Field of the Invention
[0001] This invention relates to multi-layer non-carbon, metal-based anodes, for use in
cells for the electrowinning of aluminium by the electrolysis of alumina dissolved
in a molten fluoride-containing electrolyte, and to methods for their fabrication
and reconditioning, as well as to electrowinning cells containing such anodes and
their use to produce aluminium.
Background Art
[0002] The technology for the production of aluminium by the electrolysis of alumina, dissolved
in molten cryolite, at temperatures around 950°C is more than one hundred years old.
[0003] This process, conceived almost simultaneously by Hall and Héroult, has not evolved
as many other electrochemical processes.
[0004] The anodes are still made of carbonaceous material and must be replaced every few
weeks. During electrolysis the oxygen which should evolve on the anode surface combines
with the carbon to form polluting CO
2 and small amounts of CO and fluorine-containing dangerous gases. The actual consumption
of the anode is as much as 450 Kg/Ton of aluminium produced which is more than 1/3
higher than the theoretical amount of 333 Kg/Ton.
[0005] Using metal anodes in aluminium electrowinning cells would drastically improve the
aluminium process by reducing pollution and the cost of aluminium production.
[0006] US Patent 4,614,569 (Duruz/Derivaz/Debely/Adorian) describes anodes for aluminium
electrowinning coated with a protective coating of cerium oxyfluoride, formed in-situ
in the cell or pre-applied, this coating being maintained by the addition of cerium
to the molten cryolite electrolyte. This made it possible to have a protection of
the surface only from the electrolyte attack and to a certain extent from the gaseous
oxygen but not from the nascent monoatomic oxygen.
[0007] EP Patent application 0 306 100 (Nyguen/Lazouni/Doan) describes anodes composed of
a chromium, nickel, cobalt and/or iron based substrate covered with an oxygen barrier
layer and a ceramic coating of nickel, copper and/or manganese oxide which may be
further covered with an in-situ formed protective cerium oxyfluoride layer.
[0008] Likewise, US Patents 5,069,771, 4,960,494 and 4,956,068 (all Nyguen/Lazouni/Doan)
disclose aluminium production anodes with an oxidised copper-nickel surface on an
alloy substrate with a protective oxygen barrier layer. However, full protection of
the alloy substrate was difficult to achieve.
[0009] Metal or metal-based anodes are highly desirable in aluminium electrowinning cells
instead of carbon-based anodes. As mentioned hereabove, many attempts were made to
use metallic anodes for aluminium production, however they were never adopted by the
aluminium industry.
Objects of the Invention
[0010] An object of the invention is to provide a multi-layer functionally graded coating
for metal-based anodes for aluminium electrowinning cells which is substantially impervious
to molecular oxygen and also to monoatomic oxygen and is electrochemically active
for the oxidation reaction of oxygen ions present at the anode/electrolyte interface
into monoatomic oxygen, as well as for subsequent reaction for the formation of biatomic
molecular oxygen evolving as gas.
[0011] Another object of the invention is to provide a coating for metal-based anodes for
aluminium electrowinning cells which has a high electrochemical activity, a long life
and which can easily be applied onto a metal-based anode substrate.
[0012] A further object of the invention is to reduce substantially the consumption of the
active anode surface of metal-based anodes for aluminium electrowinning cells which
is attacked by the nascent oxygen produced by enhancing the reaction of nascent oxygen
to gaseous oxygen which is much less active in oxidising metal anodes of aluminium
electrowinning cells.
[0013] A major object of the invention is to provide an anode for aluminium electrowinning
cells which has no carbon so as to eliminate carbon-generated pollution and eliminate
the high carbon anode cost.
Summary of the Invention
[0014] The invention relates to a composite, high-temperature resistant, non-carbon, metal-based,
oxygen-evolving anode of a cell for the electrowinning of aluminium by the electrolysis
of alumina dissolved in a molten fluoride-containing electrolyte. The anode comprises
a metal-based core structure of low electrical resistance, for connecting the anode
to a positive current supply, coated with a series of superimposed, adherent, electrically
conductive layers. The conductive layers consist of:
a) at least one layer on the metal-based core structure constituting during electrolysis
a barrier substantially impervious to molecular oxygen and also monoatomic oxygen,
the barrier comprising at least one of chromium, niobium and nickel oxides;
b) one or more intermediate protective layers containing oxidised, or oxidised and
metallic, copper and optionally at least one of nickel and cobalt applied to the oxygen
barrier to protect the oxygen barrier against dissolution, which intermediate layer(s)
during electrolysis remain inactive in the reactions for the evolution of oxygen gas;
and
c) an electrochemically active layer on the outermost intermediate layer, for the
oxidation reaction of oxygen ions present at the anode/electrolyte interface into
nascent monoatomic oxygen, as well as for subsequent reaction for the formation of
gaseous biatomic molecular oxygen evolving as gas, the active layer protecting the
intermediate layer(s) against dissolution.
[0015] The active layer comprises at least one transition metal and/or an oxide thereof
(excluding the lanthanides and actinides and their oxides alone), for instance iron,
cobalt, nickel, copper, chromium or titanium as metals and/or oxides. The active layer
has a surface that is iron oxide-based and that is made of at least one ferrite or
consists of an oxidised surface of an alloy which has at least 70 wt% iron before
oxidation.
[0016] The active layer may be slowly consumable during electrolysis.
[0017] In this context, metal-based anode means that the anode contains at least one metal
in the anode core structure and/or in the protective layers as such or as alloys,
intermetallics and/or cermets.
[0018] The core structure may comprise at least one metal selected from nickel, copper,
cobalt, chromium, molybdenum, tantalum, niobium or iron. For instance, the core structure
may be made of an alloy consisting of 10 to 30 weight% of chromium, 55 to 90% of at
least one of nickel, cobalt or iron, and 0 to 15% of aluminium, titanium, zirconium,
yttrium, hafnium or niobium. Alternatively, the core may be nickel plated copper.
[0019] Possibly, the core structure may comprise an alloy or intermetallic compound containing
at least two metals selected from nickel, cobalt, iron and aluminium.
[0020] Alternatively, the core structure can comprise a cermet containing copper and/or
nickel as a metal, and a ceramic phase.
[0021] Advantageously, the oxygen barrier layer may be formed on the core structure by surface
oxidation. However, it is also possible to form an oxygen barrier by slurry application
techniques, arc spraying or plasma spraying. The oxygen barrier may optionally be
formed by applying a precursor which is then converted into a functional barrier by
heat treatment, such as applying a layer of chromium, niobium or nickel metal on the
core which can then be oxidised.
[0022] One of the intermediate layers may comprise iron cuprate, nickel ferrite and/or cobalt
ferrite.
[0023] Typically, one of the intermediate layers comprises an oxidised alloy containing
20 to 60 weight% of copper with one or more further metals forming a solid solution
with copper, such metals being generally nickel and/or cobalt.
[0024] Usually, the electrochemically active layer comprises at least one oxide which may
slowly wear away during electrolysis. Optionally but not necessarily the electrochemically
active layer comprises (an) oxide(s) throughout its thickness.
[0025] An oxide may be present in the electrochemically active layer as such, or in a multi-compound
mixed oxide and/or in a solid solution of oxides. The oxide may be in the form of
a simple, double and/or multiple oxide, and/or in the form of a stoichiometric or
non-stoichiometric oxide.
[0026] The electrochemically active layer may for instance comprise a metal, alloy, intermetallic
compound or cermet which during normal operation in the cell is slowly consumable
by oxidation of its surface and dissolution into the electrolyte of the formed surface
oxide. In this case the rate of oxidation may be substantially equal to the rate of
dissolution.
[0027] Advantageously, the electrochemically active layer containing metals is pre-oxidised
prior to electrolysis. The metals of the electrochemically active layer may be iron
with at least one metal selected from nickel, copper, cobalt, aluminium and zinc.
[0028] Optionally, the electrochemically active layer may further comprise at least one
additive selected from beryllium, magnesium, yttrium, titanium, zirconium, vanadium,
niobium, tantalum, chromium, molybdenum, tungsten, manganese, rhodium, silver, hafnium,
lithium, cerium and other Lanthanides.
[0029] Advantageously, the electrochemically active layer may also comprise at least one
electrocatalyst for the anode reaction selected from iridium, palladium, platinum,
rhodium, ruthenium, silicon, tin, mischmetal and metals of the Lanthanide series,
and mixture, oxides and compounds thereof, for example as disclosed in WO99/36592
(de Nora).
[0030] The electrochemically active layer may be a surface oxidised iron-nickel layer, the
surface containing iron oxide, nickel oxide or a mixture thereof.
[0031] Alternatively, the electrochemically active layer comprises spinels and/or perovskites.
In particular, the electrochemically active layer may comprise ferrites, such as ferrites
selected from the group consisting of cobalt, copper, manganese, magnesium, nickel
and zinc ferrite, and mixtures thereof, in particular nickel ferrite partially substituted
with Fe
2+. Additionally, the ferrite may be doped with at least one oxide selected from chromium,
titanium, tin and zirconium oxide.
[0032] The electrochemically active layer can also comprise ceramic oxides containing combinations
of divalent nickel, cobalt, magnesium, manganese, copper and zinc with divalent/trivalent
nickel, cobalt, manganese and/or iron. The electrochemically active layer may for
instance have doped, non-stoichiometric and/or partially substituted spinels, the
doped spinels comprising dopants selected from Ti
4+, Zr
4+, Sn
4+, Fe
4+, Hf
4+, Mn
4+, Fe
3+, Ni
3+, Co
3+, Mn
3+, Al
3+, Cr
3+, Fe
2+, Ni
2+, Co
2+, Mg
2+, Mn
2+, Cu
2+, Zn
2+ and Li
+.
[0033] Further materials which may be used for forming the electrochemically active layer
include high-strength low-alloy (HSLA) steels.
[0034] It has been observed that low-carbon HSLA steels such as Cor-Ten™, even at high temperature,
form under oxidising conditions an iron oxide-based surface layer which is dense,
electrically conductive, electrochemically active for oxygen evolution and, as opposed
to oxide layers formed on standard steels or other iron alloys, is highly adherent
and less exposed to delamination and limits diffusion of ionic, monoatomic and molecular
oxygen.
[0035] HSLA steels are known for their strength and resistance to atmospheric corrosion
especially at lower temperatures (below 0°C) in different areas of technology such
as civil engineering (bridges, dock walls, sea walls, piping), architecture (buildings,
frames) and mechanical engineering (welded/bolted/riveted structures, car and railway
industry, high pressure vessels). However, these HSLA steels have never been proposed
for applications at high temperature, especially under oxidising or corrosive conditions,
in particular in cells for the electrowinning of aluminium.
[0036] It has been found that the iron oxide-based surface layer formed on the surface of
a HSLA steel under oxidising conditions limits also at elevated temperatures the diffusion
of oxygen oxidising the surface of the HSLA steel. Thus, diffusion of oxygen through
the surface layer decreases with an increasing thickness thereof.
[0037] If the HSLA steel is exposed to an environment promoting dissolution or delamination
of the surface layer, in particular in an aluminium electrowinning cell, the rate
of formation of the iron oxide-based surface layer (by oxidation of the surface of
the HSLA steel) reaches the rate of dissolution or delamination of the surface layer
after a transitional period during which the surface layer grows or decreases to reach
an equilibrium thickness in the specific environment.
[0038] High-strength low-alloy (HSLA) steels are a group of low-carbon steels (typically
up to 0.5 weight% carbon of the total) that contain small amounts of alloying elements.
These steels have better mechanical properties and sometimes better corrosion resistance
than carbon steels.
[0039] The surface of a high-strength low-alloy steel electrochemically active layer may
be oxidised in an electrolytic cell or in an oxidising atmosphere, in particular a
relatively pure oxygen atmosphere. For instance the surface of the high-strength low-alloy
steel layer may be oxidised in a first electrolytic cell and then transferred to an
aluminium production cell. In an electrolytic cell, oxidation would typically last
5 to 15 hours at 800 to 1000°C. Alternatively, the oxidation treatment may take place
in air or in oxygen for 5 to 25 hours at 750 to 1150°C.
[0040] In order to prevent thermal shocks causing mechanical stresses, a high-strength low-alloy
steel layer may be tempered or annealed after pre-oxidation. Alternatively, the high-strength
low-alloy steel layer may be maintained at elevated temperature after pre-oxidation
until immersion into the molten electrolyte of an aluminium production cell.
[0041] The high-strength low-alloy steel layer may comprise 94 to 98 weight% iron and carbon,
the remaining constituents being one or more further metals selected from chromium,
copper, nickel, silicon, titanium, tantalum, tungsten, vanadium, zirconium, aluminium,
molybdenum, manganese and niobium, and optionally a small amount of at least one additive
selected from boron, sulfur, phosphorus and nitrogen.
[0042] Advantageously, the electrochemically active layer is initially sufficiently thick
to constitute an impermeable barrier to gaseous oxygen penetration, and even to nascent,
mono-atomic oxygen.
[0043] Any of these layers may be slurry applied, for instance by applying a precursor slurry.
The layers may also be applied in the form a precursor powder followed by heat-treating.
[0044] Several techniques may be used to apply the layers, such as dipping, spraying, painting,
brushing, arc spraying, plasma spraying, electro-chemical deposition, physical vapour
deposition, chemical vapour deposition or calendar rolling.
[0045] The invention also relates to a method of manufacturing an anode as described above.
The method comprises the steps of formation of the oxygen barrier layer(s), of the
intermediate layer(s) and of the electrochemically active layer. It is possible to
form the oxygen barrier by substrate oxidation after the intermediate barrier has
been applied onto the substrate.
[0046] The method for manufacturing such an anode may also be used for reconditioning an
anode whose electrochemically active layer is worn or damaged. The method comprises
clearing at least worn and/or damaged parts of the active surface from the core structure
or from the outermost intermediate layer to which it adheres and then reconstituting
at least the electrochemically active layer.
[0047] Another aspect of the invention is a cell for the production of aluminium by the
electrolysis of alumina dissolved in a molten fluoride-containing electrolyte comprising
at least one composite anode as described above.
[0048] Advantageously, the cell may comprise at least one aluminium-wettable cathode which
can be a drained cathode on which aluminium is produced and from which it continuously
drains.
[0049] Usually, the cell is in a monopolar, multi-monopolar or in a bipolar configuration.
Bipolar cells may comprise the anodes as described above as the anodic side of at
least one bipolar electrode and/or as a terminal anode.
[0050] In such a bipolar cell an electric current is passed from the surface of the terminal
cathode to the surface of the terminal anode as ionic current in the electrolyte and
as electronic current through the bipolar electrodes, thereby electrolysing the alumina
dissolved in the electrolyte to produce aluminium on each cathode surface and oxygen
on each anode surface.
[0051] Preferably, the cell comprises means to improve the circulation of the electrolyte
between the anodes and facing cathodes and/or means to facilitate dissolution of alumina
in the electrolyte. Such means can for instance be provided by the geometry of the
cell as described in co-pending application PCT/IB99/00222 (de Nora/Duruz) or by periodically
moving the anodes as described in co-pending application PCT/IB99/00223 (Duruz/Bellò).
[0052] The cell may be operated with the electrolyte at conventional temperatures, such
as 950 to 970°C, or at reduced temperatures as low as 700°C.
[0053] Yet another aspect of the invention is a method of producing aluminium in such an
aluminium electrowinning cell, wherein alumina is dissolved in the molten fluoride-containing
electrolyte and then electrolysed to produce aluminium.
[0054] Advantageously, during electrolysis the active layer of the anode may be protected
by an electrolyte-generated oxyfluoride-containing layer, such as cerium oxyfluoride
self-formed on the electrochemically active layer as described in US Patent 4,614,569
(Duruz/Derivaz/Debely/Adorian).
Detailed Description
[0055] The invention will be further described in the following Examples:
Example 1
[0056] A test anode was made by coating by electrodeposition a core structure in the shape
of a rod having a diameter of 12 mm consisting of 74 weight% nickel, 17 weight% chromium
and 9 weight% iron, such as Inconel®, first with a nickel layer about 200 micron thick
and then a copper layer about 100 micron thick.
[0057] The coated structure was heat treated at 1000°C in argon for 5 hours. This heat treatment
provides for the interdiffusion of nickel and copper to form an intermediate layer.
The structure was then heat treated for 24 hours at 1000°C in air to form a chromium
oxide (Cr
2O
3) barrier layer on the core structure and oxidising at least partly the interdiffused
nickel-copper layer thereby completing formation of the intermediate layer.
[0058] A nickel-ferrite powder was made by drying and calcining at 900°C the gel product
obtained from an inorganic polymer precursor solution consisting of a mixture of molten
Fe(NO
3)
3.9 H
2O with a stoichiometric amount of Ni(CO
3)
2.6 H
2O. A thick paste was made by mixing 1 g of this nickel-ferrite powder with 0.85 g
of a nickel aluminate polymer solution containing the equivalent of 0.15 g of nickel
oxide. This thick paste was then diluted with 1 ml of water and ground in a pestle
and mortar to obtain a suitable viscosity to form a ferrite-based paint.
[0059] An electrochemically active oxide layer was obtained on the core structure by applying
the ferrite-based paint onto the core structure with a brush. The painted structure
was allowed to dry for 30 minutes before heat treating it at 500°C for 1 hour to decompose
volatile components and to consolidate the oxide coating.
[0060] The heat treated coating layer was about 15 micron thick. Further coating layers
were applied following the same procedure in order to obtain a 200 micron thick electrochemically
active coating covering the intermediate layer and barrier layer on the core structure.
[0061] The anode was then tested in a cryolite melt containing approximately 6 weight% alumina
at 970°C by passing a current at a current density of about 0.8 A/cm
2. After 100 hours the anode was extracted from the cryolite and showed no significant
internal corrosion after microscopic examination of a cross-section of the anode sample.
[0062] The Example can be repeated with an electrochemically active layer obtained from
a feed prepared by slurrying nickel ferrite powder in an inorganic polymer solution
having the required composition for the formation of NiFe
2O
4. The powder to polymer ratio was 1 to 0.25. Several layers of the coating feed can
be brushed onto the nickel-copper layer and heat treated to form the electrochemically
active layer on the intermediate layer.
[0063] Alternatively, the Example can be repeated with an electrochemically active layer
obtained from an amount of 1 g of commercially available nickel ferrite powder slurried
with 1 g of an inorganic polymer consisting of a precursor of 0.25 g equivalent nickel-ferrite
per 1 ml. An amount corresponding to 5 weight% of IrO
2 acting as an electrocatalyst for the rapid conversion of oxygen ions into monoatomic
oxygen and subsequently gaseous oxygen can be added to the slurry as IrCl
4, as described in WO99/36592 (de Nora). The slurry can be brush-coated onto the interdiffused
and at least partly oxidised nickel copper alloy layer by applying 3 successive 50
micron thick layers of the slurry, each slurry-applied layer should be allowed to
dry by heat-treating the anode at 500°C for 15 minutes between each layer application.
Example 2
[0064] A nickel metal core structure was heated in air at 1100°C for 16 hours to form an
oxidised surface layer having a thickness of about 35 micron. The surface layer was
black showing the presence of nickel oxide (NiO
1+x) which is known to act as an oxygen barrier layer and to be electrically conductive.
[0065] An interdiffused nickel-copper layer was then applied onto the oxygen barrier and
oxidised as described in Example 1.
[0066] A mixture of nickel-ferrite and copper-ferrite powder was slurried in an inorganic
polymer solution having the required composition for the formation of CuFe
2O
4 and NiFe
2O
4. The polymer solution had a concentration of 350g/l oxide equivalent and the powder
to polymer ratio was 1 to 0.25. The slurry was used as a coating feed and brushed
onto the nickel oxide surface layer of the core structure to form a ferrite-based
electrochemically active layer on the nickel oxide layer. After drying the ferrite-based
layer at 105°C, the core structure was submitted to a heat treatment at 500°C in air
to consolidate the coating.
[0067] Several ferrite-based layers were applied, with each applied layer being heat treated
before applying a subsequent layer, to form a consolidated coating of more than 100
micron thick.
Example 3
[0068] A steel core structure was coated with a slurry prepared by suspending chromium oxide
(Cr
2O
3) in an inorganic Cr
3+ polymer solution. The feed concentration was greater than 500 g/l of Cr
zO
3.
[0069] After heat-treating to consolidate the chromium oxide (Cr
2O
3) applied layer, thereby forming a barrier layer on the steel structure, a second
intermediate layer of interdiffused nickel-copper was applied as described in Example
1 on the barrier layer. Finally the intermediate layer was coated with several electrochemically
active layers of CuFe
2O
4 and NiFe
2O
4 as described in Example 2.
Example 4
[0070] A test anode was obtained by coating an Inconel® metal core structure with a nickel
copper alloy layer and heat-treating it as described in Example 1 to form a barrier
layer and an intermediate layer on the metal core structure.
[0071] A further layer of a nickel-iron based alloy consisting of 30 weight% nickel, 70
weight% iron of a thickness of approximately 0.5 mm can then applied on the interdiffused
and at least partly oxidised nickel copper layer by plasma spraying.
[0072] This alloy layer can then pre-oxidised at 1100°C for 6 hours for the formation of
a dense iron oxide-based electrochemically active oxide layer on the alloy layer.
Although pre-oxidation of the alloy layer is preferred, the treatment is not necessary
before using the anode in the cell to produce aluminium.
[0073] The test anode can then tested in a cell as described in Example 1. During electrolysis
the alloy layer will further oxidised at the alloy layer/active layer interface, self-forming
the electrochemically active layer. Simultaneously, the active layer will slowly dissolved
into the electrolyte at the active layer/electrolyte interface at substantially the
same rate as its rate of formation at the alloy layer/active layer interface, thereby
maintaining the thickness of the oxide layer substantially constant, as the alloy
layer wears away.
[0074] When the alloy layer is worn or damaged, the anode can be reconditioned by clearing
at least the worn or damaged parts and reconstituting at least the alloy layer.
Example 5
[0075] A test anode was obtained by electrodepositing onto a copper metal core structure
a series of successive metallic layers consisting of a nickel layer (10 micron thick)
which is known to be well adherent to copper and chromium, a chromium layer (25 micron
thick), a nickel layer (50 micron thick) and a copper layer (50 micron thick) and
heat treating first in argon and then in oxygen as described in Example 1 to interdiffuse
and oxidise the nickel and the copper layers to form an intermediate layer, and oxidise
the chromium layer to form an oxygen barrier layer.
[0076] An iron layer (200 micron thick) was then electrodeposited onto the interdiffused
nickel-copper layer and pre-oxidised at 1100°C in air for 6 hours to form a dense
iron oxide-based electrochemically active outer surface layer on the intermediate
layer.
[0077] The anode was then tested in molten electrolyte containing approximately 6 weight%
alumina at 850°C at a current density of about 0.8 A/cm
2. The anode was extracted from the cryolite after 100 hours and showed no sign of
significant internal or external corrosion after microscopic examination of a cross-section
of the anode sample.
Example 6
[0078] Examples 1 to 5 have been repeated by replacing the electrochemically active layer
by a Cor-Ten™ type low-carbon high-strength (HSLA) steel layer doped with niobium,
titanium, chromium and copper in a total amount of less than 4 weight% which is also
electrochemically active upon oxidation. The anodes were pre-oxidised in air at about
1050°C for 15 hours for the formation of a dense hematite-based outer layer constituting
an oxide-based surface layer on an un-oxidised anode body.
[0079] The anodes were then tested in a fluoride-containing molten electrolyte at 850°C
containing cryolite and 25 weight% excess of AlF
3 and approximately 3 weight% alumina at a current density of about 0.7 A/cm
2.
[0080] To maintain the concentration of dissolved alumina in the electrolyte, fresh alumina
was periodically fed into the cell. The alumina feed contained sufficient iron oxide
to slow down the dissolution of the hematite-based electrochemically active anode
layer.
[0081] After 140 hours electrolysis was interrupted and the anode extracted. Upon cooling
the anode was examined externally and in cross-section. No corrosion was observed
at or near the surface of the anode.
[0082] The produced aluminium was also analysed and showed an iron contamination of about
700 ppm which is below the tolerated iron contamination in commercial aluminium production.
[0083] The Example can be repeated with different HSLA steel layers such as an HSLA steel
layer doped with manganese 0.4 weight%, niobium 0.02 weight%, molybdenum 0.02 weight%,
copper 0.3 weight%, nickel 0.45 weight% and chromium 0.8 weight%, or an HSLA steel
layer doped with nickel, copper and silicon in a total amount of less than 1.5 weight%.
1. A composite, high-temperature resistant, non-carbon, metal-based oxygen-evolving anode
of a cell for the electrowinning of aluminium by the electrolysis of alumina dissolved
in a molten fluoride-containing electrolyte, the anode comprising a metal-based core
structure of low electrical resistance, for connecting the anode to a positive current
supply, coated with a series of superimposed, adherent, electrically conductive layers
consisting of:
a) at least one layer on the metal-based core structure constituting during electrolysis
a barrier substantially impervious to molecular oxygen and also monoatomic oxygen,
said barrier comprising at least one oxide selected from chromium, niobium and nickel
oxide;
b) one or more intermediate protective layers containing oxidised, or oxidised and
metallic, copper and optionally at least one of nickel and cobalt applied to the oxygen
barrier to protect the oxygen barrier against dissolution, which intermediate layer(s)
during electrolysis remain inactive in the reactions for the evolution of oxygen gas;
and
c) an electrochemically active layer on the outermost intermediate layer, for the
oxidation reaction of oxygen ions present at the anode/electrolyte interface into
nascent monoatomic oxygen, as well as for subsequent reaction for the formation of
gaseous biatomic molecular oxygen evolving as gas, the active layer protecting the
intermediate layer(s) against dissolution and comprising at least one transition metal
and/or an oxide thereof,
wherein the electrochemically active layer has a surface that is iron oxide-based
and that is made of at least one ferrite or consists of an oxidised surface of an
alloy that contains at least 70 weight% iron before oxidation.
2. The anode of claim 1, wherein the core structure comprises a metal, an alloy, an intermetallic
compound or a cermet.
3. The anode of claim 2, wherein the core structure comprises at least one metal selected
from nickel, copper, cobalt, chromium, molybdenum, tantalum, niobium or iron.
4. The anode of claim 3, wherein the core structure is nickel plated copper.
5. The anode of claim 3, wherein the core structure comprises an alloy consisting of
10 to 30 weight% of chromium, 55 to 90% of at least one of nickel, cobalt or iron,
and 0 to 15% of aluminium, titanium, zirconium, yttrium, hafnium or niobium.
6. The anode of claim 3, wherein the core structure comprises an alloy or intermetallic
compound containing at least two metals selected from nickel, cobalt, iron and aluminium.
7. The anode of claim 3, wherein the core structure comprises a cermet containing copper
and/or nickel as a metal, and a ceramic phase.
8. The anode of claim 1, wherein said intermediate layer(s) comprise an oxidised alloy
containing 20 to 60 weight% of copper with one or more further metals forming a solid
solution with copper.
9. The anode of claim 8, wherein said further metal is selected from nickel and/or cobalt.
10. The anode of claim 1, wherein the electrochemically active layer comprises oxides
which may slowly wear away during electrolysis.
11. The anode of claim 1, wherein the electrochemically active layer is an oxidised layer
of high-strength low-alloy steel that comprises 94 to 98 weight% iron and carbon,
the remaining constituents being one or more further metals selected from chromium,
copper, nickel, silicon, titanium, tantalum, tungsten, vanadium, zirconium, aluminium,
molybdenum, manganese and niobium, and optionally a small amount of at least one additive
selected from boron, sulfur, phosphorus and nitrogen.
12. The anode of claim 1, wherein the electrochemically active layer is pre-oxidised prior
to electrolysis.
13. The anode of claim 1, wherein the electrochemically active layer is a layer of iron
with: at least one metal selected from nickel, copper, cobalt, aluminium and zinc;
and at least one electrocatalyst selected from iridium, palladium, platinum, rhodium,
ruthenium, silicon, tin, mischmetal and metals of the Lanthanide series, and mixture,
oxides and compounds thereof.
14. The anode of claim 1, wherein the electrochemically active layer is a surface oxidised
iron-nickel layer, the oxidised surface containing iron oxide and/or nickel oxide.
15. The anode of claim 15, wherein the electrochemically active layer comprises ferrites.
16. The anode of claim 1, wherein the electrochemically active layer comprises ceramic
oxides containing combinations of divalent nickel, cobalt, magnesium, manganese, copper
and zinc with divalent/trivalent nickel, cobalt, manganese and/or iron.
17. The anode of claim 1, wherein at least one of said layers is slurry applied.
18. A method of manufacturing a composite, high-temperature resistant, non-carbon, metal-based,
oxygen-evolving anode according to claim 1, comprising a series of superimposed, adherent,
electrically conductive layers on a metal-based core structure of low electrical resistance
for connecting the anode to a positive current supply, said method comprising the
following steps:
a) forming by surface oxidation or by direct application at least one layer on the
metal-based core structure constituting during electrolysis a barrier substantially
impervious to molecular oxygen and also monoatomic oxygen;
b) applying on the oxygen barrier or on the core structure prior to forming said oxygen
barrier one or more intermediate protective layers to protect the oxygen barrier against
dissolution, which intermediate layer(s) during electrolysis remain inactive in reactions
for the evolution of oxygen gas; and
c) forming on the outermost intermediate layer an electrochemically active layer for
the oxidation reaction of oxygen ions present at the anode/electrolyte interface into
nascent monoatomic oxygen, as well as for subsequent reaction for the formation of
gaseous biatomic molecular oxygen, the active layer protecting the intermediate layer(s)
against dissolution and comprising at least one transition metal and/or an oxide thereof.
19. The method of claim 18, comprising applying at least one of said layers as a precursor
slurry.
20. The method of claim 18, comprising applying at least one of said layers as a precursor
powder followed by a heat-treatment.
21. The method of claim 18, comprising applying at least one layer as a metallic layer
which is subsequently oxidised.
22. The method of claim 18, comprising applying at least one of said layers by dipping,
spraying, painting, brushing, arc spraying, plasma spraying, electro-chemical deposition,
physical vapour deposition, chemical vapour deposition or calendar rolling.
23. The method of claim 18, for reconditioning an anode according to claim 1 whose electrochemically
active layer is worn or damaged, the method comprising clearing at least worn and/or
damaged parts of the active surface from the core structure or from the outermost
intermediate layer to which it adheres and then reconstituting at least the electrochemically
active layer.
24. A cell for the production of aluminium by the electrolysis of alumina dissolved in
a molten fluoride-containing electrolyte comprising at least one composite anode according
to claim 1 facing a cathode.
25. The cell of claim 24, comprising an aluminium-wettable cathode.
26. The cell of claim 25, comprising a drained cathode.
27. The cell of claim 24, which is in a bipolar configuration.
28. A method of producing aluminium in an aluminium electrowinning cell according to claim
24 containing alumina dissolved in a molten fluoride-containing electrolyte, the method
comprising electrolysing alumina to produce aluminium on the cathode and oxygen on
the facing anode.
29. The method of claim 28, wherein during electrolysis the or each anode is protected
by an electrolyte-generated oxyfluoride-containing layer formed on the electrochemically
active layer.
1. Hochtemperaturbeständige, metallbasierte, sauerstoffentwickelnde Nicht-Kohlenstoff-Verbundanode
für eine Zelle zur elektrolytischen Gewinnung von Aluminium durch die Elektrolyse
von Aluminium, das in geschmolzenes Fluorid enthaltendem Elektrolyten gelöst ist,
wobei die Anode eine metallbasierte Kernstruktur mit geringem elektrischem Widerstand
zum Anschließen der Anode an eine positive Stromquelle umfasst, welche mit einer Reihe
von übereinanderliegenden, fest haftenden, elektrisch leitfähigen Schichten beschichtet
ist, bestehend aus:
a) mindestens einer Schicht auf der metallbasierten Kernstruktur, die während der
Elektrolyse eine für molekularen Sauerstoff und auch für monoatomaren Sauerstoff im
Wesentlichen undurchlässige Barriere bildet, wobei die Barriere mindestens ein Oxid
ausgewählt aus Chrom-, Niob- und Nickeloxid umfasst,
b) einer oder mehreren schützenden Zwischenschichten, die oxidiertes, oder oxidiertes
und metallisches, Kupfer und gegebenenfalls, zum Schutz der Sauerstoffbarriere gegen
Auflösung, aufgebracht auf die Sauerstoffbarriere mindestens eines von Nickel und
Kobalt enthalten, welche Zwischenschicht bzw. welchen Zwischenschichten während der
Elektrolyse in den Reaktionen zur Entwicklung von Sauerstoffgas inaktiv sind, und
c) einer elektrochemisch aktiven Schicht auf der äußersten Zwischenschicht für die
Oxidationsreaktion von Sauerstoffionen, die an der Grenzfläche von Anode/Elektrolyt
vorhanden sind, zu naszierendem monoatomaren Sauerstoff, sowie für die anschließende
Reaktion für die Bildung von gasförmigem biatomaren molekularen Sauerstoff, der sich
als Gas entwickelt, wobei die aktive Schicht die Zwischenschicht bzw. die Zwischenschichten
gegen Auflösung schützt und mindestens ein Übergangsmetall und/oder ein Oxid davon
umfasst,
wobei die elektrochemisch aktive Schicht eine Oberfläche aufweist, die auf Eisenoxid
basiert und die hergestellt ist aus mindestens einem Ferrit, oder die aus einer oxidierten
Oberfläche einer Legierung besteht, die vor der Oxidation mindestens 70 Gew.% Eisen
enthält.
2. Anode nach Anspruch 1, wobei die Kernstruktur ein Metall, eine Legierung, eine intermetallische
Verbindung oder ein Cermet umfasst.
3. Anode nach Anspruch 2, wobei die Kernstruktur mindestens ein Metall ausgewählt aus
Nickel, Kupfer, Kobalt, Chrom, Molybdän, Tantal, Niob oder Eisen umfasst.
4. Anode nach Anspruch 3, wobei die Kernstruktur mit Nickel platiertes Kupfer ist.
5. Anode nach Anspruch 3, wobei die Kernstruktur eine Legierung umfasst, die aus 10 bis
30 Gew. % Chrom, 55 bis 90 Gew. % von mindestens einem von Nickel, Kobalt oder Eisen
und 0 bis 15% Aluminium, Titan, Zirkonium, Yttrium, Hafnium oder Niob besteht.
6. Anode nach Anspruch 3, wobei die Kernstruktur eine Legierung oder intermetallische
Verbindung umfasst, die mindestens zwei Metalle ausgewählt aus Nickel, Kobalt, Eisen
und Aluminium enthält.
7. Anode nach Anspruch 3, wobei die Kernstruktur ein Cermet umfasst, das Kupfer und/oder
Nickel als Metall und eine keramische Phase enthält.
8. Anode nach Anspruch 1, wobei die Zwischenschicht bzw. die Zwischenschichten eine oxidierte
Legierung umfasst bzw. umfassen, die 20 bis 60 Gew.% Kupfer enthält, wobei ein oder
mehrere weitere Metalle eine feste Lösung mit Kupfer bilden.
9. Anode nach Anspruch 8, wobei das weitere Metall ausgewählt ist aus Nickel und/oder
Kobalt.
10. Anode nach Anspruch 1, wobei die elektrochemisch aktive Schicht Oxide umfasst, die
während der Elektrolyse langsam abgetragen werden können.
11. Anode nach Anspruch 1, wobei die elektrochemisch aktive Schicht eine oxidierte Schicht
aus hochfestem, niedrig legierten Stahl, der 94 bis 98 Gew.% Eisen und Kohlenstoff
umfasst, wobei die übrigen Bestandteile eines oder mehrere der weiteren Metalle sind,
die ausgewählt sind aus Chrom, Kupfer, Nickel, Silicium, Titan, Tantal, Wolfram, Vanadium,
Zirkonium, Aluminium, Molybdän, Mangan und Niob, und gegebenenfalls eine kleine Menge
mindestens eines Zusatzstoffes ausgewählt aus Bor, Schwefel, Phosphor und Stickstoff.
12. Anode nach Anspruch 1, wobei die elektrochemisch aktive Schicht vor der Elektrolyse
voroxidiert wird.
13. Anode nach Anspruch 1, wobei die elektrochemisch aktive Schicht eine Schicht aus Eisen
mit mindestens einem Metall ausgewählt aus Nickel, Kupfer, Kobalt, Aluminium und Zink,
und mindestens einem Elektrokatalysator ausgewählt aus Iridium, Palladium, Platin,
Rhodium, Ruthenium, Silicium, Zinn, Mischmetall und Metallen der Lanthanidenreihe
und Mischungen, Oxiden und Verbindungen derselben ist.
14. Anode nach Anspruch 1, wobei die elektrochemisch aktive Schicht eine an der Oberfläche
oxidierte Eisen-Nickelschicht ist, wobei die oxidierte Oberfläche Eisenoxid und/oder
Nikkeloxid enthält.
15. Anode nach Anspruch 15, wobei die elektrochemisch aktive Schicht Ferrite umfasst.
16. Anode nach Anspruch 1, wobei die elektrochemisch aktive Schicht Keramikoxide umfasst,
die Kombinationen aus zweiwertigem Nickel, Kobalt, Magnesium, Mangan, Kupfer und Zink
mit zweiwertigem/dreiwertigem Nickel, Kobal, Mangan und/oder Zink enthalten.
17. Anode nach Anspruch 1, wobei mindestens eine der Schichten in einer Aufschlämmung
aufgebracht wird.
18. Verfahren zur Herstellung einer hochtemperaturbeständigen, metallbasierten, Sauerstoff
entwickelnden Nicht-Kohlenstoff-Verbundanode gemäß Anspruch 1, die eine Reihe von
übereinanderliegenden, fest haftenden, elektrisch leitfähigen Schichten auf einer
metallbasierten Kernstruktur mit geringem elektrischen Widerstand zum Anschließen
der Anode an eine positive Stromquelle umfasst, wobei das Verfahren die folgenden
Schritte umfasst:
a) das Bilden mindestens einer Schicht auf der metallbasierten Kernstruktur, welche
während der Elektrolyse eine für molekularen Sauerstoff und auch für monoatomaren
Sauerstoff im Wesentlichen undurchlässige Barriere bildet, durch Oberflächenoxidation
oder durch direkte Aufbringung,
b) das Aufbringen einer oder mehrerer schützender Zwischenschichten auf die Sauerstoffbarriere
oder auf die Kernstruktur vor der Bildung der Sauerstoffbarriere, um die Sauerstoffbarriere
gegen Auflösung zu schützen, wobei die Zwischenschicht bzw. die Zwischenschichten
während der Elektrolyse in Reaktionen für die Entwicklung von Sauerstoffgas inaktiv
bleiben, und
c) die Bildung einer elektrochemisch aktiven Schicht für die Oxidationsreaktion von
Sauerstoffionen, die an der Grenzfläche von Anode/Elektrolyt anwesend sind, zu naszierendem
monoatomaren Sauerstoff sowie für die anschließende Reaktion für die Bildung von gasförmigem
biatomaren molekularen Sauerstoff, auf der äußersten Zwischenschicht, wobei die aktive
Schicht die Zwischenschicht bzw. die Zwischenschichten gegen Auflösung schützt und
mindestens ein Übergangsmetall und/oder ein Oxid davon umfasst.
19. Verfahren nach Anspruch 18, bei dem mindestens eine der Schichten als Vorläuferaufschlämmung
aufgebracht wird.
20. Verfahren nach Anspruch 18, bei dem mindestens eine der Schichten als Vorläuferpulver
aufgebracht wird, gefolgt von einer Wärmebehandlung.
21. Verfahren nach Anspruch 18, bei dem mindestens eine Schicht als metallische Schicht
aufgebracht wird, die anschließend oxidiert wird.
22. Verfahren nach Anspruch 18, bei dem mindestens eine der Schichten durch Eintauchen,
Sprühen, Aufstreichen, Aufbürsten, Lichtbogensprühen, Plasmasprühen, elektrochemische
Abscheidung, physikalische Dampfabscheidung, chemische Dampfabscheidung oder Kalanderauftragung
aufgebracht wird.
23. Verfahren nach Anspruch 18, zur Rekonditionierung einer Anode gemäß Anspruch 1, deren
elektrochemisch aktive Schicht abgenutzt oder beschädigt ist, bei dem zumindest die
abgenutzten und/oder beschädigten Teile der aktiven Oberfläche aus der Kernstruktur
oder der äußersten Zwischenschicht, an die sie haftet, beseitigt werden und dann zumindest
die elektrochemisch aktive Schicht wieder aufgebaut wird.
24. Zelle für die Herstellung von Aluminium durch Elektrolyse von Aluminium, das in geschmolzenes
Fluorid enthaltenden Elektrolyten gelöst ist, die zumindest eine Verbundanode gemäß
Anspruch 1 gegenüber einer Kathode umfasst.
25. Zelle nach Anspruch 24, die eine Aluminium benetzbare Kathode umfasst.
26. Zelle nach Anspruch 25, die eine Ablaufkathode umfasst.
27. Zelle nach Anspruch 24, die sich in einer bipolaren Konfiguration befindet.
28. Verfahren zur Herstellung von Aluminium in einer Zelle zur elektrolytischen Gewinnung
von Aluminium gemäß Anspruch 24, die Aluminium in einem geschmolzenes Fluorid enthaltenden
Elektrolyt gelöst enthält, wobei das Verfahren das Elektrolysieren von Aluminium zur
Erzeugung von Aluminium an der Kathode und Sauerstoff an der gegenüberliegenden Anode
umfasst.
29. Verfahren nach Anspruch 28, wobei während der Elektrolyse die oder jede Anode durch
eine elektrolytisch erzeugte Oxyfluorid enthaltende Schicht geschützt wird, die auf
der elektrochemisch aktiven Schicht gebildet wird.
1. Anode composite, résistante à haute température, non-carbonée, à base de métal, à
dégagement d'oxygène d'une cuve pour l'électro-obtention d'aluminium par l'électrolyse
d'alumine dissoute dans un électrolyte contenant du fluorure en fusion, l'anode comprenant
une structure de noyau à base de métal de faible résistance électrique, pour relier
l'anode à une alimentation en courant positive, revêtue d'une série de couches superposées,
adhérentes, électriquement conductrices composées de :
a) au moins une couche sur la structure de noyau à base de métal constituant, pendant
l'électrolyse, une barrière sensiblement imperméable à l'oxygène moléculaire et également
à l'oxygène monoatomique, ladite barrière comprenant au moins un oxyde choisi à partir
d'oxyde de chrome, de niobium et de nickel ;
b) une ou plusieurs couches protectrices intermédiaires contenant du cuivre oxydé,
ou oxydé et métallique, et éventuellement au moins l'un de nickel et de cobalt appliquée
sur la barrière à l'oxygène pour protéger la barrière à l'oxygène contre la dissolution,
laquelle couche(s) intermédiaire(s) pendant l'électrolyse reste inactive dans les
réactions pour le dégagement de gaz oxygène ; et
c) une couche électrochimiquement active sur la couche intermédiaire la plus extérieure,
pour la réaction d'oxydation d'ions oxygène présents au niveau de l'interface anode/électrolyte
en oxygène monoatomique naissant, ainsi que pour la réaction subséquente pour la formation
d'oxygène gazeux biatomique moléculaire se dégageant comme gaz, la couche active protégeant
la couche(s) intermédiaire(s) contre la dissolution et comprenant au moins un métal
de transition et/ou un oxyde de celui-ci,
dans laquelle la couche électrochimiquement active a une surface qui est à base d'oxyde
de fer et qui est réalisée au moins en ferrite ou se compose d'une surface oxydée
d'un alliage qui contient au moins 70% en poids de fer avant oxydation.
2. Anode selon la revendication 1, dans laquelle la structure de noyau comprend un métal,
un alliage, un composé intermétallique ou un cermet.
3. Anode selon la revendication 2, dans laquelle la structure de noyau comprend au moins
un métal choisi à partir de nickel, cuivre, cobalt, chrome, molybdène, tantale, niobium
ou fer.
4. Anode selon la revendication 3, dans laquelle la structure de noyau est du cuivre
plaqué de nickel.
5. Anode selon la revendication 3, dans laquelle la structure de noyau comprend un alliage
composé de 10 à 30% en poids de chrome, 55 à 90% d'au moins l'un de nickel, cobalt
ou fer, et 0 à 15% d'aluminium, de titane, de zirconium, d'yttrium, d'hafnium ou de
niobium.
6. Anode selon la revendication 3, dans laquelle la structure de noyau comprend un alliage
ou un composé intermétallique contenant au moins deux métaux choisis à partir de nickel,
cobalt, fer et aluminium.
7. Anode selon la revendication 3, dans laquelle la structure de noyau comprend un cermet
contenant du cuivre, et/ou du nickel comme métal, et une phase céramique.
8. Anode selon la revendication 1, dans laquelle ladite couche(s) intermédiaire(s) comprend
un alliage oxydé contenant 20 à 60% en poids de cuivre avec un ou plusieurs autres
métaux formant une solution solide avec du cuivre.
9. Anode selon la revendication 8, dans laquelle ledit autre métal est choisi à partir
de nickel et/ou de cobalt.
10. Anode selon la revendication 1, dans laquelle la couche électrochimiquement active
comprend des oxydes qui peuvent lentement s'user pendant l'électrolyse.
11. Anode selon la revendication 1, dans laquelle la couche électrochimiquement active
est une couche oxydée d'acier faiblement allié à haute résistance qui comprend 94
à 98% en poids de fer et de carbone, les constituants restants étant un ou plusieurs
autres métaux choisis à partir de chrome, cuivre, nickel, silicium, titane, tantale,
tungstène, vanadium, zirconium, aluminium, molybdène, manganèse et niobium, et éventuellement
une petite quantité d'au moins un additif choisi à partir de bore, soufre, phosphore
et azote.
12. Anode selon la revendication 1, dans laquelle la couche électrochimiquement active
est pré-oxydée avant électrolyse.
13. Anode selon la revendication 1, dans laquelle la couche électrochimiquement active
est une couche de fer avec : au moins un métal choisi à partir de nickel, cuivre,
cobalt, aluminium et zinc ; et au moins un électrocatalyseur choisi à partir d'iridium,
palladium, platine, rhodium, ruthénium, silicium, étain, mischmétal et de métaux de
la série des lanthanides, et mélange, oxydes et composés de ceux-ci.
14. Anode selon la revendication 1, dans laquelle la couche électrochimiquement active
est une couche fer-nickel oxydée en surface, la surface oxydée contenant de l'oxyde
de fer et/ou de l'oxyde de nickel.
15. Anode selon la revendication 1, dans laquelle la couche électrochimiquement active
comprend des ferrites.
16. Anode selon la revendication 1, dans laquelle la couche électrochimiquement active
comprend des oxydes céramiques contenant des combinaisons de nickel, cobalt, magnésium,
manganèse, cuivre et zinc divalent avec du nickel, cobalt, manganèse et/ou fer divalent/trivalent.
17. Anode selon la revendication 1, dans laquelle au moins l'une desdites couches est
du coulis appliqué.
18. Procédé de fabrication d'une anode composite, résistante à haute température, non-carbonée,
à base de métal, à dégagement d'oxygène selon la revendication 1, comprenant une série
de couches superposées, adhérentes, électriquement conductrices sur une structure
de noyau à base de métal de faible résistance électrique pour relier l'anode à une
alimentation en courant positive, ledit procédé comprenant les étapes suivantes :
a) former par oxydation de surface ou par application directe au moins une couche
sur la structure de noyau à base de métal constituant, pendant l'électrolyse, une
barrière sensiblement imperméable à l'oxygène moléculaire et également à l'oxygène
monoatomique ;
b) appliquer sur la barrière à l'oxygène ou sur la structure de noyau avant de former
ladite barrière à l'oxygène, une ou plusieurs couches protectrices intermédiaires
pour protéger la barrière à l'oxygène contre la dissolution, laquelle couche(s) intermédiaire(s)
pendant l'électrolyse reste inactive dans les réactions pour le dégagement de gaz
oxygène ; et
c) former sur la couche intermédiaire la plus extérieure, une couche électrochimiquement
active pour la réaction d'oxydation d'ions oxygène présents au niveau de l'interface
anode/électrolyte en oxygène monoatomique naissant, ainsi que pour la réaction subséquente
pour la formation d'oxygène gazeux biatomique moléculaire, la couche active protégeant
la couche(s) intermédiaire(s) contre la dissolution et comprenant au moins un métal
de transition et/ou un oxyde de celui-ci.
19. Procédé selon la revendication 18, consistant à appliquer au moins l'une desdites
couches en tant que coulis précurseur.
20. Procédé selon la revendication 18, consistant à appliquer au moins l'une desdites
couches en tant que poudre précurseur suivie par un traitement thermique.
21. Procédé selon la revendication 18, consistant à appliquer au moins une couche en tant
que couche métallique qui est oxydée subséquemment.
22. Procédé selon la revendication 18, consistant à appliquer au moins l'une desdites
couches par immersion, pulvérisation, peinture, brossage, projection à l'arc, projection
par plasma, dépôt électrochimique, dépôt physique en phase vapeur, dépôt chimique
en phase vapeur ou cylindrage.
23. Procédé selon la revendication 18, pour rénover une anode selon la revendication 1
dont la couche électrochimiquement active est usée ou endommagée, le procédé consistant
à enlever au moins les parties usées et/ou endommagées de la surface active à partir
de la structure de noyau ou à partir de la couche intermédiaire la plus extérieure
à laquelle elle adhère et ensuite à reconstituer au moins la couche électrochimiquement
active.
24. Cuve pour la production d'aluminium par l'électrolyse d'alumine dissoute dans un électrolyte
contenant du fluorure en fusion comprenant au moins une anode composite selon la revendication
1 faisant face à une cathode.
25. Cuve selon la revendication 24, comprenant une cathode mouillable par l'aluminium.
26. Cuve selon la revendication 25, comprenant une cathode de drainage.
27. Cuve selon la revendication 24, qui est dans une configuration bipolaire.
28. Procédé pour produire de l'aluminium dans une cuve d'électro-obtention d'aluminium
selon la revendication 24 contenant de l'alumine dissoute dans un électrolyte contenant
du fluorure en fusion, le procédé consistant à électrolyser l'alumine pour produire
de l'aluminium sur la cathode et de l'oxygène sur l'anode en vis-à-vis.
29. Procédé selon la revendication 28, dans lequel pendant l'électrolyse la ou chaque
anode est protégée par une couche contenant de l'oxyfluorure engendré par l'électrolyte,
formée sur la couche électrochimiquement active.