High efficiency switching charger with reduced input voltage ripple

US10003261B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10003261-B2
Application numberUS-201514966003-A
CountryUS
Kind codeB2
Filing dateDec 11, 2015
Priority dateMay 21, 2015
Publication dateJun 19, 2018
Grant dateJun 19, 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.

A voltage or current regulated power converter for charging batteries, is described. The power converter comprises an inductor (L), a capacitor cell (C 1 , C 2 ), switches (S 1 , S 2 , S 3 , S 4 , S 5 , S 6 , S 7 , S 8 ) and a controller. The controller controls the switches such that a commutation cycle of the power converter comprises a first phase, during which the capacitor cell and the inductor are arranged in series and during which a voltage across the serial arrangement of the capacitor cell and the inductor corresponds to V in −V out ; a second phase, during which the capacitor cell and the inductor are arranged in series and during which the voltage across the serial arrangement of the capacitor cell and the inductor corresponds to −V out ; and a third phase, during which the capacitor cell is floating and during which the voltage across the inductor corresponds to V in −V out or to −V out .

First claim

Opening claim text (preview).

What is claimed is: 1. A voltage or current regulated power converter for charging a battery, wherein the power converter is configured to derive electrical power at an output voltage V out at an output of the power converter for charging the battery from electrical power at an input voltage V in at an input of the power converter, wherein the power converter comprises an inductor (L), a capacitor cell, a plurality of switches (S 1 , S 2 , S 3 , S 4 , S 5 , S 6 , S 7 , S 8 ) and a controller; wherein the capacitor cell comprises a single capacitor or a capacitive voltage divider; wherein the controller is configured to control the plurality of switches such that a commutation cycle of the power converter comprises a first phase, during which the capacitor cell and the inductor are arranged in series between the input and the output of the power converter; a second phase, during which the capacitor cell and the inductor are arranged in series parallel to the output of the power converter; and a third phase, during which the capacitor cell is decoupled from the output of the power converter; during which a charge of the capacitor remains unaffected and during which the inductor is arranged between the input and the output of the power converter or parallel to the output of the power converter. 2. The power converter of claim 1 , wherein the controller is configured to control the plurality of switches such that within a commutation cycle subsequent to the first phase and/or subsequent to the second phase, the power converter is operated in the third phase. 3. The power converter of claim 2 , wherein the controller is configured to determine an output current I out at the end of the first phase and/or at the end of the second phase; control the plurality of switches during the third phase such that the inductor is arranged between the input and the output of the power converter, if the output current I out at the end of the first phase and/or at the end of the second phase is smaller than a reference current I ref ; and control the plurality of switches during the third phase such that the inductor is arranged parallel to the output of the power converter, if the output current I out at the end of the first phase and/or at the end of the second phase is greater than the reference current I ref . 4. The power converter of claim 3 , wherein the controller is configured to set a duration of the third phase such that at the end of the third phase, the output current I out is equal to or greater than the reference current I ref , if the output current I out at the end of the first phase and/or at the end of the second phase is smaller than a reference current I ref ; and the output current I out is equal to or smaller than the reference current I ref , if the output current I out at the end of the first phase and/or at the end of the second phase is greater than the reference current I ref . 5. The power converter of claim 1 , wherein, during the first phase, the capacitor cell is charged; during the second phase, the capacitor cell is discharged. 6. The power converter of claim 1 , wherein, the power converter comprises a first sub-converter comprising a first plurality of switches (S 1 , S 2 , S 3 , S 4 ) and a first capacitor cell; the power converter comprises a second sub-converter comprising a second plurality of switches (S 5 , S 6 , S 7 , S 8 ) and a second capacitor cell; the controller is configured to control the first and second pluralities of switches such that the first and second sub-converters are operated in an interleaved manner, such that during the first phase, the second capacitor cell is discharged; during the second phase, the first capacitor cell is discharged; and during the third phase, the first capacitor cell and the second capacitor cell are decoupled from the output voltage. 7. The power converter of claim 6 , wherein the controller is configured to control the first and second pluralities of switches such that during the first phase and during the second phase, the first capacitor cell is arranged in series with the inductor and the second capacitor cell is arranged in series with the inductor. 8. The power converter of claim 6 , wherein the power converter comprises only a single inductor for the first sub-converter and for the second sub-converter. 9. The power converter of claim 6 , wherein the first plurality of switches comprises a first switch (S 1 ) configured to couple a first side of the first capacitor cell to the input voltage, a second switch (S 2 ) configured to couple the first side of the first capacitor cell to the inductor, a third switch (S 3 ) configured to couple a second side of the first capacitor cell to the inductor, and a fourth switch (S 4 ) configured to couple the second side of the first capacitor cell to ground; the second plurality of switches comprises an 8 th switch (S 8 ) configured to couple a first side of the second capacitor cell to the input voltage, a 7 th switch (S 7 ) configured to couple the first side of the second capacitor cell to the inductor, a 6 th switch (S 6 ) configured to couple a second side of the second capacitor cell to the inductor, and a 5 th switch (S 5 ) configured to couple the second side of the second capacitor cell to ground. 10. The power converter of claim 6 , wherein the first and the second capacitor cells are arranged in series between a positive and negative contact of the input voltage; a first end of the first capacitor cell is coupled to the positive contact of the input voltage; a second end of the first capacitor cell is coupled to a first end of the second capacitor cell; a second end of the second capacitor cell is coupled to the negative contact of the input voltage; the plurality of switches comprises a first switch (S 1 ) configured to couple the second end of the first capacitor cell to the inductor, a second switch (S 2 ) configured to couple the second end of the first capacitor cell to ground, a third switch (S 3 ) configured to couple the second end of the second capacitor cell to ground, and a fourth switch (S 4 ) configured to couple the first end of the first capacitor cell to the inductor. 11. The power converter of claim 1 , wherein the power converter comprises a first inductor and a second inductor; the controller is configured to control the plurality of switches such that during a first fraction of the first phase and/or a first fraction of the second phase, the capacitor cell is arranged in series with the first inductor, while the second inductor is coupled to ground; and during a second fraction of the first phase and/or a second fraction of the second phase, the capacitor cell is arranged in series with the second inductor, while the first inductor is coupled to ground. 12. The power converter of claim 1 , wherein the capacitor cell comprises a Dickson voltage divider. 13. The power converter of claim 1 , wherein an inductance L of the inductor measured in Henry is smaller than the capacitance C of the capacitor measured in Farad by at least one or two orders of magnitude. 14. A cascaded power converter comprising a voltage or current regulated power converter for charging a battery, wherein the power converter is configured to derive electrical power at an output voltage V out at an output of the power converter for charging the battery from electrical power at an input voltage V in at an input of the power converter, wherein the power converter comprises an inductor (L), a capacitor cell, a plurality of switches (S 1 , S 2 , S 3 , S 4 , S 5 , S 6 , S 7 , S

Assignees

Inventors

Classifications

  • H02M3/158Primary

    including plural semiconductor devices as final control devices for a single load · CPC title

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

  • Circuit arrangements for charging or discharging batteries or for supplying loads from batteries · CPC title

  • Electricity · mapped topic

  • Hybrid converter topologies, e.g. NPC mixed with flying capacitor, thyristor converter mixed with MMC or charge pump mixed with buck · CPC title

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What does patent US10003261B2 cover?
A voltage or current regulated power converter for charging batteries, is described. The power converter comprises an inductor (L), a capacitor cell (C 1 , C 2 ), switches (S 1 , S 2 , S 3 , S 4 , S 5 , S 6 , S 7 , S 8 ) and a controller. The controller controls the switches such that a commutation cycle of the power converter comprises a first phase, during which the capacitor cell and the ind…
Who is the assignee on this patent?
Dialog Semiconductor Uk Ltd
What technology area does this patent fall under?
Primary CPC classification H02M3/158. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jun 19 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 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).