EP1689913A2 - Process for electrolytic production of aluminum - Google Patents
Process for electrolytic production of aluminumInfo
- Publication number
- EP1689913A2 EP1689913A2 EP04816943A EP04816943A EP1689913A2 EP 1689913 A2 EP1689913 A2 EP 1689913A2 EP 04816943 A EP04816943 A EP 04816943A EP 04816943 A EP04816943 A EP 04816943A EP 1689913 A2 EP1689913 A2 EP 1689913A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- electrolyte
- recited
- aluminum
- alumina
- anode
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25C—PROCESSES FOR THE ELECTROLYTIC PRODUCTION, RECOVERY OR REFINING OF METALS; APPARATUS THEREFOR
- C25C3/00—Electrolytic production, recovery or refining of metals by electrolysis of melts
- C25C3/06—Electrolytic production, recovery or refining of metals by electrolysis of melts of aluminium
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25C—PROCESSES FOR THE ELECTROLYTIC PRODUCTION, RECOVERY OR REFINING OF METALS; APPARATUS THEREFOR
- C25C3/00—Electrolytic production, recovery or refining of metals by electrolysis of melts
- C25C3/06—Electrolytic production, recovery or refining of metals by electrolysis of melts of aluminium
- C25C3/18—Electrolytes
Definitions
- This invention relates to an electrolyte and a method for producing aluminum at lower temperatures, and, more specifically, this invention relates to an electrolyte that enables a method for producing aluminum at lower temperatures using a myriad of electrodes, including inert anodes and wettable cathodes.
- inert anode materials characterized to date have had various shortcomings with respect to attributes needed for commercial success.
- Anodes made of ceramic or cermet materials cause some practical engineering problems, such as poor thermal shock resistance, electrical connection, operational challenges and scalability etc.
- Anodes made of metal have the potential advantage of improved electrical and mechanical performance over cermet or ceramic materials.
- work on metal anodes at high temperatures i.e., between 900°C and 1000°C
- Low temperature electrolytes those that remain liquid below 800°C, can increase the utility of inert anodes.
- Another drawback to typical aluminum production processes is the need to maintain a sufficient molten aluminum metal pool at the bottom of the cell. Significant operation difficulties occur when the carbon blocks on the cell bottom are exposed to the molten salt electrolyte bath. Since molten aluminum does not wet carbon, a significant quantity of aluminum is required to totally cover the cell bottom. The presence of this deep aluminum pool leads to process inefficiencies due to fluctuations at the bath-aluminum interface resulting from magnetic fields generated in the metal pool during electrolysis. These fluctuations are minimized with the use of so-called wetted cathodes, i.e., cathode substrate materials that are wet by molten aluminum. Still another drawback to typical aluminum production is the large dimensions or "footprint" of the typical alumina electrolytic cell.
- the method should also provide for a constant distance between anode and cathode during the electrolysis of alumina to provide an electrically stable electrolysis environment.
- the method should provide an electrolyte which is entirely liquid at the operating temperature.
- An object of the present invention is to provide a method of alumina electrolysis that overcomes many of the disadvantages of the prior art.
- Another object of the present invention is to electrolyze alumina to aluminum at temperatures lower than 800°C.
- a feature of the invention is an electrolyte salt bath based on a mixture of aluminum fluoride (AIF 3 ) — potassium fluoride (KF) containing alumina (AI 2 O 3 ) for aluminum production by electrolysis.
- a feature of the invention is an electrolyte which has a relatively low vapor pressure (less than 10 millibar) in the process range temperature of between 660°C and 1000°C.
- An advantage of this feature is that the concentrations of the electrolyte's components remain relatively constant during electrolysis.
- Yet another object of the present invention is to provide an electrolyte which maintains a liquid phase during electrolysis operations.
- a feature of the invention is an electrolyte which has higher alumina solubility than in currently used low-temperature electrolytes.
- An advantage of this feature is that fluctuations at the bath aluminum interface resulting from magnetic fields generated in the molten aluminum are minimized, allowing a lower anode-cathode distance that results in a lower cell voltage.
- Another advantage is that the aluminum film protects the cathode surface from the bath.
- Yet another advantage is the minimization or prevention of fine aluminum droplets that may become unattached from a cathode that is not wetted, resulting in process inefficiencies due to back reaction at the anode.
- An additional advantage is further cost savings.
- Still another object of the invention is to provide a metal production method which can use vertical or slanted inert anodes, and vertical or slanted wetted cathodes.
- a feature of this invention is a decrease in the footprint of the electrolytic cell for a given production rate.
- An advantage of this feature is easier energy management of the electrolytic process.
- a smaller electrolytic cell both needs less heat input and has a lesser heat loss due to a smaller surface area and less heat radiation. Since less heat input is required, an additional advantage is that a lower current density (CD) can be used further reducing cell voltage. This feature thus gives additional savings.
- Yet another object of the present invention is to provide a method whereby the distance between the electrodes remains constant during the electrolytic process.
- a feature of the invention is that inert anodes and wetted cathodes are used. An advantage of this feature is that energy savings can be realized through control of the anode-cathode distance.
- Still another object of the present invention is to provide a method of alumina electrolysis whereby the generation of greenhouse gases, e.g., carbon dioxide and fiuorocarbons, is eliminated.
- a feature of the invention is that the anodes used are inert.
- An advantage of this feature is that the only gas generated during the electrolysis of alumina is oxygen (0 2 ).
- An additional advantage is that costs are lowered even more due to the elimination of the carbon plant for the production of carbon anodes, and a reduced need for any emission controls.
- the invention provides an improved electrolyte for the low-temperature electrolysis of alumina (A1 2 0 3 ), the electrolyte comprising alumina, and a mixture of aluminum fluoride (AIF 3 ) and potassium fluoride (KF).
- the invention also provides a method for using inert anodes and wetted ' cathodes in the electrolytic production of aluminum comprising using the anodes and cathodes in an electrolysis process selected at a temperature selected from between 660°C and 1000°C.
- FIG. 1 is a schematic diagram of the potassium fluoride-aluminum fluoride binary system, in accordance with features of the present invention
- FIG. 2 is a schematic diagram of a vertical electrode arrangement design, in accordance with features of the present invention
- FIG. 3 is a schematic diagram of an electrolysis cell for testing electrodes
- FIG. 4 is a plot of electrolysis cell voltage in volts as a function of time for one 50- hour electrolysis run at a current of 100 A with an aluminum-bronze copper alloy inert anode and two wetted cathodes of TiB 2 -C composite in a vertical arrangement, in accordance with features of the present invention.
- the invention provides a low temperature electrolyte system for the electrolytic production of aluminum metal (Al) that enables the use of inert anodes, wetted cathodes, and/or bi-polar electrodes, in vertical, horizontal, or other configurations.
- the low temperature electrolyte system is based on the aluminum fluoride (AIF 3 ) - potassium fluoride (KF) binary system, FIG. 1 , and can include additives to change electrolyte properties.
- Electrolyte Detail The phase diagram of the AIF 3 -KF system, FIG.
- the system has a much wider range of low temperature ( ⁇ 800°C) liquid compositions than the aluminum fluoride (AIF 3 )-sodium fluoride (NaF) system.
- AIF 3 aluminum fluoride-sodium fluoride
- NaF sodium fluoride
- the single-phase liquid region extends from about 60 mole (mol)% KF - 40 mol% AIF 3 to about 40 mol% KF - 60 mol% AIF 3 .
- the bath composition in an AIF 3 -KF based system is easier to control and maintain in the liquid phase in commercial low- temperature aluminum electrolysis than that of an AIF 3 -NaF-based low temperature bath which has an eutectic temperature at 698°C and is essentially a single-point composition (no line or region) of 54 mol% NaF - 46 mol% AIF 3 at 700°C.
- the inventors have found that the AIF 3 -KF-based system is well-suited for electrolytic production of aluminum at temperatures lower than the operating temperatures for the AIF 3 -NaF electrolyte system.
- the AIF 3 -KF-based system has higher alumina solubility compared to the AIF 3 -NaF-based system. This allows for easier control of the dissolved alumina content of the bath.
- the AIF 3 -KF-based system has the appropriate density and interfacial energy with aluminum to permit effective separation of bath and aluminum metal product and coalescence of aluminum droplets.
- the AIF 3 -KF-based system has adequate viscosity to allow for efficient mixing of the electrolyte resulting from convection due to rising oxygen gas bubbles from the anode during electrolysis. Viscosity is higher when solid particles such as undissolved alumina are present, and may prevent sufficient mixing of the electrolyte.
- the higher viscosity may hinder the mobility of gas bubbles evolving from the anode, which can result in a higher cell voltage due to excessive gas bubbles present between the anode and cathode, which would increase the resistance of the cell.
- lower bath viscosity is aided by the relatively higher alumina solubility (5 wt.% in AIF 3 -KF vs. 2 wt.% in AIF 3 -NaF), which allows for electrolysis operation in a liquid melt.
- the inventors have also found that aluminum fluoride-potassium fluoride melt compositions with higher cryolite ratios (moles of KF to moles of AIF 3 ) have better ionic conductivities. Ionic conductivities in the AIF 3 -KF system are improved over those in the AIF 3 -NaF system. This is most likely due to the wide range of liquid compositions at lower temperatures.
- the inventors have found that with AIF 3 -KF based electrolytes, potassium ions (K + ), due to their larger size, do not intercalate into cathode materials (enter into the cathode substrate materials' lattices), unlike smaller sodium ions (Na + ) in AIF 3 -NaF based electrolytes at higher temperatures.
- the AIF 3 -KF electrolyte at 700°C can have a KF to AIF 3 mole ratio of from about 1.0 (50 mol% AIF 3 - 50 mol% KF) to 1.5 (40 mol% AIF 3 - 60 mol% KF) and where the amount of alumina dissolved in the electrolyte is sufficient to perform electrolysis, from about 2 wt.% to 6 wt.%.
- This alumina solubility eliminates the need for a slurry-cell-type operation to maintain a sufficient amount of alumina dissolved in the melt.
- a preferred electrolyte embodiment is a KF to AIF 3 mole ratio of about 1.3 (43 mol% AIF 3 - 57 mol% KF) and an alumina concentration of from about 4 wt.% to 5 wt.%. These concentrations improve the electrolysis process by lowering cell voltage.
- This embodiment is near the liquidus line associated with K I JAIF ⁇ in FIG. 1. Conductivity of the bath is strongly dependant on the K + ion concentration. Thus, baths with higher KF level generally result in a lower cell voltage. Inasmuch as aluminum metal is being produced at the cathode, the concentration of KF in the near-cathode region can be higher than in the bulk bath during electrolysis.
- the preferred embodiment of the bulk electrolyte composition is given by a KF to AIF 3 mole ratio of about 1.3 rather than 1.5, which is at the liquidus line at 700°C. Higher temperature improves electrical conductivity and increases the composition range of the liquid, so the temperature of the electrolyte can be higher than 700°C for improved cell operation.
- the electrolyte can be used at temperatures as high as 1000°C.
- the optimum electrolyte composition will be slightly richer in KF to maintain the optimum composition within about 2 mol% from the liquidus line, further improving the electrical conductivity.
- higher temperatures can lead to higher electrolyte conductivities and lower cell voltages, lower temperatures are less corrosive and enable the use of a larger selection of inert anode materials.
- the inventors found temperatures of about 700°C to be optimal and thus one preferred embodiment of operation. Additives can improve or alter the AIF 3 -KF electrolyte system properties.
- One such additive can be NaF, which can be added to the electrolyte or allowed to build up in the electrolyte due to the residual sodium ion (Na + ) level that can be present in the alumina feed to the cell, if the cell is used continually for long periods of time.
- This residual NaF can result from the use of sodium hydroxide (NaOH) in the Bayer process for the production of alumina feed.
- NaOH sodium hydroxide
- An increase in NaF in the electrolyte can have detrimental effects on cell performance.
- a solid deposit can form intermittently on the cathode and cause inefficiencies in the cell, as well as increasing the impurity level of the aluminum metal product.
- the inventors have found that small additions of NaF (> 2 wt%) cause detrimental cell operations at both the cathode and anode.
- the presence of a small amount of Na + cations in the bulk electrolyte is magnified in the near-cathode region during electrolysis.
- the majority of the electrical current through the cell electrolyte is carried by the cations (Na + and K + ) because of their smaller size and greater mobility compared to the anions in the electrolyte.
- Na + cations are smaller and more mobile than K + , Na + cations tend to concentrate near the negatively- charged cathode surface.
- the increase in local NaF/KF ratio in the near-cathode region changes the local electrolyte composition, which decreases the alumina solubility in the region, and causes alumina and/or cryolite-type compounds to precipitate on the cathode as an intermittent grayish film.
- the inventors have observed this film.
- the presence of this film on the cathode surface disrupts cell operation by preventing aluminum from wetting the cathode and disrupting aluminum metal coalescence.
- the aluminum metal which forms on the cathode tends to become dispersed in electrolyte as fine droplets of molten aluminum that are swept up by convection currents in the bath.
- the aluminum droplets can even come in contact with the anode, disrupting the anode surface film and accelerate the anode wear rate.
- Other cations including alkali or alkaline earth cations, can also play a role as minor additives to this base electrolyte to modify the liquidus region or physical properties of the electrolyte.
- the presence of Na + in the electrolyte can have a detrimental effect which can contribute to a higher anode wear rate.
- Sodium ion can cause redistribution of anion moieties in the electrolyte and alter the effect anion moieties have on anode wear.
- the primary oxygen-containing anion moieties in the KF-AIF 3 -AI2O3 electrolyte are most likely oxyhexafluorodialumi ⁇ ate ion and dioxytetrafluorodialuminate ion (AI2O2F4 2" ).
- AI 2 0 2 F 2' is readily oxidized to AI 2 OF 6 2' liberating oxygen gas, while AI 2 0F 6 2" is not significantly oxidized.
- the total concentration of both oxygen-containing anions in the electrolyte at the anode surface does not change significantly. This is significant if the anode surface is an oxide film or oxygen- containing species, as it most likely is in most inert anode formulations.
- the driving force to dissolve the oxide film or oxygen-containing species on the anode surface is minimal because of the presence of oxygen-containing anions in the electrolyte at the anode surface.
- Control of the electrolyte bath composition in the AIF 3 -KF system is more flexible than in the AIF 3 -NaF system due to only small losses of KAIF 4 from the electrolyte melt.
- NaF-AlF 3 -AI 2 0 3 electrolytes the ratio AI 2 OF 6 2" anions to AI 2 O 2 F 4 2" anions is significantly greater than in KF-AIF 3 -AI 2 0 3 electrolytes.
- the primary oxidation reaction at the anode is likely the conversion of AI 2 OF 6 2" to AIF 4 " liberating oxygen gas.
- the result is a lower number of oxygen containing species at the anode surface, and a subsequent higher driving force to dissolve the oxide film on the anode and increasing the anode wear rate. Therefore, there appears to be a limit to which NaF can be added to a KF-AIF 3 -AI 2 0 3 electrolyte without significantly increasing the anode wear rate.
- the limit is related to the concentration of AI 2 O 2 F 4 2" species in the melt. The inventors found this limit is less than 2 wt.% NaF. Above this concentration of NaF in the electrolyte, excessive anode wear can occur.
- LiF lithium fluoride
- An electrolyte-cleansing operation can be used either in situ or ex situ of the cell, and the detrimental moiety can be removed by a variety of means, e.g., collection by zeolite-like or porous carbon structures.
- the detrimental moiety can be reduced in the electrolyte by altering upstream processing, i.e., using KOH in the aforementioned Bayer process to reduce the sodium content in the alumina feed.
- upstream processing i.e., using KOH in the aforementioned Bayer process to reduce the sodium content in the alumina feed.
- the anode is comprised of a material selected from the group consisting of metals, metal alloys, metal oxides, and cermets.
- the alloys can be aluminum-bronze alloys, i.e., alloys that are primarily copper and have significant amount of added aluminum (1 to 20 wt.%).
- Commercially available aluminum-bronze alloys include, but not limited to, Unified Numbering System (UNS) numbers C60800 to C60210, and C9520O to C95900 appear well suited for use as inert anodes.
- UNS Unified Numbering System
- alloy C6300O (specifications: 9.0 to 11.0 wt.% Al, 4.0 to 5.5 wt.% Ni, 2.0 to 4.0 wt.% Fe, 1.5 wt.% Mn, 0.30 wt.% Zn, 0.25 wt.% Si, 0.20 wt.% Sn) performed well, and thus is a preferred formulation for an inert anode.
- Preferable anodes are metal monoliths which have a stable oxygen-containing film that forms during electrolysis and does not contribute significantly to the cell operating voltage.
- the anodes with oxide or oxygen-containing films have a polarization voltage of less than 0.5 volts (V) at a current surface density of 0.8 amperes per square centimeter (A/cm 2 ).
- Metallic anodes have other advantages which include improved electrical conductivity through the anode, improved resistance to thermal shock, and improved toughness and ductility for easier fabrication, handling, and installation.
- Commercially-available copper-based alloys perform satisfactorily, particularly the aluminum-bronze copper alloys such as UNS C63000.
- the impurity levels of the aluminum metal product formed using UNS C63000 as the anode were 0.09 wt % Cu, 0.03 wt % Fe and ⁇ 0.01 wt % Ni in a 50-hour (hr) electrolysis test (infra) at a total current of 100 A using a commercial copper alloy as the anode.
- the cathode is made of a material compatible with the environs associated with alumina electrolysis. Generally, suitable material is that wetted by aluminum.
- Appropriate cathode substrate material includes that selected from the group consisting of metal borides, metal boride-carbon composites, metal boride-containing coatings on substrates, graphite (C), molybdenum (Mo), and tungsten (W).
- the metal borides include, but are not limited to, those of titanium (Ti) and zirconium (Zr).
- Other materials which can be wetted by aluminum can be used as cathodes. Molten aluminum wets well the TiB 2 -C composite. Wettable cathodes decrease the cathodic over potential during electrolysis, compared to non-wetted cathodes, and allow for a lower anode-to-cathode distance during electrolysis, further decreasing operating voltage.
- wetted cathodes also promote coalescence of the molten aluminum product thereby improving the efficiency of the process by minimizing back reactions.
- the use of wetted cathodes and inert anodes is enabled by the low-temperature electrolyte and allows for the arrangement of anode and cathode in a vertical position.
- a vertical arrangement allows metal that forms on the cathode to drip off the bottom of the cathode and collect at the bottom of the cell.
- the vertical configuration lowers the anode-cathode distance and allows for a smaller cell footprint or size, leading to lower heat input requirements. Lower heat input makes possible lower current densities which further adds to cell efficiency.
- FIG. 2 infra serves to illustrate the concept of a cell with a vertical electrode design. The number of electrodes shown is one possible illustration and embodiment. Electrolytic cell configuration The orientation of the inert anodes and wetted cathodes in the cell can be vertical, slanted, or horizontal.
- FIG. 2 A vertical design using the sequence anode 12 - cathode 14 - cathode 14 - anode 12 - cathode 14 - cathode 14 - anode 12 is depicted in FIG. 2 as numeral 10.
- electrolysis occurs between the anode 12 and cathode 14, but not between the two adjacent cathodes 14.
- Oxygen evolving during electrolysis sweeps the electrolyte to the top of the cell.
- the electrolyte returns to the bottom of the cell through the cathode-cathode chambers 18.
- electrolyte recirculation paths are established in the spacing regions between adjacent cathodes 14. This arrangement promotes convection currents through the cell and maintains a more uniform electrolyte composition.
- the spacing between the chambers can be optimized for electrolyte flow and velocity, taking into account evolving oxygen gas. Many electrode arrangements are possible that include regions in the cell where electrolysis does not occur and recirculation paths are established.
- the lower operating temperature of the invented AIF 3 -KF electrolyte system allows for bipolar plates to be used in multi-polar ceils.
- the cathode materials described supra can be used to coat one side of an inert anode to create a bipolar electrode for use in multipolar electrolytic cells.
- bipolar electrodes can comprise an aluminum bronze inert anode coated with TiB 2 on a first side.
- TiB 2 can also be used directly as the plate material in bipolar cells.
- FIG. 3 infra serves only to illustrate the general aspects of an electrolytic cell and the cell's components.
- Example One electrolysis run was carried out for a period of 50 hours (hrs) at a current of 100 amperes (A).
- a schematic diagram of the basic form of the experimental cell is depicted in FIG. 3 as numeral 30.
- the cell's 30 components are contained in a sintered alumina crucible 32, which is depicted as generally cylindrical in shape.
- Alumina is fed into the cell 30 via a sintered alumina tube 34, which has a first end 36 protruding from the cell, and a second end 38 protruding within the confines 40 of the cell.
- the temperature is monitored with a platinum (Pt)-Pt-10 % rhodium (Rh) thermocouple 42 housed in a closed-end alumina tube 44.
- a first end 46 of the thermocouple 42 terminates with pair of electrical leads 48, while a second end 50 of the thermocouple 42, swathed in the alumina tube 44, is immersed in the electrolyte 52 (represented by the dashed lines).
- the anode is placed in a concentric position within the cell for optimized results.
- the faces of the two cathodes 58 are parallel to the faces of the anode 56.
- the cathodes 58 have stainless steel current leads 60.
- Sintered alumina sheaths 62 protect and electrically insulate the stainless steel rod 54, and the stainless steel current leads 60.
- the aluminum fluoride- potassium fluoride melt 52 is contained within the cell 30, and typically confined at one end of the cell via gravity.
- the stainless steel current leads 60, the alumina feeding tube 34, and the thermocouple 42 relative positions are secured by holes in the top of the cell, all of which, as mentioned supra, extend generally parallel to the longitudinal axis of the crucible 32.
- Runs were carried out under an argon (Ar) atmosphere.
- the argon gas flow was kept at 1.13 Liters per minute (L/min).
- An oxygen sensor was mounted on the outlet gas path to measure the amount of oxygen generated on the alloy anodes.
- each electrode plate was approximately 133 millimeters (mm) wide, 85 mm high, and 12 mm thick.
- the anode was made of aluminum-bronze (alloy C63000, composition specifications given supra), and the cathodes were made of TiB 2 -C composite. The anode-cathode distance was 2.3 cm.
- the initial electrolyte composition was 50 wt.% AIF 3 , 45 wt.% KF, and 5 wt. %AI 2 0 3 .
- Alumina was fed continuously to the cell during electrolysis. The electrolysis test was performed at 700°C and the anode current density was maintained at 0.44 A/cm 2 for the duration of the 50-hr test.
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- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Electrochemistry (AREA)
- Materials Engineering (AREA)
- Metallurgy (AREA)
- Organic Chemistry (AREA)
- Electrolytic Production Of Metals (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US10/702,419 US20050092619A1 (en) | 2003-11-05 | 2003-11-05 | Process for electrolytic production of aluminum |
| PCT/US2004/037180 WO2005045101A2 (en) | 2003-11-05 | 2004-11-04 | Process for electrolytic production of aluminum |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP1689913A2 true EP1689913A2 (en) | 2006-08-16 |
Family
ID=34551674
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP04816943A Withdrawn EP1689913A2 (en) | 2003-11-05 | 2004-11-04 | Process for electrolytic production of aluminum |
Country Status (10)
| Country | Link |
|---|---|
| US (1) | US20050092619A1 (en) |
| EP (1) | EP1689913A2 (en) |
| CN (1) | CN101103141A (en) |
| AU (1) | AU2004288233A1 (en) |
| BR (1) | BRPI0416235A (en) |
| CA (1) | CA2544702A1 (en) |
| NO (1) | NO20062501L (en) |
| RU (1) | RU2006119476A (en) |
| WO (1) | WO2005045101A2 (en) |
| ZA (1) | ZA200603562B (en) |
Families Citing this family (16)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| RU2412284C1 (en) * | 2009-08-05 | 2011-02-20 | Федеральное государственное образовательное учреждение высшего профессионального образования "Сибирский федеральный университет" | Material of moistened cathode of aluminium electrolyser |
| CN101709487A (en) * | 2009-12-18 | 2010-05-19 | 中国铝业股份有限公司 | Aluminum electrolytic electrolyte |
| CN101857961A (en) * | 2010-06-13 | 2010-10-13 | 中国铝业股份有限公司 | A method for reducing energy consumption per unit production of aluminum electrolyzer |
| RU2449059C2 (en) * | 2010-07-21 | 2012-04-27 | Общество с ограниченной ответственностью "Легкие металлы" | Electrolysis unit for aluminium manufacture |
| ES2379434B2 (en) * | 2010-10-01 | 2012-09-06 | Asturiana De Aleaciones, S.A. | COMPOSITION OF ELECTROLYTE FOR OBTAINING METAL ALUMINUM |
| CN102251259A (en) * | 2011-07-09 | 2011-11-23 | 中国铝业股份有限公司 | Aluminum electrolyte system with high conductivity and high solvability |
| RU2499085C1 (en) * | 2012-03-16 | 2013-11-20 | Общество с ограниченной ответственностью "Легкие металлы" | Electrolysis unit for aluminium manufacture |
| CN102650064A (en) * | 2012-05-23 | 2012-08-29 | 深圳市新星轻合金材料股份有限公司 | Potassium cryolite used for aluminum electrolysis industry and preparation method for potassium cryolite |
| CN102649577A (en) * | 2012-05-23 | 2012-08-29 | 深圳市新星轻合金材料股份有限公司 | Sodium cryolite for aluminum electrolytic industry and preparation method thereof |
| GB2502392B (en) * | 2012-05-23 | 2017-11-15 | Shenzhen Sunxing Light Alloys Mat Co Ltd | Method for preparing an electrolyte supplement system in aluminium electrolysis |
| WO2013174065A1 (en) * | 2012-05-23 | 2013-11-28 | 深圳市新星轻合金材料股份有限公司 | Cryolite with low molecular ratio used in aluminum electrolysis industry and preparation method thereof |
| CN102689907A (en) * | 2012-05-30 | 2012-09-26 | 深圳市新星轻合金材料股份有限公司 | Preparing method and application of transition metal boride |
| RU2502832C1 (en) * | 2012-10-08 | 2013-12-27 | Общество с ограниченной ответственностью "Объединенная Компания РУСАЛ Инженерно-технологический центр" | Protection method of cathode units with wetted coating based on titanium diboride at baking of electrolysis unit |
| EP2956574B1 (en) * | 2013-02-14 | 2018-08-29 | Alliance Magnésium | Hydrogen gas diffusion anode arrangement producing hcl |
| RU2550683C1 (en) * | 2013-12-19 | 2015-05-10 | Федеральное Государственное Автономное Образовательное Учреждение Высшего Профессионального Образования "Сибирский Федеральный Университет" | Electrolysis unit for aluminium making |
| CN110777395A (en) * | 2019-11-27 | 2020-02-11 | 镇江慧诚新材料科技有限公司 | Upper structure of oxygen-aluminum co-production electrolytic cell |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6258247B1 (en) * | 1998-02-11 | 2001-07-10 | Northwest Aluminum Technology | Bath for electrolytic reduction of alumina and method therefor |
| US6436272B1 (en) * | 1999-02-09 | 2002-08-20 | Northwest Aluminum Technologies | Low temperature aluminum reduction cell using hollow cathode |
-
2003
- 2003-11-05 US US10/702,419 patent/US20050092619A1/en not_active Abandoned
-
2004
- 2004-11-04 CA CA002544702A patent/CA2544702A1/en not_active Abandoned
- 2004-11-04 CN CNA2004800366667A patent/CN101103141A/en active Pending
- 2004-11-04 RU RU2006119476/02A patent/RU2006119476A/en not_active Application Discontinuation
- 2004-11-04 WO PCT/US2004/037180 patent/WO2005045101A2/en not_active Ceased
- 2004-11-04 EP EP04816943A patent/EP1689913A2/en not_active Withdrawn
- 2004-11-04 AU AU2004288233A patent/AU2004288233A1/en not_active Abandoned
- 2004-11-04 BR BRPI0416235-8A patent/BRPI0416235A/en not_active IP Right Cessation
-
2006
- 2006-05-04 ZA ZA200603562A patent/ZA200603562B/en unknown
- 2006-05-31 NO NO20062501A patent/NO20062501L/en not_active Application Discontinuation
Non-Patent Citations (1)
| Title |
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| See references of WO2005045101A2 * |
Also Published As
| Publication number | Publication date |
|---|---|
| CN101103141A (en) | 2008-01-09 |
| RU2006119476A (en) | 2007-12-20 |
| WO2005045101A3 (en) | 2007-08-16 |
| AU2004288233A1 (en) | 2005-05-19 |
| US20050092619A1 (en) | 2005-05-05 |
| ZA200603562B (en) | 2007-07-25 |
| WO2005045101A2 (en) | 2005-05-19 |
| NO20062501L (en) | 2006-08-01 |
| CA2544702A1 (en) | 2005-05-19 |
| BRPI0416235A (en) | 2007-01-02 |
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