Permanent system for continuous detection of current distribution in interconnected electrolytic cells
US-9255338-B2 · Feb 9, 2016 · US
US2016186344A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016186344-A1 |
| Application number | US-201414911164-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jul 30, 2014 |
| Priority date | Aug 9, 2013 |
| Publication date | Jun 30, 2016 |
| Grant date | — |
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This cell ( 1 ) comprises a pot shell ( 2 ) having two longitudinal sides ( 18 ) which are symmetrical in relation to a longitudinal median plane (P) of the electrolytic cell ( 1 ), an anode assembly which can only move in vertical translation with respect to the pot shell ( 2 ), the anode assembly comprising an anode block ( 100 ) and a transverse anode support ( 200 ) extending at right angles to the longitudinal sides ( 18 ) of the pot shell ( 2 ), from which support the anode block ( 100 ) is suspended. The anode support ( 200 ) comprises two connecting portions ( 202 ) from which electrolysis current is supplied to the anode support ( 200 ), and the cell ( 1 ) comprises electrical connection conductors ( 20 ) electrically connected to the two connecting portions ( 202 ) of the anode support ( 200 ), the two connecting portions ( 202 ) being located on either side of the plane (P).
Opening claim text (preview).
1 . An electrolytic cell for the production of aluminum by electrolysis, in which the electrolytic cell comprises a pot shell having two opposite longitudinal sides, an anode assembly which can only move in vertical translation with respect to the pot shell, the anode assembly comprising at least one anode block and a transverse anode support extending substantially transversely to the longitudinal sides of the pot shell from which the at least one anode block is suspended, the transverse anode support comprising two connecting portions through which the transverse anode support is provided with electrolysis current, the electrolytic cell further comprising electrical connection conductors electrically connected to the two connecting portions of the transverse anode support characterized in that the two connecting portions at a distance from each other in a substantially transverse direction of the electrolytic cell. 2 . Electrolytic cell according to claim 1 , characterized in that the two opposite longitudinal sides are substantially symmetrical in relation to a longitudinal median plane of the electrolytic cell and characterized in that the two connecting portions are located on either side of the longitudinal medium plane. 3 . Electrolytic cell according to claim 2 , characterized in that the transverse anode support comprises two end portions, and characterized in that the connecting portions are located on the end portions of the transverse anode support. 4 . Electrolytic cell according to claim 1 , characterized in that the transverse anode support comprises a first structure made of a first electrically conducting material and a second structure made of a second electrically conducting material, the second material having an electrical conductivity which is substantially greater than an electrical conductivity of the first material. 5 . Electrolytic cell according to claim 4 , characterized in that the first structure comprises a transverse bar extending substantially transversely from one connecting portion to the other connecting portion. 6 . Electrolytic cell according to claim 5 , characterized in that the transverse bar extends between the end portions in a single piece. 7 . Electrolytic cell according to claim 4 , characterized in that the second structure is attached to the first structure in such a way that the first structure mechanically supports the second structure. 8 . Electrolytic cell according to claim 4 , characterized in that the second structure at least partly forms the connecting portions of the anode support. 9 . Electrolytic cell according to claim 4 , characterized in that the second structure comprises two separate parts each at least partly forming one of the two connecting portions. 10 . Electrolytic cell according to claim 9 , characterized in that the two separate parts are distant from each other in the substantially transverse direction of the cell. 11 . Electrolytic cell according to claim 10 , characterized in that the two opposite longitudinal sides are substantially symmetrical in relation to a longitudinal median plane of the electrolytic cell, and in that the two separate parts are located on either side of the longitudinal median plane. 12 . Electrolytic cell according to claim 11 , characterized in that the two separate parts are substantially symmetrical in relation to the longitudinal median plane. 13 . Electrolytic cell according to claim 10 , characterized in that the transverse anode support comprises a plurality of stubs attached to the first structure designed to be sealed in voids formed in a surface of said at least one anode block, and characterized in that a distance between the two separate parts in the substantially transverse direction is substantially equivalent to a distance between two adjacent stubs. 14 . Electrolytic cell according to claim 10 , characterized in that the transverse anode support comprises a plurality of stubs attached to the first structure and that each of the two separate parts is attached to the first structure only at a location where the stubs and one of the connecting portions are attached. 15 . Electrolytic cell according to claim 9 , characterized in that the anode assembly comprises two adjacent anode blocks in the substantially transverse direction of the electrolytic cell, the two anode blocks being supported by the same first structure and located beneath the two separate parts of the second structure. 16 . Electrolytic cell according to claim 1 , characterized in that the anode support forms a ring bounded by two transverse bars connected together at ends thereof, the transverse bars extending substantially parallel to each other and perpendicular to the longitudinal sides of the pot shell. 17 . Electrolytic cell according to claim 16 , characterized in that the anode assembly comprises two adjacent anode blocks in a longitudinal direction of the electrolytic cell, each anode block being supported by one separate transverse bar. 18 . Electrolytic cell according to claim 4 , characterized in that the first structure forms a ring, and in that the second structure is located within the ring formed by the first structure. 19 . Electrolytic cell according to claim 18 , characterized in that the ring has U-shaped ends, the second structure comprising two parts, each having a corresponding U-shape matching the U-shape of the ends of the ring, and characterized in that at ambient temperature a length of an outer perimeter wall of curved portions of the corresponding U-shape formed by each part of the second structure is shorter than a length of an inner perimeter wall in curved portions of the U-shape formed by the corresponding end of the ring. 20 . Electrolytic cell according to claim 1 , characterized in that the anode assembly comprises a plurality of stubs extending between the anode support and the at least one anode block, and characterized in that the anode support comprises a portion which is elbowed in a vertical plane at each ends of the portion in such a way that the connecting portions of the anode support are located above the top surface of the stubs. 21 . Electrolytic cell according to claim 1 , characterized in that the anode assembly comprises a plurality of stubs extending substantially vertically between the anode support and the at least one anode block, and in that the stub comprises a substantially horizontal sealing end sealed within the anode block. 22 . An electrolysis plant comprising a row of electrolytic cells according to claim 1 , arranged electrically in series, characterized in that the electrolytic cells are located transversely in relation to a length of the row.
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