Claims
- 1. A cell for electrowinning aluminium from alumina dissolved in a fluoride-containing molten electrolyte, which cell has a length and a width, the length of the cell being greater than the width of the cell, and comprises a plurality of metal-based anodes provided with an oxygen evolving electrochemically active structure having a series of substantially vertical through-openings for escape of anodically produced gaseous oxygen, the electrochemically active structures facing and being spaced apart from an aluminium-wettable drained cathode surface on which aluminium is produced, the drained cathode surface being formed along the length of the cell by upper surfaces of a series of juxtaposed carbon cathode blocks, which cathode blocks have a length and a width, the length of the cathode blocks being greater than the width of the cathode blocks, and extend lengthwise across the width of the cell, the cathode blocks comprising a current supply bar extending along the length of the cathode blocks for connection to an external electric current supply, wherein the drained cathode surface is divided into quadrants by a longitudinal aluminium collection groove along the length of the cell and by at least one aluminium collection reservoir across the cell, the upper surface of the cathode blocks sloping down along the length of the cathode blocks towards the aluminium collection groove so that pairs of quadrants across the cell are inclined in a V-shape relationship, said aluminium collection groove being located along the bottom of the V-shape and arranged to collect molten aluminium draining from the drained cathode surface and evacuate the molten aluminium into the aluminium collection reservoir(s) during cell operation.
- 2. The cell of claim 1, comprising at least one carbon-based spacer block extending across the cell which spaces and is juxtaposed between cathode blocks extending across the cell, (an) upper surface(s) of the spacer block(s) comprising a recess which is lower than the aluminium collection groove and which extends substantially across the cell to form an aluminium collection reservoir.
- 3. The cell of claim 2, wherein said recess extends between said juxtaposed cathode blocks to form with juxtaposed sidewalls thereof an aluminium collection reservoir.
- 4. The cell of claim 2, wherein a pair of spacer blocks arranged end-to-end extends across the cell between said juxtaposed cathode blocks.
- 5. The cell of claim 1, wherein the drained cathode surface is formed along the cell by upper surfaces of a series of juxtaposed carbon cathode blocks extending in pairs arranged end-to-end across the cell.
- 6. The cell of claim 1, wherein the aluminium collection groove is located below the bottom of the inclined quadrants.
- 7. The cell of claim 1, wherein the electrochemically active structure of the metal-based anodes comprises a series of anode members, each having an electrochemically active surface on which during electrolysis oxygen is anodically evolved.
- 8. The cell of claim 7, wherein the anode members are in a parallel arrangement connected by at least one connecting cross-member.
- 9. The cell of claim 7, wherein the anode members are in a concentric arrangement connected by at least one generally radial connecting member.
- 10. The cell of claim 7, wherein the anode members are in a parallel or concentric arrangement connected by at least one connecting member, the electrochemically active surfaces of the anode members of each anode being in a generally coplanar arrangement and spaced laterally to form longitudinal flow-through openings for an up-flow of alumina-depleted electrolyte driven by the upward fast escape of anodically evolved oxygen, and for a down-flow of alumina-rich electrolyte.
- 11. The cell of claim 7, wherein the anode members of each anode are blades.
- 12. The cell of claim 7, wherein the anode members of each anode are bars, rods or wires.
- 13. The cell of claim 1, comprising a centrally located aluminium collection reservoir across the cell.
- 14. A cell bottom of a cell for electrowinning aluminium from alumina dissolved in a fluoride-containing molten electrolyte, which cell bottom has a length and a width, the length of the cell bottom being greater than the width of the cell bottom, and comprises an aluminium-wettable drained cathode surface on which aluminium is produced, the drained cathode surface being formed along the length of the cell bottom by upper surfaces of a series of juxtaposed carbon cathode blocks, which cathode blocks have a length and a width, the length of the cathode blocks being greater than the width of the cathode blocks, and extending lengthwise across the width of the cell bottom, the cathode blocks comprising a current supply bar extending along the length of the cathode blocks for connection to an external electric current supply, wherein the drained cathode surface is divided into quadrants by a longitudinal aluminium collection groove along the length of the cell bottom and by at least one aluminium collection reservoir across the cell bottom, the upper surface of the cathode blocks sloping down along the length of the cathode blocks towards the aluminium collection groove so that pairs of quadrants across the cell bottom are inclined in a V-shape relationship, said aluminium collection groove being located along the bottom of the V-shape and arranged to collect molten aluminium draining from the drained cathode surface and evacuate the molten aluminium into the aluminium collection reservoir(s) during cell operation.
- 15. The cell bottom of claim 14, comprising at least one carbon-based spacer block extending across the cell bottom which spaces and is juxtaposed between cathode blocks extending across the cell, (an) upper surface(s) of the spacer block(s) comprising a recess which is lower than the aluminium collection groove and which extends substantially across the cell to form an aluminium collection reservoir.
- 16. The cell bottom of claim 15, wherein said recess extends between said juxtaposed cathode blocks to form with juxtaposed sidewalls thereof an aluminium collection reservoir.
- 17. The cell bottom of claim 15, wherein a pair of spacer blocks arranged end-to-end extends across the cell bottom to space said juxtaposed cathode blocks.
- 18. The cell bottom of claim 14, wherein the drained cathode surface is formed along the cell bottom by upper surfaces of a series of juxtaposed carbon cathode blocks extending in pairs arranged end-to-end across the cell bottom.
- 19. The cell bottom of claim 14, wherein the aluminium collection groove is located below the bottom of the inclined quadrants.
- 20. The cell bottom of claim 14, comprising a centrally located aluminium collection reservoir across the cell.
- 21. A method to produce aluminium in an aluminium electrowinning cell having anodes immersed in a molten electrolyte containing dissolved alumina and which face a cell bottom as defined in claim 14 comprising an aluminium-wettable drained cathode surface which is formed by upper surfaces of a series of cathode blocks and which is divided into quadrants by a longitudinal aluminium collection groove along the cell and by at least one aluminium collection reservoir across the cell, pairs of quadrants across the cell being inclined in a V shape relationship, the collection groove being located along the bottom of the V-shape, the method comprising electrolysing the electrolyte containing dissolved alumina between the anodes and the drained cathode surface to produce gas on the anodes and molten aluminium on the drained cathode surface; draining the cathodically produced molten aluminium from the drained cathode surface into the collection groove; and evacuating the molten aluminium to the aluminium collection reservoir(s).
- 22. The method of claim 21, comprising producing oxygen on a metal-based electrochemically active anode structure and releasing the produced oxygen through substantially vertical through-openings located in the anode structure.
- 23. The method of claim 21, comprising intermittently tapping the produced aluminium from the aluminium collection reservoir.
- 24. The method of claim 21, wherein the cell is operated with a molten electrolyte at a temperature of 700° to 910° C.
- 25. The method of claim 24, wherein the cell is operated with a molten electrolyte at a temperature of 730° to 870° C.
- 26. The method of claim 21, wherein the cell comprises thereacross a centrally located aluminium collection reservoir to which molten aluminium is evacuated.
Parent Case Info
This application is a continuation-in-part of PCT/IB00/00476, filed Apr. 17, 2000, which is a continuation-in-part of PCT/IB99/00698, filed Apr. 16, 1999.
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
WO 9853120 |
Nov 1998 |
WO |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
PCT/IB00/00476 |
Apr 2000 |
US |
Child |
09/978160 |
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US |
Parent |
PCT/IB99/00698 |
Apr 1999 |
US |
Child |
PCT/IB00/00476 |
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US |