IP Library Granted Patent US 10,082,338
Granted Patent B2
US 10,082,338 · App. 13/981,981 · Granted Sep 25, 2018

Continuous heat treatment method for an electrically conductive fluid

Inventors: Jean-Pierre Lucien Joseph Pain (Castelnau le Lez, FR); Stephanie Roux (Mollans sur Ouveze, FR); Mario Massa (Reggio Emilia, IT)
Assignees: UNIVERSITE DE MONTPELLIER; EMMEPIEMME
F28D15/00A23L3/005A23L5/15F24H1/103H05B3/60Y10T137/6579
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Quick Facts
Patent No.
US 10,082,338
App. No.
13/981,981
Granted
Sep 25, 2018
Kind
B2
Abstract

A method is provided for heating an electrically conductive fluid, including steps of: (i) circulating the fluid in a circuit from an inlet to an outlet, through an inlet path of the circuit in which the fluid flows in a first average direction and an outlet path of the circuit in which the fluid flows in a second average direction substantially opposite to the first direction; (ii) subjecting the fluid to a specific ohmic heating while the fluid flows through the outlet path; and (iii) transferring heat from the fluid flowing through the outlet path to the fluid flowing through the inlet path by thermal conduction through an at least partially first electrically insulated partition wall. An associated heating device is also provided.

Claims (20)

1. A method for heating an electrically conductive fluid comprising steps of:

circulating the fluid in a circuit from an inlet to an outlet, through an inlet path of the circuit in which the fluid flows in a first average direction, and through an outlet path of the circuit in which the fluid flows in a second average direction substantially opposite to the first direction, wherein said inlet path has an inlet length extending from a first wall to a second wall, and said outlet path has an outlet length extending from said second wall to said first wall;

subjecting the fluid to ohmic heating while the fluid flows through the outlet path; and

transferring heat from the fluid flowing through the outlet path to the fluid flowing through the inlet path by thermal conduction through an electrically insulated partition wall separating said inlet path and said outlet path, wherein said electrically insulated partition wall extends along a majority of an entire length of said inlet length and said outlet length.

2. The method of claim 1 , further comprising a step of subjecting the fluid to ohmic heating while said fluid flows through the inlet path.

3. The method of claim 1 , further comprising at least one of the following steps:

applying at least one voltage inducing ohmic heating in the fluid flowing through the inlet path between at least two electrodes arranged in said inlet path; and

applying at least one voltage in the fluid flowing through the outlet path between at least two electrodes arranged in said outlet path.

4. The method of claim 3 , further comprising at least one of the following steps:

applying a first and a second voltage inducing ohmic heating in the fluid flowing through the inlet path, said first voltage being applied between a first electrode arranged substantially toward a first axial end of the inlet path and a second electrode arranged substantially toward the middle of the inlet path, and said second voltage being applied between said second electrode and a third electrode arranged substantially toward a second axial end of the inlet path; and

applying a third and a fourth voltage inducing ohmic heating in the fluid flowing through the outlet path, said third voltage being applied between a fourth electrode arranged substantially toward a first axial end of the outlet path and a fifth electrode arranged substantially toward the middle of the outlet path, and said fourth voltage being applied between said fifth electrode and a sixth electrode arranged substantially toward a second axial end of the outlet path.

5. The method of claim 1 , further comprising a step of inducing ohmic heating in the fluid by applying AC voltage between electrodes at least partially in contact with the fluid.

6. The method of claim 1 , further comprising a step of circulating the fluid through the inlet path at a higher average speed than through the outlet path.

7. The method of claim 1 , further comprising a step of measuring the temperature of the fluid in at least one path among the inlet path and the outlet path.

8. The method of claim 1 , wherein said first wall and said second wall are electrodes.

9. A method for heating an electrically conductive fluid comprising steps of:

circulating the fluid in a circuit from an inlet to an outlet, through an inlet path of the circuit in which the fluid flows in a first average direction, and through an outlet path of the circuit in which the fluid flows in a second average direction substantially opposite to the first direction;

subjecting the fluid to ohmic heating while the fluid flows through the outlet path; and

providing an electrically insulated partition wall between said inlet path and said outlet path, wherein said partition wall extends along a majority of an entire length of said inlet length and said outlet length, said entire length defined between opposing ends of said inlet path and said outlet path, wherein no ohmic heating occurs through said partition wall; and

transferring heat from the fluid flowing through the outlet path to the fluid flowing through the inlet path by thermal conduction through said electrically insulated partition wall.

Assignments (2)
MERGER AND CHANGE OF NAME Recorded Aug 9, 2018
From: UNIVERSITÉ MONTPELLIER-II; UNIVERSITÉ MONTPELLIER-I; UNIVERSITÉ DE MONTPELLIER
To: UNIVERSITÉ DE MONTPELLIER
Reel/Frame 046599/0649 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 11, 2014
From: PAIN, JEAN-PIERRE LUCIEN JOSEPH; ROUX, STEPHANIE MURIELLE; MASSA, MARIO
To: UNIVERSITE MONTPELLIER 2 SCIENCES ET TECHNIQUES; EMMEPIEMME
Reel/Frame 032401/0259 →
Continuity (1)
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Cited By (1)
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