IP Library Granted Patent US 9,685,886
Granted Patent B2
US 9,685,886 · App. 14/342,381 · Granted Jun 20, 2017

Photovoltaic DC/AC inverter with cascaded H-bridge converters

Inventor: Tomas Modeer (Stockholm, SE)
Assignee: OPTISTRING TECHNOLOGIES AB
H02M7/49H02J3/383H02M7/5387H02S40/32Y02E10/563Y10T307/707
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Quick Facts
Patent No.
US 9,685,886
App. No.
14/342,381
Granted
Jun 20, 2017
Kind
B2
Abstract

The present invention relates to a DC-AC inverter comprising a plurality of H-bridge converters, each being arranged to be integrated with a respective photovoltaic element and to be supplied with a DC voltage from the photovoltaic element, the H-bridge converters further being cascaded to produce a multilevel voltage output (Vout). The DC-AC inverter further comprises switch control circuitry connected to each one of the plurality of H-bridge converters to control switching thereof for producing the multilevel voltage output, and a central adaptation unit connected to the cascaded H-bridge converter for adapting the multilevel voltage output such that an AC grid voltage is output from the DC-AC inverter.

Claims (30)

1. A DC-AC inverter ( 100 ) comprising:

a plurality of H-bridge converters ( 101 , 102 , 103 , 104 ), each being arranged to be integrated with a respective photovoltaic element and to be supplied with a DC voltage (V DC1 , V DC2 , V DC3 , V DC4 ) from the photovoltaic element, the H-bridge converters further being cascaded to produce a multilevel voltage output (V OUT );

switch control circuitry ( 107 ) connected to each one of the plurality of cascaded H-bridge converters to control switching thereof for producing said multilevel voltage output; and

a central adaptation unit ( 105 ) connected to each one of the cascaded H-bridge converters, via a communications channel via which control signals are transferred from the central adaptation unit to each respective H-bridge converter, and connected to the switch control circuitry, for adapting the multilevel voltage output such that an AC grid voltage (V AC ) is output from the DC-AC inverter, the DC-AC inverter being characterized in that:

each one of the H-bridge converters ( 101 , 102 , 103 , 104 ) further comprises:

a switch (S 1 , S 2 , S 3 , S 4 ) arranged at its input which can be selectably operated to connect and disconnect the H-bridge converter from the photovoltaic element; and

a capacitive storage (C 1 , C 2 , C 3 , C 4 ) arranged to produce, from power transferred to the capacitive storage from remaining connected H-bridge converters, a required output voltage for the respective H-bridge converter when said respective H-bridge converter is disconnected, by the switch operated by the switch control circuitry based on control signals from the central adaptation unit, from its photovoltaic element.

2. The DC-AC inverter ( 100 ) according to claim 1 , wherein each H-bridge converter ( 101 , 102 , 103 , 104 ) is connected to the central adaptation unit ( 105 ), via a power transfer path via which the multilevel voltage output (V OUT ) of the cascaded H-bridge converter is transferred to the central unit.

3. The DC-AC inverter ( 100 ) according to claim 1 , wherein each H-bridge converter ( 101 , 102 , 103 , 104 ) is connected to the central adaptation unit ( 105 ), via a two-conductor cable comprising the communication channel via which the control signals are transferred from the central unit to each respective H-bridge converter, and a power transfer path via which the multilevel voltage output (V OUT ) of the cascaded H-bridge converter is transferred to the central unit.

4. The DC-AC inverter ( 100 ) according to claim 1 , wherein said communication channel is wireless.

5. The DC-AC inverter ( 100 ) according to claim 1 , wherein the switch control circuitry is a microcontroller ( 107 ), and each H-bridge converter ( 101 ) is arranged with an individual microcontroller for controlling switching thereof.

6. The DC-AC inverter ( 100 ) according to claim 5 , wherein each one of the plurality of H-bridge converters ( 101 ) and the respective individual microcontroller ( 107 ) is mounted on a printed circuit board ( 106 ) arranged to be integrated with the corresponding photovoltaic element, and the central adaptation unit ( 105 ) is arranged remotely from the printed circuit boards.

7. The DC-AC inverter ( 100 ) according to claim 5 , wherein each printed circuit board ( 106 ) is arranged in a junction box of the corresponding photovoltaic element.

8. The DC-AC inverter ( 100 ) according to claim 1 , wherein the central adaptation unit ( 105 ) comprises an inductor (L 1 ) connected to the cascaded H-bridge converter for adapting the multilevel voltage output such that an AC grid voltage (V AC ) is output from the DC-AC inverter.

9. A photovoltaic system ( 200 ) comprising:

a plurality of photovoltaic elements ( 108 , 109 , 110 , 111 );

a DC-AC inverter comprising:

a plurality of H-bridge converters ( 101 , 102 , 103 , 104 ), each being arranged to be integrated with a respective one of the plurality of photovoltaic element and to be supplied with a DC voltage (V DC1 , V DC2 , V DC3 , V DC4 ) from said respective photovoltaic element, the H-bridge converters further being cascaded to produce a multilevel voltage output (V OUT );

switch control circuitry ( 107 ) connected to each one of the plurality of cascaded H-bridge converters to control switching thereof for producing said multilevel voltage output; and

a central adaptation unit ( 105 ) connected to each one of the cascaded H-bridge converters, via a communications channel via which control signals are transferred from the central adaptation unit to each respective H-bridge converter, and connected to the switch control circuitry, for adapting the multilevel voltage output such that an AC grid voltage (V AC ) is output from the DC-AC inverter, the photovoltaic system being characterized in that

each one of the H-bridge converters ( 101 , 102 , 103 , 104 ) further comprises:

a switch (S 1 , S 2 , S 3 , S 4 ) arranged at its input which can be selectably operated to connect and disconnect the H-bridge converter from the photovoltaic element; and

a capacitive storage (C 1 , C 2 , C 3 , C 4 ) arranged to produce, from power transferred from remaining connected H-bridge converters, a required output voltage for the respective H-bridge converter when said respective H-bridge converter is disconnected by the switch operated by the switch control circuitry based on control signals from the central adaptation unit, from its photovoltaic element.

10. The photovoltaic system ( 200 ) according to claim 9 , wherein each H-bridge converter ( 101 , 102 , 103 , 104 ) is connected to the central adaptation unit ( 105 ), via a power transfer path via which the multilevel voltage output (V OUT ) of the cascaded H-bridge converter is transferred to the central unit.

11. The photovoltaic system ( 200 ) according to claim 9 , wherein each H-bridge converter ( 101 , 102 , 103 , 104 ) is connected to the central adaptation unit ( 105 ), via a two-conductor cable comprising the communication channel via which the control signals are transferred from the central unit to each respective H-bridge converter, and a power transfer path via which the multilevel voltage output (V OUT ) of the cascaded H-bridge converter is transferred to the central unit.

12. The photovoltaic system ( 200 ) according to claim 9 , wherein said communication channel is wireless.

13. The photovoltaic system ( 200 ) according to claim 9 , wherein the switch control circuitry is a microcontroller ( 107 ), and each H-bridge converter ( 101 ) is arranged with an individual microcontroller for controlling switching thereof.

14. The photovoltaic system ( 200 ) according to claim 13 , wherein each one of the plurality of H-bridge converters ( 101 ) and the respective individual microcontroller ( 107 ) is mounted on a printed circuit board ( 106 ) arranged to be integrated with the corresponding photovoltaic element, and the central adaptation unit ( 105 ) is arranged remotely from the printed circuit boards.

15. The photovoltaic system ( 200 ) according to claim 13 , wherein each printed circuit board ( 106 ) is arranged in a junction box of the corresponding photovoltaic element.

16. The photovoltaic system ( 200 ) according to claim 9 , wherein the central adaptation unit ( 105 ) comprises an inductor (L 1 ) connected to the cascaded H-bridge converter for adapting the multilevel voltage output such that an AC grid voltage (V AC ) is output from the DC-AC inverter.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2020
From: ABB SCHWEIZ AG
To: MARICI HOLDINGS THE NETHERLANDS B.V.
Reel/Frame 054205/0806 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 16, 2017
From: OPTISTRING TECHNOLOGIES AB
To: ABB SCHWEIZ AG
Reel/Frame 044288/0919 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2014
From: MODEER, TOMAS
To: OPTISTRING TECHNOLOGIES AB
Reel/Frame 033421/0133 →
Priority Claims (1)
SE 1150791 · Aug 31, 2011 · national
Continuity (2)
Provisional Application 61533241 · Sep 11, 2011
Related Publication 20150340964A1 · Nov 26, 2015