SINGLE SIGNAL-VARIANT POWER SUPPLY FOR A PLURALITY OF AMPLIFIERS
20170310280 · 2017-10-26
Assignee
Inventors
- Jeffrey LaBUNDY (Austin, TX, US)
- Anu CHAKRAVARTY (Austin, TX, US)
- Deepal SHRISHRIMAL (Austin, TX, US)
- Jeffrey Allen MAY (Dripping Springs, TX, US)
- Firas AZRAI (Austin, TX, US)
Cpc classification
H03F3/68
ELECTRICITY
H03F2200/504
ELECTRICITY
H03F2200/228
ELECTRICITY
H03F3/2175
ELECTRICITY
H03F2200/321
ELECTRICITY
H03F2200/511
ELECTRICITY
International classification
H03F1/02
ELECTRICITY
Abstract
In accordance with embodiments of the present disclosure a control circuit may include at least one input for monitoring a respective signal for each of a plurality of amplifiers, an output for outputting at least one control signal for controlling a power supply level of the single signal-variant power supply configured to deliver electrical energy to the plurality of amplifiers, and decision and control logic. The decision and control logic may be configured to monitor the respective signals for each of the plurality of amplifiers and, based on the respective signals, and a respective requirement associated with each of the plurality of amplifiers, setting a power supply level of the single signal-variant power supply and outputting the at least one control signal to control the power supply level such that the respective requirements are satisfied.
Claims
1. A method comprising: monitoring a respective signal for each of a plurality of amplifiers; and based on the respective signals, and a respective requirement associated with each of the plurality of amplifiers, setting a power supply level of a single signal-variant power supply configured to deliver electrical energy to the plurality of amplifiers such that the respective requirements are satisfied.
2. The method of claim 1, further comprising: based on the respective signals and the respective requirements, determining for each amplifier a respective minimum-required power supply level sufficient to satisfy the respective requirement of such amplifier; and setting the power supply level to a maximum of the respective minimum-required power supply levels.
3. The method of claim 1, wherein the signal-variant power supply comprises one of a boost converter power supply, a buck converter power supply, a buck-boost converter power supply, and a linear power supply.
4. The method of claim 1, wherein the signal-variant power supply is internal to one of the plurality of amplifiers.
5. The method of claim 1, wherein the signal-variant power supply is external to the plurality of amplifiers.
6. The method of claim 1, wherein each of the plurality of amplifiers comprises one of a Class D amplifier, a Class AB amplifier, a Class G amplifier, and a Class H amplifier.
7. The method of claim 1, wherein each amplifier drives a respective output signal to a respective load, wherein each of the respective loads comprises one of an acoustic loudspeaker, a headphone earpiece, a haptic transducer, and an ultrasonic emitter.
8. The method of claim 1, wherein monitoring comprises monitoring respective signal content of the respective signals, the signal content comprising one or more of a voltage level, a current level, a mathematical derivative or mathematical integral of the voltage level, a mathematical derivative or mathematical integral of the current level, and in-band spectral content.
9. The method of claim 1, wherein setting the power supply level is based on one or more of frequency analysis of the respective signals, a time domain analysis of the respective signals, a power consumption optimization setting for the plurality of amplifiers, and a target distortion for at least one of the plurality of amplifiers.
10. The method of claim 1, comprising communicating at least one of the respective characteristics of the respective signals and respective requirements from at least one of the plurality of amplifiers using a communication protocol.
11. The method of claim 10, wherein the communication protocol comprises one of an analog communication protocol and a digital communication protocol.
12. The method of claim 10, wherein the communication protocol uses variables representing advisory controls of the plurality of amplifiers.
13. The method of claim 12, wherein the variables are shared within register spaces of the plurality of amplifiers.
14. A control circuit comprising: at least one input for receiving a respective signal for each of a plurality of amplifiers; an output for outputting at least one control signal for controlling a power supply level of the single signal-variant power supply configured to deliver electrical energy to the plurality of amplifiers; and decision and control logic configured to: monitor the respective signals for each of the plurality of amplifiers; and based on the respective signals, and a respective requirement associated with each of the plurality of amplifiers, set a power supply level of the single signal-variant power supply and output the at least one control signal to control the power supply level such that the respective requirements are satisfied.
15. The control circuit of claim 14, wherein the decision and control logic is further configured to: based on the respective signals and the respective requirements, determine for each amplifier a respective minimum-required power supply level sufficient to satisfy the respective requirement of such amplifier; and set the power supply level to a maximum of the respective minimum-required power supply levels.
16. The control circuit of claim 14, wherein the signal-variant power supply comprises one of a boost converter power supply, a buck converter power supply, a buck-boost converter power supply, and a linear power supply.
17. The control circuit of claim 14, wherein the signal-variant power supply is internal to one of the plurality of amplifiers.
18. The control circuit of claim 14, wherein the signal-variant power supply is external to the plurality of amplifiers.
19. The control circuit of claim 14, wherein each of the plurality of amplifiers comprises one of a Class D amplifier, a Class AB amplifier, a Class G amplifier, and a Class H amplifier.
20. The control circuit of claim 14, wherein each amplifier drives a respective output signal to a respective load, wherein each of the respective loads comprises one of an acoustic loudspeaker, a headphone earpiece, a haptic transducer, and an ultrasonic emitter.
21. The control circuit of claim 14, wherein the decision and control logic is configured to monitor the respective signals by monitoring respective signal content of the respective signals, the signal content comprising one or more of a voltage level, a current level, a mathematical derivative or mathematical integral of the voltage level, a mathematical derivative or mathematical integral of the current level, and in-band spectral content.
22. The control circuit of claim 14, wherein the decision and control logic is configured to set the power supply level based on one or more of frequency analysis of the respective signals, a time domain analysis of the respective signals, a power consumption optimization setting for the plurality of amplifiers, and a target distortion for at least one of the plurality of amplifiers.
23. The control circuit of claim 14, wherein the control circuit is configured to receive via the at least one input at least one of the respective requirements of the respective signals and respective requirements from at least one of the plurality of amplifiers using a communication protocol.
24. The control circuit of claim 23, wherein the communication protocol comprises one of an analog communication protocol and a digital communication protocol.
25. The method of claim 23, wherein the communication protocol uses variables representing advisory controls of the plurality of amplifiers.
26. The method of claim 25, wherein the variables are shared within register spaces of the plurality of amplifiers.
27. An apparatus comprising: a plurality of amplifiers; a single signal-variant power supply configured to deliver electrical energy to the plurality of amplifiers; and a control circuit configured to: monitor a respective signal for each of the plurality of amplifiers; and based on the respective signals, and a respective requirement associated with each of the plurality of amplifiers, set a power supply level of the single signal-variant power supply such that the respective requirements are satisfied.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] A more complete understanding of the present embodiments and 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
[0017]
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[0019] As shown in
[0020] As depicted in
[0021] Control circuit 20 may include at least one input for receiving a respective signal for each of the plurality of amplifiers 16, an output for outputting at least one control signal (e.g., VOLTAGE CONTROL) for controlling the power supply level of single signal-variant power supply 26, and decision and control logic 22. Decision and control logic 22 may be configured to monitor the respective signals received from each of the plurality of amplifiers 16 and, based on the respective signals, and a respective requirement associated with each of the plurality of amplifiers 16, set a power supply level of single signal-variant power supply 26 and output the at least one control signal (e.g., VOLTAGE CONTROL) to control the power supply level such that the respective requirements are satisfied.
[0022] For example, monitoring the respective signals may comprise monitoring respective signal content of the respective signals, the signal content comprising one or more of a voltage level (e.g., a voltage level of an audio output voltage V.sub.OUT to be generated from a digital audio input signal DIG_IN), a current level (e.g., a target current driven into a load based on a digital audio input signal DIG_IN), a mathematical derivative or mathematical integral of the voltage level, a mathematical derivative or mathematical integral of the current level, and in-band spectral content of an audio output voltage V.sub.OUT or digital audio input signal DIG_IN. Decision and control logic 22 may receive such information from the respective memory registers 12 of the various amplifiers 16 or may determine such information from data received from the respective memory registers 12 of the various amplifiers 16. Communication from memory registers 12 of the various amplifiers 16 to decision and control logic 22 may be via any suitable digital communication protocol or analog communication protocol. In addition to signal content communicated from memory registers 12 of the various amplifiers 16 to decision and control logic 22, memory registers 12 or other components of amplifiers 16 may also communicate requirements for the amplifiers. Such requirements may include any suitable requirements for an amplifier 16 or an audio output signal generated by such amplifier, including without limitation an acceptable distortion level, an acceptable noise level, a required voltage supply headroom, a frequency range, and/or any other suitable requirement. Thus, in some embodiments, the requirements may be communicated via the communication protocol using variables representing advisory controls of the plurality of amplifiers 16.
[0023] As a specific example, in some embodiments, decision and control logic 22 may receive from each amplifier 16 a respective signal (e.g., the buffered digital audio input signal DIG_IN or a signal derived therefrom) and a voltage headroom requirement for such amplifier 16. Then, based on the respective signals and the respective requirements, decision and control logic 22 may determine for each amplifier 16 a respective minimum-required power supply level sufficient to satisfy the respective requirement (e.g., the headroom requirement) of such amplifier 16. Such that the headroom requirement is satisfied for each amplifier 16, decision and control logic 22 may set the power supply level of signal-variant power supply 28 to a maximum of the respective minimum-required power supply levels.
[0024] In these and other embodiments, decision and control logic 22 may set the power supply level of signal-variant power supply 28 based on any suitable analysis of the respective signals received from the various amplifiers 16, including one or more of a frequency analysis of the respective signals, a time domain analysis of the respective signals, a power consumption optimization setting for the plurality of amplifiers, and a target distortion for at least one of the plurality of amplifiers.
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[0027] In the various examples above, the various components of audio systems 9A, 9B, and 9C may be implemented on a single integrated circuit or on a plurality of coupled integrated circuits.
[0028] As used herein, when two or more elements are referred to as “coupled” to one another, such term indicates that such two or more elements are in electronic communication or mechanical communication, as applicable, whether connected indirectly or directly, with or without intervening elements.
[0029] 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.
[0030] All examples and conditional language recited herein are intended for pedagogical objects to aid the reader in understanding the invention 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 inventions 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.