IP Library Granted Patent US 11,720,135
Granted Patent B2
US 11,720,135 · App. 17/886,338 · Granted Aug 8, 2023

Systems and methods for quick dissipation of stored energy from input capacitors of power inverters

Inventors: Daniel Eizips (Sunnyvale, CA); Mordechay Avrutsky (Alfei Menashe, IL); Sergey Kondrashov (Los Gatos, CA)
Assignee: Tigo Energy, Inc.
G05F1/67H02J3/38H02J3/381H02M3/1582H02J2300/26H02M1/322Y02E10/56
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Quick Facts
Patent No.
US 11,720,135
App. No.
17/886,338
Granted
Aug 8, 2023
Kind
B2
Abstract

Methods and systems for connecting a photovoltaic module and an inverter having an input capacitor are presented. The photovoltaic system includes a maximum power point tracking (MPPT) controller coupled between the inverter and the photovoltaic module. The MPPT controller includes a direct current (DC) converter configured to reduce, in a forward buck mode, a voltage of the photovoltaic module, to supply power from the photovoltaic module to the input capacitor of the inverter. The photovoltaic system also includes a microcontroller unit (MCU) configured to control the DC converter to allow the photovoltaic module to operate at a maximum power point, and to increase, in a reverse boost mode, a voltage of the input capacitor of the inverter, to dissipate power from the input capacitor in the photovoltaic module, and the MPPT controller is configured to, based upon one or more triggers.

Claims (41)

1. A photovoltaic system for connecting to an inverter, the photovoltaic system comprising:

at least one photovoltaic module; and

a controller coupled between the inverter and the at least one photovoltaic module, wherein the controller includes:

a converter configured to reduce, in a forward buck mode, a voltage of the at least one photovoltaic module, to supply power from the at least one photovoltaic module to the inverter; and

a microcontroller unit (MCU) configured to control the converter to allow the at least one photovoltaic module to operate at a maximum power point,

wherein the controller is configured to change from the forward buck mode to a reverse boost mode using a soft-start approach to avoid a surge current.

2. The photovoltaic system of claim 1 , wherein a trigger of one or more triggers is an overvoltage condition.

3. The photovoltaic system of claim 1 , wherein a trigger of one or more triggers is an emergency shutdown signal.

4. The photovoltaic system of claim 1 , wherein a trigger of one or more triggers is the absence of a system OK signal.

5. The photovoltaic system of claim 1 , wherein the controller is further configured to change the buck converter from the forward buck mode to the reverse boost mode using a soft-start approach to avoid a surge current.

6. The photovoltaic system of claim 1 , wherein the controller is further configured to change between the reverse boost mode and the forward buck mode occurs on a pulse-by-pulse basis.

7. The photovoltaic system of claim 1 ,

wherein the controller is disposed with the inverter, and

wherein the inverter is one of a central inverter, a string inverter, and a micro-inverter in photovoltaic array including one or more strings of photovoltaic modules.

8. The photovoltaic system of claim 1 , further comprising:

an emergency shutdown disconnect configured to electrically disconnect the at least one photovoltaic module from the photovoltaic system,

wherein the emergency shutdown disconnect comprises one or more metal-oxide semiconductor field-effect transistors (MOSFETs).

9. The photovoltaic system of claim 1 , wherein the controller is further configured with a preset power dissipation limit for the at least one photovoltaic module.

10. The photovoltaic system of claim 9 , wherein the preset power dissipation limit is based on at least one of a photovoltaic module temperature, an ambient temperature, and a solar irradiance.

11. The photovoltaic system of claim 1 , wherein the converter includes at least one of a buck converter, a buck-boost converter, and a auk converter.

12. A photovoltaic system for connecting at least one photovoltaic module to an inverter, the photovoltaic system comprising:

a controller coupled between the inverter and the at least one photovoltaic module, wherein the controller includes:

a converter configured to reduce, in a forward buck mode, a voltage of at least one photovoltaic module, to supply power from the at least one photovoltaic module to the inverter; and

a microcontroller unit (MCU) configured to control the converter to allow the at least one photovoltaic module to operate at a maximum power point,

wherein the controller is configured to, based upon one or more triggers, automatically change the converter from the forward buck mode to a reverse boost mode to dissipate excess energy.

13. The photovoltaic system of claim 12 , wherein a trigger of the one or more triggers is an overvoltage condition.

14. The photovoltaic system of claim 12 , wherein a trigger of the one or more triggers is an emergency shutdown signal.

15. The photovoltaic system of claim 12 , wherein a trigger of the one or more triggers is the absence of a system OK signal.

16. The photovoltaic system of claim 12 , wherein the controller is further configured to change the converter from the forward buck mode to the reverse boost mode using a soft-start approach to avoid a surge current.

17. The photovoltaic system of claim 12 , wherein the converter includes at least one of a buck converter, a buck/boost converter, and a auk converter.

18. The photovoltaic system of claim 12 ,

wherein the controller is disposed with the inverter, and

wherein the inverter is one of a central inverter, a string inverter, and a micro-inverter in photovoltaic array including one or more strings of photovoltaic modules.

19. A method for transferring energy between at least one photovoltaic module and an inverter, the method comprising:

coupling a controller between the inverter and the at least one photovoltaic module, wherein the controller includes:

a converter configured to reduce, in a forward buck mode, a voltage of the at least one photovoltaic module, to supply power from the at least one photovoltaic module to the inverter; and

a microcontroller unit (MCU) configured to control the converter to allow the at least one photovoltaic module to operate at a maximum power point,

bucking, as controlled by the MCU, the voltage of the at least one photovoltaic module to the inverter via the converter in the forward buck mode to supply power to the inverter;

monitoring, by the MCU, one or more triggers for an emergency shutdown condition; and

changing, as controlled by the MCU, upon a determination by the MCU from the monitoring that an emergency shutdown condition has been met, the converter from the forward buck mode to a reverse boost mode.

20. The method of claim 19 , wherein the one or more triggers include at least one of an overvoltage condition, an emergency shutdown signal, and an absence of a system OK signal.

Assignments (3)
SECURITY INTEREST Recorded Mar 31, 2026
From: TIGO ENERGY, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 075306/0414 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 20, 2026
From: TIGO ENERGY, INC.
To: TIGO ENERGY INNOVATIONS LLC
Reel/Frame 074447/0465 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 11, 2022
From: EIZIPS, DANIEL; AVRUTSKY, MORDECHAY; KONDRASHOV, SERGEY
To: TIGO ENERGY, INC.
Reel/Frame 060789/0368 →
Continuity (4)
Continuation 16841408 · Apr 6, 2020
Continuation 15159699 · May 19, 2016
Provisional Application 62165672 · May 22, 2015
Related Publication 20220382313A1 · Dec 1, 2022
Cited By (1)
US 12,366,875