Device and method for suppressing harmonic distortions at the output of variable frequency drive
11271469 · 2022-03-08
Inventors
Cpc classification
International classification
Abstract
A device for suppressing harmonic distortions at the output of variable frequency drive (VFD) comprising at least one passive harmonic filter (PHF) which has a set of storage elements and a set of inductive elements. The set of inductive elements are mounted on a magnetic core. The PHF comprising at least two lines connected in parallel (parallel lines) with similar sets of elements. The described technical solution expands the possibility of operating the VFD/VSD with different supply voltage frequencies, and maintains the THD/TDD values within 5% regardless of active power fluctuations.
Claims
1. A device for suppressing harmonic distortions at the output of a variable frequency drive (1) (VFD) is designed as a passive harmonic filter (PHF) comprising: at least two lines (10; 11) connected in parallel (parallel lines), a storage elements set (4) and an inductive elements set (7) for each of parallel lines (10; 11), wherein the inductive elements set (7) are mounted on a magnetic structure, wherein the inductive elements set (7) of the PHF comprising at least a first (7.1) and a second (7.2) sets of the inductive elements mounted on separate cores (6) and connected through an input, wherein the first set (7.1) is connected to a first parallel line (10) and the second set (7.2) is connected to a second parallel line (11), and the (7) inductive elements set (7) is installed in a separate compartment (8) of the VFD, wherein the inductive elements set (7) is cooled via forced air cooling; wherein each of the parallel lines (10; 11) is connected in series with separate adjustable rectifiers (13; 12) of the VFD (1); wherein the storage elements set (4) of each parallel line comprising a first (4.1) and a second (4.2) capacitor sets equipped with adjustable contactors (17.1; 17.2), wherein at least a part of each storage elements set (4) is active; wherein a capacity of the storage elements set (4) of each parallel line (10; 11) is changeable depending on a supply voltage frequency.
2. The device of claim 1 wherein one of the parallel lines (10) or (11) is active when a measured active power current is less than 50% of a nominal value.
3. The device of claim 1 wherein the cores (6) of each inductive elements set (7.1; 7.2) contain an upper (21) and a bottom (22) yoke with vertical rods (23) mounted between them.
4. The device of claim 1 wherein the cores (6) of each inductive elements set (7.1; 7.2) are fixed around the perimeter in a frame (19), wherein said frame (19) is designed with guide elements (20) in the frame base.
5. A method for suppressing harmonic distortions at the output of a variable frequency drive comprising: installing a passive harmonic filter (PHF) within the variable frequency drive (VFD) housing (2); forming the passive harmonic filter (PHF) with: at least two lines (10; 11) connected in parallel (parallel lines), wherein each of the parallel lines is connected in series with a separate adjustable rectifier (12; 13) of the VFD, a storage elements set (4) with a first (4.1) and a second (4.2) capacitor sets equipped with adjustable contactors (17.1; 17.2), and an inductive elements set (7) with a first (7.1) and a second (7.2) inductive elements sets, wherein the first set (7.1) is connected to a first parallel line (10) and the second set (7.2) is connected to a second parallel line (11), wherein the inductive elements sets (7.1; 7.2) are mounted on at least two separate magnetic cores (6); providing a number of operating modes of said PHF, wherein a first operating mode is a half power mode (HPM) and a second operating mode is a full power mode (FPM); providing the first operating mode, when an active power current is reduced more than 50% of a nominal value, wherein the first operating mode comprising: disconnecting one of at least two parallel lines (10) or (11) of the PHF via switching off the related adjustable rectifier (13) or (12) of the VFD, and opening an adjustable contactor (17.1) of the storage elements set (4) of one of the disconnected line (10) or (11) of the PHF; configuring the PHF to change the operating mode between at least two operating modes depending on the measured active power current and a supply voltage frequency value; providing a step-disconnection/connection of the adjustable contactors (17.1; 17.2) of the capacitor sets (4.1, 4.2) during changing the operating modes.
6. The method according to claim 5, characterized with providing the second operating mode when the active power current is greater than 50% of the nominal value, wherein providing precharging the storage elements sets (4) during the step-connection to the one of parallel lines (10) or (11).
7. The method according to claim 5, characterized with providing a third operating mode, when the active power is less than 30% of the nominal value.
8. The method according to claim 5, characterized with providing a fourth operating mode, wherein the storage elements set (4) is forming to change the storing capacity depending on supply voltage frequency via connecting the second additional capacitor set (4.2) to the first capacitor set (4.1) of the storage elements set (4) via a second additional adjustable contactor (17.2) for switching the VFD supply voltage frequency from 60 Hz to 50 Hz.
9. The method of claim 5 or 7, wherein comprising a step of pre-charging a DC link (18) of the VFD in the third operating mode, wherein the storage elements set (4) of at least one of parallel lines (10; 11) is switching out of the PHF circuit, via switching off the adjustable contactors (17.1) till reaching a setpoint of the VFD active power.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The substance of the claimed invention is explained, but not limited by the following drawings:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(10) The present invention can be used in variable frequency/speed drives (VFD/VSD) for various power consumers of non-linear load. In order to reduce the negative impact of power consumers on the power supply network, for example by the variable frequency drive (VFD) 1 (
(11) The harmonic suppressing device 3 is installed within the VFD 1 compartments. The harmonic suppressing device 3 contains at least one passive harmonic filter (PHF) (
(12) Said PHF contains inductive elements 7 connected to the sets of storage elements 4. Wherein a first (7.1) and a second (7.2) sets of inductive elements are mounted on a magnetic core 6, designed as a reactor choke.
(13) In three-phase (A;B;C) implementation, the PHF contains at least two sets of inductive elements (7.1; 7.2) (chokes), installed on separate bases designed as magnetic cores and connected through an input.
(14) Each of phase, contains inductive elements 7 with input, output and resonant coils connected in pairs.
(15) Said inductive elements 7 connected to the set of storage elements 4 of each PHF line. The elements of the PHF, in particular chokes, are installed in the separate compartment 8 of the VFD. Said compartment 8 is equipped with a forced air cooling, implemented by at least one fan 9 of the VFD cooling system.
(16) The PHF comprising at least two lines connected in parallel (parallel lines) 10, 11 (
(17) Said PHF is configured to work with at least one active line 10 or 11 when the measured active power is less than 50% of nominal value. This technical solution allows to keep a value of the coefficient of nonlinear distortion (THD) within 5% when a load drop is more than 50% of the nominal value as shown in the graph (
(18) According to the present invention, an input current is divided between the two parallel lines 10,11 of the harmonic suppression unit (
(19) During the VFD operation the active load current verify in range 1-100% of the nominal value. During the active load current decreasing up to 50%, as a result, Inom=Inom/4, which leads to increasing of THD (TDD) coefficient.
(20) During the VFD operation the controller 14 of the control system takes signals from the sensors 15, 16.
(21) Measured current signals Tap allow to perform an on-line monitoring the active power value.
(22) The VFD control system determines the instantaneous values of active power according to the values of supply voltage and the efficiency of the VFD. VFD control system compares determined values of instantaneous active power with the nominal value.
(23) Said VFD control system providing at least two operating modes of the PHF. There are few the most common operating modes of PHF according to the present invention:
(24) a half power mode (HPM)—a first power mode;
(25) full power mode (FPM)—a second operating mode;
(26) a power generating mode (PGM)—a third operating mode;
(27) a frequency change mode (FCM)—a fourth operating mode;
(28) The half power mode (HPM) is used during the period when control system determines the active power current value decreasing less than permissible value, in particular, more than 50% of the nominal active power value. According to the present invention the permissible value could be set as a range of acceptable values, for example 45-55% of the nominal value.
(29) After determining of the active power decreasing less than permissible value, the controller 14 provides a signal of disconnecting one of the PHF parallel lines 10 or 11, via switching off the adjustable rectifier 12 or 13 of the VFD and a first contactor 17.1 of the set of storage elements 4 (
(30) Also, could be realized another possible implementation of HPM with a programmable dual-mode contactor installed in the input of the PHF, which disconnect one of at least two parallel lines.
(31) After switching off one of at least two parallel lines 10, the current flows through the line 11 (
(32) During the HPM the control system continues monitoring the active power current values of the VFD.
(33) When the active power current value is increased above the setting of values, the controller 14 gives a signal “ON” to switch on the adjustable rectifier 13 of the inactive line of at least two parallel lines 10, 11 for continuing the VFD operation in the “Full power mode” (FPM). Also the first adjustable contactor 17.1 is back to close for connecting the set of storage elements 4 (
(34) Also, the present invention provides “Power generating mode” (PGM). During the PGM the DC link 18 (
(35) After switching on the pulse-width modulation (PWM) and reaching the VFD operating parameters, the sets of storage elements 4 are connecting to the circuit into both of the parallel lines 10, 11 and the VFD switches on the Full Power or Half Power mode, depending on the measured active power current value.
(36) During the process of changing operating modes the VFD control system provides a step-disconnection/connection of adjustable contactors of the storage elements. Also said control system provides precharging of sets of storage elements during the step-connection to the at least one of parallel lines. These features allow protecting DC link 18 of VFD from high voltage sags or voltage surges during transient conditions.
(37) Each of the PHF lines contains the set of storage elements 4 with the first 17.1 and a second 17.2 adjustable contactors (
(38) In particular, the transfer from supply current network frequency of 60 Hz to frequency of 50 Hz is carried out via connecting the capacitor set 4.2 to each of the parallel lines 10, 11 by means of the second adjustable contactor 17.2.
(39) The described solution leads to unification of the VFD, providing the THD level to 5% or lower, regardless of the different supply voltage frequency (50/60 Hz). Wherein
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(41) The design of the PHF inductive element (
(42) According to the present invention at least two sets of inductive elements 7 (the first set 7.1 and the second set 7.2) are fixed around the perimeter in a frame 19 with guide elements 20 in the frame base. The magnetic cores 6 of each set of inductive elements 7.1; 7.2 contains an upper 21 and a bottom 22 yoke with vertical rods 23 mounted between them. The vertical rods 23 are made with visible gaps 24 in cross section. The visible gaps 24 are filled with non-magnetic material, such as fiberglass or similar. Said visible gaps 24 increased the quality factor of an oscillating circuit, and reducing a dispersion flux.
(43) The present invention can be used for example in different types of six and twelve pulse VFD.
(44) The implementation of the described technical solution expands the possibility of operating the VFD/VSD with different supply voltage frequencies and maintains the THD/TDD values within 5% regardless of active power fluctuations.