APPARATUS AND METHOD FOR THE CONTINUOUS CASTING OF METAL PRODUCTS
20250242405 · 2025-07-31
Inventors
- Fabio GUASTINI (Paris, FR)
- Thierry GAUTREAU (Ruy-Montceau, FR)
- Aymeric CHEMIN (L'Isle-d'Abeau, FR)
- Giovanni CALVI (La Verpillière, FR)
Cpc classification
B22D11/186
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An apparatus for the continuous casting of metal products includes an ingot mold and a nozzle for feeding molten metal provided with at least one main outlet configured to direct the molten metal substantially toward the lower part of the ingot mold, and a plurality of secondary outlets configured to direct the molten metal substantially toward the lateral walls of the ingot mold.
Claims
1. Apparatus for the continuous casting of metal products, comprising an ingot mold and a submerged nozzle for feeding molten metal, said ingot mold having a substantially rectangular section provided with narrow lateral walls and with wide lateral walls, said nozzle being provided with at least one main axial outlet configured to direct said molten metal mainly toward the lower part of said ingot mold, and a plurality of secondary outlets configured to direct said molten metal mainly toward said narrow lateral walls of said ingot mold, the apparatus comprising at least a first electromagnetic system associated at least with said opposite wide lateral walls of said ingot mold and configured to mainly regulate a first flow of molten metal exiting from said main outlet, and at least a second distinct electromagnetic system associated with said opposite wide lateral walls and configured to mainly regulate second flows of molten metal exiting from said secondary outlets.
2. Apparatus as in claim 1, wherein said first electromagnetic system is positioned at a certain height below said main outlet.
3. Apparatus as in claim 1, wherein said first electromagnetic system is a static system with two or three magnetic bodies around which corresponding electric coils are wound.
4. Apparatus as in claim 1, wherein said first electromagnetic system is configured at least to slow down the first flow of molten metal exiting from said main outlet and possibly stabilize it as well as the second flows exiting from said secondary outlets.
5. Apparatus as in claim 1, wherein said second electromagnetic system is positioned substantially at the height of said lateral outlets.
6. Apparatus as in any claim hereinbefore claim 1, wherein said second electromagnetic system comprises a plurality of electromagnetic stirrers positioned on said opposite wide lateral walls of said ingot mold.
7. Apparatus as in claim 6, characterized in wherein said second electromagnetic system comprises four electromagnetic stirrers positioned on said wide lateral walls in pairs.
8. Apparatus as in claim 6, wherein each of said electromagnetic stirrers comprises a magnetic body on which a series of excitation electric coils is mounted.
9. Apparatus as in claim 1, wherein said second electromagnetic system is configured to slow down or accelerate the second flowsof molten metal exiting from said secondary outlets.
10. Apparatus as in claim 1, wherein said second electromagnetic system is configured to rotate the second flows of molten metal exiting from said secondary outlets.
11. Apparatus as in claim 1, wherein said second electromagnetic system is positioned above said first electromagnetic system.
12. Method for the continuous casting of metal products, comprising feeding molten metal to an ingot mold by means of a nozzle provided with at least one main outlet configured to direct said molten metal mainly toward the lower part of said ingot mold, and a plurality of secondary outlets configured to direct said molten metal mainly toward narrow lateral walls of said ingot mold, wherein a first flow of molten metal exiting from said main outlet is regulated by means of at least a first electromagnetic system associated with opposite wide lateral walls of said ingot mold, and second flows of molten metal exiting from said secondary outlets are regulated by means of at least a second distinct electromagnetic system associated with said opposite wide lateral walls of said ingot mold.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] These and other aspects, characteristics and advantages of the present invention will become apparent from the following description of some embodiments, given as a non-restrictive example with reference to the attached drawings wherein:
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044] We must clarify that in the present description the phraseology and terminology used, as well as the figures in the attached drawings also as described, have the sole function of better illustrating and explaining the present invention, their function being to provide a non-limiting example of the invention itself, since the scope of protection is defined by the claims.
[0045] To facilitate comprehension, the same reference numbers have been used, where possible, to identify identical common elements in the drawings. It is understood that elements and characteristics of one embodiment can be conveniently combined or incorporated into other embodiments without further clarifications.
DETAILED DESCRIPTION OF SOME EMBODIMENTS
[0046] We will now refer in detail to the possible embodiments of the invention, of which one or more examples are shown in the attached drawings, by way of a non-limiting illustration. The phraseology and terminology used here is also for the purposes of providing non-limiting examples.
[0047] With reference to the attached drawings, please see in particular
[0048] The ingot mold 11 is designed to cast slabs, wherein the width of the slab is much greater than the thickness. For this purpose, the ingot mold 11 has first narrow lateral walls 15 and second wide lateral walls 17. The narrow lateral walls 15 can be mobile in order to vary the width of the cast slab.
[0049] The nozzle 12 is of the submerged type and is provided with at least one main outlet 13, configured to direct the molten metal I mainly toward the lower part of the ingot mold 11, and a plurality of secondary outlets 14 configured to direct the molten metal mainly toward the narrow lateral walls 15 of the ingot mold 11. The nozzle 12 is in particular a SEN (Submerged Entry Nozzle).
[0050] The main outlet 13 is substantially directed along a longitudinal axis L of the nozzle 12. The nozzle 12 is positioned, during use, substantially in the center of the ingot mold 11. The secondary outlets 14 are directed in a substantially radial direction and inclined downward. It is possible to provide, for example, two diametrically opposite secondary outlets 14, or even a different number of secondary outlets 14.
[0051] The apparatus 10 comprises at least a first electromagnetic system 16 associated with the opposite wide lateral walls 17 of the ingot mold 11 and configured to mainly regulate a first flow F1 of molten metal I exiting from the main outlet 13, and at least a second distinct electromagnetic system 18 associated with the opposite wide lateral walls 17 and configured to mainly regulate second flows F2 of molten metal I exiting from the secondary outlets 14.
[0052] The first flow F1 can be braked and the second flows F2 can, for example, be either slowed down or accelerated, therefore the intensity of the flows F1 and F2 can be regulated. At least the second flows F2 can also at least partly be rotated, as we will see below.
[0053] The first electromagnetic system 16 is positioned at a certain height below the main outlet 13. Substantially, the first electromagnetic system 16 is divided into two equal parts 16a and 16b, each, in this specific case, positioned on one of the wide lateral walls 17 of the ingot mold 11.
[0054] The first electromagnetic system 16 is a static system with two or three magnetic bodies 19a, 19b, 19c. In the drawings, by way of example, a three-pole electromagnetic system 16 has been shown. Respective electric coils 20a, 20b, 20c are wound around the magnetic bodies 19a, 19b, 19c.
[0055] The first electromagnetic system 16 is configured at least to slow down the first flow F1 of molten metal exiting from the main outlet 13, and possibly stabilize it (F1) and as well as the second flows F2 exiting from the secondary outlets 14. Please compare for example
[0056] Substantially, in order to regulate the first flow F1, which is generally directed downward and normally has a strong thrust, the first electromagnetic system 16 generates a static magnetic field in an area under the nozzle 12 and which covers the entire width of the ingot mold 11. The electric coils 20a, 20b, 20c are fed with direct current and magnetize the magnetic bodies 19a, 19b, 19c.
[0057] In the configuration with three magnetic bodies 19a, 19b, 19c shown by way of example in the attached drawings, for each of the two parts 16a or 16b of the first electromagnetic system 16, two magnetic bodies 19a and 19c are positioned on both sides of the nozzle 12, one on the left and the other on the right. These magnetic bodies 19a and 19c are fed in the same way, that is, with magnetic fields in the same direction. A central magnetic body 19b is positioned on the corresponding wide lateral wall 17 so that, according to a front view,
[0058] In the configuration with two magnetic bodies, not shown, the magnetic bodies will only be on both sides of the nozzle 12, one on the left and the other on the right. The magnetic flux passes through the ingot mold 11 and the liquid metal, and goes back through the magnetic bodies, forming a closed ring in the shape of a 0.
[0059] The second electromagnetic system 18 is positioned substantially at the height of the secondary outlets 14.
[0060] The second electromagnetic system 18 comprises a plurality of electromagnetic stirrers 21a, 21b, 21c, 21d positioned on the opposite wide lateral walls 17 of the ingot mold 11. Preferably, four electromagnetic stirrers 21a, 21b, 21c, 21d are provided, positioned in pairs on two of the opposite walls 17. The electromagnetic stirrers 21a, 21b, 21c, 21d can be positioned opposite each other, see for example the electromagnetic stirrers 21a and 21c in
[0061] Each of the electromagnetic stirrers 21a, 21b, 21c, 21d comprises a magnetic body 22 on which a series of excitation electric coils 23 are mounted.
[0062] The second electromagnetic system 18 is configured to slow down or accelerate the second flows F2 of molten metal exiting from the secondary outlets 14. The second flow F2, see in particular
[0063] The second electromagnetic system 18 is configured to rotate the second flows F2, as we will see below, in particular at least the upper branch F21.
[0064] Furthermore, the second electromagnetic system 18 is positioned above the first electromagnetic system 16, therefore in a position closer to the upper part of the ingot mold 11, from which the molten metal is introduced by means of the nozzle 12.
[0065] Substantially, in order to regulate the second flows F2 exiting from the secondary outlets 14, magnetic fields with variable directions and/or intensities are generated by means of the electromagnetic stirrers 21a, 21b, 21c, 21d.
[0066] The electromagnetic stirrers 21a, 21b, 21c, 21d are excited in alternating current, which therefore is variable in time and as a phase. As a function of the configuration chosen, the phase displacement between the currents can be of 90, typical of two-phase devices, or 120 in order to create the well-known three-phase configuration. These configurations allow to generate a magnetic field that varies in space and time, that is, a sliding magnetic field. As a function of the control of the phasing of the currents in the electric coils 23, it is possible to generate magnetic fields that travel in the desired direction; therefore either from left to right, or in the opposite direction, from right to left.
[0067] By combining the electromagnetic stirrers 21a, 21b, 21c, 21d with the possible directions of travel of the magnetic field that overlap with the second lateral flows F2, it is thus possible to generate different flow regulation functions, therefore different operating modes for regulating the second flows F2. These modes can be set by means of a control system of the apparatus 10 connected to the second electromagnetic system 18, therefore to each of the electromagnetic stirrers 21a, 21b, 21c, 21d. The control system can also be connected to the first electromagnetic system 16.
[0068] With reference to
[0069] With reference to
[0070] In any case, both of the modes described are aimed at obtaining quantities of molten metal in motion able to guarantee stability and uniformity for the casting steps that follow the ingot mold 11.
[0071] With reference to
[0072] The operating mode aimed at the rotation of the molten metal, in particular in proximity to the meniscus M, therefore occurs by means of the electromagnetic stirrers 21a, 21b, 21c, 21d located in proximity to the opposite wide lateral walls 17 with a greater surface than the ingot mold 11. This allows a better homogeneity of the temperature of the metal at the meniscus M and washing of the solidification front.
[0073] The intensities of the magnetic fields produced on a same wall 17 of the ingot mold 11 can be the same, please see the magnetic fields R1 and R2 in
[0074] The situation of
[0075]
[0076]
[0077] In this case, the intensity of the magnetic field R1 is smaller than the intensity of the magnetic field R2 and the intensity of the magnetic field R3 is greater than the intensity of the magnetic field R4. The magnetic fields R1 and R2 generated by the electromagnetic stirrers 21a, 21b are directed in the opposite direction with respect to the magnetic fields R3 and R4 generated by the electromagnetic stirrers 21c, 21d. It is possible to hypothesize that the magnetic fields R1 and R4 have the same intensity but opposite direction. It is also possible to hypothesize that the magnetic fields R2 and R3 have the same intensity and opposite direction.
[0078]
[0079] A method for the continuous casting of metal products according to the present invention therefore comprises feeding molten metal I to the ingot mold 11 by means of the nozzle 12. The first flow F1 of molten metal I exiting from the main outlet 13 of the nozzle 12 is regulated by means of at least the first electromagnetic system 16, and the second flows F2 of molten metal exiting from the secondary outlets 14 of the nozzle 12 are regulated by means of the second electromagnetic system 18.
[0080] It is clear that modifications and/or additions of parts may be made to the apparatus and method for the continuous casting of metal products, in particular slabs, as described heretofore, without departing from the field and scope of the present invention as defined by the claims.
[0081] It is also clear that, although the present invention has been described with reference to some specific examples, a person of skill in the art shall certainly be able to achieve many other equivalent forms of apparatus for the continuous casting of metal products, having the characteristics as set forth in the claims and hence all coming within the field of protection defined thereby.
[0082] In the following claims, the sole purpose of the references in brackets is to facilitate reading and they must not be considered as restrictive factors with regard to the field of protection defined by the claims.