IP Library Granted Patent US 12,601,064
Granted Patent B2
US 12,601,064 · App. 18/324,485 · Granted Apr 14, 2026

Corrosion control for water systems using passivators and a hydroxycarboxylic acid

Inventors: Rajendra Prasad Kalakodimi (Glen Allen, VA); Santanu Banerjee (Glen Allen, VA); Patrick Wood (Glen Allen, VA); Deann C. Guy (Ruther Glen, VA); Curt Turner (Mechanicsville, VA)
Assignee: CHEMTREAT, INC.
C23F11/18C02F5/105C23F11/08C23F11/12C23F11/187C02F2303/08
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Quick Facts
Patent No.
US 12,601,064
App. No.
18/324,485
Granted
Apr 14, 2026
Kind
B2
Abstract

Methods and compositions for suppressing corrosion of a corrodible metal surface that contacts a water stream in a water system. The method comprises introducing into the water stream a treatment composition, the treatment composition including a combination of passivators and a hydroxycarboxylic acid promoter.

Claims (20)

1 . A method of suppressing corrosion of a corrodible metal surface that contacts a water stream in a water system, the method comprising:

introducing into the water stream a treatment composition including (i) a combination of passivators that include at least two multivalent salts selected from the group consisting of manganese, tungstate, aluminum, and tin, and (ii) a hydroxycarboxylic acid promoter, the hydroxycarboxylic acid promoter having a carboxylic acid group and a hydroxyl group that is bonded to a carbon atom that is adjacent to the carboxylic acid group,

wherein the treatment composition is introduced so that (i) the concentration of the combination of the passivators in the water stream is in the range of 0.1 to 10 ppm, (ii) the concentration of the promoter in the water stream is in the range of 2 ppm to 50 ppm, and (iii) the ratio of the concentration of the combination of the passivators to the concentration of the promoter is in a the range of from 0.01 to 0.4.

2 . The method of suppressing corrosion according to claim 1 , wherein the treatment composition is introduced so that the concentration of the combination of the passivators is in the range of 0.25 to 1.25 ppm, and the concentration of the promoter in the water stream is in the range of 7.5 ppm to 20 ppm.

3 . The method of suppressing corrosion according to claim 1 , wherein one of the at least two multivalent salts is tin.

4 . The method of suppressing corrosion according to claim 1 , wherein the tin is provided as a stannous salt selected from the group consisting of stannous sulfate, stannous bromide, stannous chloride, stannous oxide, stannous phosphate, stannous pyrophosphate, and stannous tetrafluroborate.

5 . The method of suppressing corrosion according to claim 1 , wherein the at least two multivalent salts include tin and aluminum.

6 . The method of suppressing corrosion according to claim 5 , wherein the aluminum is provided as an inorganic aluminum salt selected from the group consisting of aluminum chloride, aluminum nitrate, and aluminum sulfate.

7 . The method of suppressing corrosion according to claim 5 , wherein the aluminum is provided as an organic aluminum salt selected from the group consisting of aluminum citrate and aluminum glucanate.

8 . The method of suppressing corrosion according to claim 1 , wherein the hydroxycarboxylic acid promoter is selected from the group consisting of tartaric acid, glucaric acid, glucoheptonate, and gluconic acid.

9 . The method of suppressing corrosion according to claim 8 , wherein the hydroxycarboxylic acid promoter is glucaric acid.

10 . The method of suppressing corrosion according to claim 1 , wherein the treatment composition further comprises at least one reducing agent.

11 . The method of suppressing corrosion according to claim 1 , wherein the treatment composition further comprises at least one dispersant selected from the group consisting of unsaturated carboxylic acid polymers, phosphonates, phosphinates, and amines.

12 . The method of suppressing corrosion according to claim 1 , wherein the water system is selected from the group consisting of cooling towers, water distribution systems, boilers, water/brine carrying pipelines, and storage tanks.

13 . The method of suppressing corrosion according to claim 1 , wherein the corrodible metal surface is a metal or alloy selected from the group consisting of ferrous metals, aluminum metals, brass, copper containing alloys, mild steels, carbon steels, and galvanized steels.

14 . The method of suppressing corrosion according to claim 1 , wherein the treatment composition is provided in sufficient amount and for sufficient time to form a stable protective film on at least a portion of the corrodible metal surface.

15 . The method of suppressing corrosion according to claim 1 , wherein the treatment composition is introduced into the water stream while the water system is on-line.

16 . A method of suppressing corrosion of a corrodible metal surface that contacts a water stream in a water system, the method comprising:

introducing into the water stream a treatment composition including (i) a combination of salts of multi valent metals a tin salt and an aluminum salt and (ii) a hydroxycarboxylic acid promoter, the hydroxycarboxylic acid promoter having a carboxylic acid group and a hydroxyl group that is bonded to a carbon atom that is adjacent to the carboxylic acid group, promoter that is selected from the group consisting of tartaric acid, glucaric acid, glucoheptonate, and gluconic acid,

wherein the treatment composition is introduced so that (i) the concentration of the combination of the tin salt and the aluminum salt in the water stream is in the range of 0.1 to 10 ppm, (ii) the concentration of the promoter in the water stream is in the range of 2 ppm to 50 ppm, (iii) the ratio of the concentration of the tin salt in the water stream to the concentration of the promoter in the water stream is in the range of from 0.01 to 0.4, and (iv) the ratio of the concentration of the aluminum salt in the water stream to the concentration of the promoter is in a the range of from 0.01 to 0.4.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2023
From: KALAKODIMI, RAJENDRA PRASAD; BANERJEE, SANTANU; WOOD, PATRICK; GUY, DEANN C.; TURNER, CURT
To: CHEMTREAT, INC.
Reel/Frame 063774/0325 →
Continuity (2)
Provisional Application 63346134 · May 26, 2022
Related Publication 20230383415A1 · Nov 30, 2023
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