IP Library Granted Patent US 8,785,877
Granted Patent B2
US 8,785,877 · App. 13/608,684 · Granted Jul 22, 2014

Method for monitoring fouling in a cooling tower

Inventors: Charles B. Winfield (Pasadena, TX); Stephen N. Harris (Houston, TX); Lance Freeman (League City, TX)
Assignee: Quantum Technical Services LLC
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Quick Facts
Patent No.
US 8,785,877
App. No.
13/608,684
Granted
Jul 22, 2014
Kind
B2
Abstract

Fouling in the fill portion of a cooling tower is monitored by transmitting radiation through a cooling tower, detecting the amount of radiation that has penetrated the cooling tower, and calculating the density of the fill portion of the cooling tower based on the detected radiation. A higher than expected density indicates the presence of fouling on the fill portion of the cooling tower. A rate of fouling may be established by monitoring the density of the fill portion of the cooling tower over time.

Claims (30)

1. A method for diagnosing non-uniform fouling in a fill portion of a cooling tower, the method comprising:

(a) measuring a first density value of a fill portion of a cooling tower by transmitting radiation through a first part of the cooling tower and detecting radiation that has penetrated through the first part of the cooling tower;

(b) measuring one or more density values of the fill portion of the cooling tower by transmitting radiation through one or more parts of the cooling tower and detecting radiation that has penetrated through the one or more parts of the cooling tower, wherein the one or more parts of the cooling tower are different from the first part of the cooling tower;

wherein if the density values of the one or more parts are different from the first density value, then the fill portion of the cooling tower has non-uniform fouling;

wherein the one or more density values are calculated according to the following equation:

I=I o e −ρμx

wherein

I 2 is the amount of radiation detected through a portion of the cooling tower that does not contain fill;

I is the amount of radiation detected through the fill portion;

ρ is the calculated density of the fill portion of the cooling tower;

x is the thickness of the fill portion; and

is an absorption coefficient.

2. The method of claim 1 , wherein the first density value is a baseline density value.

3. The method of claim 1 , wherein the one or more density values are in situ density values.

4. The method of claim 1 , wherein the at least one part of the cooling tower is the fill portion of the cooling tower.

5. The method of claim 1 , wherein the first density value is established by transmitting and detecting radiation through the cooling tower when it is expected to be free of fouling.

6. The method of claim 1 , wherein the first density value is established from specifications for the density of the fill in the fill portion of the cooling tower.

7. The method of claim 1 , wherein the one or more density values are calculated from the amount of radiation detected through the fill portion of the cooling tower and the amount of radiation detected though a portion of the cooling tower that does not contain fill.

8. The method of claim 1 , comprising adding a quantity of anti-fouling agent to the cooling tower after (a).

9. The method of claim 8 , comprising adding an additional quantity of anti-fouling agent to the cooling tower after (b).

10. A method for monitoring fouling in a fill portion of a cooling tower having a water supply, the method comprising:

(a) measuring a first density value of a fill portion of a cooling tower by transmitting radiation through a first part of the cooling tower and detecting radiation that has penetrated through the first part of the cooling tower;

(b) measuring one or more density values of the fill portion of the cooling tower by transmitting radiation through one or more parts of the cooling tower and detecting radiation that has penetrated through the one or more parts of the cooling tower, wherein the one or more parts of the cooling tower are different from the first part of the cooling tower;

(c) calculating a plurality of first density values by transmitting and detecting radiation through the cooling tower over time;

(d) determining a rate of fouling of the fill portion of the cooling tower by tracking said in-situ density values;

wherein if the density values of the one or more parts are different from the first density value, then the fill portion of the cooling tower has non-uniform fouling;

(i) adding a quantity of an anti-fouling agent to the water supply;

(ii) establishing a third density value of the fill portion by transmitting and detecting radiation through the cooling tower after said quantity of anti-fouling agent has been added; and (iii) comparing the third density value to the first and the one or more density values in order to determine the effectiveness of the quantity of the anti-fouling agent.

11. The method of claim 10 , further comprising: (i) repeating the step of adding a quantity of anti-fouling agent and then establishing a density value of the fill portion by transmitting and detecting radiation through the cooling tower; and (ii) establishing a correlation between the quantity of the anti-fouling agent added to the water supply and a resulting change in the density value of the fill portion.

12. The method of claim 10 , wherein said radiation is gamma radiation.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 5, 2017
From: WINFIELD, CHARLES B.; FREEMAN, LANCE; HARRIS, STEPHEN N.
To: QUANTUM TECHNICAL SERVICES LLC
Reel/Frame 042165/0748 →
CHANGE OF NAME Recorded Apr 5, 2017
From: QUANTUM TECHNICAL SERVICES LLC
To: ECOLAB USA INC.
Reel/Frame 042167/0139 →
Continuity (4)
Continuation 13412289 · Mar 5, 2012
Continuation 12248315 · Oct 9, 2008
Provisional Application 60979081 · Oct 11, 2007
Related Publication 20130028375A1 · Jan 31, 2013