IP Library Granted Patent US 7,344,629
Granted Patent B2
US 7,344,629 · App. 10/637,186 · Granted Mar 18, 2008

Selectable ion concentrations with electrolytic ion exchange

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Quick Facts
Patent No.
US 7,344,629
App. No.
10/637,186
Granted
Mar 18, 2008
Kind
B2
Abstract

An apparatus to treat an influent solution comprising ions to obtain a selectable ion concentration in an effluent solution. The apparatus comprises an electrochemical cell comprising a housing comprising first and second electrodes. A water-splitting ion exchange membrane is between the first and second electrodes, the membrane comprising ananion exchange surface facing the first electrode, and an cation exchange surface facing the second electrode, or vice versa. The housing also has an influent solution inlet and an effluent solution outlet with a solution channel that allows influent solution to flow past both the anion and cation exchange surfaces of the water-splitting ion exchange membrane to form the effluent solution. A variable voltage supply is capable of maintaining the first and second electrodes at a plurality of different voltages during an ion exchange stage.

Claims (44)

1. An apparatus to treat an influent solution comprising ions to obtain a selectable ion concentration in a resultant effluent solution, the apparatus comprising:

(a) an electrochemical cell comprising:

(i) a housing comprising first and second electrodes;

(ii) a water-splitting ion exchange membrane between the first and second electrodes, the membrane comprising (i) a cation exchange surface facing the first electrode, and (ii) an anion exchange surface facing the second electrode; and

(iii) an influent solution inlet and an effluent solution outlet with a solution channel therebetween, the solution channel allowing the influent solution to flow past both the anion and cation exchange surfaces of the water-splitting ion exchange membrane and thereby form the effluent solution; and

(b) a variable voltage supply capable of maintaining the first and second electrodes at a plurality of selectable voltage levels during an ion exchange stage such that each selectable voltage level has a different magnitude and provides a different ion concentration range in the effluent solution.

2. An apparatus according to claim 1 wherein the voltage levels are time averaged voltage levels.

3. An apparatus according to claim 2 wherein the time averaged voltage levels each have a different magnitude but substantially the same polarity.

4. An apparatus according to claim 2 wherein the ion exchange stage comprises an ion removal step.

5. An apparatus according to claim 2 wherein the ion exchange stage comprises an ion rejection step.

6. An apparatus according to claim 1 wherein the variable voltage supply is a phase control voltage supply.

7. An apparatus according to claim 1 wherein the variable voltage supply provides a variable magnitude pulsed voltage.

8. An apparatus according to claim 1 wherein the variable voltage supply comprises a switching voltage supply with pulse width modulation.

9. An apparatus according to claim 1 wherein the variable voltage supply provides a fixed magnitude pulsed voltage.

10. An apparatus according to claim 1 comprising a voltmeter to measure the voltage bias in the cell and generate a voltage signal, an ammeter to measure the current in the cell and generate a current signal, and a controller which determines the ion concentration in the solution from the ratio of the voltage and current signals and sends a control signal to the variable voltage supply to adjust the voltage level applied to the electrodes in response to the ion concentration.

11. An apparatus according to claim 1 comprising:

(1) an ion sensor to (i) measure an ion concentration of the influent solution, at least partially treated solution, or effluent solution, and (ii) generate an ion concentration signal, and

(2) a controller to receive the ion concentration signal and send a control signal to the variable voltage supply to adjust the voltage level in response to the ion concentration signal.

12. An apparatus to treat an influent solution comprising ions to obtain a selectable ion concentration in an effluent solution, the apparatus comprising:

(a) an electrochemical cell comprising:

(i) a housing comprising first and second electrodes;

(ii) a water-splitting ion exchange membrane positioned between the first and second electrodes, the membrane comprising (i) a cation exchange surface facing the first electrode, and (ii) an anion exchange surface facing the second electrode; and

(iii) an influent solution inlet and an effluent solution outlet with a solution channel therebetween, the solution channel allowing the influent solution to flow past both the anion and cation exchange surfaces of the water-splitting ion exchange membrane and thereby form the effluent solution;

(b) an ion sensor to measure an ion concentration in the influent solution, at least partially influent solution, or effluent solution, and generate an ion concentration signal;

(c) a variable voltage supply to maintain the first and second electrodes at a plurality of different selectable voltage levels during an ion exchange stage such that each selectable voltage level has a different magnitude and provides a different ion concentration range in the effluent solution; and

(d) a controller to receive the ion concentration signal from the ion meter and send a control signal to the variable voltage supply to adjust the voltage level applied to the first and second electrodes in response to the ion concentration signal to achieve a predefined ion concentration range in the effluent solution.

13. An apparatus according to claim 12 wherein the variable voltage supply is capable of providing voltage levels that are time averaged voltage levels during the ion exchange stage.

14. A method of treating an influent solution comprising ions to control the concentration of ions in an effluent solution, the method comprising:

(a) flowing the influent solution past both anion and cation exchange surfaces of a water-splitting ion exchange membrane to form the effluent solution;

(b) maintaining a time averaged electric field across the cation and anion exchange surfaces of the water-splitting membrane; and

(c) varying the strength of the time averaged electric field during ion exchange of the influent solution by selecting one of a plurality of selectable voltage levels that each have a different magnitude to control the ion concentration of the effluent solution.

15. A method according to claim 14 wherein the strength of the time averaged electric field is varied to achieve a predefined ion concentration range in the effluent solution.

16. A method according to claim 14 comprising measuring an ion concentration of the at least partially treated influent solution and varying the strength of the time averaged electric field in response to the measured ion concentration.

17. A method according to claim 14 comprising varying the strength of the time averaged electric field by varying the time-averaged voltage level of a variable-magnitude pulsed voltage applied to electrodes about the cation and anion exchange surfaces of the water-splitting membrane.

18. A method according to claim 14 comprising varying the strength of the time averaged electric field by varying the duty cycle of a fixed-magnitude pulsed voltage level applied to electrodes about the cation and anion exchange surfaces of the water-splitting membrane.

19. A method according to claim 14 comprising measuring the voltage and current through the solution and water-splitting membrane and determining an ion concentration in the solution from the ratio of the voltage and current measurements.

20. A method of treating an influent solution comprising ions to control the concentration of ions in an effluent solution, the method comprising:

(a) flowing the influent solution past both anion and cation exchange surfaces of a water-splitting ion exchange membrane to form the effluent solution;

(b) maintaining a time averaged electric field across the cation and anion exchange surfaces of the water-splitting membrane; and

(c) setting the strength of the time averaged electric field during ion exchange of the influent solution by selecting one of a plurality of selectable voltage levels that each have different magnitude and provide a different ion concentration range in the effluent solution.

21. A method according to claim 20 comprising measuring an ion concentration of at least partially treated influent solution and varying the strength of the time averaged electric field in response to the measured ion concentration.

22. A method according to claim 20 comprising varying the strength of the time averaged electric field by varying the time-averaged voltage level of a variable-magnitude pulsed voltage applied to electrodes.

23. A method according to claim 20 comprising varying the strength of the time averaged electric field by varying the duty cycle of a fixed-magnitude pulsed voltage level applied to electrodes.

24. A method according to claim 20 comprising measuring the voltage and current through the solution passing across the water-splitting membrane and determining an ion concentration in the solution from the ratio of the voltage and current measurements.

Assignments (14)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 22, 2020
From: PIONETICS CORPORATION
To: POS TECHNOLOGY, INC.
Reel/Frame 051665/0609 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN INTELLECTUAL PROPERTY Recorded Jan 13, 2020
From: CIT BANK, N.A.. (AS SUCCESSOR BY MERGER WITH ONEWEST BANK, FSB)
To: RAYNE CORPORATION; RAYNE DEALERSHIP CORPORATION; RAYNE - SAN DIEGO, INC.; BONCOR WATER SYSTEMS, LLC; CAL SOFT WATER SERVICE, INC.; RAYNE WATER CONDITIONING, INC.; PIONETICS CORPORATION
Reel/Frame 052096/0420 →
RELEASE OF SECURITY INTEREST Recorded Dec 6, 2019
From: COMERICA BANK
To: PIONETICS CORPORATION
Reel/Frame 051211/0654 →
RELEASE OF SECURITY INTEREST Recorded Nov 21, 2019
From: COMERICA BANK
To: PIONETICS CORPORATION
Reel/Frame 051081/0783 →
SECURITY INTEREST Recorded May 18, 2016
From: PIONETICS CORPORATION
To: COMERICA BANK
Reel/Frame 038637/0417 →
SECURITY AGREEMENT Recorded Jun 28, 2011
From: RAYNE CORPORATION; RAYNE DEALERSHIP CORPORATION; RAYNE - SAN DIEGO, INC.; BONCOR WATER SYSTEMS, LLC; CAL SOFT WATER SERVICE, INC.; RAYNE WATER CONDITIONING, INC.; PIONETICS CORPORATION
To: ONEWEST BANK, FSB
Reel/Frame 026514/0851 →
RELEASE OF SUBSIDIARY SECURITY INTEREST Recorded Jun 27, 2011
From: AMP ADMIN LLC, AS SUCCESSOR AGENT TO EMPORIA CAPITAL FUNDING LLC, AS ADMINISTRATIVE AGENT FOR THE LENDERS
To: PIONETICS CORPORATION
Reel/Frame 026509/0570 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 18, 2008
From: HOLMES, JIM; NYBERG, ERIC; EVANS, JOE
To: PIONETICS CORPORATION
Reel/Frame 021855/0328 →
SUBSIDIARY SECURITY AGREEMENT Recorded Aug 26, 2008
From: PIONETICS CORPORATION
To: EMPORIA CAPITAL FUNDING LLC, AS ADMINISTRATIVE AGENT FOR THE LENDERS
Reel/Frame 021439/0770 →
RELEASE OF SECURITY INTEREST Recorded Aug 22, 2008
From: NGEN ENABLING TECHNOLOGIES FUND, L.P.
To: PIONETICS CORPORATION
Reel/Frame 021428/0525 →
SECURITY AGREEMENT Recorded Jun 12, 2008
From: PIONETICS CORPORATION
To: NGEN ENABLING TECHNOLOGIES FUND, L.P.
Reel/Frame 021085/0185 →
RELEASE OF SECURITY INTEREST Recorded Jun 10, 2008
From: XPV CAPITAL CORPORATION, AS AGENT
To: PIONETICS CORPORATION
Reel/Frame 021064/0721 →
SECURITY AGREEMENT Recorded Mar 28, 2007
From: PIONETICS CORPORATION
To: XPV CAPITAL CORPORATION, AS AGENT
Reel/Frame 019077/0587 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2004
From: HOLMES, JIM; NYHBERG, ERIC; EVANS, JOE
To: PINETICS, INC.
Reel/Frame 015644/0450 →