POWER SUPPLY SYSTEM FOR AN ELECTRIC ARC FURNACE
20230199924 · 2023-06-22
Inventors
Cpc classification
H05B7/144
ELECTRICITY
F27B3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B3/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A power supply system for an arc furnace, suitable for converting voltage of a three-phase electric power network into power supply voltage for the arc furnace, has an indirect AC/AC converter having a converter input and a converter output, and a matching apparatus having a matching transformer having a secondary side connectable to the arc furnace and a primary side operatively connected to the converter output. An input transformer group, inserted between the indirect AC/AC converter and the three-phase electric power network, has an input transformer primary side connectable to the three-phase electric power system, an input transformer secondary side connected to the converter input, a first input transformer and a second input transformer. Each of the first and second input transformers has three mutually displaced groups of secondary windings, each of which has a winding for each phase corresponding to a phase of the three-phase electric power network.
Claims
1. A power supply system for an arc furnace, suitable for converting voltage of a three-phase electric power network into power supply voltage for the arc furnace, comprising an indirect AC/AC converter comprising a converter input and a converter output; and a matching apparatus connected to the converter output and connectable to the arc furnace, said matching apparatus being suitable for receiving at least one voltage value output from the indirect AC/AC converter and delivering a power supply voltage value for the arc furnace; wherein the matching apparatus comprises a matching transformer having a secondary side connectable to the arc furnace and a primary side operatively connected to the converter output, and wherein an input transformer group is inserted between the indirect AC/AC converter and the three-phase electric power network, the input transformer group comprising an input transformer primary side connectable to the three-phase electric power network and an input transformer secondary side connected to the converter input, said input transformer group further comprising at least a first input transformer and at least a second input transformer, wherein each of said first and second input transformers comprises three groups of secondary windings which are mutually displaced, each of said groups of secondary windings comprising a winding for each phase corresponding to a phase of the three-phase electric power network.
2. The power supply system of claim 1, wherein each of said first and second input transformers comprises only one group of primary windings comprising one winding for each phase corresponding to a phase of the three-phase electric power network.
3. The power supply system of claim 1, wherein the indirect AC/AC converter comprises a rectifier group, an inverter and a connection DC-link circuit between the rectifier group and the inverter.
4. The power supply system of claim 3, wherein the rectifier group comprises three independent input rectifier groups, wherein a first input rectifier group of the three independent input rectifier groups is connected to a first group of the three groups of secondary windings of the first input transformer and to a first group of the three groups of secondary windings of the second input transformer, wherein a second input rectifier group of the three independent input rectifier groups is connected to a second group of the three groups of secondary windings of the first input transformer and to a second group of the three groups of secondary windings of the second input transformer, and wherein a third input rectifier group of the three independent input rectifier groups is connected to a third group of the three groups of secondary windings of the first input transformer and to a third group of the three groups of secondary windings of the second input transformer.
5. The power supply system of claim 4, wherein the indirect AC/AC converter comprises three independent DC-link circuits and three independent inverter groups, each DC-link circuit of the three independent DC-link circuits being connected to a respective upstream input rectifier group and a respective downstream inverter group.
6. The power supply system of claim 1, wherein the indirect AC/AC converter supplies an electrical AC signal from the converter output having a variable frequency relative to an electrical signal at the converter input, said electrical signal having an output voltage value suitable for supplying power to the arc furnace.
7. The power supply system of claim 1, wherein the matching transformer has a nominal power substantially equal to a nominal power of the indirect AC/AC converter.
8. The power supply system of claim 1, wherein the matching transformer is a transformer with primary and secondary delta connections.
9. The power supply system of claim 3, wherein the rectifier group comprises a rectifier circuit having eighteen or more pulses.
10. An arc management system for an arc furnace with electrodes, comprising: a power supply system according to claim 1; and an arc furnace comprising electrodes operatively connected to the power supply system.
Description
[0011] The features and advantages of the power supply system for an arc furnace according to the present invention will be apparent from the following description, given by way of non-limiting example, according to the accompanying figures, in which:
[0012]
[0013]
[0014]
[0015]
[0016] An example of a power supply system of consumers in a known industrial plant is shown in
[0017] From the auxiliary distribution station, each consumer receives power from a specific transformer 110, 111, 112. The voltage level of the secondary stage of each transformer is adapted to allow the correct operation of each consumer 120, 121, 122.
[0018] To compensate for electrical disturbances due to the operation of transformers 110, 111, 112, connected to the auxiliary distribution station, banks of passive or active filters 130 are connected to selectively suppress the disturbances generated by each consumer.
[0019] According to
[0020] The power supply system is adapted to convert the voltage of the electric power network 3 into the power supply voltage for an arc furnace 6.
[0021] The matching apparatus 4 comprises a matching transformer 8 having a secondary side 82 connectable to the furnace 6 and a primary side 81 either directed or operatively connected to the converter output 22. In other words, the primary side 81 of the furnace transformer is preferably directly connected to the converter output 22.
[0022] In a preferred embodiment, the adapter transformer 8 is a transformer Dd4 (primary and secondary delta connection). The matching transformer 8 is configured to raise the current on the electrodes 7 of the furnace 6, thereby proportionally reducing the output voltage with respect to the input voltage. Preferably, the adapter transformer 8 has a power rating substantially equal to the power rating of the indirect AC/AC converter 2.
[0023] Preferably, the indirect AC/AC converter 2 either comprises (or consists of) a rectifier group 210, an inverter 210, and a DC-link circuit 211 connecting the rectifier and the inverter.
[0024] An exemplary embodiment of the indirect AC/AC converter 2 is shown in
[0025] A device 213 coupled to the inverter 212 controls and commands the generation of the output signal through PWM signal modulation.
[0026] In a preferred embodiment, the indirect AC/AC converter 2, delivers to the terminals 22a, 22b, 22c of the converter output 22 an electrical AC signal having a variable frequency (e.g. from 40 Hz to 60 Hz) with respect to the electrical signal input to the converter input 21 and having an output voltage value suitable for supplying a given consumer, e.g. an arc furnace through the matching apparatus 4. The output circuit on the terminals 22a, 22b, 22c is preferably further suitable for managing the current on each of the three phases independently of the other two phases.
[0027] According to the invention, the power supply system 1 comprises an input transformer group 5 inserted between the indirect AC/AC converter and electric power network 3. Such an input transformer 5 comprises an input transformer primary side 51 connectable to the electric power network 3 and an input transformer secondary side 52 connected to the converter input 21. The input transformer group 5 comprises at least a first input transformer T1 and at least a second input transformer T2. Each of said first and second input transformers T1, T2 comprises three groups of mutually displaced secondary windings 520′; 520″, 520′″; 521′; 521″; 521′″ (i.e., having voltages and/or currents offset between each group of windings according to a predetermined displacement). Each of said groups of secondary windings 520′; 520″, 520′″; 521′; 521″; 521′″ comprises, in turn, a winding for each phase corresponding to a phase (R, S, T) of the electric power network 3.
[0028] This particular configuration makes it possible to reduce the total harmonic distortion (THD) and the backward disturbance harmonics towards the power supply line.
[0029] In particular, preferably, each of said first and second input transformers T1, T2 respectively comprises a single primary winding group 510, 510′, directly connected to the phases of the power line 3. In other words, each input transformer T1, T2 comprises a single winding connected to the first phase R, a single winding connected to the second phase S, and a single winding connected to the third phase T.
[0030] According to a preferred embodiment of the power supply system, e.g. shown in more detail in
[0031] In particular, in an embodiment, the indirect AC/AC converter 2 comprises a rectifier group 210, an inverter 212 and a connection DC-link circuit 211 between rectifier and inverter.
[0032] Preferably, the rectifier group 210 comprises an eighteen or more pulse rectifier circuit.
[0033] Preferably, as shown in
[0034] Preferably, the AC/AC converter comprises three independent DC-link circuits 211′, 211″, 211′″ and three independent inverter groups 212′, 212″, 212′″. Each DC-link circuit 211′, 211″, 211′″ is connected with a respective upstream input rectifier group 210′, 210″, 210′″ and to a respective downstream inverter group 212′, 212″, 212″.
[0035] According to a preferred embodiment, the first group of secondary windings 520′ of the first transformer T1 and the first group of secondary windings 521′ are connected to the first group of input rectifiers 210′ to obtain a series of the voltages of each first group of secondary windings 520′, 521′. Similarly, the second group of secondary windings 520″ of the first transformer T1 and the second group of secondary windings 521″ are connected to the second group of input rectifiers 210″ to obtain a series of voltages of each first group of secondary windings 520″, 521″. Furthermore, the third group of secondary windings 520′″ of the first transformer T1 and the third group of secondary windings 521′″ are connected to the third group of input rectifiers 210′″ to obtain a series of the voltages of each third group of secondary windings 520′″, 521′″.
[0036] In this manner, the voltage series of the secondaries of the first transformer T1 and the second transformer T2 is present for each phase (the voltage series for each phase on a respective terminal per phase) on the second transformer T2 downstream of the inverter groups 212′, 212″, 212″, on the output terminals 22a, 22b, 22c of the converter 21.
[0037] Preferably, the indirect converter 2 delivers alternating current electrical energy having a variable voltage adaptable to each of the phases of the metal melting process: boring, melting phase and refining phase.
[0038] In the case of an arc furnace, it is a further object of the present invention to provide an arc management system comprising an arc furnace power supply system 1 described in the preceding paragraphs and an arc furnace comprising electrodes 7 directly or operatively connected to the power supply system 1.
[0039] Innovatively, the power supply system according to the present invention does not require active or passive compensation systems for the disturbance caused by furnace power transformers of the prior art because it provides a relatively high and nearly constant power factor and low harmonic distortion THD of both current and voltage.
[0040] In particular, in contrast to systems of the prior art which do not provide an input transformer between the power line and the indirect converter, the presence of the first input transformer T1 and at least a second input transformer T2, with respective groups of mutually displaced windings, i.e., connected as described in the present invention, makes it possible to reduce the total harmonic distortion (THD) and backward noise harmonics towards the power line.
[0041] Furthermore, the power supply system object of the invention advantageously makes it possible to vary the output voltage, thus making it possible to adapt to different consumers flexibly, not requiring dedicated transformers for each consumer.
[0042] Furthermore, the presence of the indirect converter advantageously allows the use of low voltage transformers to power the furnace, reducing costs and increasing installation flexibility.
[0043] Additionally, the power supply system according to the present invention makes it possible to obtain lower energy consumption than the power supply technology of the furnaces of the prior art.
[0044] It is apparent that a person skilled in the art may make changes to the invention described above, all of which are contained within the scope of protection as defined in the following claims to satisfy contingent needs.