source and the second hysteresis source are equal in magnitude but opposite in polarity. 7. The circuit of claim 1 , wherein the second comparator circuit comprises: a first comparator comprising: a positive input coupled to the reference voltage; and a negative input coupled to a voltage across the output capacitor; and a second comparator comprising: a negative input coupled to the reference voltage; and a positive input coupled to the voltage across the output capacitor. 8. The circuit of claim 7 , further comprising a third capacitor coupled between the input node and the output capacitor. 9. The circuit of claim 7 , further comprising: a third hysteresis source coupled between the positive input of the first comparator and the reference voltage; and a fourth hysteresis source coupled between the negative input of the first comparator and the reference voltage. 10. The circuit of claim 1 , wherein the voltage divider comprises: a first resistance element having a first node coupled to an input voltage of the switched capacitor converter; and a second resistance element having a first node coupled to a second node of the first resistance element, and a second node coupled to ground, wherein the second node of the first resistance element is operative to provide the reference voltage. 11. A circuit for controlling a switched capacitor converter, comprising: a first comparator circuit coupled to a first current source; and a voltage divider configured to sample an input voltage and provide a reference voltage to the first comparator circuit, wherein the first comparator circuit is configured to control the first current source such that: the first current source draws a first current from a first terminal of an output capacitor of the switched capacitor converter upon determining that a voltage across the output capacitor is above a first threshold from the reference voltage; the first current source provides the first current to the first terminal of the output capacitor upon determining that the voltage across the output capacitor is below a second threshold from the reference voltage; and the first current source is turned OFF upon determining that the voltage across the output capacitor is below the first threshold and above the second threshold from the reference voltage. 12. The circuit of claim 11 , further comprising a second comparator circuit coupled to a second current source and a third current source, wherein: the voltage divider is further configured to provide the reference voltage to the second comparator circuit; and the second comparator is configured to: control the second and third current sources such that the second current source draws a second current from a first terminal of a flying capacitor of the switched capacitor converter, and the third current source provides a third current to a second terminal of the flying capacitor upon determining that a voltage across the flying capacitor is above a third threshold from the reference voltage; control the second and third current sources such that the second current source provides the second current to the first terminal of the flying capacitor, and the third current source draws the third current from the second terminal of the flying capacitor upon determining that the voltage across the flying capacitor is below a fourth threshold from the reference voltage; and turn OFF the second and third current sources upon determining that the voltage across the flying capacitor is above the fourth threshold and below the third threshold from the reference voltage. 13. The circuit of claim 11 , wherein the first comparator circuit comprises: a first comparator having: a positive input coupled to the reference voltage; and a negative input coupled to a voltage across the flying capacitor; and a second comparator having: a negative input coupled to the reference voltage; and a positive input coupled to a voltage across the flying capacitor. 14. The circuit of claim 11 , further comprising: a first hysteresis source coupled between the positive input of the first comparator and the reference voltage; and a second hysteresis source coupled between the negative input of the first comparator and the reference voltage. 15. The circuit of claim 14 , wherein the first comparator circuit is furth

Assignees

Inventors

Classifications

  • Circuits specially adapted for the generation of control voltages for semiconductor devices incorporated in static converters · CPC title

  • H02M3/07Primary

    using capacitors charged and discharged alternately by semiconductor devices with control electrode {, e.g. charge pumps} · CPC title

  • Charge pumps of the Schenkel-type · CPC title

  • Means for starting or stopping converters · CPC title

  • Converters with outputs that each can have more than two voltages levels · CPC title

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What does patent US9998000B2 cover?
Methods and systems of controlling a switched capacitor converter are provided. Upon determining that a voltage across a flying capacitor is above a first threshold, a first current is drawn from a first terminal of the flying capacitor by a first current source, and a second current is provided to a second terminal of the flying capacitor by a second current source. Upon determining that the v…
Who is the assignee on this patent?
Linear Tech Corp
What technology area does this patent fall under?
Primary CPC classification H02M3/07. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jun 12 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 4 related publications on this page (citations in our corpus or others sharing the same primary CPC).