IP Library Granted Patent US 9,061,323
Granted Patent B2
US 9,061,323 · App. 13/912,881 · Granted Jun 23, 2015

Apparatus and method for generating oxidatively and thermally-enhanced treatment liquids

Inventors: Bruce F. Field (Golden Valley, MN); Russell J. Pylkki (St. Paul, MN); Mark Steven Citsay (Lake Elmo, MN); Charles W. O'Neil (Edina, MN)
Assignee: Tennant Company
B08B7/00A47L11/30C25B15/02B08B3/10B08B3/00B08B3/02B08B7/0035B08B7/0064A47L11/4083C02F1/32C02F2201/46155B08B1/04B08B3/024C02F1/46104C02F1/4618C02F1/4674C02F9/00C02F2001/46133C02F2201/46115C02F2201/4613B08B7/0057
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Quick Facts
Patent No.
US 9,061,323
App. No.
13/912,881
Granted
Jun 23, 2015
Kind
B2
Abstract

A cleaning system comprising a liquid source configured to provide a feed liquid at a first temperature, and an electrolysis cell configured to receive the feed liquid and to electrochemically activate the feed liquid to provide an electrochemically-activated liquid, wherein the electrochemical activation also heats the feed liquid such that the electrochemically-activated liquid is at an elevated temperature that is greater than the first temperature. The cleaning system also includes a dispenser configured to dispense the electrochemically-activated liquid.

Claims (29)

1. A method for cleaning a surface, the method comprising:

providing a system having an electrolysis cell, an ultraviolet-radiation generator, a heating element, a dispenser, and a fluid line, wherein the electrolysis cell, the ultraviolet-radiation generator, the heating element, and the dispenser are located along the fluid line such that the heating element is disposed between the ultraviolet-radiation generator and the dispenser;

pumping a feed liquid having a first temperature from a liquid source through the fluid line to the electrolysis cell;

electrochemically activating and heating the feed liquid in the electrolysis cell to provide an electrochemically-activated liquid at an second temperature that is greater than the first temperature, and which comprises reactive oxidative species;

passing the electrochemically-activated liquid from the electrolysis cell and through the ultraviolet-radiation generator;

emitting ultraviolet radiation towards the electrochemically-activated liquid in the ultraviolet-radiation generator to generate an oxidatively-enhanced, electrochemically-activated liquid in which the reactive oxidative species are converted to radicals with increased oxidation potentials compared to the reactive oxidative species in the electrochemically-activated liquid;

heating the oxidatively-enhanced, electrochemically-activated liquid with the heating element;

dispensing the heated, oxidatively-enhanced, electrochemically-activated liquid from the dispenser to the surface; and

cleaning the surface with the dispensed heated, oxidatively-enhanced, electrochemically-activated liquid.

2. The method of claim 1 , and further comprising pre-heating the feed liquid with a second heating element located upstream from the electrolysis cell.

3. The method of claim 1 , wherein the surface is a surface in a cold-room environment, and wherein the feed liquid is substantially free of glycol-based compositions.

4. The method of claim 1 , wherein the reactive oxidative species comprise hydrogen peroxide and hydrogen hypochlorite, and wherein the converted radicals of the reactive oxidative species comprise hydroxyl radicals.

5. The method of claim 4 , wherein the converted radicals of the reactive oxidative species further comprise chlorine radicals.

6. A method for cleaning a surface, the method comprising:

providing a system having an electrolysis cell, an ultraviolet-radiation generator, a heating element, a dispenser, and a fluid line, wherein the electrolysis cell, the ultraviolet-radiation generator, the heating element, and the dispenser are located along the fluid line such that the heating element is disposed between the ultraviolet-radiation generator and the dispenser;

pumping a feed liquid from a liquid source through the fluid line to the electrolysis cell;

inducing a current through the electrolysis cell to electrochemically activate and heat the feed liquid in the electrolysis cell to provide an electrochemically-activated liquid;

passing the electrochemically-activated liquid from the electrolysis cell and through the ultraviolet-radiation generator;

emitting ultraviolet radiation towards the electrochemically-activated liquid in the ultraviolet-radiation generator to generate an oxidatively-enhanced, electrochemically-activated liquid in which the reactive oxidative species are converted to radicals with increased oxidation potentials compared to the reactive oxidative species in the electrochemically-activated liquid;

heating the oxidatively-enhanced, electrochemically-activated liquid with the heating element;

monitoring a temperature of the oxidatively-enhanced, electrochemically-activated liquid in the fluid line;

controlling at least one of the pumping and the inducing of the current in response to the monitored temperature;

dispensing the heated, oxidatively-enhanced, electrochemically-activated liquid from the dispenser to the surface; and

cleaning the surface with the dispensed heated, oxidatively-enhanced, electrochemically-activated liquid.

7. The method of claim 6 , and further comprising pre-heating the feed liquid with a second heating element located upstream from the electrolysis cell.

8. The method of claim 6 , wherein controlling at least one of the pumping and the inducing of the current in response to the monitored temperature maintains the temperature of the heated, oxidatively-enhanced, electrochemically-activated liquid directed through the fluid line within a predetermined temperature range.

9. The method of claim 6 , wherein the reactive oxidative species comprise hydrogen peroxide and hydrogen hypochlorite, and wherein the converted radicals of the reactive oxidative species comprise hydroxyl radicals.

10. The method of claim 9 , wherein the converted radicals of the reactive oxidative species further comprise chlorine radicals.

11. The method of claim 6 , wherein the surface is a surface in a cold-room environment, and wherein the feed liquid is substantially free of glycol-based compositions.

Assignments (2)
SECURITY INTEREST Recorded Apr 4, 2017
From: TENNANT COMPANY
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 042188/0659 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 13, 2013
From: FIELD, BRUCE F.; PYLKKI, RUSSELL J.; CITSAY, MARK STEVEN; O'NEIL, CHARLES W.
To: TENNANT COMPANY
Reel/Frame 031594/0752 →
Continuity (2)
Provisional Application 61657330 · Jun 8, 2012
Related Publication 20130327353A1 · Dec 12, 2013