Mos-based voltage reference circuit
US-2015115717-A1 · Apr 30, 2015 · US
US9866133B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9866133-B2 |
| Application number | US-201414152105-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 10, 2014 |
| Priority date | Jan 10, 2014 |
| Publication date | Jan 9, 2018 |
| Grant date | Jan 9, 2018 |
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Methods of regulating an output voltage of a switched mode power supply having a variable input voltage and a power switch include adjusting a reference voltage to adjust a duty cycle of a control signal for the power switch. The reference voltage may be adjusted as a function of the duty cycle, in response to the duty cycle of the control signal being outside a defined range and/or in the response to a temperature within the switched mode power supply being above a threshold temperature. Other methods include selecting a reference voltage from a plurality of reference voltages based on a determined input voltage and generating a control signal for the power switch as a function of the selected reference voltage to adjust the duty cycle of the control signal. Switched mode power supplies and control circuits for implementing the methods are also disclosed.
Opening claim text (preview).
The invention claimed is: 1. A method of regulating an output voltage of a switched mode power supply having a variable input voltage and at least one power switch, the method comprising: determining the input voltage; selecting a reference voltage from a plurality of reference voltages based on the determined input voltage; and generating a control signal for the at least one power switch of the switched mode power supply as a function of the selected reference voltage to adjust a duty cycle of the control signal for the at least one power switch of the switched mode power supply. 2. The method of claim 1 wherein the selecting and the generating are performed by a digital controller. 3. The method of claim 1 wherein the plurality of reference voltages correspond to a plurality of voltage ranges, each voltage range associated with a different reference voltage. 4. The method of claim 3 wherein the plurality of voltage ranges are noncontiguous. 5. The method of claim 1 wherein generating includes (a) determining whether the variable input voltage falls within a defined range, and (b) in response to determining the variable input voltage falls outside the defined range, calculating a new reference voltage based on the selected reference voltage to adjust the duty cycle of the control signal for the at least one power switch of the switched mode power supply. 6. The method of claim 1 wherein generating includes (a) determining whether a sensed temperature is greater than a defined threshold temperature, and (b) in response to determining the sensed temperature is greater than the defined threshold temperature, calculating a new reference voltage based on the selected reference voltage to adjust the duty cycle of the control signal for the at least one power switch of the switched mode power supply. 7. The method of claim 1 wherein generating includes (a) determining if the duty cycle of the control signal is within a defined range, and (b) in response to determining the duty cycle of the control signal is outside the defined range, calculating a new reference voltage based on the selected reference voltage to adjust the duty cycle of the control signal for the at least one power switch of the switched mode power supply. 8. The method of claim 7 wherein the defined range includes a maximum duty cycle and a minimum duty cycle and wherein the new reference voltage is calculated as a function of an average duty cycle of the defined range if the duty cycle is less than the minimum duty cycle. 9. The method of claim 7 wherein the defined range includes a maximum duty cycle and a minimum duty cycle and wherein the new reference voltage is calculated so that the duty cycle substantially equals an average duty cycle of the defined range if the duty cycle is greater than the maximum duty cycle. 10. The method of claim 7 wherein the new reference voltage is calculated as a function of a defined duty cycle. 11. The method of claim 1 wherein selecting the reference voltage includes selecting the reference voltage includes from a plurality of stored reference voltages. 12. A control circuit for regulating an output voltage of a switched mode power supply having a variable input voltage and at least one power switch, the control circuit operable to determine the input voltage, select a reference voltage from a plurality of reference voltages based on the determined input voltage, and generate a control signal for the at least one power switch of the switched mode power supply as a function of the selected reference voltage to adjust a duty cycle of the control signal for the at least one power switch of the switched mode power supply. 13. The control circuit of claim 12 wherein the control circuit includes a digital controller and wherein the digital controller is operable to select the reference voltage and generate the control signal. 14. A switched mode power supply having a variable input voltage and including a power circuit having at least one power switch, and the control circuit of claim 13 . 15. The switched mode power supply of claim 14 wherein the power circuit includes a forward converter. 16. The switched mode power supply of claim 14 wherein the power circuit includes an isolation transformer. 17. The control circuit of claim 12 wherein the control circuit is operable to determine the input voltage by sensing the input voltage. 18. The control circuit of claim 12 wherein the plurality of reference voltages correspond to a plurality of voltage ranges, each voltage range associated with a different reference voltage. 19. The control circuit of claim 12 wherein the control circuit is operable to generate the control signal by (a) determining whether the variable input voltage falls within a defined range, and (b) in response to determining the variable input voltage falls outside the defined range, calculate a new reference voltage based on the selected reference voltage to adjust the duty cycle of the control signal for the at least one power switch of the switched mode power supply. 20. The control circuit of claim 12 wherein the control circuit is operable to generate the control signal by (a) determining whether a sensed temperature is greater than a defined threshold temperature, and (b) in response to determining the sensed temperature is greater than the defined threshold temperature, calculate a new reference voltage based on the selected reference voltage to adjust the duty cycle of the control signal for the at least one power switch of the switched mode power supply. 21. The control circuit of claim 12 wherein the control circuit is operable to generate the control signal by (a) determining if the duty cycle of the control signal is within a defined range, and (b) in response to determining the duty cycle of the control signal is outside the defined range, calculate a new reference voltage based on the selected reference voltage to adjust the duty cycle of the control signal for the at least one power switch of the switched mode power supply. 22. The control circuit of claim 12 wherein the control circuit is operable to store the plurality of reference voltages and select the reference voltage from the plurality of stored reference voltages.
having a synchronous rectifier circuit or a synchronous freewheeling circuit at the secondary side of an isolation transformer · CPC title
with galvanic isolation between input and output of both the power stage and the feedback loop · CPC title
Electricity · mapped topic
Electricity · mapped topic
Cross-Sectional Technologies · mapped topic
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