Boosted amplifier with current limiting
10651800 ยท 2020-05-12
Assignee
Inventors
Cpc classification
H02M3/07
ELECTRICITY
International classification
H03F1/02
ELECTRICITY
Abstract
A boosted amplifier system may include a boost stage configured to boost an input voltage of the boost stage to an output voltage greater than the input voltage and an amplifier stage powered by the output voltage of the charge pump and configured to amplify an input signal to generate an output signal. The boost stage may have input current limiting circuitry for ensuring that an input current of the boost stage is maintained below a current limit and the amplifier stage may have an input for receiving an indication of whether the current-limiting circuitry of the boost stage is activated to maintain the input current of the boost stage below the current limit.
Claims
1. A boosted amplifier system comprising: a boost stage configured to boost an input voltage of the boost stage to an output voltage greater than the input voltage; and an amplifier stage powered by the output voltage of a charge pump and configured to amplify an input signal to generate an output signal; wherein: the boost stage has input current-limiting circuitry for ensuring that an input current of the boost stage is maintained below a current limit; and the amplifier stage has an input for receiving an indication of whether the current-limiting circuitry of the boost stage is activated to maintain the input current of the boost stage below the current limit.
2. The boosted amplifier system of claim 1, wherein the amplifier stage comprises an amplifier configured to amplify the input signal in the form of a pulse-modulated signal to generate the output signal.
3. The boosted amplifier system of claim 2, wherein the amplifier stage is configured to modify its behavior when the indication indicates that the current-limiting circuitry of the boost stage is activated to maintain the input current of the boost stage below the current limit.
4. The boosted amplifier system of claim 3, wherein: the amplifier stage comprises an output bridge circuit comprising a plurality of switches; and modifying the behavior of the amplifier stage comprises deactivating high-side switches of the output bridge circuit, wherein each high-side switch comprises a switch coupled between the output voltage of the boost stage and an output terminal of the amplifier stage.
5. The boosted amplifier system of claim 4, wherein modifying the behavior of the amplifier stage further comprises deactivating low-side switches of the output bridge circuit, wherein each low-side switch comprises a switch coupled between a ground voltage and an output terminal of the amplifier stage.
6. The boosted amplifier system of claim 1, wherein the boost stage comprises a charge pump power supply.
7. A method comprising, in a boosted amplifier system comprising a boost stage configured to boost an input voltage of the boost stage to an output voltage greater than the input voltage and an amplifier stage powered by the output voltage of a charge pump and configured to amplify an input signal to generate an output signal: maintaining an input current of the boost stage below a current limit responsive to a condition for current limiting in the boost stage; and receiving at the amplifier stage an indication of whether current-limiting circuitry of the boost stage is activated to maintain the input current of the boost stage below the current limit.
8. The method of claim 7, wherein the amplifier stage comprises an amplifier configured to amplify the input signal in the form of a pulse-modulated signal to generate the output signal.
9. The method of claim 8, further comprising modifying the behavior of the amplifier stage when the indication indicates that the current-limiting circuitry of the boost stage is activated to maintain the input current of the boost stage below the current limit.
10. The method of claim 9, wherein: the amplifier stage comprises an output bridge circuit comprising a plurality of switches; and modifying the behavior of the amplifier stage comprises deactivating high-side switches of the output bridge circuit, wherein each high-side switch comprises a switch coupled between the output voltage of the boost stage and an output terminal of the amplifier stage.
11. The method of claim 10, wherein modifying the behavior of the amplifier stage further comprises deactivating low-side switches of the output bridge circuit, wherein each low-side switch comprises a switch coupled between a ground voltage and an output terminal of the amplifier stage.
12. The method of claim 7, wherein the boost stage comprises a charge pump power supply.
13. A controller for controlling operation of a boosted amplifier system comprising a boost stage configured to boost an input voltage of the boost stage to an output voltage greater than the input voltage and an amplifier stage powered by the output voltage of a charge pump and configured to amplify an input signal to generate an output signal, the controller comprising: an input for receiving a signal indicative of whether a condition exists for current limiting in a boost stage; and responsive to the signal indicating that the condition exists for current limiting in a boost stage: causing the boost stage to maintain an input current of the boost stage below a current limit responsive to a condition for current limiting in the boost stage; and communicating to the amplifier stage an indication of whether current-limiting circuitry of the boost stage is activated to maintain the input current of the boost stage below the current limit.
14. The controller of claim 13, wherein the amplifier stage comprises an amplifier configured to amplify the input signal in the form of a pulse-modulated signal to generate the output signal.
15. The controller of claim 14, further comprising causing the amplifier stage to modify its behavior when the indication indicates that the current-limiting circuitry of the boost stage is activated to maintain the input current of the boost stage below the current limit.
16. The controller of claim 15, wherein: the amplifier stage comprises an output bridge circuit comprising a plurality of switches; and modifying the behavior of the amplifier stage comprises deactivating high-side switches of the output bridge circuit, wherein each high-side switch comprises a switch coupled between the output voltage of the boost stage and an output terminal of the amplifier stage.
17. The controller of claim 16, wherein modifying the behavior of the amplifier stage further comprises deactivating low-side switches of the output bridge circuit, wherein each low-side switch comprises a switch coupled between a ground voltage and an output terminal of the amplifier stage.
18. The controller of claim 13, wherein the boost stage comprises a charge pump power supply.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete understanding of the example, present embodiments and certain advantages thereof may be acquired by referring to the following description taken in conjunction with the accompanying drawings, in which like reference numbers indicate like features, and wherein:
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DETAILED DESCRIPTION
(6)
(7) Personal audio device 1 may provide a display to a user and receive user input using a touch screen 2, or alternatively, a standard LCD may be combined with various buttons, sliders, and/or dials disposed on the face and/or sides of personal audio device 1. As also shown in
(8)
(9) In some embodiments, DAC 14 may include a modulator configured to generate analog input signal V.sub.IN as a pulse-modulated signal (e.g., a pulse-width modulated signal or a pulse-density modulated signal), in which case power amplifier stage 16 may be implemented as a Class-D amplifier (e.g., as shown in
(10) A charge pump power supply 10 may provide the power supply rail inputs of a supply voltage V.sub.SUPPLY to power amplifier stage 16 and may receive a power source input, generally from a battery 12 or other power supply, which may provide an input voltage V.sub.BATT to charge pump power supply 10. A control circuit 20 may supply a mode select signal to charge pump power supply 10 that selects an operating mode of charge pump power supply 10 so as to adjust supply voltage V.sub.SUPPLY generated by charge pump power supply 10 according to expected and/or actual signal levels at the output of power amplifier stage 16. When low signal levels exist and/or are expected at amplifier output V.sub.OUT, mode control circuit 20 may improve the power efficiency of audio IC 9 by varying the supply voltage V.sub.SUPPLY in conformity with the output signal V.sub.OUT or a signal (e.g., digital input signal DIG_IN) indicative of the output signal V.sub.OUT. Accordingly, to maintain power efficiency, at any given time control circuit 20 may select an operating mode from a plurality of operating modes in each operating mode operating charge pump power supply 10 at a different supply voltage, V.sub.SUPPLY, wherein the supply voltage V.sub.SUPPLY in one operational mode is a rational multiple or ratio of supply voltages of other operational modes.
(11) Also as shown in
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(13) Each switch 32, 34, 36, and 38 may comprise any suitable device, system, or apparatus for making a connection in an electric circuit when the switch is enabled (e.g., closed or on) and breaking the connection when the switch is disabled (e.g., open or off) in response to a control signal received by the switch. For purposes of clarity and exposition, control signals for switches 32, 34, 36, and 38 are not depicted, although such control signals would be present to selectively enable and disable switches 32, 34, 36, and 38. In some embodiments, a switch 32, 34, 36, and 38 may comprise an n-type metal-oxide-semiconductor field-effect transistor. In these and other embodiments, a switch 32, 34, 36, and 38 may comprise a p-type metal-oxide-semiconductor field-effect transistor. Switch 32 may be coupled between a positive input terminal of charge pump power supply 10 and a first terminal of flying capacitor 40. Switch 34 may be coupled between the positive input terminal of charge pump power supply 10 and a second terminal of flying capacitor 40. Switch 36 may be coupled between a negative input terminal of charge pump power supply 10 and a second terminal of flying capacitor 40. Switch 38 may be coupled between the first terminal of flying capacitor 40 and a first terminal of charge pump output capacitor 42.
(14) Flying capacitor 40 and charge pump output capacitor 42 may each comprise a passive two-terminal electrical component used to store energy electrostatically in an electric field, which may generate a current in response to a time-varying voltage across the capacitor (or vice versa). Charge pump output capacitor 42 may be coupled between the output terminals of charge pump power supply 10, and thus may store supply voltage V.sub.SUPPLY output by charge pump power supply 10.
(15) In the first mode, charge pump power supply 10 may operate in a single phase, wherein switch 34 may be disabled and switches 32, 36, and 38 may be enabled during operation, thus charging voltage V.sub.SUPPLY on charge pump output capacitor 42 to input voltage V.sub.BATT. In the second mode, charge pump power supply 10 may sequentially operate in a charging phase in which switches 32 and 36 are enabled and switches 34 and 38 are disabled, allowing charge transfer from battery 12 to flying capacitor 40, and a transfer phase in which switches 32 and 36 are disabled and switches 34 and 38 are enabled, boosting the voltage on flying capacitor 40 and allowing charge transfer from flying capacitor 40 to charge pump output capacitor 42.
(16) Although
(17) As shown in
(18) Thus, in operation, control circuit 20 may control an output power of charge pump power supply 10 by controlling an output voltage generated by the charge pump. In some embodiments, control circuit 20 may limit the output power by controlling supply voltage V.sub.SUPPLY generated by charge pump power supply 10 based on a measurement of one or more variables (e.g., input voltage V.sub.BATT, supply voltage V.sub.SUPPLY, and/or a multiplication ratio) associated with charge pump power supply 10.
(19) Charge pump power supply 10 and power amplifier stage 16 may together form a boosted amplifier having a first stage or boost stage comprising charge pump power supply 10 and a second stage or amplifier stage comprising power amplifier stage 16. While the foregoing contemplates that the first stage/boost stage is implemented using charge pump power supply 10, it is understood that a first stage/boost stage may be implemented using any suitable circuit capable of boosting voltage V.sub.BATT to a higher voltage V.sub.SUPPLY. For example, in some embodiments, an inductor-based boost power converter may be used in lieu of charge pump power supply 10 depicted in
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(21) Switches 52, 54, 56, and 58 may be implemented in any suitable manner. For example, in some embodiments, each switch 52, 54, 56, and 58 may be implemented using an n-type metal-oxide-semiconductor field-effect transistor.
(22) This disclosure encompasses all changes, substitutions, variations, alterations, and modifications to the exemplary embodiments herein that a person having ordinary skill in the art would comprehend. Similarly, where appropriate, the appended claims encompass all changes, substitutions, variations, alterations, and modifications to the exemplary embodiments herein that a person having ordinary skill in the art would comprehend. Moreover, reference in the appended claims to an apparatus or system or a component of an apparatus or system being adapted to, arranged to, capable of, configured to, enabled to, operable to, or operative to perform a particular function encompasses that apparatus, system, or component, whether or not it or that particular function is activated, turned on, or unlocked, as long as that apparatus, system, or component is so adapted, arranged, capable, configured, enabled, operable, or operative.
(23) All examples and conditional language recited herein are intended for pedagogical objects to aid the reader in understanding this disclosure and the concepts contributed by the inventor to furthering the art, and are construed as being without limitation to such specifically recited examples and conditions. Although embodiments of the present disclosure have been described in detail, it should be understood that various changes, substitutions, and alterations could be made hereto without departing from the spirit and scope of the disclosure.