Installation of a furnace for liquid metal, with electric heating and improved stirring.

The furnace installation addresses the inefficiencies in stirring and phase transition of non-ferrous metal furnaces by using electric heating and electromagnetic stirring, achieving efficient, cost-effective, and continuous operation for small-scale metal processing.

FR3166962A1Pending Publication Date: 2026-04-03LETHIGUEL
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Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing non-ferrous metal furnaces face challenges in efficiently stirring liquid metal without mechanical wear, requiring complex and costly refractory materials, and transitioning between melting and holding phases in batch mode, with high energy consumption and ignition losses.

Method used

A furnace installation with electric heating and electromagnetic stirring, comprising at least two fluidically connected zones with electric immersion heaters and rotating permanent magnets for efficient stirring, allowing continuous operation and reduced mechanical wear.

Benefits of technology

The solution provides high energy efficiency, reduced ignition losses, and cost-effective stirring, enabling continuous operation and improved homogenization of liquid metal, suitable for small quantities, with modular design for additional functions.

✦ Generated by Eureka AI based on patent content.

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Abstract

A furnace installation for non-ferrous metals, comprising at least one chamber capable of containing molten metal, and at least two molten metal zones in fluidic connection, as well as heating means that are purely electric, including at least one immersion heater for heating the molten metal and optionally at least one radiant heat source for preheating the furnace, and electromagnetic means for stirring the molten metal, including at least one rotating permanent magnet, said electromagnetic stirring means being disposed in said chamber and / or below said chamber and / or on the side of said chamber. Figure for the abbreviation! [Fig. 8]
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Description

Title of the invention: Furnace installation for liquid metal, with electric heating and improved stirring. Technical field of the invention

[0001] The present invention relates to the field of non-ferrous metal casting, and more particularly to foundry equipment used in molding or recycling, which allows for the melting, homogenization, holding in a molten state, and / or processing (i.e., most often, degassing, decanting, or filtering) of relatively small quantities of metal, with a molten metal capacity on the order of approximately 1 tonne to approximately 10 tonnes or even 15 tonnes. This equipment is significantly smaller than that used for the semi-continuous casting of rolling slabs or extrusion billets, which can reach a capacity of 100 tonnes, or even 130 tonnes or 150 tonnes.

[0002] Within the technical field thus delimited, the present invention relates to electric ovens. State of the art

[0003] There is a strong trend towards decarbonizing industrial processes, in addition to the more general desire to save energy. For many processes, decarbonization requires replacing gas heating with electric heating. In non-ferrous metal foundries, melting and holding furnaces are usually gas-fired, although electric furnaces, particularly induction furnaces, are known.In the field of aluminum foundry, a clear distinction is made between, on the one hand, furnace technologies intended for foundries attached to an electrolysis plant or a large semi-finished product plant, which generally produce large quantities of rolling plates and / or extrusion billets, or (especially for foundries attached to electrolysis plants) ingots or bars for remelting, and, on the other hand, furnace technologies intended for molding workshops, which generally use smaller quantities of metal. There are also recycling furnaces, which are generally relatively small.

[0004] While in these furnaces the melting process, which requires a very significant input of thermal energy, is often carried out using gas burners, temperature maintenance can be ensured by electric immersion heaters; this also depends on the size of the furnace. Electric immersion heaters, on the other hand, are preferred in treatment and filtration ladles, whose liquid metal capacity typically does not exceed one or two tonnes, as well as in chutes for the transport of liquid metal by flow.

[0005] A distinction is usually made between melting furnaces, in which solid metal is melted, and holding furnaces, in which liquid metal (also called the "bath") is held in a liquid state awaiting use, the transfer from one to the other occurring through a chute. At least for a given furnace, a distinction is made between the melting phase and the holding phase. In the first case, the melting furnace is capable of delivering liquid metal to the holding furnace at the same time as solid metal is being introduced into the melting furnace for melting. In the second case, since the holding phase follows the melting phase, this is not possible: such a furnace necessarily operates in batch mode.

[0006] In the foundry industry, replacing gas heating systems with electric heating systems often results in energy savings for smelting, with smelting energy expressed in kWh per ton of metal. Among electric heating systems, immersion heaters are the most efficient because they direct the supplied electrical energy directly and solely onto the material to be kept molten. They also have the advantage, particularly compared to induction furnaces and radiant electric heating systems, of minimizing loss on ignition, i.e., the fraction of metal lost in oxidized dross. This is why they are used in small holding furnaces and in ladles for processing molten metal.

[0007] As regards induction furnaces, their capacity is most often lower than that of gas furnaces; it is typically in the range of approximately 2 to 30 tonnes. Induction furnaces cannot be used continuously; that is, they operate in batch mode and therefore do not allow for the simultaneous melting of solid metal and the removal of liquid metal.

[0008] In all these furnaces, the question of stirring the liquid metal arises. Stirring is necessary to homogenize the temperature and chemical composition of the bath and to prevent the settling of intermetallic phases. During the melting of the metal, stirring also improves heat exchange between the solid metal and the bath, making it possible to shorten the melting phase, which reduces heat loss and loss on ignition.

[0009] In large furnaces, stirring is done mechanically, for example by a motorized device carrying a steel stirring tool on a long rod, which is immersed in the molten metal; to stir the molten metal, the device moves back and forth. In smaller furnaces, mechanical systems equipped with bladed rotors can be used. These mechanical systems are subject to significant wear, at least at the level of the stirring tools, which results in a cost.

[0010] Electromagnetic devices for setting a non-ferrous metal bath in motion are also known. These electromagnetic devices operate without moving mechanical parts. EP 2,206,998 and EP 2,381,201 (ZMAG) describe vortex liquid metal pump systems in which a magnetic field generated by a direct current sets the metal in motion, thereby creating a pressure difference between an inlet and an outlet. This system is located outside a furnace, with the liquid metal being drawn from the furnace to an inlet of the vortex device and discharged through an outlet of said vortex device back into the furnace.

[0011] EP 2 375 206 (ZMAG) describes a system having moving mechanical parts, in which rotating permanent magnets create a flow of non-ferrous metal in a container equipped with spiral conduits. This system is installed within a furnace and allows molten metal contained in the furnace to be pumped out.

[0012] These non-ferrous liquid metal pumping systems have the disadvantage of requiring a spiral conduit system or a vortex system, which is difficult to manufacture from a refractory material that can withstand the effects of the liquid metal. Furthermore, this spiral conduit system or vortex system is subject to wear in contact with the liquid metal and must be replaced regularly. Other non-ferrous liquid metal pumping systems are described in documents WO 2022 / 24996 and JP 2021100765.

[0013] To simply create agitation within a bath of non-ferrous liquid metal contained in a furnace, or in other words, to simply stir the liquid metal contained in a furnace, it would be desirable to have a simpler and less expensive system.

[0014] A simpler system is described in WO 2024 / 048787 (ZMAG). It completely separates the magnetic system from the molten metal bath, the magnetic system being installed outside the furnace, without any connection or fluidic contact with the molten metal contained within the furnace. This system comprises rotating permanent magnets generating a rotating magnetic field that acts on the molten metal bath through the furnace wall. This system effectively avoids the use of complexly shaped parts intended for contact with molten non-ferrous metal, which would otherwise have to be made of a refractory material.

[0015] However, in the system described in WO 2024 / 048787, the furnace wall (which is generally made of ferrous metal and has a ceramic refractory layer) strongly attenuates the magnetic field that must pass through it. To obtain satisfactory stirring, this attenuation must be compensated for by using permanent magnets with high magnetic induction, and therefore large sizes. This means that while such a system does avoid the use of expensive wear parts, this is offset by the drawbacks. due to a very large initial investment in permanent magnets. For small ovens, this investment can become prohibitive.

[0016] The present invention seeks to provide an electric furnace installation for non-ferrous liquid metal, with high energy efficiency and low loss on ignition, allowing good mixing of the liquid metal, which is suitable for relatively small quantities of metal, in particular between about half a ton and about fifteen tons, which does not require too high an investment cost, and which allows integration of other functions such as the treatment of the liquid metal.

[0017] Objects of the invention

[0018] According to the invention, the problem is solved by a furnace installation having at least two fluidically connected zones, said furnace installation being equipped with purely electric heating means, including at least one electric immersion heater. Stirring of the liquid metal is ensured by electromagnetic stirring means. This ensures highly efficient stirring, allowing the immersion heaters to be used with high electrical power, almost all of which is dissipated as heat in the molten metal bath.

[0019] A first object of the invention is a furnace installation for non-ferrous metals, in particular aluminium, magnesium, zinc, tin, lead, comprising at least one enclosure capable of containing liquid metal, and

[0020] - at least two zones for liquid metal in fluidic connection, thus that

[0021] - heating means which are solely electric, and which include at at least one immersion heater to heat the molten metal and possibly at least one radiant heat source to preheat the furnace,

[0022] - electromagnetic means for stirring the liquid metal, comprising at least a rotating permanent magnet, said electromagnetic mixing means being disposed in said enclosure, and / or below said enclosure, and / or on the side of said enclosure.

[0023] According to a first embodiment, said installation comprises a first zone for melting solid metal and a second zone for maintaining liquid metal.

[0024] According to a second embodiment which can be combined with said first embodiment, said installation comprises a first zone for melting solid metal and a second zone for processing liquid metal.

[0025] According to a third embodiment which can be combined with said first embodiment and / or with said second embodiment, said installation comprises a first zone for melting solid metal, a second zone for holding liquid metal, and a third zone for processing liquid metal.

[0026] According to a variant of this third embodiment, said installation further includes a fourth zone for unloading the liquid metal.

[0027] According to a fourth embodiment which can be combined with said first embodiment and / or with said third embodiment, including with variants thereof, said installation includes at least one immersion heater located in said zone for melting solid metal.

[0028] According to a first variant of this fourth embodiment, said installation also includes at least one immersion heater in said holding zone.

[0029] According to a second variant of this fourth embodiment, which can be combined with its first variant, said installation also includes at least one immersion heater in said area for the treatment of liquid metal.

[0030] According to a third variant of this fourth embodiment, which can be combined with its first and / or with its second variant, said installation includes a metal heating zone provided with at least one immersion heater which is in direct fluidic connection with said zone for the treatment of the liquid metal.

[0031] According to a fifth embodiment which can be combined with said first embodiment and / or with said third embodiment, including with variant thereof, and / or with said fourth embodiment, possibly according to the first and / or according to the second variant thereof, said electromagnetic mixing means are located in the fusion zone.

[0032] According to a sixth embodiment which can be combined with said first embodiment and / or with said third embodiment, including with a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or according to the second variant thereof, and / or with said fifth embodiment, said zones are delimited, within the same enclosure, by at least one wall comprising an opening, and / or correspond to two enclosures in fluidic connection.

[0033] According to a seventh embodiment which can be combined with said first embodiment and / or with said third embodiment, including with a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or according to the second variant thereof, and / or with said fifth embodiment, and / or with said sixth embodiment, said installation comprises at least two enclosures in fluidic connection.

[0034] According to an eighth embodiment which can be combined with said first embodiment and / or with said third embodiment, including a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or second variant thereof, and / or with said fifth embodiment, and / or with said sixth embodiment, and / or with said seventh embodiment, said installation comprises at least two enclosures in fluidic connection, and each zone corresponds to one enclosure.

[0035] According to a ninth embodiment which can be combined with said first embodiment and / or with said third embodiment, including with a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or second variant thereof, and / or with said fifth embodiment, and / or with said sixth embodiment, and / or with said seventh embodiment, said installation, and / or with said eighth embodiment, said installation includes feeding means for supplying solid metal to said area for solid metal melting, said feeding means being able to include a conveyor.

[0036] According to a first variant of this ninth embodiment, said conveyor includes an electric preheating means for drying said solid metal.

[0037] According to a second variant of this ninth embodiment, which can be combined with said first variant and with all embodiments of the furnace installation, said feeding means comprise a vibrating funnel connected to a conveyor.

[0038] According to a third variant of this ninth embodiment, which can be combined with said first variant and / or with said second variant, and with all embodiments of the furnace installation, said feeding means comprise a presentation floor for the solid metal at the edge of the melting zone, optionally provided with a mechanical pushing means for transferring the solid metal presented on said floor into said melting zone.

[0039] According to a fourth variant of this ninth embodiment, which can be combined with said first variant and / or with said second variant and / or with said third variant, and with all embodiments of the furnace installation, said feeding means comprise a robot configured to depalletize a pallet of solid metal ingots.

[0040] According to a tenth embodiment which can be combined with said first embodiment and / or with said third embodiment, including a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or second variant thereof, and / or with said fifth embodiment, and / or with said sixth embodiment, and / or with said seventh embodiment, said installation, and / or with said eighth embodiment, and / or with said ninth embodiment, said installation comprises a zone for melting solid metal provided with a stirring means electromagnetic system designed to be able to generate a vortex that keeps solid metal shavings submerged during their melting.

[0041] According to an eleventh embodiment which can be combined with said first embodiment and / or with said third embodiment, including with a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or according to the second variant thereof, and / or with said fifth embodiment, and / or with said sixth embodiment, and / or with said seventh embodiment, said installation, and / or with said eighth embodiment, and / or with said ninth embodiment, and / or with said tenth embodiment, said installation comprises at least one movable wall to delimit an area.

[0042] According to a twelfth embodiment which can be combined with said first embodiment and / or with said third embodiment, including with a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or according to the second variant thereof, and / or with said fifth embodiment, and / or with said sixth embodiment, and / or with said seventh embodiment, said installation, and / or with said eighth embodiment, and / or with said ninth embodiment, and / or with said tenth embodiment, and / or with said eleventh embodiment, at least one of said enclosures capable of containing liquid metal includes at least one closable opening to be able to establish, if necessary, a new fluidic connection with another enclosure capable of containing liquid metal or to exit liquid metal from said enclosure.

[0043] According to a thirteenth embodiment which can be combined with said first embodiment and / or with said third embodiment, including with a variant thereof, and / or with said fourth embodiment, possibly according to the first and / or according to the second variant thereof, and / or with said fifth embodiment, and / or with said sixth embodiment, and / or with said seventh embodiment, said installation, and / or with said eighth embodiment, and / or with said ninth embodiment, and / or with said tenth embodiment, and / or with said eleventh embodiment, and / or with said twelfth embodiment, said installation includes a metal outlet zone which includes at least one means for exiting liquid metal from said furnace installation.

[0044] In one variant, this means for removing liquid metal from said furnace installation is a means for taking a determined quantity of liquid metal.

[0045] According to a fourteenth embodiment which can be combined with said first embodiment and / or with said third embodiment, including with the variant of the latter, and / or with said fourth embodiment, possibly according to the first and / or according to the second variant of the latter, and / or with said fifth embodiment, and / or with said sixth embodiment, and / or with said seventh embodiment, said installation, and / or with said eighth embodiment, and / or with said ninth embodiment, and / or with said tenth embodiment, and / or with said eleventh embodiment, and / or with said twelfth embodiment, and / or with said thirteenth embodiment, said installation includes a dosing zone, provided with a device enabling the withdrawal of a controlled quantity of liquid metal.

[0046] A second object of the present invention is a process for melting non-ferrous metals in a furnace installation for ferrous metals according to the first object of the present invention, possibly according to its first and / or second and / or third and / or fourth and / or fifth and / or sixth and / or seventh and / or eighth and / or ninth and / or tenth and / or eleventh embodiment, in which process at least one of said immersion heaters in the melting zone is regulated so that said installation can supply liquid metal to an external consumer while said melting zone still contains solid metal.

[0047] According to a first embodiment, at least one of said immersion heaters is regulated in the melting zone so that said installation can supply liquid metal to an external consumer while said melting zone is supplied with solid metal.

[0048] According to a second embodiment which can be combined with the first embodiment, at least one of said immersion heaters is regulated in the melting zone so that the temperature of the liquid metal in the melting zone remains within an interval whose width does not exceed 40 °C, preferably does not exceed 25 °C, more preferably does not exceed 15 °C, and even more preferably does not exceed 10 °C.

[0049] According to a third embodiment which can be combined with the first embodiment and / or with the second embodiment, the melting process is conducted so that the temperature of the liquid metal in the melting zone differs from that of the holding zone by more than 20 °C.

[0050] According to a first variant the temperature of the liquid metal in the melting zone is at least 20 °C higher than that of the holding zone.

[0051] According to a second variant the temperature of the liquid metal in the melting zone is at least 20 °C lower than that of the holding zone.

[0052] According to a fourth embodiment which can be combined with the first embodiment and / or with the second embodiment and / or with said third in the embodiment (and any variant thereof), at least one of said immersion heaters is regulated in the melting zone so that the temperature of the liquid metal in the melting zone remains within an interval whose width does not exceed 40 °C, preferably does not exceed 25 °C, more preferably does not exceed 15 °C, and even more preferably does not exceed 10 °C.

[0053] According to a fifth embodiment, which can be combined with the first embodiment and / or with the second embodiment and / or with said third embodiment (and any variant thereof) and / or with the fourth embodiment, the process is operated in such a way that the mass ratio between the quantity of solid metal introduced into the melting zone and the quantity of liquid metal present in the melting zone is less than 6, preferably less than 5, even more preferably between 2.5 and 4.5, and optimally between 2.7 and 4.0.

[0054] A third object of the present invention is a foundry installation for the manufacture of molded parts using at least one mold, comprising a furnace installation for non-ferrous metals according to the first object of the invention, possibly according to its first and / or second and / or third and / or fourth and / or fifth and / or sixth and / or seventh and / or eighth and / or ninth and / or tenth and / or eleventh embodiment, and further comprising at least one molding installation which is fed by said furnace installation via a fluidic link.

[0055] According to a first embodiment, said fluidic link has a length of less than ten meters, and preferably less than five meters, more preferably less than three meters, and even more preferably less than two meters, this length being measured from the exit of the enclosure of said furnace installation to the entrance into said molding installation.

[0056] According to a second embodiment which can be combined with said first embodiment, said foundry installation has a means of controlling the supply of solid metal to the furnace installation which is controlled by a computer machine configured to use for this control information representing the consumption of liquid metal by said molding installation.

[0057] According to a third embodiment which can be combined with said first embodiment and / or with said second embodiment, said mold is a permanent mold.

[0058] According to a fourth embodiment which can be combined with said first embodiment and / or with said second embodiment and / or with said third embodiment, said molding installation is an injection molding installation.

[0059] A fourth object of the present invention is a method of operating a foundry installation according to the third object, in which said molding installation is operated to manufacture castings while the melting zone of said furnace installation is fed with solid metal.

[0060] According to a first embodiment, said molding installation is supplied with liquid metal from said furnace installation by a means selected from the group formed by:

[0061] (i) a scooping ladle,

[0062] (ii) an automatic dosing system, and in particular an automatic dosing system whose lower part is immersed in the bath and which allows a controlled quantity of liquid metal to be taken and introduced directly into the mold or into the injection chamber of the piston of the injection molding machine,

[0063] (iii) a dosing pump, part of which is permanently immersed in the bath and which allows a controlled quantity of liquid metal to be introduced directly into the injection chamber of the piston of the injection molding machine,

[0064] (iv) a liquid metal sampling system of the "dosing pipette" type connected to a mechanical arm enabling the filling of the piston chamber of the injection press.

[0065] According to a second embodiment, which can be combined with said first embodiment, the process is operated in such a way that the mass ratio between the quantity of solid metal introduced into the melting zone and the quantity of liquid metal present in the melting zone is less than 6, preferably less than 5, even more preferably between 2.5 and 4.5, and optimally between 2.7 and 4.0. Brief description of the figures

[0066] The figures are given for illustrative purposes and to better explain certain technical features of the invention, so as to enable a person skilled in the art to carry out the invention. They are not intended to, nor do they have the effect of, limiting the scope of the invention.

[0067] [Fig.1] schematically represents a top view of an installation according to a first embodiment of the invention.

[0068] [Fig.2] schematically represents a side view of the furnace of [Fig.1] in section along the section line A-A'.

[0069] [Fig.3] schematically represents a top view of an installation according to a second embodiment of the invention.

[0070] [Fig.4] schematically represents a side view of the furnace of [Fig.3] in section along the section line B-B'.

[0071] [Fig.5] schematically represents a cross-section of a magnetic mixing system usable for the realization of the present invention.

[0072] [Fig.6] refers to [Fig.5] and schematically represents the plate with its permanent magnets.

[0073] [Fig.7] schematically represents a side view of a furnace usable for the realization of the present invention in section; it is a variant with superstructure and lid.

[0074] [Fig.8] schematically represents a top view of an installation according to a variant of the invention.

[0075] [Fig.9] schematically represents a top view of an installation according to a third embodiment of the invention.

[0076] [Fig. 10] schematically represents a perspective view of the installation according to [Fig.9].

[0077] [Fig. 11] shows a schematic perspective view of an installation according to a fourth embodiment of the invention.

[0078] [Fig. 12] shows another schematic perspective view of the installation according to [Fig.11].

[0079] [Fig. 13] shows a schematic perspective view of an installation according to a fifth embodiment.

[0080] [Fig.14] shows a schematic top view of the installation according to [Fig.13].

[0081] [Fig. 15] shows a schematic perspective view with lid of an enclosure of fusion usable to implement the invention.

[0082] [Fig. 16] shows a schematic perspective view of the fusion enclosure according to [Fig. 15], without a lid.

[0083] [Fig. 17] shows a schematic perspective view of a furnace installation according to the invention which was used for the examples.

[0084] [Fig. 18] shows a schematic perspective view of the installation of the [Fig. 17], at a preheating stage with radiant heating elements.

[0085] [Fig. 19] refers to Example 1 and shows a monitoring of the temperature of the liquid metal bath during the introduction of batches of solid metal.

[0086] The following reference numerals are used in the figures and in the description:

[0087] 1,100,200 Oven installation according to the invention

[0088] 2,102,202 Enclosure

[0089] 3,103,203 ;4,104,204 Outer wall (3,103,203 long ; 4,104,204 short)

[0090] 5,105,205 Inner wall

[0091] 6.106 Opening in the inner wall 5.105

[0092] 7,107 Immersion heater

[0093] 8,108,208 Magnetic mixing system

[0094] 9,109,209 Metal processing system

[0095] 11 Base of 2.102

[0096] 12,112 Injector of 9,109

[0097] 15 Superstructure

[0098] 16 Lid of 15

[0099] 17,217 Outlet chute

[0100] 80 Motor

[0101] 81 Axis

[0102] 82 Guidance system

[0103] 83 Platinum

[0104] 84.85 Permanent magnets (of opposite polarity)

[0105] 86 Watertight envelope

[0106] 218 Radiant heating device (preheating of the enclosure) Detailed description

[0107] The invention relates to a furnace installation for non-ferrous metals, in particular aluminum, magnesium, zinc, tin, and lead, where the term "metal" here always includes alloys based on that metal. This furnace installation comprises at least two liquid metal zones that are separated but connected by fluidic connections. In this installation, a zone may correspond to a chamber, and / or a chamber may comprise several zones.

[0108] In one embodiment, the installation comprises at least one enclosure and at least one internal wall contained within at least one of these enclosures, said wall delimiting at least two zones that are separated but fluidically connected. In another embodiment, the installation comprises two fluidically connected enclosures. To increase the number of zones, if desired, one and / or the other of these enclosures may include one or more internal walls. These two embodiments may be combined.

[0109] The installation may include more than two zones which are separate but are in fluidic connection, typically arranged in series; it may, for example, include three zones.

[0110] A first zone can be arranged as a melting zone. To supply the melting zone with solid metal to be melted, the installation may include means for introducing solid metal into the melting zone. These means may include a conveyor.

[0111] A second area can be provided as a liquid metal holding area.

[0112] Optionally or in addition, at least one area may be provided as a liquid metal treatment area. If this liquid metal treatment area is neither the melting area nor the holding area, the liquid metal treatment area(s) may be functionally located between the melting area and the liquid metal holding area. The liquid metal treatment area may be provided as a gas treatment ladle. A gas treatment ladle is designed to remove, in particular, hydrogen by injecting an inert gas (typically argon) or a reactive gas (typically chlorine, although this process is effective but outdated for environmental reasons) into the liquid metal. The treatment area (or another treatment area) may be provided as a liquid metal filtration ladle using a ceramic filter. These liquid metal treatment technologies are known as such and will not be described in further detail here.

[0113] The inner wall may extend from a level above the level of the liquid metal in the enclosure to the bottom of the enclosure, or it may stop above the bottom of the enclosure, leaving a space for the liquid metal to flow through. It may also allow the metal to pass through laterally. The wall may have one or more openings for the metal to flow through.

[0114] Said enclosure may include one or more solid metal loading zones. It may include a liquid metal inlet. It may include a liquid metal outlet. It may include a liquid metal processing chamber, in particular a liquid metal degassing chamber. It may include a liquid metal filtration chamber.

[0115] According to a first essential feature of the invention, the furnace installation according to the invention comprises heating means that are solely electrical. More specifically, it comprises at least one electric immersion heater, and typically a plurality of immersion heaters, located inside at least one enclosure, or inside at least one of the enclosures. An enclosure may comprise several electric immersion heaters. A zone may comprise one or more immersion heaters, but depending on its use, each zone does not need to include an immersion heater. The immersion heaters are used as the sole heat source of the installation, except, in one embodiment, for the use of radiant heat sources to preheat the furnace for dry starting.Electric immersion heaters offer an energy efficiency of approximately 99%, meaning that almost all the electrical energy consumed is transformed into usable heat to heat the oven installation.

[0116] Preferably, at least one immersion heater is used having an external diameter of at least 50 mm, preferably at least 55 mm, even more preferably at least 60 mm, or even at least 65 mm or at least 70 mm. Immersion heaters are commercially available. They advantageously include a ceramic sheath. Si3N4 is preferred for this purpose, as it is sufficiently inert in contact with liquid metal, particularly aluminum, zinc, lead, tin, and magnesium. Compared to other usable ceramic materials, it offers high resistance to thermal shock and good mechanical strength.

[0117] Preferably the immersion heaters are designed so as to be able to deliver a thermal power of at least 25 Watts per cm2 of external surface, preferably at least 30 W / cm2, more preferably at least 35 W / cm2 and even more preferably at least 40 W / cm2.

[0118] Advantageously, the furnace installation according to the invention is operated in a quasi-isothermal manner, meaning that the temperature of the liquid metal remains as constant as possible throughout the operation of the installation. In particular, the amount of energy supplied by the heating means, which are electric immersion heaters, is the same as the enthalpy of fusion required to melt the solid metal supplied to the installation. This requires effective stirring of the bath. This stirring distributes the heat transmitted by the immersion heaters throughout the bath, thereby increasing the thermal power delivered by the heaters. This allows the melting process to be accelerated, shortening the holding time and increasing the furnace throughput (expressed as the quantity of metal per unit time). This allows the overall size of the installation to be reduced, leading to a decrease in heat losses.

[0119] Said immersion heaters are advantageously straight. In particular situations it may be advantageous to use an immersion heater that is not straight, and which may, for example, have an "L" shape. By way of example, the "L" shape is advantageously used in a holding zone.

[0120] In a particular embodiment of the invention, the furnace installation includes radiant electric heating devices for preheating the chamber. Advantageously, modified immersion heaters, straight or not (for example, L-shaped), are used, which are equipped with a steel casing (advantageously made of steel with a high thermal emission coefficient). Their power is typically on the order of 10 kW. These devices are advantageously retractable. The chamber is preheated by radiant and convective heating.

[0121] According to a second essential feature of the invention, said furnace installation comprises at least one magnetic stirring system. Said magnetic stirring system comprises a system of permanent magnets capable of being set in motion. This movement of the permanent magnets transmits a moving magnetic field to the molten metal. In a particularly The advantageous magnetic stirring system comprises a rotating element designed to rotate around a central axis. A first magnet is fixed to this rotating element, its upper face being the N pole, and a second magnet is fixed to the same rotating element, its upper face being the S pole. The rotation of this rotating element induces eddy currents within the liquid metal, which generate a mechanical movement of the liquid metal.

[0122] This magnetic stirring system is preferably installed inside the enclosure containing the liquid metal; alternatively, it can be installed below the enclosure containing the liquid metal. The enclosure equipped with a magnetic stirring system is advantageously one that includes an electric immersion heater. The area equipped with a magnetic stirring system is advantageously one that includes an electric immersion heater. The permanent magnet magnetic stirring system allows for very efficient mixing of the bath, which is necessary to ensure homogenization of the bath temperature in the presence of a significant localized heat input from the immersion heaters. The absence of mechanical stirring elements in contact with the bath reduces maintenance costs by eliminating mechanical parts subject to wear, and it prevents contamination of the bath by the progressive dissolution of these mechanical elements.

[0123] In the case where the stirring system is installed inside an enclosure, the permanent magnets are arranged in a liquid-metal-tight casing. This casing can be made of a non-metallic material, preferably ceramic. Its shape can be substantially cylindrical. Such a casing offers several advantages. A cylindrical ceramic component is easy to manufacture, compared to the complex shapes of the vortex systems contained in known magnetic stirring systems. Since this is a wear part, this point is significant. The refractory casing can be made with a relatively thin wall. A ceramic material, and a fortiori a thin ceramic material, does not significantly attenuate the magnetic field of the permanent magnets, compared to the prior art of systems mounted against the outer wall of the furnace.The system according to the invention can therefore use smaller permanent magnets than prior art systems, resulting in significant cost savings.

[0124] The furnace installation according to the invention can be implemented in a modular manner. For example, internal walls can be added inside an enclosure to delimit a new zone. At least one enclosure can also be provided with at least one closable opening, allowing for the addition, if necessary, of a new fluid connection with another enclosure, whether already part of said furnace installation or added later. This modularity makes it possible to meet To meet the new needs of the furnace operator: for example, if a metal processing area was not initially planned, it is possible, if the size of the holding area allows, to define a new area by adding one or more walls within the holding area; this new area can then be configured as a processing area. In the same example, it is also possible to add an additional chamber to the furnace installation by establishing a fluid connection from a closable opening initially provided in one of the installation's chambers to an opening in the additional chamber. This fluid connection (which typically leads from the existing holding area to the new processing area) can be made using known types of molten metal transfer chutes.This closable opening in the enclosure can also be used to add, if needed, a liquid metal outlet.

[0125] The fluidic connections between two enclosures and / or between the furnace installation and the molding installation can be known type liquid metal transfer chutes.

[0126] The invention will now be explained in detail with reference to the figures.

[0127] [Fig-1] shows a first embodiment of a furnace installation 1 according to The invention is shown in a top view. This figure does not show the superstructure and covers that are normally present when the furnace is in operation. [Fig. 2] shows the same furnace installation in vertical section along line A-A' of [Fig. 1]. Said furnace installation 1 comprises a chamber 2. In [Fig. 2], a horizontal dashed line indicates the maximum level of the molten metal. The chamber 2 comprises a bottom 11, two long outer walls 3a, 3b that are opposite and substantially parallel, and two short outer walls 4a, 4b that are opposite and substantially parallel. The shape of the chamber is shown here substantially rectangular in top and side views, but the chamber can be made in different shapes, in particular with slightly inclined and flared side walls, or with curved walls.

[0128] The enclosure 2 also includes an internal wall 5 which divides the internal volume of the enclosure into two zones I and II. In this embodiment, this wall does not extend to the bottom of the enclosure, so that the two zones I and II are fluidically connected by an opening 6 located at the bottom of the enclosure. In a variant, the wall may extend to the bottom and include a lateral opening or an opening positioned otherwise.

[0129] Another enclosure geometry is shown in [Fig. 3] top view and in [Fig. 4] section AA. [Fig. 3] also does not show the superstructure and covers that are normally present when the furnace is in operation. With respect to [Fig. 1] and [Fig. 2], the numerical references denote the same aspect are increased by 100. In this embodiment, the external walls 104a, 104b are not vertical but slightly inclined. The internal wall extends to the bottom of the enclosure 102, and the fluidic connection between zones I and II is made through a lateral opening 106.

[0130] The enclosure according to the invention comprises at least one immersion heater 7,107, and preferably a plurality of immersion heaters. In [Fig. 1] and [Fig. 2] these immersion heaters are all located in the same zone I of the enclosure, but they could be located in zone II, or both in zone I and in zone II as is the case in the variant shown in [Fig. 3] and [Fig. 4].

[0131] The enclosure advantageously comprises a magnetic stirring system 8,108 located inside said enclosure, as shown in [Fig. 1] to [Fig. 4]. It will be explained in greater detail below. The enclosure as shown in [Fig. 1] to [Fig. 4] also comprises at least one metal processing system 9,109. In [Fig. 1] to [Fig. 4] this system is a degassing system comprising a rotor equipped with an injector 12,112 for injecting an inert gas; these systems are known as such and will not be described in greater detail here.

[0132] The installation according to the invention may also include at least one metal treatment system, such as a filtration system. This system may be located in an area that does not have immersion heaters, as in [Fig. 1] and [Fig. 2], or it may be located in an area that has at least one immersion heater, as in [Fig. 3] and [Fig. 4].

[0133] The magnetic stirring system 8,108 comprises at least one permanent magnet capable of movement. Preferably, this movement is rotational about an axis. If the magnetic stirring system is intended to be placed inside an enclosure, the permanent magnet is located inside a liquid-metal-tight casing. This casing can be made of a non-metallic material, for example, a suitable ceramic material; the thickness of this casing can be quite small, on the order of 20 mm at most, and preferably not exceeding 15 mm.

[0134] Figures 5 and 6 show two views of a magnetic stirring system 8, 108 suitable for carrying out the object of the invention. It comprises a plate 83, here substantially cylindrical in shape, which carries at least two permanent magnets of opposite polarity 84, 85. In this case, said plate 83 carries two pairs of permanent magnets 84a, 84b; 85a, 85b of opposite polarities. The plate 83 is configured to be able to rotate about an axis 81 within a guide system 82. A motor 80 is configured to drive said axis 81. The motor 80, the axis 82, the guide system 82, the plate 83, and the permanent magnets 84, 85 are housed in a sealed enclosure 86.

[0135] Preferably, the magnetic stirring system is located in an area that also includes at least one immersion heater 7,107, as shown in [Fig. 1] to [Fig. 4]. Stirring the molten metal bath near an immersion heater improves heat dissipation and thermal homogenization within the furnace area and, more generally, within the furnace. It also helps to homogenize the chemical composition of the bath and prevent the settling of intermetallic phases. Stirring the bath allows for the dissipation of more electrical power in the immersion heater, thus shortening the heating time.

[0136] As can be seen in [Fig. 7], the enclosure 2 according to the invention advantageously comprises a superstructure 15, which can be designed to support the various systems mentioned above (not shown in the figure), namely, in particular, the immersion heaters 7 and the rotor of the metal treatment system 9. The superstructure includes movable or removable covers 16 that close the furnace. The furnace installation may also include a solid metal introduction system, for example, a conveyor (not shown in this figure).

[0137] The enclosure may include a liquid metal outlet chute 17, as can also be seen in [Fig. 7]. This chute may be arranged in a metal outlet zone III, separated from another zone II located upstream by an internal wall 5b.

[0138] The enclosure can have other geometries. It can include a plurality of walls 5 delimiting a plurality of zones; this is shown in [Fig. 7] and especially in [Fig. 8]. [Fig. 8] shows an advantageous embodiment of a furnace installation according to the invention. It comprises an enclosure 202 which has three internal walls 205a, 205b, 205c delimiting four zones, namely a melting zone I, a holding zone II, a liquid metal processing zone III, and a liquid metal outlet zone IV. The liquid metal can be discharged, in particular, by suction or (as in the figure) by pouring through a chute 217 provided in a wall 204b of the enclosure 202. Optionally, the furnace can also include a ceramic filter. This ceramic filter can be located in the wall separating the metal processing zone III from the metal outlet zone IV.The four zones are in fluidic connection; the openings in the internal walls 205 are not shown in [Fig.8], but the metal flow is indicated by arrows.

[0139] This installation according to [Fig. 8] comprises a plurality of electric immersion heaters 207, particularly in the melting zone I, in the holding zone II, and in the liquid metal treatment zone III. It also comprises an electromagnetic stirring system 208 in the melting zone; this is the zone where stirring is of greatest interest since it accelerates melting and thus increases the furnace throughput (or, in other words, the furnace's melting capacity expressed as the quantity of molten metal per unit time).

[0140] As can be seen in [Fig. 8], the furnace installation according to the invention may also include one or more devices 218 capable of preheating the internal walls of the enclosure by radiation. These devices are preferably retractable. They are used when the furnace is started from a temperature significantly below the melting point of the metal, or even from a cold start.

[0141] Figures 9 and 10 show a perspective view and a top view, respectively, of a furnace installation according to another embodiment of the invention. This installation consists of three chambers connected by fluidic channels.

[0142] These figures show a portion of the superstructure that has been omitted in [Fig.2], [Fig.4] and [Fig.7]. In particular, [Fig.9] shows a portion of the lifting devices used to lift the enclosure covers and remove the immersion heaters.

[0143] Fig. 11 and Fig. 12 show, respectively, a perspective view and a top view of a furnace installation according to another embodiment of the invention.

[0144] Figures 13 and 14 show, respectively, a perspective view and a top view of a furnace installation according to another embodiment of the invention. This installation comprises two enclosures. The first enclosure is a melting chamber, with its magnetic stirring device immersed in the molten metal bath and with its immersion heaters (in this case, thirty immersion heaters). This melting chamber is in fluidic connection with a second enclosure which is subdivided into several zones by walls. A first zone is a holding zone. A second zone is a liquid metal treatment zone where inert gas is injected.

[0145] The furnace installation further includes, upstream of the melting chamber, a skip loading and unloading area. This area comprises a skip yard, typically containing solid metal waste (e.g., molding scrap or compacted stamping skeletons), which is emptied into a hopper that connects to a solid metal conveying and preheating area. The hopper empties onto a vibrating conveyor (typically a conveyor) located in a tunnel heated by an electric heating element. This conveyor empties the solid metal into the loading area of ​​the melting chamber.

[0146] Figures 15 and 16 show, respectively, a representation with a lid [Fig. 15] and without a lid [Fig. 16] of a melting chamber specifically adapted for melting chips, whether compacted or even loose. The problem with introducing chips into a molten metal bath is that the chips must remain immersed in the liquid metal, whereas they tend to float; due to their small size or thinness, they are at risk of being oxidized by the air, which This leads to the formation of oxidative fouling. This oxidative fouling is lost in the metal balance; those skilled in the art refer to it as "loss on ignition".

[0147] As can be seen in [Fig. 16], the semicircular slag introduction zone is located outside the main chamber, to which it is fluidically connected via two openings that allow the passage of a vortex of liquid metal generated by a magnetic brazing unit located inside the chamber. A plurality of immersion heaters heat the liquid metal bath. The liquid metal can leave the melting chamber via a suitable fluidic connection (e.g., a chute) towards a holding chamber (not shown in this figure).

[0148] The melting chamber of this embodiment represents a modular unit which can be added to a furnace installation according to the invention which does not yet have one (such as that of [Fig. 13] and [Fig. 14]), in order to make it more versatile, or it can replace an ingot melting unit.

[0149] The installation according to the invention has many advantages. It uses only electrical energy. It exhibits high energy efficiency, thanks to effective stirring. It can be started dry, without a bath base. Oxidation of the molten metal (and therefore loss on ignition) is minimized, because heating occurs only in the bath and the air temperature above the bath remains lower than the bath temperature, and because the melting process by adding solid metal to the bath can be rapid due to the high heat input from the immersion heaters, coupled with the rapid dissipation of this heat through effective stirring. Thanks to this rapid dissipation of the heat supplied by the immersion heater, the power of the immersion heater can be increased without fear of local overheating of the metal or the heater itself.

[0150] The combination of electric immersion heating (immersion heater) and magnetic stirring makes it possible to achieve high temperature homogeneity and stability. At a fixed point in the furnace, the bath temperature can be stabilized within a range of 4°C, or even 3°C or 2°C, in the absence of solid metal in the bath. In a continuous feed process (i.e., in a process where solid metal is introduced into the furnace installation at the same time as liquid metal is removed, or in which the bath still contains solid metal), the range depends on the rate of solid metal introduction. In the preferred case of constant feed, a range of less than 15°C, less than 10°C, or even less than 5°C can be achieved.

[0151] In a batch-type processing method, the temperature range depends on the quantity of solid / liquid, and the temperature range can be less than 20 °C and can even reach 15 °C, but hardly less.

[0152] For a given metal flow rate, the installation according to the invention can be more compact because the dilution ratio during the melting of solid metal (i.e. the amount of bath required to melt 1 tonne of solid metal per hour) can be reduced to a value less than 3.5, whereas in electric remelting furnaces according to the prior art this ratio is on the order of about 6 to about 8.

[0153] Another advantage is that the lifespan of the furnace refractory is improved compared to a gas furnace because, in the installation according to the invention, the air temperature is lower than that of the bath. The quality of the liquid metal is preserved because the stirring process does not introduce impurities, and because the temperature is more homogeneous within the bath. The installation allows for the melting of ingots, production waste, and compacted scrap (such as chips, cutting offcuts, and stamping skeletons), and the feeding of solid metal can be automated.

[0154] Another advantage of the furnace installation according to the invention is its modularity. As shown in [Fig. 10], such an installation can comprise a plurality of individual chambers connected by a fluidic linkage. In particular, it can include one or more metal processing zones. The size of the installation can be optimized for a given use, for example, alongside an injection molding press dedicated to a specific type of part. The modularity facilitates the use of standard components, for example, standard-sized chambers.

[0155] The furnace installation according to the invention can be implemented in numerous variations, which can be combined with each other, insofar as this is technologically feasible and relevant. In particular, and as already mentioned, it can have different geometries. Viewed from above, the enclosure can, for example, be square, or it can be a shape other than a parallelepiped, or it can be L-shaped, H-shaped, or any other shape.

[0156] The furnace installation according to the invention has numerous applications in the field of non-ferrous metal casting. It is particularly applicable to the casting of aluminum and its alloys. One specific use is in a melting zone. A melting zone is an area containing a liquid bath into which solid metal is loaded to melt it. This process can be quite slow. The electrical power dissipated in the immersion heater is limited by the heat transfer between the heater and the metal bath; this transfer is all the more efficient when the bath is vigorously stirred. This cannot be easily achieved with mechanical stirring means if the bath is clogged with Solid metal in the form of ingots, chips, or compacted stamping skeletons. The use of a magnetic stirring system located inside the chamber facilitates this stirring, even when the bath height is low, i.e., in the initial phase of melting. Thus, the furnace installation according to the invention makes it possible, in certain cases, to improve heat transfer and to melt solid metal more quickly in a bath of liquid metal.

[0157] A particular application is that of a melting process using at least one electric immersion heater in which melting is initiated without a bath, i.e., without liquid metal, solely with a charge of solid metal (which may include ingots and / or solid products to be recycled). This process is the only known method for starting an electric melting furnace dry, without a liquid bath and without the input of heat generated by combustion.

[0158] In this process, the internal walls of the enclosure (or the area of ​​the enclosure in which this melting will take place) are advantageously preheated using devices emitting radiation, typically infrared radiation. These devices are advantageously electrical devices; they are advantageously retractable, as described in relation to [Fig. 8].

[0159] The heating of the solid charge in the furnace is carried out using one or more immersion heaters, for example according to the process described in WO 2013 / 199257 on behalf of the Applicant. In this process, the immersion heater is preferably placed in physical contact with solid metal to improve heat transfer through a strong conduction component, in addition to convection and radiation transfer. The electrical power supplied to the immersion heater must be low, representing a fraction of the rated power, for example, less than 10% of the rated power; this power can then be gradually increased. When the metal begins to melt, it flows to the lowest point of the chamber, which may no longer be in contact with the immersion heater. When the bath level is very low, mechanical stirring is inefficient, while magnetic stirring works well.

[0160] Yet another advantage of the non-ferrous metal furnace installation according to the invention is its compact size. Indeed, for a given metal output, this installation can be smaller than those of the prior art. This is due to the fact that isothermal melting allows liquid metal to be drawn off simultaneously with the addition of solid metal to be melted. The melting process can be operated in such a way that the mass ratio between the quantity of solid metal introduced into the melting zone and the quantity of liquid metal present in the melting zone is less than 6, preferably less than 5, even more preferably between 2.5 and 4.5, and optimally between 2.7 and 4.0.

[0161] This ratio is known as the "dilution ratio." For example, this means that to melt 1 tonne of aluminum per hour, a quantity of liquid aluminum of between approximately 2.7 tonnes and approximately 4.0 tonnes must be present in the melting zone. Also for aluminum, the installation can be sized and operated, for example, to be able to melt 0.5 t / h of solid metal in 1.5 t of liquid metal in the melting zone, or 1 t / h of solid metal in 3 t of liquid metal, or 2 t / h of solid metal in 6 t of liquid metal.

[0162] The compact design of the furnace installation according to the invention, and the absence of gas supply lines, allows it to be installed in the immediate vicinity of casting machines for the manufacture of molded parts, for example, by die-casting processes. The furnace installation according to the invention can thus be operated within a foundry installation for the manufacture of molded parts using at least one mold, in which said furnace installation supplies a molding installation (comprising a casting machine) with liquid metal. This supply is achieved via a fluid connection that can be very short.Its length, measured from the exit of the enclosure of said furnace installation to the entrance of said molding installation, is typically less than ten meters, and preferably less than five meters, more preferably less than three meters, and even more preferably less than two meters.

[0163] Positioning the furnace installation in the immediate vicinity of the molding installation that consumes the liquid metal supplied by said furnace installation avoids the transport of liquid metal through a molding plant. For example, if a large-capacity furnace supplies a plurality of molding machines, this necessitates the installation of a network of chutes to convey the liquid metal from the furnace to the molding installation. This poses a safety problem and reduces the overall flexibility of the plant. Indeed, a foundry installation including a furnace installation according to the invention can be very easily adapted to a change in production volume or production schedule, by reducing the isothermal melting rate if the plant's flow rate needs to be decreased, or by shutting down one of the furnace installations, or even by using a furnace installation with a different alloy.

[0164] In such a foundry installation for the manufacture of castings, the same furnace installation can supply a plurality of casting machines.

[0165] A means of controlling the supply of the solid metal furnace installation can be provided which is controlled by a computer machine configured to use for this control information representing the consumption of liquid metal of said molding installation. Examples

[0166] The applicant carried out several tests in a furnace installation according to the invention, which is shown schematically in [Fig. 17] and [Fig. 18]. As shown in [Fig. 18], the furnace melting zone was first preheated using radiant heating elements arranged horizontally near the furnace floor. In an adjacent area, three thermocouples were installed for the purposes of this example ([Fig. 18] shows only one thermocouple): thermocouple TC1Z1 at 50 mm from the bottom of the melting zone, thermocouple TC2Z1 at 100 mm from the bottom of the melting zone, and thermocouple TC3Z1 at 150 mm from the bottom of the melting zone.

[0167] Next, the superstructure comprising the radiant heating elements was removed and replaced by immersion heaters and a magnetic stirring system in the melting zone, and a dosing pump in the adjacent zone; this can be seen in [Fig. 17].

[0168] Example 1:

[0169] Aluminium ingots were melted in the melting zone, following a procedure similar to that described in WO 2023 / 199257 Al. Batches of aluminium ingots with a unit mass of 5.2 kg were then added, and the temperature of the metal in the melting zone was monitored using thermocouples. The temperature was recorded as a function of time; this recording is shown in [Fig. 19], which shows three periods, labeled A, B, and C. During period A, ten batches of one ingot each were added, one after the other, for a total of 52 kg. During period B, two batches of four ingots each were added, one after the other, for a total of 2 x 4 x 5.2 kg = 41.6 kg. During period C, five batches of three ingots each were added, one after the other, for a total of 5 x 3 x 5.2 kg = 78 kg. This corresponded to a total addition of 33 ingots in approximately 61 minutes. It can be observed that for the introduction of a batch of one ingot, the temperature in the melting zone is within a range of approximately 3 °C. Example 2:

Claims

Demands

1. A furnace installation for non-ferrous metals, in particular aluminium, magnesium, zinc, tin, lead, comprising at least one enclosure capable of containing liquid metal, and - at least two zones for liquid metal in fluidic connection, as well as - heating means which are solely electric, and which include at least one immersion heater for heating the liquid metal and optionally at least one radiant heat source for preheating the furnace, - electromagnetic means for stirring the liquid metal; comprising at least one rotating permanent magnet, said electromagnetic stirring means being disposed in said enclosure and / or below said enclosure and / or on the side of said enclosure.

2. Furnace installation for non-ferrous metals according to claim 1, characterized in that it comprises a first zone for melting solid metal and a second zone for holding liquid metal, or a first zone for melting solid metal and a second zone for processing liquid metal.

3. Non-ferrous metal furnace installation according to claim 1 or 2, characterized in that it comprises a first zone for melting solid metal, a second zone for holding liquid metal, and a third zone for processing liquid metal, and possibly a fourth zone for unloading liquid metal.

4. A furnace installation for non-ferrous metals according to any one of claims 2 to 3, characterized in that it comprises at least one immersion heater located in said zone for melting solid metal, and possibly at least one immersion heater in said holding zone and / or in said zone for processing liquid metal.

5. Non-ferrous metal furnace installation according to any one of claims 2 to 4, characterized in that said electromagnetic stirring means are located in the melting zone.

6. A furnace installation for non-ferrous metals according to any one of claims 1 to 5, characterized in that said zones are delimited, within the same enclosure, by at least one wall including an opening, and / or correspond to two enclosures in fluidic connection.

7. A furnace installation for non-ferrous metals according to any one of claims 1 to 6, characterized in that it comprises at least two enclosures in fluidic connection.

8. A furnace installation for non-ferrous metals according to any one of claims 1 to 7, characterized in that it comprises at least two enclosures in fluidic connection, and in that each zone corresponds to one enclosure.

9. A furnace installation for non-ferrous metals according to any one of claims 1 to 8, characterized in that it comprises a zone for the melting of solid metal provided with an electromagnetic stirring means designed to be capable of generating a vortex which keeps solid metal chips submerged during their melting.

10. A method for melting non-ferrous metals in a furnace installation for ferrous metals according to any one of claims 1 to 9, wherein at least one of said immersion heaters in the melting zone is regulated so that said installation can supply liquid metal to an external consumer while said melting zone is being fed with solid metal, and preferably at least one of said immersion heaters in the melting zone is regulated so that the temperature of the liquid metal in the melting zone remains within a range whose width does not exceed 40 °C, preferably not exceed 25 °C, more preferably not exceed 15 °C, and even more preferably not exceed 10 °C.

11. Melting process according to claim 10, characterized in that the melting process is operated in such a way that the mass ratio between the quantity of solid metal introduced into the melting zone and the quantity of liquid metal present in the melting zone is less than 6, preferably less than 5, even more preferably between 2.5 and 4.5, and optimally between 2.7 and 4.

0.

12. A foundry installation for the manufacture of castings using at least one mold, comprising a furnace installation for non-ferrous metals according to any one of claims 1 to 9, and further comprising at least one molding installation which is supplied by said furnace installation via a fluidic link, said fluidic link preferably having a length of less than ten meters, more preferably less than five meters, even more preferably less than three meters, and even more preferably less than two meters, this length being measured from the exit of the enclosure of said furnace installation to the entrance into said molding installation.

13. A method of operating a foundry plant according to claim 12, wherein said molding plant is operated to manufacture castings while the melting zone of said furnace plant is fed with solid metal, and preferably by operating a melting process according to claim 10 or 11.