IP Library Granted Patent US 10,753,258
Granted Patent B2
US 10,753,258 · App. 15/883,665 · Granted Aug 25, 2020

Corrosive fluid heater, tank and manufacturing method

Inventors: Yves Lamirand (Bourg de Péage, FR); Sylvain Jaquet (Chatuzange le Goubet, FR)
Assignee: AKWEL SA
F01N3/2896C25D11/022C25D11/04F01N3/208F01N3/2066H05B3/12F01N2610/02F01N2610/10F01N2610/1406F24H1/20H05B2203/017H05B2203/021Y02T10/24
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Quick Facts
Patent No.
US 10,753,258
App. No.
15/883,665
Granted
Aug 25, 2020
Kind
B2
Abstract

The object of the invention is a heater of a corrosive fluid comprising at least one heat diffuser having at least a first portion intended to be immersed in a corrosive fluid, and at least a second portion intended to be arranged out of the corrosive fluid, at least one heating block comprising at least one heating member configured to heat the corrosive fluid, said heat diffuser comprising at least one housing in which the at least one heating block is housed at least partially, at least the first portion of the heat diffuser being made of anodized aluminum or of anodized aluminum alloy and is configured to be in direct contact with the corrosive fluid. The object of the invention is also a corrosive fluid tank comprising a heater according to the invention and a method for manufacturing a heat diffuser of the heater according to the invention.

Claims (26)

1. A heater of a corrosive fluid for metals comprising:

at least one heat diffuser having at least a first portion configured to be immersed in a corrosive fluid for metals, and at least a second portion configured to be arranged out of the corrosive fluid, the first portion of the diffuser being made of anodized aluminum or of anodized aluminum alloy and being configured to be in direct contact with the corrosive fluid, and

at least one heating block comprising at least one heater element configured to heat the corrosive fluid, said heat diffuser comprising at least one housing in which the at least one heating block is housed at least partially, the at least one housing being configured to be between the at least one heater element and the corrosive fluid, and a surface of the second portion of the diffuser facing away from the at least one housing being shielded from contact with the corrosive fluid.

2. The heater according to claim 1 , wherein the second portion of the diffuser is at least partially non-anodized.

3. The heater according to claim 1 , wherein the heating block is in direct contact with the housing of the heat diffuser.

4. The heater according to claim 1 , wherein the housing of the heat diffuser extends transversely between the first portion of the heat diffuser and the second portion of the heat diffuser.

5. The heater according to claim 1 , wherein the corrosive fluid is a reduction solution.

6. The heater according to claim 5 , wherein the reduction solution is an aqueous urea solution.

7. A tank of a corrosive fluid for metals, the tank comprising:

an internal volume configured to contain a corrosive fluid for metals, said internal volume being delimited by at least an upper wall, a lower wall and a lateral wall connecting the upper wall and the lower wall; and

a heater comprising:

at least one heat diffuser having at least a first portion configured to be immersed in a corrosive fluid for metals, and at least a second portion configured to be arranged out of the corrosive fluid, the first portion of the diffuser being made of anodized aluminum or of anodized aluminum alloy and being configured to be in direct contact with the corrosive fluid, and

at least one heating block comprising at least one heater element configured to heat the corrosive fluid, said heat diffuser comprising at least one housing in which the at least one heating block is housed at least partially, the at least one housing being configured to be between the at least one heater element and the corrosive fluid, and a surface of the second portion of the diffuser facing away from the at least one housing being shielded from contact with the corrosive fluid;

said heater being positioned on one of the walls of the tank, the first portion of the heat diffuser of the heater being arranged in the internal volume of the tank.

8. The tank according to claim 7 , further comprising a positioning orifice shaped to allow the arrangement of the heater in part in the internal volume of said tank and in part out of the tank.

9. The tank according to claim 8 , further comprising a seal provided at the positioning orifice, said seal being formed in a secured manner to said positioning orifice of the tank or said seal being formed in an independent manner from said positioning orifice of the tank.

10. The tank according to claim 8 , wherein the heater further comprises a seal arranged at the positioning orifice of the tank, said seal being formed in a secured manner to said heater or said seal being formed in an independent manner from said heater.

11. The tank according to claim 7 , wherein the corrosive fluid is a reduction solution.

12. The tank according to claim 11 , wherein the reduction solution is an aqueous urea solution.

13. A method for manufacturing a heat diffuser of a heater comprising:

at least one heat diffuser having at least a first portion configured to be immersed in a corrosive fluid for metals, and at least a second portion configured to be arranged out of the corrosive fluid, and

at least one heating block comprising at least one heater element configured to heat the corrosive fluid, said heat diffuser comprising at least one housing in which the at least one heating block is housed at least partially, the at least one housing being configured to be between the at least one heater element and the corrosive fluid, and a surface of the second portion of the diffuser facing away from the at least one housing being shielded from contact with the corrosive fluid;

said method comprising a step of making the heat diffuser in an aluminum or aluminum alloy type material and a step of anodizing at least a first portion of said heat diffuser, said first portion being configured to be immersed in the corrosive fluid.

14. The method according to claim 13 , further comprising clogging the heat diffuser after the anodizing step.

15. The method according to claim 13 , wherein the corrosive fluid is a reduction solution.

16. The method according to claim 15 , wherein the reduction solution is an aqueous urea solution.

Assignments (4)
CHANGE OF NAME Recorded Nov 27, 2019
From: AKWEL SA
To: AKWEL
Reel/Frame 051132/0264 →
CORRECTIVE ASSIGNMENT TO CORRECT THE CITY OF THE ASSIGNEE PREVIOUSLY RECORDED ON REEL 047377 FRAME 0386. ASSIGNOR(S) HEREBY CONFIRMS THE CITY OF THE ASSIGNEE. Recorded Dec 14, 2018
From: MGI COUTIER
To: AKWEL SA
Reel/Frame 047889/0892 →
CHANGE OF NAME Recorded Oct 31, 2018
From: MGI COUTIER
To: AKWEL SA
Reel/Frame 047377/0386 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 30, 2018
From: LAMIRAND, YVES; JAQUET, SYLVAIN
To: MGI COUTIER
Reel/Frame 044772/0478 →
Priority Claims (1)
FR 17 50959 · Feb 6, 2017 · national
Continuity (1)
Related Publication 20180223715A1 · Aug 9, 2018