IP Library Granted Patent US 11,236,600
Granted Patent B2
US 11,236,600 · App. 17/041,521 · Granted Feb 1, 2022

Method for control of an inner tube of an inclined tubular oil and water separator

Inventors: Jon Sigurd Berntsen (Porsgrunn, NO); Asle Jostein Hovda (Jakobsli, NO)
Assignee: Seabed Separation AS
E21B43/34B01D17/0214B01D17/12C02F1/40
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Quick Facts
Patent No.
US 11,236,600
App. No.
17/041,521
Granted
Feb 1, 2022
Kind
B2
Abstract

Method for control of an inner tube of an inclined tubular separator, wherein the inner tube is provided with an outlet adapted the viscosity of oil introduced into the inner tube.

Claims (25)

1. A method for controlling an inner tube ( 40 ) of an inclined tubular oil and water separator ( 11 a - d ) formed by an elongated outer tube ( 50 ) within which the inner tube ( 40 ) is arranged, the inner tube ( 40 ) being configured to receive oil well substances introduced into one end thereof via a feed section passing through the outer tube ( 50 ) and into the inner tube ( 40 ), the inner tube ( 40 ) comprising multiple holes or slots ( 44 ) arranged in a longitudinal direction and having an upper end, comprising the steps of:

(a) providing the inner tube ( 40 ) with an outlet ( 45 ) at the upper end; and

(b) controlling opening and closing of the outlet ( 45 ) according to a viscosity (η) measurement of oil introduced into the inner tube ( 40 ).

2. The method according to claim 1 , comprising the steps of:

measuring flow rate (Q) and flow resistance (R) or viscosity (η) of oil introduced into the inner tube ( 40 );

using the measurements to calculate an area of the opening of the outlet ( 45 ); and

adjusting the opening of the outlet ( 45 ) according to the calculated area.

3. The method according to claim 2 , comprising fully opening the outlet ( 45 ) in step (b) if the measured viscosity (η) of oil is higher than 100 cP.

4. The method according to claim 2 , comprising reducing the area of the opening of the outlet ( 45 ) in step (b) if the measured viscosity (η) of oil is between 15 and 100 cP.

5. The method according to claim 2 , comprising fully closing the opening of the outlet ( 45 ) in step (b) if the measured viscosity (η) of oil is lower than 15 cP.

6. The method according to claim 1 , comprising fully opening the outlet ( 45 ) in step (b) if the measured viscosity (η) of oil is higher than 100 cP.

7. The method according to claim 1 , comprising reducing the area of the opening of the outlet ( 45 ) in step (b) if the measured viscosity (η) of oil is between 15 and 100 cP.

8. The method according to claim 1 , comprising fully closing the opening of the outlet ( 45 ) in step (b) if the measured viscosity (η) of oil is lower than 15 cP.

9. The method according to claim 1 , wherein opening and closing of the outlet ( 45 ) is controlled continuously.

10. The method according to claim 1 , wherein opening and closing of the outlet ( 45 ) is controlled only at predetermined intervals.

11. An inner tube ( 40 ) of an inclined tubular oil and water separator ( 11 a - d ) formed by an elongated outer tube ( 50 ) within which the inner tube ( 40 ) is arranged, the inner tube ( 40 ) having an upper end and a first end within which oil well substances are introduced via a feed section passing through the outer tube ( 50 ) and into the inner tube ( 40 ), comprising:

multiple holes or slots ( 44 ) arranged in a longitudinal direction of the inner tube ( 40 ),

an outlet ( 45 ) at the upper end, wherein

the outlet ( 45 ) is configured to be controlled to open and close according to a viscosity (η) measurement of oil introduced into the inner tube ( 40 ).

12. The inner tube ( 40 ) according to claim 11 , wherein the outlet ( 45 ) is formed by at least one controllable valve ( 46 ).

13. The inner tube ( 40 ) according to claim 12 , comprising an actuator ( 47 ) to which the at least one controllable valve ( 46 ) is arranged, wherein the actuator ( 47 ) is controlled by a control unit ( 48 ).

14. The inner tube ( 40 ) according to claim 13 , wherein the control unit ( 48 ) is configured to control the at least one controllable valve ( 46 ) based on measurements from a flow meter ( 60 ) and flow resistance meter ( 61 ) or viscometer ( 62 ).

15. The inner tube ( 40 ) according to claim 11 , characterized in that the outlet ( 45 ) is formed by two or more controllable valves ( 46 ) arranged in series.

16. The inner tube ( 40 ) according to claim 15 , comprising an actuator ( 47 ) to which the two or more controllable valves ( 46 ) are arranged, wherein the actuator ( 47 ) is controlled by a control unit ( 48 ).

17. The inner tube ( 40 ) according to claim 16 , wherein the control unit ( 48 ) is configured to control the two or more controllable valves ( 46 ) based on measurements from a flow meter ( 60 ) and flow resistance meter ( 61 ) or viscometer ( 62 ).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 25, 2020
From: BERNTSEN, JON SIGURD; HOVDA, ASLE JOSTEIN
To: SEABED SEPARATION AS
Reel/Frame 053881/0514 →
Priority Claims (1)
NO 20180538 · Apr 20, 2018 · national
Continuity (1)
Related Publication 20210115771A1 · Apr 22, 2021