Claims
- 1. A drained-cathode cell for the electrowinning of aluminium from alumina dissolved in a fluoride-containing molten electrolyte, comprising one or more anodes and one or more cathodes, the or each anode and cathode respectively having a sloped V-shaped or inverted V-shaped active anode surface and parallel sloped V-shaped or inverted V-shaped drained cathode surface facing one another and spaced apart by two sloped inter-electrode gaps, the cell further comprising vertical and horizontal passages for guiding an electrolyte circulation from a top part to a bottom part of each inter-electrode gap, said passages being delimited by surfaces of the anodes and/or cathodes and comprising:a vertical passage that extends from a top to a lower part of a cathode and leads to a horizontal passage that extends in or under the lower part of the cathode, and/or a horizontal passage that extends in or on an upper part of an anode and leads to a vertical passage that from the upper to a bottom part of the anode, each horizontal passage extending stibstantially over the entire horizonta; length of a corresponding inter-electrode gap, the cell being so arranged that during use the electrolyte circulates upwardly in the sloped inter-electrode gaps assisted by anodically produced gas and then returns via said vertical and horizontal passages from the top part to the bottom part of each inter-electrode gap.
- 2. The cell of claim 1, wherein each horizontal passage is formed by an aperture extending through a cathode or an anode.
- 3. The cell of claim 1, wherein each horizontal passage is delimited by an external upper face of an anode or an external lower face of a cathode.
- 4. The cell of claim 1, wherein the or each cathode is associated with an electrolyte path.
- 5. The cell of claim 4 wherein the electrolyte path extends through a vertical passage in the middle of an inverted V-shaped cathode surface from the top to the lower part of the or each cathode.
- 6. The cell of claim 4, wherein the electrolyte path extends through a vertical passage extending froui adjacent a top part of a V-shaped cathode surface to the lower part of the or each cathode.
- 7. The cell of claim 1, wherein the or each anode is associated with an electrolyte path.
- 8. The cell of claim 7, wherein the electrolyte path extends through a vertical passage from the upper part to the bottom part of the or each anode in the middle of a V-shaped anode surface.
- 9. The cell of claim 7, wherein the electrolyte path extends through a vertical passage from the upper part of the or each anode to adjacent a bottom part of an inverted V-shaped anode surface.
- 10. The cell of claim 1, wherein the or each anode and cathode are each associated with an electrolyte path.
- 11. The cell of claim 1, wherein the sloped drained cathode surfaces lead down into an arrangement for collecting product aluminium.
- 12. The cell of claim 1, wherein the or each cathode is connected to at least one anode by connection means made of materials of high electrical and mechanical resistance maintaining the inter-electrode gaps substantially constant, the or each cathode being removable and insertable into the cell with said at least one anode to which it is connected.
- 13. The cell of claim 12, wherein the or each cathode is mechanically secured between a pair of adjacent anodes by at least one horizontal electrically non-conductive bar or rod which is secured in the pair of adjacent anodes and which extends though the cathode.
- 14. The cell of claim 13, wherein said at least one electrically non-conductive bar or rod extends through a plurality of cathodes.
- 15. The cell of clairt 12, wherein the or each cathode is suspended from at least one anode.
- 16. The cell of claim 1, wherein the drained cathode surfaces have an aluminium-wettable coating.
- 17. The cell of claim 16, wherein the drained cathode surfaces are made dimensionally stable by a slurry-applied coating of aluminium-wettable refractory material.
- 18. The cell, of claim 1, wherein the molten electrolyte consists essentially of cryolite with an excess of AlF3 that corresponds to about 25 to 35 weight % of the electrolyte.
- 19. The cell of claim 1, wherein the electrolyte has a temperature from 780° to 880° C., in particular from 820° to 860° C.
- 20. A cathode of a cell for the electrowinning of aluminium from alumina dissolved in a fluoride-containing molten electrolyte as defined in claim 1, the cathode comprising one or more inverted V-shaped sloped drained cathode surfaces facing during; use one or more anodes and spaced therefrom by inter-electrode gaps, the cathode corn risin surfaces that delimit during use passages for guiding an electrolyte circulation from a top part to a bottom part of the inter-electrode gaps, said passages comprising a vertical passage that extends from a top to a lower part of a cathode and leads to a horizontal passage that extends in or under the lower part of the cathode, the horizontal passage extending substantially over the entire horizontal length of the corresponding inverted V-shaped cathode surface.
- 21. An anode of a cell for the electrowinning of aluminium from alumina dissolved in a fluoride-containing molten electrolyte as defined in claim 1, the anode comprising a V-shaped sloped active anode surface facing during use a correspondingly sloped drained cathode surface and spaced therefrom by inter-electrode gaps, the anode corn risin surfaces that delimit dunn use nsa es for guiding an electrolyte circulation from a top part to a bottom part of the inter-electrode gaps, said passages comprising a horizontal passage that extends in or on an upper part of the anode and leads to a vertical passage that extends from the upper part to a bottom part the anode, the horizontal passage extending substantially over the entire horizontal length of the V-shaped anode surface.
- 22. A method of electrowinning aluminium in a cell which contains dissolved alumina in a fluoride-containing molten electrolyte, the method comprising: electrolysing disBolved alumina in a sloped inter-electrode gaps, thereby producing aluminium on the a sloped drained cathode surface(s) of a cathode and gas on the a active anode surface(s) of an anode; assisting electrolyte circulation upwardly in the sloped inter-electrode gap by the upward removal of anodically produced gas, returning the electrolyte from a top part to a bottom part of the inter-electrode gap along:a vertical passage that extends from a top to a lower part of the cathode and then leads to a horizontal passage that extends in or under the lower part of the cathode; and/or a horizontal passage that extends in or on an upper part of the anode and then leads to a vertical passage that extendin from the upper to a bottom art of the anode, each horizontal passage extending substantially over the entire horizontal length of the inter-electrode gap; and replenishing returning alumina-depleted electrolyte with alumina in said electrolyte paths.
- 23. The method of claim 22, comprising replenishing alumina-depleted electrolyte with alumina adjacent to the top parts of the inter-electrode gaps.
- 24. The method of claim 22, wherein the or each anode is associated with an electrolyte path, alumina being fed from above the upper part of the or each anode where it is dissolved in the electrolyte and circulated along the electrolyte path to a lower part of the inter-electrode gap.
- 25. The method of claim 22, wherein the or each cathode is associated with a electrolyte path, alumina being fed from above the top part of the or each cathode where it is dissolved in the electrolyte and circulated along the electrolyte path to a lower part of the inter-electrode gap.
- 26. The method of claim 22, wherein the anode(s) and the cathode(s) are each associated with an electrolyte path, one part of the electrolyte being circulated along each electrolyte path associated with a respective anode, another part of the electrolyte being circulated along each electrolyte path associated with a respective cathode.
- 27. A drained-cathode cell for the electrowinning of aluminium from alumina dissolved in a fluoride-containing molten electrolyte, comprising a series of anodes and one or more cathodes, the anodes and the cathode(s) respectively having sloped active anode surfaces and parallel sloped drained cathode surfaces facing one another and spaced apart by sloped inter-electrode gaps, the cell further comprising horizontal and vertical passages for guiding an electrolyte circulation from a top part to a bottom part of each inter-electrode gap, said passages being delimited by surfaces of the anodes and/or cathodes and comprising:a vertical passage associated with a cathode and then a horizontal passage, in or under a lower part of the cathode, and/or a horizontal passage in or on an upper part of an anode and then a vertical passage associated with the anode, each horizontal passage extending substantially over the entire horizontal length of a corresponding inter-electrode gap, the cell being so arranged that during use the electrolyte circulates upwardly in the sloped inter-electrode gaps assisted by anodically produced gas and then returns via said vertical and horizontal passages from the top part to the bottom, part of each inter-electrode gap.
Parent Case Info
This Application is a Continution-in-part (CIP) of prior application No. PCT/IB00/01552 filed Oct. 25, 2000 which is a Continuation-in-part (CIP) of prior application No. PCT/IB99/01740 filed Oct. 26, 1999.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
4462886 |
Kugler |
Jul 1984 |
A |
5368702 |
de Nora |
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Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
PCT/IB00/01552 |
Oct 2000 |
US |
Child |
10/133224 |
|
US |
Parent |
PCT/IB99/01740 |
Oct 1999 |
US |
Child |
PCT/IB00/01552 |
|
US |