Claims
- 1. An electrolytic cell for the electrowinning of aluminium from alumina dissolved in a fluoride-based molten electrolyte, comprising:a) a cathode cell bottom comprising sloped cathode faces in a generally v arrangement and a recessed groove or channel below adjacent bottom ends of the cathode faces and extending therealong, each sloped cathode face forming a drained cathode surface on which in use a layer of molten aluminium is produced and continuously drained into the recessed groove or channel; b) sloped anode faces in a generally v arrangement facing and parallel to the sloped cathode faces, each sloped anode face being so arranged that gas released thereon during electrolysis drives at least partly an electrolyte circulation between the facing sloped anode and cathode faces; and c) means for feeding alumina into the circulating electrolyte to enrich it with dissolved alumina; characterized in that a covering surface located at bottom ends of the sloped anode faces is spaced above and covers the recessed groove or channel such that under the effect of the electrolyte circulation produced by gas release the alumina enriched electrolyte is fed into the covered recessed groove or channel and circulated longitudinally therein along substantially the entire length thereof above the drained aluminium, said covered recessed groove or channel forming means for supplying the alumina-rich electrolyte circulating therealong to and along substantially the entire bottom ends of said sloped cathode faces under the effect of the electrolyte circulation produced by gas release.
- 2. The electrolytic cell of claim 1, wherein the or each recessed groove or channel has a horizontal bottom.
- 3. The electrolytic cell of claim 1, wherein the or each recessed groove or channel has a sloped bottom.
- 4. The electrolytic cell of claim 3, wherein the or each recessed groove or channel has a constant cross-sectional area along its length.
- 5. The electrolytic cell of claim 1, wherein the or each recessed groove or channel leads to at least one cross-channel for collection of the drained aluminium layer from said recessed groove or channel.
- 6. The electrolytic cell of claim 5, wherein the or each cross-channel has a sloping bottom.
- 7. The electrolytic cell of claim 5, wherein the means for feeding alumina into the electrolyte is/are located at or near by at least one junction between said cross-channels with the recessed grooves or channels.
- 8. The electrolytic cell of claim 1, wherein the sloped cathode faces form a series of juxtaposed V-shapes.
- 9. The electrolytic cell of claim 1, wherein the cathode bottom is made of blocks having at least one sloped cathode face, a bottom surface, a front surface, a back surface and two lateral surfaces.
- 10. The electrolytic cell of claim 9, wherein the blocks comprises two V-shaped sloped cathode faces provided with a recessed groove or channel below the bottom of the cathode faces and extending therealong.
- 11. The electrolytic cell of claim 9, wherein the blocks comprise two roof-shaped sloped cathode faces, each face provided with a cut-out or a bevel below the bottom of the cathode face and extending therealong, so that a recessed groove or channel is formed between two laterally juxtaposed blocks.
- 12. The electrolytic cell of claim 11, wherein each block consists of a juxtaposition of two part-blocks each comprising one sloped cathode face, so that when the constitutive blocks are laterally juxtaposed their sloped faces form a roof-shape.
- 13. The electrolytic cell of claim 9, wherein the bottom of the cathode blocks are provided with at least one groove or like recess extending therealong generally parallel to the sloped and lateral faces of the cathode block, for receiving a steel or other conductive or other conductive bar for the delivery of current.
- 14. The electrolytic cell of claim 9, wherein the blocks comprise carbonaceous material.
- 15. The electrolytic cell of claim 14, wherein the carbonaceous material is anthracite or graphite.
- 16. The electrolytic cell of claim 9, wherein the blocks comprise carbon-free material.
- 17. The electrolytic cell of claim 16, wherein the carbon-free material is selected from alumina, cryolite, refractory oxides, nitrides, carbides and combinations thereof.
- 18. The electrolytic cell of claim 16, wherein the carbon-free material comprises conductive material.
- 19. The electrolytic cell of claim 18, wherein the conductive material is selected from at least one metal from Groups IIA, IIB, IIIA, IIIB, IVB, VB, the Lanthanide series, and alloys and intermetallic compounds thereof.
- 20. The electrolytic cell of claim 19, wherein the metals comprise at least one metal selected from aluminium, titanium, zinc, magnesium, niobium, yttrium, cerium.
- 21. The electrolytic cell of claim 9, wherein the blocks remain dimensionally stable during electrolysis.
- 22. The electrolytic cell of claim 1, wherein the cathode cell bottom is coated with a layer of aluminium-wettable refractory material.
- 23. The electrolytic cell of claim 1, wherein the or each anode is made of carbon-free material.
- 24. The electrolytic cell of claim 1, wherein the or each anode is made of substantially non-consumable material.
- 25. A method of electrowinning aluminium from alumina dissolved in a fluoride based molten electrolyte contained in a cell, said cell comprising:a) a cathode cell bottom comprising sloped cathode faces in a generally v arrangement and a recessed groove or channel below adjacent bottom ends of the cathode faces and extending therealong; and b) sloped anode faces in a generally v arrangement facing and parallel to the sloped cathode faces, said method comprising electrolysing dissolved alumina in the electrolyte between said facing sloped anode and cathode faces to produce on said sloped cathode faces molten aluminium that drains into the recessed groove or channel and to release on said sloped anode faces gas which drives at least partly an electrolyte circulation between said facing sloped anode and cathode faces, and feeding alumina into the electrolyte to enrich it with dissolved alumina, characterized in that a covering surface located at bottom ends of the sloped anode faces is spaced above and covers the recessed groove or channel such that under the effect of the electrolyte circulation produced by gas release the alumina-enriched electrolyte is fed into the covered recessed groove or channel and circulated longitudinally therein along substantially the entire length thereof above the drained aluminium, the alumina-rich electrolyte circulating therealong being supplied to and along substantially the entire bottom ends of the sloped cathode faces under the effect of the electrolyte circulation produced by gas release from where it is distributed over the entire sloped cathode faces where it is electrolysed.
- 26. The method of claim 25, whereub electrolyte containing dissolved alumina is fed in the or each recessed groove or channel having a horizontal bottom.
- 27. The method of claim 25, wherein electrolyte containing dissolved alumina is fed in the or each recessed groove or channel having a sloped bottom.
- 28. The method of claim 27, wherein electrolyte containing dissolved alumina is fed in the or each recessed groove or channel having a constant cross-sectional area along its length.
- 29. The method of claim 25, wherein the product aluminium is drained from the or each recessed groove or channel into at least one cross-channel for evacuation thereof.
- 30. The method of claim 29, wherein the product aluminium is drained into the or each cross-channel having a sloping bottom.
- 31. The method of claim 29, wherein alumina is fed into the electrolyte at or near by at least one junction between said cross-channels with the recessed grooves or channels.
- 32. The method of claim 25, wherein aluminium is produced on sloped cathode faces forming a series of juxtaposed V-shapes.
Parent Case Info
This application is a continuation of U.S. designation of PCT/IB98/00161 filed on Feb. 9, 1999.
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Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/IB98/00161 |
Feb 1999 |
US |
Child |
09/636662 |
|
US |