MULTI-PHASE ALTERNATING-CURRENT NETWORK POWER SUPPLY
20190252967 ยท 2019-08-15
Assignee
Inventors
Cpc classification
H02M1/12
ELECTRICITY
H02M7/2176
ELECTRICITY
H02M1/4275
ELECTRICITY
H05B45/36
ELECTRICITY
Y02B70/10
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
International classification
Abstract
A multi-phase network power supply with compensation for harmonic oscillations relates to electrical engineering and is intended for supplying various electrical devices connected to a multi-phase alternating-current electrical network. The technical result of the claimed solution consists in lessening harmonic components, reducing pulsations in the voltage and current output by the power supply, and significantly reducing the required power. The multi-phase alternating-current network power supply with compensation for harmonic oscillations comprises a main multi-phase rectifier of the alternating-current network, an additional multi-phase rectifier, a controller and an additional voltage or current supply, wherein the positive terminal of the main multi-phase rectifier is capable of being connected to a load, and the negative terminal of the main multi-phase rectifier is connected to the positive terminal of the additional voltage or current supply, the negative terminal of which is capable of being connected to a load, the output terminals of the additional multi-phase rectifier are connected to the input terminals of the additional voltage or current supply, wherein the additional multi-phase rectifier is equipped with electronic switches, one in the circuit of each rectifying element, and each electronic switch is connected to the controller.
Claims
1. A multiphase AC power supply with correction of harmonic motion comprising: a primary multiphase AC rectifier, a secondary multiphase rectifier, a controller, and a secondary voltage or current source, wherein a positive output terminal of the primary multiphase AC rectifier is configured to have on-load connection, wherein a negative output terminal of the primary multiphase AC rectifier is connected to a positive output terminal of the secondary voltage or current source, wherein the negative output terminal is configured to have on-load connection, wherein output terminals of the secondary multiphase rectifier are connected to input terminals of the secondary voltage or current source, wherein the secondary multiphase rectifier comprises electronic switches with each electronic switch installed in a circuit of each rectifying element and each electronic switch is connected to the controller.
2. The multiphase AC power supply with correction of harmonic motion of claim 1, wherein the primary multipurpose AC rectifier and the secondary multiphase rectifier are connected so that they have a similar number of phases.
3. The multiphase AC power supply with correction of harmonic motion of claim 1, wherein the primary multipurpose AC rectifier and the secondary multiphase rectifier are connected so that at least one of them has three phases.
4. The multiphase AC power supply of claim 1, wherein the electronic switches of the secondary multiphase rectifier are configured to be used as at least one of (i) bipolar transistors and (ii) field-effect transistors.
5. The multiphase AC power supply of claim 1, wherein three phases are selected, wherein a secondary three-phase rectifier is fitted with six electronic switches, each one in every rectifier diode circuit connected to the controller, and wherein a three-phase neutral conductor is configured to be connected to an additional diode.
6. The multiphase AC power supply of claim 1, wherein a controller operation algorithm provides for feeding a secondary source over every phase while no current is supplied through a phase of the primary multiphase AC rectifier.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
[0034] The multipurpose AC power supply is characterized in that a primary multipurpose AC rectifier and a secondary multiphase rectifier are connected so that they have similar number of lines and network phases. A 3-phase network is an option.
[0035] The preferred embodiment constitutes an additional three-phase rectifier fitted with six electronic switches each one in the circuit of every rectifier diode, either of which is connected to a controller.
[0036] Should an additional multiphase rectifier have a neutral conductor, it may be connected to additional diodes.
[0037] As for the secondary current or voltage source, it is used as an additional source for supplying direct load current, e.g. to an LED light unit, and it is configured to remove input current harmonic components, to increase efficiency of any current source by means of reduction of a input current peak value.
[0038] The most effective device circuit is demonstrated in
[0039] The advantage of this circuit is the exceptionally high efficiency since required power of an additional source is considerably less than that consumed directly from the primary three-phase AC power supply. This circuit can be conventionally disadvantaged by absence of galvanic isolation between LEDs and network voltage.
[0040] The variant of the claimed solution that provides for using a three-phase network with a neutral conductor is shown in
[0041] Switches K1-K6 have series connection with diodes VD1-VD6 for controlling voltage between phases A, B, C, and neutral, thereby receiving rectified voltage for feeding an additional voltage or current source.
[0042] Diodes VD7, VD8 are used in case of neutral connection. The key work algorithm is shown in
[0043] Switches K1, K2, K3 remain closed while respective phase voltage is within the range of zero to half of a peak value (0 . . . 1/2UBX). Switches K4, K5, K6 remain closed while respective phase voltage is within the range of zero to half of a peak value (0 . . . 1/2UBX). The secondary LED power source phase current diagram is shown in
[0044] The following elements are specified as items illustrating a particular case using the claimed device for feeding an LED light unit from a 3-phase AC network:
[0045] 1a primary three-phase rectifier,
[0046] 2a secondary three-phase rectifier,
[0047] 3LED current source,
[0048] 4controller (electronic switch control circuit),
[0049] 5an additional voltage source,
[0050] 6an additional current source,
[0051] 7electronic switches K1, K2, K3, K4, K5, K6, each one in the circuit of every rectifier diode VD1, VD2, VD3, VD4, VD5, and VD6, and
[0052] 8load (light LEDs).
[0053] Net summed phase current consumed by primary and secondary three-phase rectifiers is shown in
[0054] The net current consumed through the neutral (N) is shown in
[0055] With additional current source 6 or voltage source 5 connected through a secondary three-phase rectifier (
[0056] K-1-K6 switching sequence is shown in
[0057] The shaded area shown in
[0058] The advantage of this rectifier control circuit is that it is actually possible to completely compensate harmonic components of current consumed by a power supply and to completely compensate voltage ripple for the switching circuit shown in
[0059] Another switch control algorithm is shown in
[0060] The shaded region in
[0061] Secondary three-phase rectifier output voltage to be specified as that supplied to a secondary power source is shown in
[0062] The advantage of this rectifier control circuit is that the rectified voltage peak value is reduced and therefore, a secondary power source can be kept out of any strict requirements. The disadvantage is that it is not possible to completely compensate harmonic components of input current.