IP Library Granted Patent US 11,967,654
Granted Patent B2
US 11,967,654 · App. 17/994,478 · Granted Apr 23, 2024

Distributed maximum power point tracking system, structure and process

Inventors: Argil E. Shaver, II (Menlo Park, CA); Ronald M. Newdoll (Woodside, CA)
Assignee: Solaredge Technologies Ltd.
H01L31/02021H02H9/041H02J3/38H02J3/381H02J2300/26Y02A30/60Y02E10/56
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Quick Facts
Patent No.
US 11,967,654
App. No.
17/994,478
Granted
Apr 23, 2024
Kind
B2
Abstract

Distributed maximum power point tracking systems, structures, and processes are provided for power generation structures, such as for but not limited to a solar panel arrays. In an exemplary solar panel string structure, distributed maximum power point tracking (DMPPT) modules are provided, such as integrated into or retrofitted for each solar panel. The DMPPT modules provide panel level control for startup, operation, monitoring, and shutdown, and further provide flexible design and operation for strings of multiple panels. The strings are typically linked in parallel to a combiner box, and then toward and enhanced inverter module, which is typically connected to a power grid. Enhanced inverters are controllable either locally or remotely, wherein system status is readily determined, and operation of one or more sections of the system are readily controlled. The system provides increased operation time, and increased power production and efficiency, over a wide range of operating conditions.

Claims (30)

1. A power device comprising:

a direct current (DC) input connection coupled to one or more DC power sources;

DC output terminals;

a controller coupled to the DC input connection and the DC output terminals; and

a circuitry, coupled to the DC output terminals, wherein, in the absence of the controller receiving a signal from a server, the controller is configured to create a bypass between the DC output terminals.

2. The power device of claim 1 , wherein the circuitry is configured to create the bypass based on that no power is produced from the one or more DC power sources.

3. The power device of claim 1 , wherein the circuitry comprises a crowbar circuit and the controller is configured to drive the crowbar circuit to short the DC output terminals in absence of the controller receiving the signal from the server.

4. The power device of claim 1 , wherein the circuitry is configured to create the bypass based on a voltage or a current at or between the DC output terminals being above a threshold.

5. The power device of claim 1 , further comprising output capacitors, wherein the circuitry is configured to, based on the power device having been shut down, discharge the output capacitors.

6. The power device of claim 1 , wherein the controller is configured to shut down operation of the power device, based on a second signal received from the server.

7. The power device of claim 1 , wherein the controller is configured to shut down operation of the power device, based on an absence of a communication signal.

8. The power device of claim 1 , wherein the circuitry comprises a silicon controlled rectifier (SCR).

9. The power device of claim 1 , further comprising a maximum power point tracking module configured to:

provide maximum power point tracking of the one or more DC power sources.

10. The power device of claim 9 , wherein the maximum power point tracking module is configured to communicate with the server.

11. The power device of claim 1 , wherein the controller is communicatively coupled to the server via a communication link and configured to adjust DC power received from the one or more DC power sources based on communication received from the server.

12. The power device of claim 1 , wherein the DC output terminals are coupled in series with DC output terminals of a plurality of other power devices.

13. The power device of claim 1 , wherein the circuitry comprises a switch.

14. The power device of claim 1 , wherein the controller is configured to create the bypass, based on a second signal received from the server.

15. A method comprising:

receiving input power from one or more DC power sources at an input terminal of a power device;

outputting power, based on the input power, at DC output terminals of the power device; and

in response to the absence of receiving a signal from a server, bypassing, using circuitry coupled to the DC output terminals, the DC output terminals.

16. The method of claim 15 , wherein the bypassing is based on that no power is produced from the one or more DC power sources.

17. The method of claim 15 , wherein the bypassing comprises using a controller to drive a crowbar circuit in order to bypass the DC output terminals in response to the absence of receiving the signal from the server.

18. The method of claim 15 , wherein the bypassing is based on a voltage or a current at or between the DC output terminals being above a threshold.

19. The method of claim 15 , further comprising:

tracking a maximum power point of the one or more DC power sources, wherein the DC output terminals are coupled in series with a plurality of power devices.

20. The method of claim 15 , further comprising:

shutting down operation of the power device, based on an absence of a communication signal.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 19, 2023
From: SHAVER, ARGIL E., II; NEWDOLL, RONALD M.
To: NEWDOLL ENTERPRISES LLC
Reel/Frame 062420/0039 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 19, 2023
From: ACCURATE SOLAR POWER, LLC
To: SOLAREDGE TECHNOLOGIES LTD.
Reel/Frame 062420/0050 →
CHANGE OF NAME Recorded Jan 19, 2023
From: NEWDOLL ENTERPRISES LLC
To: ACCURATE SOLAR POWER, LLC
Reel/Frame 062433/0601 →
Continuity (8)
Continuation 16840956 · Apr 6, 2020
Continuation 15722310 · Oct 2, 2017
Division 13866962 · Apr 19, 2013
Continuation 13250887 · Sep 30, 2011
Continuation 12842864 · Jul 23, 2010
Continuation 12056235 · Mar 26, 2008
Provisional Application 60908361 · Mar 27, 2007
Related Publication 20230090071A1 · Mar 23, 2023