IP Library › Granted Patent US 10,309,915
Granted Patent B2
US 10,309,915 · App. 15/506,378 · Granted Jun 4, 2019

Ozone concentration analyzer and methods using same

Inventor: Marco Tremblay (Montreal, CA)
Assignee: SUEZ TREATMENT SOLUTIONS CANADA L.P.
G01N25/28G01N33/0024G01N33/0039Y02A50/247
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Quick Facts
Patent No.
US 10,309,915
App. No.
15/506,378
Granted
Jun 4, 2019
Kind
B2
Abstract

The method for analyzing an ozone concentration comprising the steps of: providing at least one catalytic chamber having an ozone decomposition path between an inlet portion and an outlet portion thereof; receiving a sample flow of gas containing ozone by the inlet portion of the at least one catalytic chamber and along the ozone decomposition path; decomposing a totality of the ozone of the sample flow of gas into oxygen in an exothermic reaction along the ozone decomposition path of the catalytic chamber; measuring a first temperature value at a first position and measuring a second temperature value at a second position, the first and second positions being associated with the inlet and outlet portions; evaluating the ozone concentration of the sample flow of gas based on the temperature difference between the second temperature value and the first temperature value and calibration data; and generating a signal indicating the evaluated ozone concentration.

Claims (32)

1. A method for analyzing an ozone concentration comprising the steps of:

providing at least one catalytic chamber having an ozone decomposition path between an inlet portion and an outlet portion thereof;

receiving a sample flow of gas containing ozone by the inlet portion of the at least one catalytic chamber and along the ozone decomposition path;

decomposing a totality of the ozone of the sample flow of gas into oxygen in an exothermic reaction along the ozone decomposition path of the catalytic chamber;

measuring a first temperature value at a first position and measuring a second temperature value at a second position, the first and second positions being associated with the inlet and outlet portions;

evaluating the ozone concentration of the sample flow of gas based on the temperature difference between the second temperature value and the first temperature value and calibration data associating reference temperature differences to respective reference ozone concentrations for the at least one catalytic chamber;

providing the oxygen exiting the outlet portion of the at least one catalytic chamber into an external thermally conducting conduit;

cooling the oxygen flowing in the external thermally conducting conduit;

providing the cooled oxygen back in the at least one catalytic chamber using an internal thermally conducting conduit provided across the at least one catalytic chamber from a first arbitrary portion to a second arbitrary portion;

measuring a third temperature value at the first arbitrary portion and measuring a fourth temperature value at the second arbitrary portion; and

wherein said evaluating the ozone concentration of the sample flow of gas is further based on the temperature difference between the fourth temperature value and the third temperature value.

2. The method of claim 1 , further comprising thermally isolating the external thermally conducting conduit from the at least one catalytic chamber during said steps of providing the oxygen and providing the cooled oxygen.

3. The method of claim 1 , wherein said measuring further comprises measuring a humidity value; and wherein said evaluating further comprises evaluating the concentration of the ozone of the flow of gas based on the measured values relative to calibration data compensating for the humidity value.

4. The method of claim 1 further comprising serially connecting a plurality of catalytic chambers one to the other; and wherein said evaluating is based on the first and second temperature values each of the plurality of catalytic chambers.

5. The method of claim 4 , wherein said evaluating further comprises evaluating an decomposition efficiency of each of the plurality of catalytic chambers by comparing the first and second temperature values of each of the plurality of catalytic chambers serially connected one to the other.

6. An ozone concentration analyzer comprising:

at least one catalytic chamber having an ozone decomposition path between an inlet portion and an outlet portion thereof, the at least one catalytic chamber receiving a flow of gas containing ozone by the inlet portion and having a plurality of catalytic pellets therein each catalytically reacting with the ozone of the flow of gas to decompose a totality of the ozone into oxygen in an exothermic reaction along the ozone decomposition path of the catalytic chamber, an inlet sensor for measuring a first temperature value at a first position along the ozone decomposition path, an outlet sensor for measuring a second temperature value at a second position along the ozone decomposition path; and

an analyzer communicating with the sensors of the at least one catalytic chamber for receiving the first temperature value and the second temperature value therefrom, the analyzer evaluating the concentration of the ozone of the flow of gas based on the temperature difference between the second temperature value and the first temperature value and calibration data associating reference temperature differences to respective reference ozone concentrations for the at least one catalytic chamber; and

at least one heat removing system for removing heat from the at least one catalytic chamber using the oxygen heated by the exothermic reaction as heat carrier, each of the at least one heat removing system having:

an external thermally conducting conduit having one end connected to the outlet portion of the at least one catalytic chamber for receiving the oxygen therefrom and another end connected at a first arbitrary position of the at least one catalytic chamber;

an internal therapy conducting conduit provided across the at least one catalytic chamber from the first arbitrary portion to a second arbitrary portion, wherein the heat removing system is adapted to remove heat from the oxygen flowing through the external thermally conducting conduit thus cooling the oxygen and adapted to absorb heat from the at least one catalytic chamber from the cooled oxygen flowing through the internal thermally conducting conduit; and;

a third temperature sensor for measuring a third temperature value at the first arbitrary portion and a fourth temperature sensor for measuring a fourth temperature value at the second arbitrary portion, the analyzer further evaluating the concentration of the ozone of the flow of as based on the temperature difference between the fourth temperature value and the third temperature.

7. The ozone concentration analyzer of claim 6 , wherein each of the at least one heat removing system has a first insulated conduit being connected between the outlet portion of the at least one catalytic chamber and the one end of the external thermally conducting conduit and a second insulated conduit being connected between the other end of the external thermally conducting conduit and the first arbitrary position of the at least one catalytic chamber thus thermally insulating the external thermally conducting conduit from the at least one catalytic chamber.

8. The ozone concentration analyzer of claim 6 , wherein the at least one catalytic chamber is thermally insulated from the external environment to prevent thermal losses.

9. The ozone concentration analyzer of claim 6 , wherein the first position is associated with the inlet portion and the second position is associated with the outlet portion of the at least one catalytic chamber.

10. The ozone concentration analyzer of claim 6 , wherein the calibration data comprises at least a listing of reference concentration values as a function of a difference between the second temperature value and the first temperature value for the at least one catalytic chamber having specific dimensions.

11. The ozone concentration analyzer of claim 6 , wherein the plurality of catalytic pellets are provided in the form of porous pellets.

12. The ozone concentration analyzer of claim 6 , wherein the at least one catalytic chamber further comprises a humidity sensor for measuring a first humidity value at the second position, the analyzer receiving the humidity value and further evaluating the concentration of the ozone of the flow of gas based on the measured values relative to calibration data compensating for the humidity value.

13. The ozone concentration analyzer of claim 6 , wherein the external thermally conducting conduit is thermally connected to a cooling device.

14. The ozone concentration analyzer of claim 6 , wherein the at least one catalytic chamber has a calibration memory connectable to the analyzer and having thereon data relative to the calibration data thereof.

15. The ozone concentration analyzer of claim 6 , wherein the at least one catalytic chamber is made integral to a printed circuit board removably connectable to the analyzer.

16. The ozone concentration analyzer of claim 6 , wherein the at least one catalytic chamber is serially connectable to at least one other catalytic chamber.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 21, 2017
From: IMALOG INC.
To: SUEZ TREATMENT SOLUTIONS CANADA L.P.
Reel/Frame 043063/0025 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 18, 2017
From: TREMBLAY, MARCO
To: IMALOG INC.
Reel/Frame 043028/0087 →
Continuity (2)
Provisional Application 62042532 · Aug 27, 2014
Related Publication 20170241927A1 · Aug 24, 2017
Cited By (2)
US 12,209,983 US 12,523,598