Inverter grid-connected system and method for implementing three-phase alternating current grid-connected transition
09716445 ยท 2017-07-25
Assignee
Inventors
- Chih-Chang Li (Taoyuan County, TW)
- Wei-Lun Hsin (Taoyuan County, TW)
- Xin-Hung Lin (Taoyuan County, TW)
Cpc classification
H02J3/26
ELECTRICITY
Y02E40/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E10/56
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02J3/40
ELECTRICITY
International classification
H02M7/537
ELECTRICITY
H02J3/26
ELECTRICITY
H02J3/40
ELECTRICITY
Abstract
A controller controls a first switch, a second switch, a third switch, a fourth switch, a fifth switch and a sixth switch, so that an alternating current electric power is fed to an alternating current electric grid. Moreover, the controller firstly turns on a first route including the first switch and the second switch, and then the controller turns on a second route including the third switch and the fourth switch if the second route meets a first specific condition, and then the controller turns on a third route including the fifth switch and the sixth switch if the third route meets a second specific condition.
Claims
1. An inverter grid-connected system applied to feed an alternating current electric power to a three-phase alternating current electric grid, the inverter grid-connected system comprising: an inverter module converting a direct current electric power into the alternating current electric power; a switching module coupled between the inverter module and the three-phase alternating current electric grid, the switching module comprising a first switch, a second switch, a third switch, a fourth switch, a fifth switch and a sixth switch, the first switch connected to the second switch in series to form a first route, the third switch connected to the fourth switch in series to form a second route, the fifth switch connected to the sixth switch in series to form a third route; and a controller electrically connected to the switching module to control the switching module, so that the alternating current electric power is fed to the three-phase alternating current electric grid, wherein the controller firstly turns on the first route, and then the controller turns on the second route if the third switch and the fourth switch in the second route meet a first specific condition, and then the controller turns on the third route if the fifth switch and the sixth switch in the third route meet a second specific condition.
2. The inverter grid-connected system in claim 1, wherein the first specific condition is that a voltage level of a side of the inverter module connected to the second route is equal to a voltage level of a side of the three-phase alternating current electric grid connected to the second route.
3. The inverter grid-connected system in claim 1, wherein the second specific condition is that a voltage level of a side of the inverter module connected to the third route is equal to a voltage level of a side of the three-phase alternating current electric grid connected to the third route.
4. The inverter grid-connected system in claim 1, wherein a first relay is composed of the first switch and the third switch; when the first relay is turned on, the first switch and the third switch are turned on at the same time.
5. The inverter grid-connected system in claim 4, wherein a second relay is composed of the second switch and the sixth switch; when the second relay is turned on, the second switch and the sixth switch are turned on at the same time.
6. The inverter grid-connected system in claim 5, wherein after the first relay is turned on, the second relay is turned on.
7. The inverter grid-connected system in claim 6, wherein the first specific condition is that voltages of two sides of the fourth switch are equal.
8. The inverter grid-connected system in claim 6, wherein the second specific condition is that voltages of two sides of the fifth switch are equal.
9. The inverter grid-connected system in claim 5, wherein the first relay and the second relay are turned on at the same time.
10. The inverter grid-connected system in claim 9, wherein the first specific condition is that voltages of two sides of the fourth switch are equal.
11. The inverter grid-connected system in claim 9, wherein the second specific condition is that voltages of two sides of the fifth switch are equal.
12. The inverter grid-connected system in claim 1, further comprising: a voltage level adjusting module electrically connected to the inverter module to provide a direct current input voltage with the inverter module; and a filter electrically connected to the inverter module and the switching module to filter the alternating current electric power.
13. A method for implementing three-phase alternating current grid-connected transition used to feed an alternating current electric power generated by an inverter module to a three-phase alternating current electric grid, the method comprising: (a) turning on a first route comprising a first switch connected to a second switch in series between the inverter module and the three-phase alternating current electric grid; (b) turning on a second route comprising a third switch connected to a fourth switch in series between the inverter module and the three-phase alternating current electric grid after turning on the first route if a first specific condition is met; and (c) turning on a third route comprising a fifth switch connected to a sixth switch in series between the inverter module and the three-phase alternating current electric grid after turning on the first route or the second route if a second specific condition is met.
14. The method in claim 13, wherein the first specific condition is that a voltage level of a side of the inverter module connected to the second route is equal to a voltage level of a side of the three-phase alternating current electric grid connected to the second route.
15. The method in claim 13, wherein the second specific condition is that a voltage level of a side of the inverter module connected to the third route is equal to a voltage level of a side of the three-phase alternating current electric grid connected to the third route.
Description
BRIEF DESCRIPTION OF DRAWING
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DETAILED DESCRIPTION OF THE INVENTION
(11) Please refer to following detailed description and figures for the technical content of the present invention. The following detailed description and figures are referred for the present invention, but the present invention is not limited to it.
(12) The present invention provides an inverter grid-connected system and a method for implementing three-phase alternating current grid-connected transition. The present invention can effectively avoid generating the inrush current when the inverter grid-connected system is connected to the alternating current electric grid. Therefore, the probability of the damage of the switching module is reduced, so that the life of the switching module is prolonged. The inverter grid-connected system is used for converting a direct current electric power into an alternative current electric power and fed the alternative current electric power to the alternative current electric grid, and the direct current electric power may be provided by photovoltaics or battery. Thereafter, the inverter grid-connected system is exemplified by a photovoltaic inverter grid-connected system.
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(14) The photovoltaic inverter grid-connected system 3 comprises a voltage level adjusting module 30, an inverter module 32, a filter 34 and a switching module 36.
(15) The voltage level adjusting module 30 is electrically connected to the direct current voltage source Vin. As shown in
(16) The inverter module 32 is electrically connected to the voltage level adjusting module 30. The inverter module 32 converts the direct current electric power supplied by the direct current voltage source Vin into an alternating current electric power and feeds the alternating current electric power to the alternating current electric grid 2 after the grid-connection between the photovoltaic inverter grid-connected system 3 and the alternating current electric grid 2 is successful. The filter 34 is electrically connected to the inverter module 32 and is used to filter noises in the alternating current electric power.
(17) The switching module 36 is coupled between the filter 34 and the alternating current electric grid 2. The switching module 36 comprises a first switch S1, a second switch S2, a third switch S3, a fourth switch S4, a fifth switch S5 and a sixth switch S6. Two of these switches S1S6 of the switching module 36 are connected in series between the filter 34 and the alternating current electric grid 2 to provide the single fault protection mechanism to avoid damaging the alternating current electric grid 2 and people in the single fault situation. As shown in
(18) In an embodiment, a first relay 360 is composed of the first switch S1 and the third switch S3. When the first relay 360 is turned on, the first switch S1 and the third switch S3 are turned on at the same time. A second relay 362 is composed of the second switch S2 and the sixth switch S6. When the second relay 362 is turned on, the second switch S2 and the sixth switch S6 are turned on at the same time.
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(20) Firstly, the first route is turned on (step S301). As shown in
(21) Moreover, the controller 38 turns on the first switch S1 and the third switch S3 firstly, and then the controller 38 turns on the second switch S2 and the sixth switch S6. In another word, the controller 38 turns on the first relay 360 firstly, and then the controller 38 turns on the second relay 362.
(22) In another embodiment of the present invention, the controller 38 turns on the first switch S1, the second switch S2, the third switch S3 and the sixth switch S6 at the same time. In another word, the first relay 360 and the second relay 362 are turned on at the same time.
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(24) As shown in
(25) In another embodiment of the present invention, the switching module 36 comprises six switches independently controlled. The controller 38 firstly turns on the first switch S1 and the second switch S2 to turn on the first route. Then, the controller 38 turns on the third switch S3 and the fourth switch S4 at the same time to turn on the second route when the voltage difference between the first phase side and the second phase side of the alternating current electric grid 2 meets the first specific condition VRVS=0. The feature of the present invention is the order of the conduction routes and the timing, but not limited to the order of the turning-on of the switches.
(26) Although the present invention has been described with reference to the preferred embodiment thereof, it will be understood that the invention is not limited to the details thereof. Various substitutions and modifications have been suggested in the foregoing description, and others will occur to those of ordinary skill in the art. Therefore, all such substitutions and modifications are intended to be embraced within the scope of the invention as defined in the appended claims.