Claims
- 1. An acid mist collection system for gas and mist generation in a tank confined electrowinning process having electrolyte bath with circulating electroplating solution containing acid passing between side-by-side planar anode electrodes and cathode electrodes in an array between tank sides, each electrode having electrical connections above a surface of the electrolyte bath, the acid mist collection system comprising:
- a multi-element cover system applied below the electrical connections and above the surface of the electrolyte bath including a plurality of flexible electrode caps fastened to at least one side of the electrodes and spanning to adjacent electrodes to form a continuous, substantially air tight cover over the solution;
- means for covering the circulating electroplating solution from the electrodes to the sides of the tank above the surface of the circulating electroplating solution for forming a substantially air tight seal; and
- means for evacuating that volume below the multi-element cover system and above the path at a rate exceeding the rate of the gas and mist generation to create a negative pressure in the volume whereby any leakage that occurs into the volume overlying the bath and underlying the multi-element cover system into the volume below the multi-element cover system thereby preventing acid mist form escape to the atmosphere.
- 2. The acid mist collection system of claim 1 wherein:
- the electrode caps are fastened to the anode electrodes.
- 3. The acid mist collection system of claim 1 wherein:
- the electrode caps include flexible tapered eaves having sufficient span to form a substantially air tight seal between adjacent electrodes and sufficient flexibility to permit insertion and removal of the electrodes.
- 4. The acid mist collection system of claim 1 wherein:
- the electrode caps define on the circulating electroplating solution exposed side thereof means for causing acid incidentally coalesced to drip into the circulating electroplating solution away from adjoining electrodes.
- 5. The acid mist collection system of claim 1 wherein:
- the means for covering the circulating electroplating solution from the electrodes to the sides of the tank above the surface of the acid solution for forming a substantially air tight seal includes:
- flexible acid inert members fastened between the flexible electrode caps and the sides of the tank having a sufficient dimension to overlap one another.
- 6. The acid mist collection system of claim 1 wherein:
- the means for evacuating that volume below the multi-element cover system and above the circulating electroplating solution at a rate exceeding the rate of gas and mist generation includes a ventilation exhaust communicated to the volume between the multi-element cover system and the sides of the tank.
- 7. The acid mist collection system of claim 1 wherein:
- the means for evacuating that volume below the multi-element cover system and above the circulating electroplating solution includes means for evacuating at a rate of about ten times the stoichiometric rate of gas generation.
- 8. The acid mist collection system of claim 1 wherein the means for evacuating that volume below the multi-element cover system and above the circulating electroplating solution includes:
- means for evacuating that volume below the multi-element cover system and above the circulating electroplating solution includes energy actuated means for extraction of the acid mist.
- 9. The acid mist collection system of claim 8 wherein:
- the energy actuated means for extraction of the acid mist includes an acid bath scrubber.
- 10. Method for acid mist collection for use in a tank having sides confining an electrowinning process having an electrolyte bath containing an electroplating solution containing circulated acid solution passing between side-by-side planar anode electrodes and cathode electrodes in an array, each electrode having electrical connections above a surface of the electrolyte bath, the acid mist collection method comprising the steps of:
- providing a multi-element cover system applied below the electrical connections and above the surface of the electrolyte bath;
- providing a plurality of flexible electrode caps having sufficient dimension to span to adjacent electrodes;
- fastening the electrode caps to at least one side of the electrodes at a location permitting the caps to span to adjacent electrodes to form a continuous, substantially air tight cover over the electrolyte bath;
- providing means for covering the circulated acid solution from the electrodes to the sides of the tank above the surface of electrolyte solution for forming a substantially air tight seal; and,
- evacuating a volume below the multi-element cover system and above the bath at a rate exceeding a rate of gas and mist generation to create a negative pressure in the volume whereby any atmosphere leakage that occurs into the volume below the multi-element cover system and above the bath occurs from above the multi-element cover system into the volume below the multi-element cover system thereby preventing acid aerosol from escape.
- 11. The acid mist collection method of claim 10 including the further step of:
- fastening the electrode caps the anodes.
- 12. The acid mist collection method of claim 10 wherein:
- the provided plurality of flexible electrode caps include flexible tapered eaves having sufficient span to form a substantially air tight seal between the electrodes and sufficient flexibility to permit insertion and removal of the electrodes.
- 13. The acid mist collection method of claim 10 including the step of:
- defining on a bath exposed side of the electrode caps means for causing coalesced acid to drip into the bath away from adjoining electrodes.
- 14. The acid mist collection method of claim 10 wherein:
- the provided means for covering the circulated acid solution from the electrodes to the sides of the tank above the surface of the acid solution for forming a substantially air tight seal includes:
- providing flexible acid inert members fastened between the electrode caps and the tank sides, the flexible acid inert member having a sufficient dimension to overlap one another between the electrode caps and having a sufficient dimension to overlap the tank sides.
- 15. The acid mist collection method of claim 10 wherein:
- evacuating the volume below the multi-element cover system and above the bath at a rate exceeding the rate of gas and mist generation includes the step of:
- evacuating that volume below the multi-element cover system and above the bath with energy actuated means for extraction of the acid mist.
- 16. The acid mist collection method of claim 10 wherein:
- evacuating the volume below the multi-element cover system and above the bath step includes evacuating at a rate of about ten time the stoichiometric rate of gas and mist generation.
- 17. The acid mist collection method of claim 10 wherein the step of evacuating the volume below the multi-element cover system and above the bath at a rate exceeding the rate of gas and mist generation includes:
- providing energy actuated extraction means for removing acid mist; and,
- communicating the volume below the multi-element cover system and above the bath to energy actuated means for extraction of the acid mist to remove the acid mist.
- 18. The acid mist collection method of claim 17 wherein:
- the providing energy actuated means for extraction of the acid mist includes providing an acid bath scrubber.
- 19. In a multi-element cover system applied below electrode connections and above a surface of a bath in an electrowinning process having circulated acid electroplating solution containing acid passing between side-by-side planar anode electrodes and cathode electrodes in an array, each electrode having electrical connections above the surface of the bath, the multi-element cover system comprising:
- a plurality of flexible electrode caps fastened to at least one side of the anode electrodes below the electrical connection thereto and above the bath, the flexible electrode caps having an underside exposed to the bath;
- each said flexible electrode caps having sufficient dimension to span to adjacent cathode electrodes to form a continuous, substantially air tight cover between the electrodes of the electrode array;
- the underside of the cap having a first slope having a high end of the slope at a cathode and a low end of the slope at an anode whereby coalesced acid is substantially prevented from passing from the underside of the caps to an adjacent cathode; and,
- means for preventing the coalesced acid from running along the underside of the flexible electrode caps whereby during insertion of the cathodes, the coalesced acid is substantially prevented from passing from the underside of the caps to an adjacent cathode during flexure of the caps producing a second slope reversed to the first slope at the underside exposed to the bath toward the cathodes.
- 20. The multi-element cover system of claim 19 and wherein the means for preventing the coalesced acid from running along the underside of the flexible electrode caps acid to adjacent electrodes includes:
- a continuous ridge on the underside exposed to the bath parallel to the surface of the electrode.
- 21. The multi-element cover system of claim 19 and wherein each flexible electrode cap further includes:
- a dual hardness plastic extrusion including a first rigid portion of the cap for fastening to the electrode and a second flexible and tapered portion of the cap for spanning away from the electrode to and toward adjacent electrodes.
- 22. In an electrowinning apparatus side-by-side planar anode electrodes and cathode electrodes in an array, each electrode having electrical connections above a surface of an electrolyte bath, an improved electrode comprising:
- means for depending support of the electrodes into the electrolyte bath;
- means for supplying sufficient current to the electrode to cause electroplating to occur between a plurality of the electrodes;
- a plurality of flexible electrode caps fastened to at least one side of the anode electrodes below the electrical connection-thereto and above the bath, each said flexible electrode caps having sufficient dimension to span to adjacent cathode electrodes to form a continuous, substantially air tight cover between the electrodes of the electrode array, the flexible electrode having an underside exposed to the bath;
- the underside of the cap having a first slope having the high end of the slope at a cathode and the low end of the slope at an anode whereby the coalesced acid is substantially prevented from passing from the underside of the caps to an adjacent cathode; and,
- means for preventing coalesced acid from running along the underside of the flexible electrode caps whereby during insertion of the cathodes, the coalesced acid is substantially prevented from passing from the underside of the caps to an adjacent cathode during flexure of the caps producing a second slope reversed to the first slope at the underside exposed to the bath toward the cathodes.
- 23. The improved electrode of claim 22 and wherein the means for preventing coalesced acid from running along the underside of the flexible electrode caps to adjacent electrodes includes:
- a continuous ridge on the underside of the cap parallel to the surface of the electrode.
- 24. The improved electrode of claim 22 and wherein each flexible electrode cap further includes:
- a dual hardness plastic extrusion including a first rigid portion of the cap for fastening to the electrode and a second flexible and tapered portion of the cap for spanning away from the electrode to and toward adjacent electrodes.
- 25. An acid mist aerosol collection system for use in a tank having sides to confine an electrowinning process having an electrolyte bath with an electroplating solution containing circulating acid passing between side-by-side planar anode electrodes and cathode electrodes in an array, each electrode having electrical connections above a surface of the electrolyte bath, the acid mist aerosol collection system comprising:
- a multi-element cover system applied below the electrical connections and above the surface of the electrolyte bath including a plurality of flexible electrode caps fastened to at least one side of the electrodes and spanning to adjacent electrodes to form a continuous, substantially air tight cover over the solution;
- means for covering the circulating acid from the electrodes to the sides of the tank above the surface of the circulating acid for forming a substantially air tight seal; and,
- means for evacuating a volume below the cover system and above the bath at a rate exceeding a rate of gas and mist generation to create a negative pressure in the volume whereby any atmosphere leakage that occurs into the volume overlying the bath and underlying the multi-element cover occurs from above the multi-element cover into the space below the multi-element cover thereby preventing acid aerosol from escape to the atmosphere;
- the means for evacuating operating at a rate to maintain humidity under the multi-element cover system for retarding evaporation under the cover from the acid mist aerosol.
- 26. The acid mist aerosol collection system of claim 25 wherein:
- the electrode caps are fastened to the anodes.
- 27. The acid mist aerosol collection system of claim 25 wherein:
- the electrode caps include flexible tapered eaves having sufficient span to form a substantially air tight seal between adjacent electrodes and sufficient flexibility to permit insertion and removal of the electrodes.
- 28. The acid mist aerosol collection system of claim 25 wherein:
- the electrode caps define on a bath exposed side thereof means for causing acid incidentally coalesced to drip into the bath away from adjoining electrodes.
- 29. The acid mist aerosol collection system of claim 25 wherein:
- the means for covering the circulating acid from the electrodes to the sides of the tank above the surface of the acid solution for forming a substantially air tight seal includes:
- flexible acid inert members fastened between the ends of the electrode caps and the tank sides, the flexible acid inert members having a sufficient dimension to overlap one another between the electrode caps and having a sufficient dimension to overlap the tank sides.
- 30. The acid mist aerosol collection system of claim 25 wherein:
- the means for evacuating the volume below the cover and above the bath at a rate exceeding the rate of gas and mist generation includes a ventilation exhaust communicated to the volume between the multi-element tank cover at the tank ends.
- 31. The acid mist aerosol collection system of claim 25 wherein:
- the means for evacuating the volume below the cover and above the bath at a rate includes means for evacuating the volume at a rate of about ten times the stoichiometric rate.
- 32. The acid mist aerosol collection system of claim 25 wherein the means for evacuating the volume below the cover and above the bath at a rate exceeding the rate of gas and mist generation includes:
- means communicating the evacuated volume for extraction of the acid mist aerosol includes energy actuated extraction means.
- 33. The acid mist aerosol collection system of claim 32 wherein:
- the means for evacuating the acid mist aerosol includes an acid bath scrubber.
- 34. Method for acid mist collection for use in a tank confined electrowinning process having an electrolyte bath with electroplating solution containing circulating acid passing between side-by-side planar anode electrodes and cathode electrodes in an array, each electrode having electrical connections above a surface of the electrolyte bath, the acid mist collection system comprising in combination:
- providing a multi-element cover system applied below the electrical connections and above the surface of the electrolyte bath including a plurality of flexible electrode caps having sufficient dimension to span to adjacent electrodes;
- fastening the electrode caps to at least one side of the electrodes at a location permitting the caps to span to adjacent electrodes to form a continuous, substantially air tight cover over the electrolyte bath;
- providing means for covering the circulating acid from the electrodes to the sides of the tank above the surface of the circulating acid for forming a substantially air tight seal; and,
- evacuating a volume below the cover system and above the bath at a rate exceeding a rate of gas and mist generation to create a negative pressure in the volume whereby any leakage that occurs into the volume overlying the bath and underlying the multi-element cover system occurs from above the multi-element cover system into the volume below the multi-element cover system thereby preventing acid aerosol from escape, the evacuating restricted to at a rate to maintain humidity under the multi-element cover system for retarding evaporation under the multi-element cover system from the acid mist aerosol.
- 35. The acid mist collection method of claim 34 including the further step of:
- fastening electrode cap to the anodes.
- 36. The acid mist collection method of claim 34 wherein:
- the provided multi-element cover systems includes flexible tapered eaves having sufficient span to form a substantially air tight seal between the electrodes and sufficient flexibility to permit insertion and removal of the electrodes.
- 37. The acid mist collection method of claim 34 including the step of:
- defining on the bath exposed side of the electrode caps means for causing coalesced acid to drip into the bath away from adjacent electrodes.
- 38. The acid mist collection method of claim 34 wherein:
- the provided multi-element cover system above the surface of the acid solution for forming a substantially air tight seal includes:
- providing flexible acid inert members fastened between the ends of the electrode caps and the tank sides, the flexible acid inert member having a sufficient dimension to overlap one another between the electrode caps and having a sufficient dimension to overlap the tank sides.
- 39. The acid mist collection method of claim 34 wherein:
- evacuating the volume below the multi-element cover system and above the bath at a rate exceeding the rate of gas and mist generation includes the step of:
- communicating a ventilation exhaust to an acid mist scrubber.
- 40. The acid mist collection method of claim 39 wherein:
- the evacuating of the volume below the cover and above the bath step includes evacuating at a rate includes means for evacuating the volume at a rate of about ten times the stoichiometric rate.
- 41. The acid mist collection method of claim 34 wherein the means for evacuating the volume below the cover and above the bath at a rate exceeding the rate of gas and mist generation includes:
- providing energy actuated extraction means for removing acid mist; and,
- communicating the evacuated volume to the energy actuated means for extraction of the acid mist to remove the acid mist.
- 42. The acid mist collection method of claim 41 wherein:
- the providing energy actuated means for extraction of the acid mist includes providing an acid bath scrubber.
- 43. In the combination of:
- a tank for containing electroplating solution for electroplating;
- anode and cathode electrodes within the tank and having electrical connections above the surface of the electroplating solution communicated to a source of current for causing electroplating within the tank;
- an outlet for discharging the electroplating solution from the tank;
- a cover over the tank and outlet; and,
- means for evacuation of gas and mist resulting from the electroplating from a plenum under the cover and over the bath, the cover and means for the evacuation of gas and mist comprising:
- the cover including:
- a multi-element cover system applied below the electrical connections and above the surface of the electroplating solution including a plurality of flexible electrode caps fastened to at least one side of the electrodes and spanning to adjacent electrodes to form a continuous, substantially air tight cover over the solution;
- means for covering the circulating electroplating solution from the electrodes to the sides of the tank above the surface of the circulating electroplating solution for forming a substantially air tight seal;
- the means for the evacuation of gas and mist including:
- at least one weir for discharging the electroplating solution to at least one pipe; and,
- the weir in combination with the pipe having sufficient flow volume for receiving the outflow of electroplating solution from the tank and gas and mist from the plenum.
- 44. In the combination of claim 43 and wherein:
- the weir is a circular weir.
- 45. In the combination of claim 43 and wherein:
- the pipe comprises a downcomer.
- 46. In the combination of claim 43 and wherein:
- means for evacuation of gas is communicated to the weir.
- 47. In the combination of claim 46 and wherein:
- the means for evacuation of gas includes fluid flow down the pipe.
- 48. In the combination of claim 46 and wherein:
- the means for evacuating gas includes means for impelling gas communicated to the pipe.
- 49. In combination:
- a tank having sides for containing electroplating solution;
- anode and cathode electrodes within the tank and having electrical connections communicated to a source of current for causing electroplating within the tank;
- a multi-element cover system applied below the electrical connections and above a surface of the electroplating solution including a plurality of flexible electrode caps fastened to at least one side of the electrodes and spanning to adjacent electrodes to form a continuous, substantially air tight cover over the solution;
- means for covering the circulating electroplating solution from the electrodes to the sides of the tank above the surface of the circulating electroplating solution for forming a substantially air tight seal; and,
- an outlet for discharging electroplating solution from the tank, the outlet including at least one weir for discharging the electroplating solution to a pipe; and,
- the at least one weir in combination with the pipe having sufficient flow volume for receiving the outflow of electroplating solution from the tank and gas and mist from the plenum.
- 50. The combination of claim 49 and further including:
- means for evacuation of gas and mist resulting from the electroplating from a plenum under the cover and over the bath, the means communicated to the pipe.
- 51. The combination of claim 50 and further including:
- the means for evacuation of gas and mist includes induced flow of gas by liquid electrolyte passing over the weir and flowing down the pipe.
- 52. The combination of claim 49 and further including:
- an inlet under the cover communicated to the tank for in letting electrolyte to replace electrolyte passing over the weir.
- 53. A method for evacuating aerosol acid mist from a tank having electroplating solution within the tank and having electroplating occurring between anode and cathode electrodes having electrical connections for producing plated metal and gas rising to the surface of the bath in the tank, the gas rising in the tank causing gas and mist aerosols over the surface of the tank, the method comprising the steps of:
- placing a cover over the electrodes, the cover including a multi-element cover system applied below the electrical connections and above the surface of the electrolyte bath including a plurality of flexible electrode caps fastened to at least one side of the electrodes and spanning to adjacent electrodes to form a continuous, substantially air tight cover over the solution;
- covering the circulating electroplating solution from the electrodes to the sides of the tank above the surface of the circulating electroplating solution for forming a substantially air tight seal;
- providing the tank with at least an outflow for circulating electroplating solution through the tank;
- providing the tank with a weir at the outflow;
- out flowing fluid from the tank over the weir; and,
- drawing gas and mist aerosol over the weir below the cover and above the surface of the electrolyte for causing the gas and mist to exit the tank and be drawn over the weir to avoid the formation of crystals adjacent the weir.
- 54. A method for evacuating aerosol acid mist from a tank having electroplating solution within the tank and having electroplating occurring between anodes and cathodes for producing plated metal and gas rising to the surface of the bath in the tank, the gas rising in the tank causing gas and mist aerosols over the surface of the tank according to claim 53 and including the further steps of:
- providing the tank with a circular weir at the outflow.
- 55. A method for evacuating aerosol acid mist from a tank having electroplating solution within the tank and having electroplating occurring between anodes and cathodes for producing plated metal and gas rising to the surface of the bath in the tank, the gas rising in the tank causing gas and mist aerosols over the surface of the tank according to claim 53 and including the further steps of:
- drawing the gas and mist over the weir to a pipe communicated to the weir.
- 56. A method for evacuating aerosol acid mist from a tank having electroplating solution within the tank and having electroplating occurring between anodes and cathodes for producing plated metal and gas rising to the surface of the bath in the tank, the gas rising in the tank causing gas and mist aerosols over the surface of the tank according to claim 55 and including the further steps of:
- communicating the weir to a pipe downcomer;
- utilizing the flow of liquid in the downcomer to induce air for drawing the air over the weir.
- 57. An acid mist collection system for use in a tank confined electrolysis process having electrolyte electroplating solution containing acid passing between side-by-side planar anode electrodes and cathode electrodes in an array, each electrode having electrical connections above the surface of the electrolyte bath, said acid mist collection system comprising:
- a multi-element cover system applied below the electrode connections and above the surface of the electrolyte bath including a plurality of flexible electrode caps spanning between adjacent electrodes to form a continuous, substantially air tight cover over said solution;
- means for covering said circulated acid solution from the electrodes to the sides and ends of the tank above the surface of the acid solution for forming a substantially air tight seal; and,
- means for evacuating the volume below the cover and above the bath at a rate exceeding the rate of gas and mist generation to create a negative pressure in said volume whereby any atmosphere leakage that occurs into the volume overlying the bath and underlying the multi-element cover occurs from above said multi-element cover thereby preventing acid aerosol from escape to the atmosphere.
- 58. An acid mist collection system for use in a tank confined electrolysis process according to claim 57 and wherein:
- said multi-element cover systems is attached to said electrodes.
Parent Case Info
This application is a Continuation-in-Part of U.S. patent application Ser. No. 07/978,945 filed Nov. 20, 1992 for Electrode Cap for Acid Mist Suppression, now abandoned.
US Referenced Citations (2)
Non-Patent Literature Citations (2)
Entry |
Invention Deisclosure, "Oxide Tankhouse Anodes", Magma Copper Company, Apr. 26, 1985. |
Magma Copper Company Interoffice Correspondence, "Oxide Tankhouse Anodes" M. F. Vancas, Apr. 26, 1985 (unpublished). |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
978945 |
Nov 1992 |
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