Leak free brush electroplating system
11352710 · 2022-06-07
Assignee
Inventors
Cpc classification
C25D5/08
CHEMISTRY; METALLURGY
International classification
Abstract
In any overhead job, operators will feel more relaxed and safer. In any systems, the operators won't have to spend days for masking and sealing. Simple protection will be enough. With this unit operators can use toxic solutions like cadmium and silver without any health concern, because the anode returns the toxic vapors back to the chamber and filtered suction line in front of the exhaust valve will take the toxic vapor away. Pit filling anode save the workers time and effort drastically by filling the pits bottom up in one shot.
Claims
1. A brush electroplating system comprising: an anode handle having batting; a chamber for containing solution; a distributor coupled to the anode handle for spreadingthe solution to the batting at a plurality of delivery points; a delivery system including a peristaltic pump for supplyingthe solution to the distributor; a suction system with a vacuum pump ejector for creating vacuum to remove excess solution from the anode handle via a plurality of suction points, wherein the excesssolution is mixed with air; and a baffle in fluid communication with the chamber configured to receive the excess solution and air mixture from the suction system and return the solution to the chamber and vent the air as exhaust, wherein the suction system has an adjustment knob for adjustingthe vacuum to balance with the delivery system for maintaining a desired level of wetness of the batting of the anode handle and prevent dripping, wherein the anode handle has: a) an elongated proximal manual grip portion along an axis; and b) a distal end that forms a circular area perpendicular to the manual grip portion, the circular area having: i) a central supply outlet in communication with the delivery system for supplying the solution; ii) a first flange surrounding the central supply outlet; and iii) at least one suction inlet radially outward of the first flange; and iv) a second flange radially outward of the at least one suction inlet so that the at least one suction inlet is in an annular trough between the flanges, and wherein the distributor has: a proximal flat surface that seals against the first and second flanges to enclose the trough so that vacuum from the at least one suction inlet is distributed within the trough; a distal flat surface forming at least one release outlet in fluid communication with the central supply outlet; and a sidewall extending between the proximal flat surface and the distal flat surface, the sidewall forming arcuate suction inlets in fluid communication with the annular trough for distributedly applying the vacuum to the batting.
2. A brush electroplating system as recited in claim 1, wherein the anode handle includes an anode selected from the group consisting: of a flat surface anode; a cylindrical surface anode; and a pit filling anode.
3. A brush electroplating system as recited in claim 1, further comprising: a platinum clad niobium mesh over the batting; and a cover ring for holding the batting.
4. A brush electroplating system as recited in claim 1, wherein the at least one release outlet is “+” shaped.
5. A brush electroplatingsystem as recited in claim 1, wherein the at least one release outlet is five outlets is a dice pattern with four of the outlets being connected to the central supply outletvia angled channels.
6. A brush electroplating system as recited in claim 1, further comprising a coupling ring attached to the anode handle for pressing the batting against the distal flat surface.
7. A brush electroplating system as recited in claim 6, wherein the coupling ring extends beyond the distal flat surface, and further comprising an o-ring fixed into the coupling ring to seal against an item being electroplated.
8. A brush electroplating system comprising: a chamber for storing an electroplating solution; an anode handle having batting and a distributorconfigured to spread the solution at multiple points to completely wet the batting, wherein the batting covers a positively charged platinum clad niobium mesh to preventthe mesh from touching a work piece directly; a delivery system including an adjustable peristaltic pump configured to delivera solution to the anode handle; and a suction system including: a vacuum pump ejector powered by compressed air; and an air valve for adjusting the compressed air to vary the vacuum created by the vacuum pump ejectorand, in turn, balance delivery of the solution from the peristaltic pump so that the batting of the anode handle is wet without dripping, wherein the anode handle has: a) an elongated proximal manual grip portion along an axis; and b) a distal end that forms a circular area perpendicularto the manual grip portion, the circular area having: i) a central supply outlet in communication with the delivery system for supplyingthe solution; ii) a first flange surrounding the central supply outlet; and iii) at least one suction inlet radiallyoutward of the first flange; and iv) a second flange radially outward of the at least one suction inlet so that the at least one suction inlet is in an annular trough between the flanges, and wherein the distributor has: a proximal flat surface that seals against the first and second flangesto enclose the trough so that vacuum from the at least one suction inlet is distributed within the trough; a distal flat surface forming at least one release outlet in fluid communication with the central supply outlet; and a sidewall extending between the proximal flat surface and the distal flat surface, the sidewall forming arcuate suction inlets in fluid communication with the annular trough for distributedlyapplyingthe vacuum to the batting.
9. A brush electroplating system as recited in claim 8, wherein the vacuum pump ejector provides the vacuum to a plurality of suction poi ntssurrounding the multiple points formed by the distributorto suck any excess solution from the batting of the anode handle and send the excess solution mixed with air back to the chamber.
10. A brush electroplating system as recited in claim 9, further comprising at least one angled plate in the chamber as a baffle so that when an air solution mixture hits the at least one angled plate in the chamber, the solution then flows down in the chamber and air leaves from an air discharge valve in fluid communication with a point in the chamber above the at least one angled plate.
11. A brush electroplating system as recited in claim 8, wherein the anode handle includes an anode that is a flat surface anode.
12. A brush electroplatingsystem as recited in claim 8, wherein the multiple points form a “+” shaped nozzle in fluid communication with the batting and wherein the vacuum pump ejector providesthe vacuum to a plurality of suction points surrounding the “+” shaped nozzle to suck the solution from the batting of the anode handle.
13. A brush electroplating system as recited in claim 8, wherein the peristaltic pump is reversible so that upon completion of electroplating, the peristaltic pump is configured to be reversed to clean the anode handle of the electroplating solution.
Description
BRIEF DESCRIPTION OF FIGURES
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DETAIL DESCRIPTION OF THE INVENTION
(26) The unit has 2 different systems; first is the delivery system that contains a peristaltic pump (
(27) First we fill the chamber (
(28) This unit simply works two systems in balance. The delivery system supplies the solution to the anode and the distributor spreads it at multiple points to completely wet the batting. In the suction system, during the pressure air passing thru the vacuum pump ejector, it creates a vacuum in front of the nozzle to suck the solution from the anode and then sends the air-solution mixture back to the chamber. The multiple suction points on the distributor help the solution travel in the bathing evenly. When air solution mixture hits the baffle in the chamber, the solution then flows down in the chamber and the air leaves from the exhaust valve. The baffle is two angled plates below the point where the air leaves from the exhaust valve connection to the chamber as shown in
(29) I designed three different anodes for their purposes; flat surface anode (
(30) The flat surface anode (
(31) Shaft anode (
(32) Pit filling anode (
(33) After we finished electroplating, by switching the pump in reverse direction it then returns the solution to the chamber in both ways. When we are sure the lines are empty, shut down the air and the pump. Disconnect delivery and suction lines from the unit. By connecting a short tygon tube to the delivery connection on the unit, we can then empty the solution to a safer container from the chamber. Before carrying the unit away, disconnect the compressed air, unplug the pump, shut the exhaust valve and plug the delivery and the suction connections on the unit.