IP Library Granted Patent US 10,824,180
Granted Patent B2
US 10,824,180 · App. 15/888,847 · Granted Nov 3, 2020

Systems and methods for improving current sharing between paralleled DC-to-DC power converters based on temperature coefficient

Inventors: Abhiman Ananthakrishna Hande (Plano, TX); Richard Paul Massetti, Jr. (McKinney, TX); Mark Andrew Dubecky (McKinney, TX)
Assignee: ABB Power Electronics Inc.
G05F1/46G01K1/026G01K13/00H02M1/32H02M3/1584H02M2001/0025H02M2001/327
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Quick Facts
Patent No.
US 10,824,180
App. No.
15/888,847
Granted
Nov 3, 2020
Kind
B2
Abstract

A DC-to-DC power converter includes a reference voltage generator and a tangible, non-transitory, computer-readable memory. The memory stores a temperature coefficient, and the temperature coefficient is based upon a temperature response of said reference voltage generator over a range of temperatures. The DC-to-DC power converter also includes a controller coupled to the reference voltage generator and the memory and operable to retrieve the temperature coefficient from the memory, and adjust an output voltage of the DC-to-DC power converter based upon the temperature coefficient.

Claims (30)

1. A DC-to-DC power converter comprising:

a tangible, non-transitory, computer-readable memory storing a calibrated temperature coefficient associated with the DC-to-DC power converter, the calibrated temperature coefficient based upon output voltage responses of the DC-to-DC power converter over a range of operating temperatures, wherein the calibrated temperature coefficient indicates an amount of an output voltage shift per degree Celsius; and

a controller coupled to said memory, said controller comprising a proportional-integral-derivative (PID) controller, said controller configured to:

retrieve the calibrated temperature coefficient from said memory;

adjust an output voltage of said DC-to-DC power converter based upon the calibrated temperature coefficient; and

calculate a modified error value, e(t), for use with a PID control algorithm, the modified error value calculated as follows: e(t)=Vref−Vfb+(TempCo*Tsense), where Vref is a reference voltage, Vfb is a feedback voltage, TempCo is the calibrated temperature coefficient, and Tsense is a temperature sense signal indicative of a temperature of said DC-to-DC power converter.

2. The DC-to-DC power converter of claim 1 , further comprising a reference voltage generator operable to generate the reference voltage, wherein said controller is further operable to adjust the output voltage of said DC-to-DC power converter based upon the reference voltage.

3. The DC-to-DC power converter of claim 1 , wherein said controller is further operable to adjust the output voltage of said DC-to-DC power converter based upon a temperature of said DC-to-DC power converter.

4. The DC-to-DC power converter of claim 1 , wherein said controller is further operable to retrieve a droop coefficient from said memory, and adjust the output voltage of said DC-to-DC power converter based upon the droop coefficient.

5. The DC-to-DC power converter of claim 1 , wherein said controller is further operable to adjust the output voltage of said DC-to-DC power converter without a droop coefficient based upon an average of an output current of said DC-to-DC power converter and an output current of another DC-to-DC power converter electrically connected in parallel with said DC-to-DC power converter.

6. The DC-to-DC power converter of claim 1 , wherein the calibrated temperature coefficient has a negative value.

7. A DC-to-DC power converter comprising:

a temperature sensor operable to generate a temperature sense signal indicative of a temperature of said DC-to-DC power converter;

a reference voltage generator operable to generate a reference voltage;

a tangible, non-transitory, computer-readable memory storing a temperature coefficient associated with the DC-to-DC power converter, the temperature coefficient based upon output voltage responses of the DC-to-DC power converter over a range of operating temperatures; and

a controller coupled to said temperature sensor, said reference voltage generator, and said memory, said controller comprising a proportional-integral-derivative (PID) controller, said controller operable to:

receive the temperature sense signal;

receive the reference voltage;

retrieve the temperature coefficient from said memory;

control said DC-to-DC power converter based upon the temperature sense signal, the reference voltage, and the temperature coefficient; and

calculate a modified error value, e(t), for use with a PID control algorithm, the modified error value calculated as follows: e(t)=Vref−Vfb+(TempCo*Tsense), where Vref is the reference voltage, Vfb is a feedback voltage, TempCo is the temperature coefficient, and Tsense is the temperature sense signal.

8. The DC-to-DC power converter of claim 7 , wherein the temperature coefficient has a negative value.

9. The DC-to-DC power converter of claim 7 , wherein said controller is further operable to adjust the output voltage of said DC-to-DC power converter based upon an average of an output current of said DC-to-DC power converter and an output current of another DC-to-DC power converter electrically connected in parallel with said DC-to-DC power converter.

10. A system of paralleled DC-to-DC power converters, said system comprising:

a first DC-to-DC power converter comprising a first controller operable to adjust an output voltage of said first DC-to-DC power converter based upon a first temperature coefficient associated with the first DC-to-DC power converter, the first temperature coefficient based upon output voltage responses of the first DC-to-DC power converter over a range of temperatures, wherein the first controller is further operable to calculate a first modified error value, e1(t), for use with a proportional-integral-derivative (PID) control algorithm, the first modified error value calculated as follows: e1(t)=Vref1−Vfb1−[M1*(Io1−Iav)]+(TempCo1*Tsense1), where Vref1 is the first reference voltage, Vfb1 is the first feedback voltage, M1 is a gain of a first gain block, Io1 is the output current of the first DC-to-DC power converter, TempCo1 is the first temperature coefficient, and Tsense1 is the first temperature sense signal; and

a second DC-to-DC power converter comprising a second controller operable to adjust an output voltage of said second DC-to-DC power converter based upon a second temperature coefficient associated with the second DC-to-DC power converter, the second temperature coefficient based upon output voltage responses of the second DC-to-DC power converter over a range of temperatures, wherein the second temperature coefficient is different from the first temperature coefficient, wherein the second controller is further operable to calculate a second modified error value, e2(t), for use with a PID control algorithm, the second modified error value calculated as follows: e2(t)=Vref2−Vfb2−[M2*(Io2−Iav)]+(TempCo2*Tsense2), where Vref2 is the second reference voltage, Vfb2 is the second feedback voltage, M2 is a gain of a second gain block, Io2 is the output current of the second DC-to-DC power converter, TempCo2 is the second temperature coefficient, and Tsense2 is the second temperature sense signal.

11. The system of claim 10 , wherein said first controller is further operable to adjust the output voltage of said first DC-to-DC power converter based upon a first reference voltage, a first feedback voltage, and a first temperature sense signal that indicates a temperature of said first DC-to-DC power converter.

12. The system of claim 11 , wherein said first controller is further operable to adjust the output voltage of said first DC-to-DC power converter based upon a droop coefficient.

13. The system of claim 11 , wherein said first controller is further operable to adjust the output voltage of said first DC-to-DC power converter, without the use of droop control, based upon an average of an output current of said first DC-to-DC power converter and an output current of said second DC-to-DC power converter.

14. The system of claim 10 , wherein said second controller is further operable to adjust the output voltage of said second DC-to-DC power converter based upon a second reference voltage, a second feedback voltage, and a second temperature sense signal that indicates a temperature of said second DC-to-DC power converter.

Assignments (6)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 6, 2023
From: ABB SCHWEIZ AG
To: ACLEAP POWER INC.
Reel/Frame 064819/0383 →
CORRECTIVE ASSIGNMENT TO CORRECT THE THE ADDRESS OF THE ASSIGNEE PREVIOUSLY RECORDED AT REEL: 063410 FRAME: 0501. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jul 11, 2023
From: ABB POWER ELECTRONICS INC.
To: ABB SCHWEIZ AG
Reel/Frame 064671/0156 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 20, 2023
From: ABB POWER ELECTRONICS INC.
To: ABB SCHWEIZ AG
Reel/Frame 063410/0501 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 16, 2020
From: ABB SCHWEIZ AG
To: ABB POWER ELECTRONICS INC.
Reel/Frame 052422/0528 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2018
From: INDUSTRIAL CONNECTIONS & SOLUTIONS, LLC
To: ABB SCHWEIZ AG
Reel/Frame 047626/0938 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 5, 2018
From: HANDE, ABHIMAN ANANTHAKRISHNA; MASSETTI, RICHARD PAUL, JR.; DUBECKY, MARK ANDREW
To: INDUSTRIAL CONNECTIONS & SOLUTIONS LLC
Reel/Frame 044834/0690 →
Continuity (1)
Related Publication 20190243398A1 · Aug 8, 2019
Cited By (1)
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