Method and device for damping of LCL filter during start-up of an electronic appliance
11575309 · 2023-02-07
Assignee
Inventors
Cpc classification
H02M7/48
ELECTRICITY
H02M7/483
ELECTRICITY
International classification
Abstract
An electronic appliance such as a low harmonic drive, an active rectifier, a grid converter or any active front end or grid converter with an LCL filter. The converter is a two-level, a three-level or a multilevel inverter. The electronic appliance includes an LCL filter on a grid side of the electronic appliance and an active front end rectifier provided on a load side of the electronic appliance. The LCL filter includes grid side inductors and an active front end rectifier is connected to the LCL filter. A method for damping a corresponding electronic appliance is also disclosed.
Claims
1. An electronic appliance comprising an LCL filter on a grid side of the electronic appliance and an active front end rectifier (AFE) on a load side of the electronic appliance, wherein the LCL filter comprises grid side inductors and the active front end rectifier (AFE) is connected to the LCL filter, wherein damping components are provided in parallel to the grid side inductors, wherein the damping components are connectable to grid side ends of the grid side inductors via switches, and wherein the damping components are disconnected from the grid side ends of the grid side inductors as soon as the active front end rectifier (AFE) has synchronized to the grid.
2. The electronic appliance according to claim 1, wherein the damping components comprise damping resistors, secondary windings with a switch or the modification of a magnetic core with a switch.
3. The electronic appliance according to claim 1, wherein the resistance R.sub.damp of the damping components is close to an impedance of the grid side inductors L.sub.1, L.sub.2, and L.sub.3 at a resonance frequency (f.sub.res) of a LC circuit with the grid, fulfilling the equation
|R.sub.damp|≈|2πf.sub.resL.sub.1,2,3|.
4. The electronic appliance according to claim 1, wherein the damping components are only connected to the grid side ends of the grid side inductors when the electronic appliance is connected to the grid via grid switches and the active front end rectifier (AFE) is not modulating.
5. The electronic appliance according to claim 1, wherein the damping components connected to the grid side ends of the grid side inductors during start-up of the electronic appliance for 0 ms-500 ms.
6. The electronic appliance according to claim 1, wherein the damping components are directly connected to all inductors of the LCL filter.
7. The electronic appliance according to claim 1, wherein the resistance of the damping components is between 0.1 ohm and 100 ohm.
8. The electronic appliance according to claim 2, wherein the resistance R.sub.damp of the damping components is close to the impedance of the grid side inductors at the resonance frequency (f.sub.res) of the LC circuit with the grid, fulfilling the equation
|R.sub.damp|≈|2πf.sub.resL.sub.1,2,3|.
9. The electronic appliance according to claim 2, wherein the damping components are only connected to the grid side ends of the grid side inductors when the electronic appliance is connected to the grid via grid switches and the active front end rectifier (AFE) is not modulating.
10. The electronic appliance according to claim 2, wherein the damping components are disconnected from the grid side ends of the grid side inductors as soon as the active front end rectifier (AFE) has synchronized to the grid.
11. The electronic appliance according to claim 3, wherein the damping components are disconnected from the grid side ends of the grid side inductors as soon as the active front end rectifier (AFE) has synchronized to the grid.
12. The electronic appliance according to claim 4, wherein the damping components are disconnected from the grid side ends of the grid side inductors as soon as the active front end rectifier (AFE) has synchronized to the grid.
13. The electronic appliance according to claim 2, wherein the damping components are connected to the grid side ends of the grid side inductors during start-up of the electronic appliance for 0 ms-500 ms.
14. The electronic appliance according to claim 3, wherein the damping components are connected to the grid side ends of the grid side inductors during start-up of the electronic appliance for 0 ms-500 ms.
15. The electronic appliance according to claim 4, wherein the damping components are connected to the grid side ends of the grid side inductors during start-up of the electronic appliance for 0 ms-500 ms.
16. An electronic appliance according to claim 1, wherein the electronic appliance is a low harmonic drive, an active rectifier, or a grid converter.
17. An electronic appliance according to claim 1, wherein the electronic appliance is an active front end or grid converter.
18. The electronic appliance according to claim 1, wherein the resistance R.sub.damp of the damping components is close to an impedance of the grid side inductors L.sub.1, L.sub.2, and L.sub.3 at a resonance frequency (f.sub.res) of a LC circuit with the grid, fulfilling the equation
|R.sub.damp|≈(1±0,1)×|2πf.sub.resL.sub.1,2,3|.
19. A method for damping of an LCL filter during start-up of an electronic appliance an LCL filter, wherein a converter is a two-level, a three-level or a multilevel inverter, comprising an LCL filter on the grid side of the electronic appliance and an active front end rectifier (AFE) on the load side of the electronic appliance, wherein an LCL filter comprises grid side inductors and an active front end rectifier (AFE) is connected to the LCL filter, wherein damping components are provided in parallel to the grid side inductors, wherein the damping components are connectable to grid side ends of the grid side inductors via switches, the method comprising the steps of connecting the electronic appliance to the grid via grid switches; connecting the damping components to the grid side ends of the grid side inductors via switches when the active front end rectifier (AFE) is not modulating; and disconnecting the damping components from the grid side ends of the grid side inductors as soon as the active front end rectifier (AFE) has synchronized to the grid.
20. The method according to claim 19, wherein the damping components are connected to the grid side ends of the grid side inductors in a default state of the electronic appliance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further details and advantages of the invention are described with reference to the following figures:
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DETAILED DESCRIPTION
(12)
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(14) As shown in
(15) During a normal start-up the damping components R1, R2, R3 are in operation only 100 ms-500 ms so the thermal dimensioning can be quite light compared to continuous operation. This requires that the drive be disconnected from the grid shortly after the AFE stops modulating.
(16) The electronic appliance shown in
(17) The LCL filter comprises grid side inductors L1, L2, L3 and load side inductors L4, L5, L6. The active front end rectifier AFE is connected to the LCL filter via load side inductors L4, L5, L6. The damping components R1, R2, R3 are provided in parallel to the grid side inductors L1, L2, L3 and the damping components R1, R2, R3 are connectable to the grid side ends of the grid side inductors L1, L2, L3 via switches S4, S5, S6. The LCL filter further comprises capacitors C1, C2, C3 positioned between load side inductors L4, L5, L6 on one side and grid side inductors L1, L2, L3 on the other side.
(18) The damping components R1, R2, R3 may comprise damping resistors, secondary windings with a switch and/or the modification of a magnetic core with a switch.
(19) The resistances R.sub.damp of the damping components R1, R2, R3 may be close to the impedance of the grid side inductors L1, L2, L3 at the resonance frequency f.sub.res of the LC circuit with the grid, fulfilling the equation
|R.sub.damp|≈|2πf.sub.resL.sub.1,2,3|,
(20) and preferably fulfilling the equation
||R.sub.damp|≈(1±0,1)×|2πf.sub.resL.sub.1,2,3|.
(21) More generally speaking, the values of the resistances R.sub.damp may be in the range from 0.1 ohm up to several tens of ohms depending on the LCL design. The resistances R.sub.damp of the damping components R1, R2, R3 may relate to each individual resistance of the three damping components R1, R2, R3. The resistances R.sub.damp of the damping components R1, R2, R3 may be identical to each other.
(22) The appliance may be designed such that the damping components R1, R2, R3 are only connected to the grid side ends of the grid side inductors L1, L2, L3 when the electronic appliance is connected to the grid via grid switches S1, S2, S3 and the active front end rectifier AFE is not modulating.
(23) In particular, the appliance may be designed such that the damping components R1, R2, R3 are disconnected from the grid side ends of the grid side inductors L1, L2, L3 as soon as the AFE has synchronized to the grid. Hence, the damping components R1, R2, R3 may be connected to the grid side ends of the grid side inductors L1, L2, L3 during start-up of the electronic appliance for only about 0 ms-500 ms.
(24) The damping components R1, R2, R3 are shown to be directly connected to all corresponding inductors L1, L2, L3, L4, L5, L6 of the LCL filter via the load side ends of the damping components R1, R2, R3. The connections between the load side ends of the damping components R1, R2, R3 branch such that they reach a load side end of one corresponding grid side inductor L1, L2, L3 and one corresponding load side inductor L4, L5, L6, without any intermediate components. The resistances of the damping components R1, R2, R3 may be chosen to be between 0.1 ohm and 100 ohm.
(25) The electronic appliance is designed such that a particular method for damping its LCL filter during start-up of the appliance may be carried out. The method comprises the steps of connecting the electronic appliance to the grid via grid switches S1, S2, S3; connecting the damping components R1, R2, R3 to the grid side ends of the grid side inductors L1, L2, L3 via switches S4, S5, S6 when the active front end rectifier AFE is not modulating; and disconnecting the damping components R1, R2, R3 from the grid side ends of the grid side inductors L1, L2, L3 as soon as the active front end rectifier AFE has synchronized to the grid.
(26) If the start-up of the electronic appliance is carried out with the invention's design shown in
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(28) Comparing
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|R.sub.damp|≈|2πf.sub.resL.sub.1,2,3|,
The invention is not limited to one of the above-described embodiments, but can be modified in many ways.
(33) All of the features and advantages arising from the claims, the description and the drawings, including constructive details, spatial arrangements and procedural steps, can be essential to the invention both individually and in the most varied of combinations.