IP Library Granted Patent US 9,777,383
Granted Patent B2
US 9,777,383 · App. 15/162,076 · Granted Oct 3, 2017

Cell and system for preparation of antimicrobial solutions

Inventors: Duke van Kalken (Palm Beach Gardens, FL); Nathan Waldner (Manitoba, CA)
Assignee: CLARENTIS HOLDING, INC.
C25B15/02A01N59/00C01B11/04C02F1/4674C25B1/22C25B1/26C25B9/04C25B9/08C25B15/08C02F1/001C02F2001/46138C02F2201/46135C02F2201/46145C02F2209/005C02F2209/04C02F2209/06C02F2209/40
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Quick Facts
Patent No.
US 9,777,383
App. No.
15/162,076
Granted
Oct 3, 2017
Kind
B2
Abstract

A system to prepare an antimicrobial solution by the electrolysis of brine is presented where the antimicrobial solution is a solution comprising HOCl that contains a HOCl concentration in excess of 500 ppm or more at a pH of 6 to 6.8 with a low residual salt concentration and displays a stability in excess of 60 days and can have a HOCl concentration in excess of 450 for 180 days. The system includes an electrolysis cell that is improved by a superior anode and ceramic membrane such that when employed with a DC power supply controlled by a microprocessor and a controlled brine concentration provided to the cell at ambient temperature at a controlled rate, delivers a fluid that is continuously monitored by a pH probe and an ORP probe for input to the microprocessor.

Claims (35)

1. An improved sealed electrolysis cell assembly comprising:

an anode tube exterior to and concentric with a cathode tube, wherein the anode tube is titanium and has an interior surface catalytic coating consisting of a mixture of ruthenium, palladium, and iridium oxides;

a ceramic membrane tube situated between the anode tube and the cathode tube, wherein the ceramic membrane tube is an injection molded alumina membrane tube;

two insulating end pieces, each of the insulating end pieces comprising three concentric seats with diameters for positioning the anode tube, the ceramic membrane tube, and the cathode tube;

at least one seal forming features in the vicinity of each of the seats, wherein upon sealing the anode tube, the ceramic membrane tube, and the cathode tube forms an anode chamber and a cathode chamber separated by the ceramic membrane tube;

an anion chamber inlet in one of the insulating end pieces and an anode chamber outlet in the other the insulating end pieces and a cathode chamber inlet in one of the insulating end pieces and a cathode chamber outlet in the other insulating end pieces; and

a cathode tap on the cathode tube and an anode tap welded to the anode tube, and wherein the anode tap has a surface area of 1.5 percent to 5 percent of the external surface area of the anode tube.

2. An antimicrobial solution comprising an HOCl generating and storage system, comprising:

a source of sediment free water;

a flow controller;

a reservoir containing an agitator and a source of brine solution comprising NaCl or other alkali metal chloride;

a first pump, having a first inlet connected to the source of brine to deliver the brine through a first outlet into a first conduit where the sediment free water and the brine form a chloride solution;

a microprocessor having software to accept multiple input signals and generate multiple output signals wherein at least one of the input signals is provided by at least one user interfacing device;

a source of a cleaning solution, wherein the cleaning solution comprises HCl;

a second pump having a second inlet connected to a source of the cleaning solution to deliver the cleaning solution through a second outlet into the first conduit;

at least one valve to selectively direct flow to one of a plurality of effluent outlets;

at least one means to selectively deliver the NaCl solution or the cleaning solution into the first conduit, wherein the means to selectively deliver comprises one or more 3-way valves, a plurality of two way valves or one or more switches to selectively power the first pump or the second pump;

a power supply;

at least one sealed electrolysis cell assembly according to claim 1 , wherein a solution comprising HOCl is discharged from the anode chamber outlet into a second conduit;

an inline pH probe in the second conduit containing and situated downstream and proximal to the electrolysis cell having a first electrical connection providing a first input signal to the microprocessor;

an inline oxidation/reduction potential (ORP) probe in the second conduit situated downstream and proximal to the electrolysis cell having a second electrical connection providing a second input signal to the microprocessor, the microprocessor is configured for determining and providing: a first output signal through a third electrical connection to the power supply; and a second output signal through a fourth electrical connection to the first pump to set a concentration of the NaCl solution and a third output signal through a fifth electrical connection to the means to selectively deliver of the brine solution and the cleaning solution, and wherein the microprocessor is programmed to provide the third output signal to deliver the cleaning solution;

a flow indicator for providing a third input signal through a sixth electrical connection to the microprocessor for determination of an output signal provided through a seventh electrical connection to the flow controller; and

an anolyte storage tank connected to one of the effluent outlets and containing the solution comprising HOCl.

3. The system of claim 2 , wherein the power supply has an AC input of 208 to 220 V and a DC output of up to 100 A and up to 100 V to the electrolysis cell.

4. The system of claim 2 , wherein the user interfacing device is a keyboard or a touch screen and wherein the interfacing device is local or remote to the microprocessor.

5. The system of claim 2 , further comprising at least one output device, wherein the microprocessor outputs a signal to be observed by an operator and/or recorded on a recording medium.

6. The system of claim 5 , wherein the output device comprises a display screen and/or a printer.

7. The system of claim 2 , further comprising a storage device wherein the input and output history and production and cleaning set points are stored.

8. The system of claim 7 , wherein the storage device is a magnetic, optical, or flash storage device.

9. The system of claim 2 , wherein the system generates the solution comprising HOCl at a rate of 50 to 5,000 L/hour.

10. The system of claim 2 , further comprising a second flow indicator to deliver a fourth input signal through an eighth electrical connection to the microprocessor.

11. The system of claim 2 , wherein the means to selectively deliver further comprises at least one 3-way valve or a plurality of valves.

12. The improved sealed electrolysis cell assembly of claim 1 , wherein the injection molded alumina membrane tube comprising 85 to 90% alumina and 7 to 9% silica.

13. The improved sealed electrolysis cell assembly of claim 1 , wherein the injection molded alumina membrane tube has 0.3 μm pores and a tube thickness of 5 to 7 mm with variance in tube thickness of 2 percent or less.

14. The system of claim 2 , wherein the concentration of HOCl in the solution comprising HOCl is 1000 to 1400 ppm.

Assignments (4)
CORRECTIVE ASSIGNMENT TO CORRECT THE PREVIOUSLY RECORDED ASSIGNMENT DOCUMENT TO INCLUDE THE EXECUTED NOTARY SECTION PREVIOUSLY RECORDED ON REEL 053196 FRAME 0810. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT OF THE ENTIRE INTEREST. Recorded Jul 15, 2020
From: CLARENTIS HOLDING, INC.
To: CLARTECH HOLDING, LLC
Reel/Frame 053214/0873 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 13, 2020
From: CLARENTIS HOLDING, INC.
To: CLARTECH HOLDING, LLC
Reel/Frame 053196/0810 →
LICENSE Recorded Jun 12, 2020
From: CLARENTIS HOLDING INC
To: BLUE SCIENCE SOLUTIONS, LLC
Reel/Frame 053526/0665 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2016
From: VAN KALKEN, DUKE; WALDNER, NATHAN
To: CLARENTIS HOLDING, INC.
Reel/Frame 038787/0561 →
Continuity (5)
Continuation In Part 14694334 · Apr 23, 2015
Division 13092653 · Apr 22, 2011
Continuation In Part PCTUS2011020691 · Jan 10, 2011
Provisional Application 61293467 · Jan 8, 2010
Related Publication 20160265123A1 · Sep 15, 2016