IP Library Granted Patent US 12,562,575
Granted Patent B2
US 12,562,575 · App. 18/619,287 · Granted Feb 24, 2026

Photovoltaic inverter and control method thereof, and photovoltaic system

Inventors: Gang Xiao (Shenzhen, CN); Chongyue Huang (Shanghai, CN); Guilei Gu (Shanghai, CN); Zhengang Song (Xi'an, CN); Wentao Liu (Xi'an, CN); Xuegong Li (Xi'an, CN)
Assignee: Huawei Digital Power Technologies Co., Ltd.
H02J3/38H02J3/28H02M1/0067H02M7/483H02J2300/26
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Quick Facts
Patent No.
US 12,562,575
App. No.
18/619,287
Granted
Feb 24, 2026
Kind
B2
Abstract

A photovoltaic inverter and a control method thereof, and a photovoltaic system. The photovoltaic inverter system includes a voltage conversion circuit, an inverter circuit, and a controller. The controller is configured to increase, based on an output power of the inverter circuit in a current time period and an output power of the inverter circuit in a first time period, an output power of the inverter circuit when the voltage conversion circuit does not work in a maximum power state. An increase of the output power of the inverter circuit is an estimated power increment value of the inverter circuit so as to stably increase an output power of the inverter while ensuring stable operation of the inverter and safe use of a power component, and improve power supply efficiency of the photovoltaic system.

Claims (71)

1 . A photovoltaic inverter, comprising:

a voltage conversion circuit,

an inverter circuit, and

a controller,

one end of the voltage conversion circuit is configured to connect to a photovoltaic module, the other end of the voltage conversion circuit is configured to connect to one end of the inverter circuit, the other end of the inverter circuit is configured to connect to a power grid, and the inverter circuit and the power grid are connected to a grid-connected point;

the voltage conversion circuit is configured to output, to the inverter circuit, a direct current input by the photovoltaic module;

the inverter circuit is configured to:

receive the direct current output by the voltage conversion circuit,

convert the received direct current output by the voltage conversion circuit into an alternating current, and

output the alternating current to the power grid; and the controller is configured to

increase, based on an output power of the inverter circuit in a current time period and an output power of the inverter circuit in a first time period, an output power of the inverter circuit when the voltage conversion circuit does not work in a maximum power state, wherein an increase in the output power of the inverter circuit is an estimated power increment value of the inverter circuit, the estimated power increment value of the inverter circuit is in direct proportion to a difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period, and the first time period is before the current time period, and

obtain a first threshold based upon the estimated power increment value, wherein the first threshold determines whether a capability of outputting electric energy by the voltage conversion circuit is strong.

2 . The photovoltaic inverter according to claim 1 , wherein the other end of the voltage conversion circuit is configured to;

connect to an energy storage unit, and

output, to the energy storage unit, the direct current input by the photovoltaic module; and the inverter circuit is further configured to:

receive the direct current output by the energy storage unit, and

convert the received direct current output by the energy storage unit into an alternating current, and output the alternating current to the power grid.

3 . The photovoltaic inverter according to claim 1 , wherein the controller is further configured to:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is less than the first threshold, set the estimated power increment value of the inverter circuit to a first power increment value.

4 . The photovoltaic inverter according to claim 3 , wherein the controller is further configured to:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is greater than or equal to the first threshold, and a difference between the output power of the inverter circuit in the current time period and an output power of the inverter circuit in a second time period is less than a second threshold, set the estimated power increment value of the inverter circuit to a second power increment value, wherein the second time period is before the first time period, and the second power increment value is greater than the first power increment value.

5 . The photovoltaic inverter according to claim 4 , wherein the controller is further configured to:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is greater than or equal to the first threshold, and the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the second time period is greater than or equal to the second threshold, set the estimated power increment value of the inverter circuit to a third power increment value, wherein the third power increment value is greater than the second power increment value.

6 . The photovoltaic inverter according to claim 4 , wherein the controller is configured to set the estimated power increment value of the inverter circuit to a fourth power increment value when the voltage conversion circuit switches from the maximum power state to a non-maximum power state, wherein the fourth power increment value is less than the second power increment value.

7 . A photovoltaic system, comprising:

one or more photovoltaic inverters, wherein each of the photovoltaic inverter comprises a voltage conversion circuit, an inverter circuit, and a controller, one end of the voltage conversion circuit is configured to connect to a photovoltaic module, the other end of the voltage conversion circuit is configured to connect to one end of the inverter circuit, the other end of the inverter circuit is configured to connect to a power grid, and the inverter circuit and the power grid are connected to a grid-connected point;

the voltage conversion circuit is configured to output, to the inverter circuit, a direct current input by the photovoltaic module;

the inverter circuit is configured to:

receive the direct current output by the voltage conversion circuit,

convert the received direct current output by the voltage conversion circuit into an alternating current, and

output the alternating current to the power grid; and

the controller is configured to

increase, based on an output power of the inverter circuit in a current time period and an output power of the inverter circuit in a first time period, an output power of the inverter circuit when the voltage conversion circuit does not work in a maximum power state, wherein an increase in the output power of the inverter circuit is an estimated power increment value of the inverter circuit, the estimated power increment value of the inverter circuit is in direct proportion to a difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period, and the first time period is before the current time period, and

obtain a first threshold based upon the estimated power increment value, wherein the first threshold determines whether a capability of outputting electric energy by the voltage conversion circuit is strong.

8 . The photovoltaic inverter according to claim 7 , wherein the other end of the voltage conversion circuit is further configured to:

connect to an energy storage unit, and

output, to the energy storage unit, the direct current input by the photovoltaic module; and the inverter circuit is further configured to:

receive the direct current output by the energy storage unit, and

convert the received direct current output by the energy storage unit into an alternating current, and output the alternating current to the power grid.

9 . The photovoltaic inverter according to claim 7 , wherein the controller is further configured to:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is less than the first threshold, set the estimated power increment value of the inverter circuit to a first power increment value.

10 . The photovoltaic inverter according to claim 9 , wherein the controller is further configured to:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is greater than or equal to the first threshold, and a difference between the output power of the inverter circuit in the current time period and an output power of the inverter circuit in a second time period is less than a second threshold, set the estimated power increment value of the inverter circuit to a second power increment value, wherein the second time period is before the first time period, and the second power increment value is greater than the first power increment value.

11 . The photovoltaic inverter according to claim 10 , wherein the controller is further configured to:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is greater than or equal to the first threshold, and the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the second time period is greater than or equal to the second threshold, set the estimated power increment value of the inverter circuit to a third power increment value, wherein the third power increment value is greater than the second power increment value.

12 . The photovoltaic inverter according to claim 10 , wherein the controller is further configured to:

set the estimated power increment value of the inverter circuit to a fourth power increment value when the voltage conversion circuit switches from the maximum power state to a non-maximum power state, wherein the fourth power increment value is less than the second power increment value.

13 . A control method of a photovoltaic inverter, wherein the control method is applicable to a photovoltaic inverter, and the photovoltaic inverter comprises a voltage conversion circuit, an inverter circuit, and a controller;

one end of the voltage conversion circuit is configured to connect to a photovoltaic module, the other end of the voltage conversion circuit is configured to connect to one end of the inverter circuit, the other end of the inverter circuit is configured to connect to a load and a power grid, and the inverter circuit and the power grid are connected to a grid-connected point;

the voltage conversion circuit is configured to output, to the inverter circuit, a direct current input by the photovoltaic module; and

the inverter circuit is configured to:

receive the direct current output by the voltage conversion circuit,

convert the received direct current output by the voltage conversion circuit into an alternating current, and

output the alternating current to the power grid; and

the method comprises:

increasing, based on an output power of the inverter circuit in a current time period and an output power of the inverter circuit in a first time period, an output power of the inverter circuit when the voltage conversion circuit does not work in a maximum power state, wherein an increase in the output power of the inverter circuit is an estimated power increment value of the inverter circuit, the estimated power increment value of the inverter circuit is in direct proportion to a difference between the output power in the current time period and the output power in the first time period, and the first time period is before the current time period; and

obtaining a first threshold based upon the estimated power increment value, wherein the first threshold determines whether a capability of outputting electric energy by the voltage conversion circuit is strong.

14 . The control method according to claim 13 , wherein the other end of the voltage conversion circuit is further configured to:

connect to an energy storage unit, and

output, to the energy storage unit, the direct current input by the photovoltaic module; and the inverter circuit is further configured to:

receive the direct current output by the energy storage unit, and

convert the received direct current output by the energy storage unit into an alternating current, and

output the alternating current to the power grid.

15 . The control method according to claim 13 , wherein increasing, based on the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period, the output power of the inverter circuit when the voltage conversion circuit does not work in a maximum power state, comprises:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is less than the first threshold, setting the estimated power increment value of the inverter circuit to a first power increment value.

16 . The control method according to claim 15 , wherein increasing, based on the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period, the output power of the inverter circuit when the voltage conversion circuit does not work in the maximum power state, comprises:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is greater than or equal to the first threshold, and a difference between the output power of the inverter circuit in the current time period and an output power of the inverter circuit in a second time period is less than a second threshold, setting the estimated power increment value of the inverter circuit to a second power increment value, wherein the second time period is before the first time period, and the second power increment value is greater than the first power increment value.

17 . The control method according to claim 16 , wherein increasing, based on the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period, the output power of the inverter circuit when the voltage conversion circuit does not work in the maximum power state, comprises:

when the voltage conversion circuit does not work in the maximum power state, if the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the first time period is greater than or equal to the first threshold, and the difference between the output power of the inverter circuit in the current time period and the output power of the inverter circuit in the second time period is greater than or equal to the second threshold, setting the estimated power increment value of the inverter circuit to a third power increment value, wherein the third power increment value is greater than the second power increment value.

18 . The control method according to claim 16 , further comprising:

setting the estimated power increment value of the inverter circuit to a fourth power increment value when the voltage conversion circuit switches from the maximum power state to a non-maximum power state, wherein the fourth power increment value is less than the second power increment value.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2025
From: XIAO, GANG; HUANG, CHONGYUE; GU, GUILEI; SONG, ZHENGANG; LIU, WENTAO; LI, XUEGONG
To: HUAWEI DIGITAL POWER TECHNOLOGIES CO., LTD.
Reel/Frame 072771/0724 →
Priority Claims (1)
CN 202310533497.2 · May 11, 2023 · national
Continuity (1)
Related Publication 20240380212A1 · Nov 14, 2024
References Cited (18)
US 5327335A · Maddali · 1994 [cited by examiner]
US 9698710B2 · Kataoka et al. · 2017 [cited by applicant]
US 10705551B2 · Adest et al. · 2020 [cited by applicant]
US 10749446B2 · Gong · 2020 [cited by examiner]
US 20120047386A1 · Matsui · 2012 [cited by examiner]
US 20120235484A1 · Yamada · 2012 [cited by examiner]
US 20150244255A1 · Chen · 2015 [cited by examiner]
US 20190173287A1 · Ge · 2019 [cited by examiner]
US 20200403412A1 · Kang · 2020 [cited by examiner]
US 20230187994A1 · Zhou · 2023 [cited by examiner]
US 20240364117A1 · Belur · 2024 [cited by examiner]
US 20250062619A1 · Zhang · 2025 [cited by examiner]
US 20250087993A1 · Yang · 2025 [cited by examiner]
CN 104113079A · 2014 [cited by applicant]
CN 107330566A · 2017 [cited by applicant]
CN 110034570A · 2019 [cited by applicant]
CN 112531771A · 2021 [cited by applicant]
WO 2015011781A1 · 2015 [cited by applicant]