IP Library Granted Patent US 9,602,016
Granted Patent B2
US 9,602,016 · App. 14/996,576 · Granted Mar 21, 2017

Electrical circuit for delivering power to consumer electronic devices

Inventors: Michael H. Freeman (Tulsa, OK); W. J. Weaver, Jr. (Broken Arrow, OK); Mitchael C. Freeman (Sapupla, OK); Robert Dieter (Owasso, OK); Andrea Baschirotto (Tortona, IT); Piero Malcovati (Pavia, IT); Marco Grassi (Stradella, IT); Glenn Noufer (Manitou Springs, CO); Randall L. Sandusky (Divide, CO); Neaz E. Farooqi (Colorado Springs, CO); Jim Devoy (Florissant, CO); Silvia Jaeckel (Divide, CO); Madison Hayes Yarbro Freeman (Tulsa, OK)
Assignee: ADVANCED CHARGING TECHNOLOGIES, LLC
H02M3/33546G05F1/462H02M1/08H02M1/32H02M1/36H02M3/073H02M3/156H02M3/33515H02M3/33553H02M7/06H02M2001/007H02M2001/0009H02M2001/0025H02M2001/0032H02M2001/0045H02M2003/072Y02B70/16
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Quick Facts
Patent No.
US 9,602,016
App. No.
14/996,576
Granted
Mar 21, 2017
Kind
B2
Abstract

An electrical circuit for providing electrical power for use in powering electronic devices, such as monitors, televisions, white goods, data centers, and telecom circuit boards, is described herein. The electrical circuit includes an input terminal configured to receive an input power signal, an output terminal configured to provide an output power signal, and a forward converter coupled to the input and output terminals. The forward converter includes a transformer, and a primary side regulation circuit coupled to a primary side of the transformer. The primary side regulation circuit includes a switching device coupled to the primary side, a current sense circuit configured to sense a current level on the primary side, and a controller configured to generate a pulse-width modulated control signal delivered to the switching device as a function of the sensed current level to regulate the transformer to deliver the output power signal at a desired voltage level.

Claims (70)

1. An electrical circuit for providing electrical power for use in powering electronic devices, comprising:

an input terminal configured to receive an input power signal;

an output terminal configured to provide an output power signal; and

a forward converter coupled to the input terminal and the output terminal, the forward converter including:

a transformer; and

a primary side regulation circuit coupled to a primary side of the transformer, the primary side regulation circuit including:

a switching device coupled to the primary side;

a current sense circuit configured to sense a current level on the primary side;

a controller configured to generate a modulated control signal delivered to the switching device as a function of the sensed current level to regulate the transformer to deliver the output power signal at a desired voltage level and a desired current level; and

a memory device coupled to the controller, the memory device configured to store a range of current values and a plurality of value windows associated with the range of current values, each current value including compensation values associated with current losses within the electrical circuit, each of the value windows including a subset of current values within the range of current values, the controller configured to:

select a value window from the plurality of value windows as a function of the sensed current level; and

generate the modulated control signal as a function of the selected value window.

2. The electrical circuit in accordance with claim 1 , the primary side regulation circuit including a voltage sense circuit coupled to the primary side for sensing a voltage level of the primary side of the transformer, the controller configured to generate the modulated control signal as a function of the sensed voltage level.

3. The electrical circuit in accordance with claim 2 , the primary side regulation circuit including a capacitor coupled to the primary side of the transformer and to ground, the capacitor configured to reset the transformer after the controller has sensed the corresponding voltage level from a corresponding transformer cycle.

4. The electrical circuit in accordance with claim 3 , the capacitor coupled between the switching device and a primary winding of the transformer.

5. The electrical circuit in accordance with claim 1 , the primary side regulation circuit including a temperature sense circuit for sensing a temperature of the electrical circuit, the controller configured to generate the modulated control signal as a function of the sensed temperature.

6. The electrical circuit in accordance with claim 1 , further comprising a voltage reduction circuit cell coupled between the input terminal and the forward converter, the voltage reduction circuit cell including a pair of flyback capacitors, a hold capacitor, and a switching circuit including a plurality of switching devices configured to operate the voltage reduction circuit cell to receive the input power signal and deliver an intermediate power signal to the forward converter at a reduced voltage level.

7. The electrical circuit in accordance with claim 1 , the controller configured to:

sense a peak current level during a pulse of the switching device; and

select the value window as a function of the peak current level.

8. The electrical circuit in accordance with claim 1 , the controller configured to:

determine a reference voltage as a function of the selected value window; and

generate the modulated control signal as a function of the determined reference voltage.

9. The electrical circuit in accordance with claim 8 , the controller configured to:

determine a low window value associated with the selected value window; and

determine the reference voltage as a function of the determined low window value.

10. The electrical circuit in accordance with claim 9 , the controller configured to:

sense a temperature of the electrical circuit and determine the low window value as a function of the sensed temperature.

11. The electrical circuit in accordance with claim 9 , the controller configured to:

determine a high window value associated with the selected value window as a function of the low window value; and

determine the reference voltage as a function of the low window value and the high window value.

12. The electrical circuit in accordance with claim 11 , the controller configured to sense a peak voltage of the primary side of the transformer and determine the reference voltage as a function of the sensed peak voltage, the low window value, and the high window value.

13. A method of operating an electrical circuit for powering electronic devices, the electrical circuit including an input terminal configured to receive an input power signal, an output terminal configured to provide an output power signal, and a forward converter coupled to the input terminal and the output terminal, the forward converter including a transformer and a primary side regulation circuit including a controller and a switching device coupled to a primary side of the transformer, the controller including a memory device for storing a range of current values and a plurality of value windows associated with the range of current values, each current value including compensation values associated with current losses within the electrical circuit, each of the value windows including a subset of current values within the range of current values, the method including the steps of:

sensing a current level of the primary side of the transformer;

selecting, by the controller, a value window from the plurality of value windows as a function of the sensed current level;

generating, by the controller, a modulated control signal as a function of the sensed current level and the selected value window; and

transmitting the modulated control signal to the switching device to operate the switching device to regulate the transformer to deliver the output power signal at a desired voltage level and a desired current level.

14. The method in accordance with claim 13 , including the steps of:

sensing a voltage level of the primary side of the transformer; and

generating the modulated control signal as a function of the sensed voltage level.

15. The method in accordance with claim 14 , wherein the primary side regulation circuit includes a capacitor coupled between the switching device and a primary winding of the transformer and configured to reset the transformer after the controller has sensed the corresponding voltage level from a corresponding transformer cycle.

16. The method in accordance with claim 13 , including the steps of:

sensing a temperature of the electrical circuit; and

generating the modulated control signal as a function of the sensed temperature.

17. The method in accordance with claim 13 , wherein the electrical circuit includes a voltage reduction circuit cell coupled between the input terminal and the forward converter, the voltage reduction circuit cell including a pair of flyback capacitors, a hold capacitor, and a switching circuit including a plurality of switching devices, the method includes operating the plurality of switching devices to receive the input power signal from the input terminal and deliver an intermediate power signal to the forward converter at a reduced voltage level.

18. The method in accordance with claim 13 , including the steps of:

sensing a peak current level during a pulse of the switching device; and

selecting the value window as a function of the peak current level.

19. The method in accordance with claim 13 , including the steps of:

determining a reference voltage as a function of the selected value window; and

generating the modulated control signal as a function of the determined reference voltage.

20. The method in accordance with claim 19 , including the steps of:

determining a low window value associated with the selected value window; and

determining the reference voltage as a function of the determined low window value.

21. The method in accordance with claim 20 , including the steps of:

sensing a temperature of the electrical circuit; and

determining the low window value as a function of the sensed temperature.

22. The method in accordance with claim 20 , including the steps of:

determining a high window value associated with the selected value window as a function of the low window value; and

determining the reference voltage as a function of the low window value and the high window value.

23. The method in accordance with claim 22 , including the steps of:

sensing a peak voltage of the primary side of the transformer; and

determining the reference voltage as a function of the sensed peak voltage, the low window value, and the high window value.

24. An apparatus for providing electrical power for use in powering electronic devices, comprising:

a transformer for receiving an input power signal and delivering an output power signal;

a capacitor coupled to a primary side of the transformer and to ground, the capacitor configured to reset the transformer after each transformer cycle; and

a semiconductor chip including:

a transformer terminal formed on the semiconductor chip;

a switching device formed on the semiconductor chip and coupled to the primary side of the transformer with the transformer terminal; and

a controller formed on the semiconductor chip and a memory device coupled to the controller, the memory device configured to store a range of current values and a plurality of value windows associated with the range of current values, each current value including compensation values associated with current losses within the electrical circuit, each of the value windows including a subset of current values within the range of current values, the controller configured to sense a current level of the primary side of the transformer, select a value window from the plurality of value windows as a function of the sensed current level, and generate a modulated control signal delivered to the switching device as a function of the sensed current level and the selected value window to regulate the transformer to deliver the output power signal at a desired voltage level and a desired current level.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 11, 2018
From: ADVANCED CHARGING TECHNOLOGIES, LLC
To: SMART PRONG TECHNOLOGIES, INC.
Reel/Frame 048267/0575 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 19, 2016
From: FREEMAN, MICHAEL H.; WEAVER, W.J.; FREEMAN, MITCHAEL C.; DIETER, ROBERT; BASCHIROTTO, ANDREA; MALCOVATI, PIERO; GRASSI, MARCO; NOUFER, GLENN; SANDUSKY, RANDALL L.; FAROOQI, NEAZ E.; DEVOY, JIM; JAECKEL, SILVIA; FREEMAN, MADISON HAYES YARBRO
To: ADVANCED CHARGING TECHNOLOGIES, LLC
Reel/Frame 038762/0479 →
Continuity (9)
Continuation 14925863 · Oct 28, 2015
Provisional Application 62069672 · Oct 28, 2014
Provisional Application 62074525 · Nov 3, 2014
Provisional Application 62094884 · Dec 19, 2014
Provisional Application 62175972 · Jun 15, 2015
Provisional Application 62180549 · Jun 16, 2015
Provisional Application 62208520 · Aug 21, 2015
Provisional Application 62236731 · Oct 5, 2015
Related Publication 20160126852A1 · May 5, 2016