Class-E outphasing power amplifier with efficiency and output power enhancement circuits and method

US9806673B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9806673-B2
Application numberUS-201615165339-A
CountryUS
Kind codeB2
Filing dateMay 26, 2016
Priority dateJun 23, 2014
Publication dateOct 31, 2017
Grant dateOct 31, 2017

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  1. Title

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  2. Abstract

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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.

An outphasing amplifier includes a first class-E power amplifier ( 16 - 1 ) having an output coupled to a first conductor ( 31 - 1 ) and an input receiving a first RF drive signal (S 1 (t)). A first reactive element (C A - 1 ) is coupled between the first conductor and a second conductor ( 30 - 1 ). A second reactive element (L A - 1 ) is coupled between the second conductor and a third conductor ( 32 - 1 ). A second class-E power amplifier ( 17 - 1 ) includes an output coupled to a fourth conductor ( 31 - 2 ) and an input coupled to a second RF drive signal (S 2 (t)), a third reactive element (C A - 3 ) coupled between the second and fourth conductors. Outputs of the first and second power amplifiers are combined by the first, second and third reactive elements to produce an output current in a load (R). An efficiency enhancement circuit (L EEC - 1 ) is coupled between the first and fourth conductors to improve power efficiency at back-off power levels. Power enhancement circuits ( 20 - 1,2 ) are coupled to the first and fourth conductors, respectively.

First claim

Opening claim text (preview).

What is claimed is: 1. An outphasing amplifier comprising: a first class-E power amplifier having an output at a node where a choke inductor is coupled with a first switching device, the output being coupled to a first conductor and an input coupled to a first RF drive signal, a first reactive circuit element coupled between the first conductor and a second conductor and a second reactive circuit element coupled between the second conductor and a third conductor; and a second class-E power amplifier having an output at a node where a choke inductor is coupled with a second switching device, the output being coupled to a fourth conductor and an input coupled to a second RF drive signal, a third reactive circuit element coupled between the fourth conductor and the second conductor, the third conductor being coupled to a first terminal of a load, outputs of the first and second class-E power amplifiers being combined by means of the first, second, and third reactive elements to produce an output current to the load; and a first efficiency enhancement circuitry directly connected between the first and fourth conductors for causing power efficiency improvement at back-off power levels. 2. The outphasing amplifier of claim 1 wherein the first efficiency enhancement circuitry includes an inductor coupled between the first and fourth conductors. 3. An outphasing amplifier comprising: a first class-E power amplifier having an output at a node where a choke inductor is coupled with a first switching device, the output being coupled to a first conductor and an input coupled to a first RF drive signal, a first reactive circuit element coupled between the first conductor and a second conductor and a second reactive circuit element coupled between the second conductor and a third conductor; and a second class-E power amplifier having an output at a node where a choke inductor is coupled with a second switching device, the output being coupled to a fourth conductor and an input coupled to a second RF drive signal, a third reactive circuit element coupled between the fourth conductor and the second conductor, the third conductor being coupled to a first terminal of a load, outputs of the first and second class-E power amplifiers being combined by means of the first, second, and third reactive elements to produce an output current to the load; and a first power enhancement circuitry coupled between the first conductor and a fifth conductor and second power enhancement circuitry coupled between the fourth conductor and an eighth conductor wherein the power enhancement circuitry is configured to add a third harmonic of the carrier frequency. 4. The outphasing amplifier of claim 3 wherein each of the first power enhancement circuitry and second power enhancement circuitry includes a first inductor and a first capacitor coupled in series. 5. The outphasing amplifier of claim 4 , wherein the first inductor and the first capacitor operate to add a harmonic signal to the output of a corresponding class-E power amplifier to shape the output of that class-E power amplifier across all phase angles between the first and second RF drive signals so as to increase the peak output power that can be safely delivered by the outphasing amplifier to the load. 6. The outphasing amplifier of claim 4 , wherein at least one of the capacitors is tunable. 7. A method for providing an outphasing power amplifier including a first class-E power amplifier having an output at a node where a choke inductor is coupled with a first switching device, the output being coupled to a first conductor and an input coupled to a first RF drive signal and a second class-E power amplifier having an output at a node where a choke inductor is coupled with a second switching device, the output being coupled to a fourth conductor and an input coupled to a second RF drive signal, the method comprising combining output signals produced by the first and second power amplifiers by: coupling a first reactive circuit element between the first conductor and a second conductor; coupling a second reactive circuit element between the second conductor and a third conductor; and coupling a third reactive circuit element between the fourth conductor and the second conductor, to produce an output current to a load; and coupling first efficiency enhancement circuitry between the first and fourth conductors to cause power efficiency improvement. 8. A method for providing an outphasing power amplifier including a first class-E power amplifier having an output at a node where a choke inductor is coupled with a first switching device, the output being coupled to a first conductor and an input coupled to a first RF drive signal and a second class-E power amplifier having an output at a node where a choke inductor is coupled with a second switching device, the output being coupled to a fourth conductor and an input coupled to a second RF drive signal, the method comprising combining output signals produced by the first and second power amplifiers by: coupling a first reactive circuit element between the first conductor and a second conductor; coupling a second reactive circuit element between the second conductor and a third conductor; and coupling a third reactive circuit element between the fourth conductor and the second conductor, to produce an output current to a load; and coupling first power enhancement circuitry between the first conductor and a fifth conductor and coupling second power enhancement circuitry between the fourth conductor and an eighth conductor to add a harmonic signal to the output of a corresponding class-E power amplifier to shape the output voltage of that class-E power amplifier across all phase angles between the first and second RF drive signals so as to increase the peak output power that can be safely delivered by the outphasing amplifier to the load. 9. The method of claim 8 wherein each of the first power enhancement circuitry and second power enhancement circuitry includes a first inductor and a tunable first capacitor coupled in series, the method including adjusting the tunable first capacitors to adjust the frequency of the harmonic signal. 10. An outphasing amplifier comprising: a first class-E power amplifier having an output coupled to a first conductor and an input coupled to a first RF drive signal and a second class-E power amplifier having an output coupled to a fourth conductor and an input coupled to a second RF drive signal; means for combining output signals produced by the first and second class-E power amplifiers by coupling the first reactive circuit element between the first conductor and a second conductor, coupling a second reactive circuit element between the second conductor and a third conductor, and coupling a third reactive circuit element between the fourth conductor and the second conductor, to produce an output current to a load; means for providing power efficiency improvement outphasing power amplifier at back-off power levels by coupling first efficiency enhancement circuitry between the first and fourth conductors; and means for increasing the peak output power that can be safely delivered by the outphasing amplifier to the load by coupling first power enhancement circuitry between the first conductor and a fifth conductor and coupling second power enhancement circuitry between the fourth conductor and an eighth conductor to add a harmonic signal to the output of a corresponding class-E power amplifier to shape the output voltage of that class-E power amplifier across all phase angles between the first and second RF drive signals so as to reduce a maximum peak drain voltage in the class-E power amplifiers. 1

Assignees

Inventors

Classifications

  • the output circuit of an amplifying stage comprising an LC-network · CPC title

  • using vector summing of two or more constant amplitude phase-modulated signals · CPC title

  • with field-effect devices (H03F3/2173 - H03F3/2178 take precedence) · CPC title

  • Class D power amplifiers; Switching amplifiers · CPC title

  • using MOSFET transistors as the active amplifying circuit (H03F3/45278 takes precedence) · CPC title

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What does patent US9806673B2 cover?
An outphasing amplifier includes a first class-E power amplifier ( 16 - 1 ) having an output coupled to a first conductor ( 31 - 1 ) and an input receiving a first RF drive signal (S 1 (t)). A first reactive element (C A - 1 ) is coupled between the first conductor and a second conductor ( 30 - 1 ). A second reactive element (L A - 1 ) is coupled between the second conductor and a third conduct…
Who is the assignee on this patent?
Texas Instruments Inc, Texas Instruments Inc
What technology area does this patent fall under?
Primary CPC classification H03F1/0205. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Oct 31 2017 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 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).