Claims
- 1. A process of performing series electrodeposition of metals at a high current density while reducing bypass current comprising:
- (a) providing a conveyable rack formed of a non-conductive material and including a pair of sidewalls having slots on the bottom extending through the sidewalls to allow fluid flow through the sidewalls, the conveyable rack also being provided with non-conductive bottom support members extending between and secured to each sidewall between the slots, the conveyable rack also being provided with nonconductive electrode guides on the side of the rack in line with the bottom support members, the length of the nonconductive electrode guides being sufficient to extend the entire submerged length of a bipolar electrode is placed in the rack with the rack in a tank containing an electrolyte, said rack also being provided with a means for shielding an anode to prevent current from passing along the side, bottom and back of the anode toward the cathode when an anode and cathode are in the rack during electrodeposition;
- (b) positioning within the conveyable rack, at a location remote from an electrolytic tank,
- (1) an anode so that it is within the means for shielding the anode so that current cannot pass along the sides, bottom or back of the anode toward the cathode during electrodeposition,
- (2) a cathode, and
- (3) a series of bipolar electrodes between the anode and the cathode so that the bottom of each bipolar electrode is supported by a nonconductive bottom support member and each side of each bipolar electrode is within a nonconductive electrode guide;
- (c) conveying the conveyable rack which has been loaded in step (b) with an anode, a cathode and bipolar electrodes to an electrodeposition tank containing an electrolyte to form an electrodeposition cell; and,
- (d) electrodepositing metal on the cathodic faces of the bipolar electrodes and the cathode while generating sheets of ascending bubbles of gas from bubble tubes positioned between and below the bipolar electrode to continuously circulate electrolyte over the top of the rack, down the side of the rack and through the slots, the bottom support members and electrode guides forming compartments within the cell which minimize lateral spreading and contraction of the sheet of bubbles and reduce the possibility of bypass current.
- 2. The process as set forth in claim 1 wherein in step (b) (1) a soluble anode is provided and in step (b) (3) the bipolar electrodes that are provided are prepared by affixing a layer of anode metal to a substrate.
- 3. The process as set forth in claim 2 wherein in step (b) (1) an insoluble anode is provided and in step (b) (2) an insoluble bipolar electrode is provided.
- 4. The process as set forth in claim 1 wherein in step (d) sheets of air bubbles are generated from a flow of air in the range of 1.5- 2.0 standard cubic foot per hour per square foot of cathodic surface.
- 5. The process as set forth in claim 4 wherein the air is presaturated with water vapor at a temperature close to that of the electrolyte.
- 6. The process as set forth in claim 1 including the steps of removing the conveyable rack from the electrolytic tank after metal has deposited on the cathodic faces of the bipolar electrodes and the cathode, and, removing the bipolar electrodes from the rack to enable the metal deposited thereon to be removed.
- 7. The process as set forth in claim 1 wherein in step (b) (1) a copper anode is provided and in step (d) copper metal is electrodeposited on the cathodic faces of the bipolar electrodes and the cathode at current densities in excess of 17 amps per square foot.
- 8. The process as set forth in claim 1 wherein step (b) (1) a copper anode is provided and in step (d) copper metal is electrodeposited on the cathodic faces of the bipolar electrodes and the cathode at current densities in excess of 20 amps per square foot.
- 9. The process as set forth in claim 1 wherein the electrolytic tank is provided with cathode current supply bars and anode current supply bars and the conveyable rack is conveyed in step (c) to the tank in a manner so that the cathode contacts the cathode supply bars and the anode contacts the anode supply bars while no bipolar electrode makes any direct electrical contact with either the cathode or anode supply bars.
CROSS REFERENCE TO RELATED APPLICATION
This is a division of application Ser. No. 553,139, filed Feb. 26, 1975, now U.S. Pat. No. 3,979,275, which is a continuation-in-part of application Ser. No. 445,435, filed Feb. 25, 1974, now U.S. Pat. No. 3,875,041.
Application Ser. No. 445,435 is entitled Method and Apparatus for the Electrolytic Recovery of Metal Employing Improved Electrolyte Convection, the teachings of which are incorporated herein by reference.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
1700178 |
Porzel |
Jan 1929 |
|
3875041 |
Harvey et al. |
Apr 1975 |
|
Non-Patent Literature Citations (1)
Entry |
"Princ. of Electroplating & Electroforming", by Blum et al., 3rd Ed., 1949, p. 68. |
Divisions (1)
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Number |
Date |
Country |
Parent |
553139 |
Feb 1975 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
445435 |
Feb 1974 |
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