IP Library Granted Patent US 8,169,854
Granted Patent B2
US 8,169,854 · App. 11/577,019 · Granted May 1, 2012

System and method for wireless data transmission

Assignee: Well Technology AS
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Quick Facts
Patent No.
US 8,169,854
App. No.
11/577,019
Granted
May 1, 2012
Kind
B2
Abstract

The invention relates to a system and method for wireless data transmission in an open process regime, for example a producing (or injecting) well associated with oil and gas production, the system comprising means for data acquisition, means for en data conversion, means for wireless data transmission, control means, power source, and a static pulse generation device adapted for generating static pressure fluctuations in the well fluid. The data conversion means are adapted to convert data to a simplified number format to be transmitted by the induced fluctuations in the process fluid.

Claims (79)

1. System for wireless transmission of data in a producing or injecting well associated with oil and gas production in which a well fluid flows therethrough, the system comprising:

means for data acquisition,

means for data conversion adapted for converting the data to a simplified number format,

means for wireless data transmission,

control means,

a power source, and

a static pulse generation device adapted for generating static pressure fluctuations in the well fluid by applying the static pulses with a time interval there between which equals, or is greater than, the time constant of the process system as defined by Equation 1:

T

=

RC

=

(

P

1

-

P

2

Q

)

·

(

V

P

1

-

P

2

)

where T is the time constant of the system, R represents the resistance in the system, C is capacitance, Q is flow rate and V is the volume of the fluid wherein the static pressure fluctuations in the well fluid represents the simplified number.

2. System according to claim 1 , characterised in that the system comprises a fail-safe mechanism.

3. System according to claim 1 , characterised in that the parameters of the static pressure fluctuation are changed in an adaptive process.

4. System according to claim 2 , characterized in that the static pulse generation device is a choking device, and the fail-safe mechanism is in the form of a spring that is compressed by an actuator when in operational modus, the actuator turning to “neutral” mode in the case of power failure, whereupon the spring returns the choke to an no choking position.

5. System according to claim 2 , characterised in that the system comprises a pump working in conjunction with a piston associated with a leakage nozzle system.

6. System according to claim 5 , characterised in that the pump is a hose-pump.

7. System according to claim 1 , characterised in that the system includes a piston indicator adapted to track a piston position.

8. System according to claim 1 , characterised in that that the regular stream/flow of the well fluid constitutes the carrier for the data to be transmitted.

9. System according to one of the preceding claims, characterised in that the static pulse generation device comprises elements for slowly altering the pressure of the well fluid.

10. System according to one of the preceding claims, characterised in that, for producing wells with a low gas-to-liquid ratio, the static pulse generation device comprises elements for altering the pressure of the well fluid more, by means of pressure pulses travelling by the speed of sound in the fluid of interest.

11. System according to one of the preceding claims, characterised in that the system is adapted for installation and operation in wild flow process.

12. System according to one of the preceding claims, characterised in that the system also comprises self-power source for generating power from the fluid flow or other relevant energy sources in the well.

13. System according to one of the preceding claims, characterised in that the system also comprises anchoring device, means for installation and retrieval.

14. System according to one of the preceding claims, characterised in that the system also comprises an anchoring device which seals towards the production pipe wall in order to lead the well fluid through the centre of the system for pulse generation purposes.

15. System according to one of the preceding claims, characterised in that the system also comprises means for permanent attachment to the production tubing.

16. System according one of the preceding claims, characterised in that a power source is combined with a re-chargeable battery and/or super capacitor in order to provide energy to the system for prolonged periods of time.

17. System according to one of the preceding claims, characterised in that the data acquisition means comprises at least one sensor located in the well for providing sensor data for transmission, and a receiver located at the surface.

18. Method for wireless transmission of data in a producing or injecting well associated with oil and gas production in which a well fluid flows therethrough, the method comprising:

converting the data to a simplified number format, and

generating static pressure fluctuations in the well fluid that represents the data in simplified number format by applying static pulses to the well fluid with a time interval there between which equals, or is greater than, the time constant of the process system as defined by Equation 1:

T

=

RC

=

(

P

1

-

P

2

Q

)

·

(

V

P

1

-

P

2

)

where T is the time constant of the system, R represents the resistance in the system, C is capacitance, Q is flow rate and V is the volume of the fluid, wherein

the fluctuations in the well fluid are detected by detecting means, interpreted as the binary number and converted to the actual sensor value.

19. Method according to claim 18 characterised in that the method initially also comprises a recording of the time constant representing the time delay from generation of the fluid fluctuation to the detection of the same fluctuation to set and control the data transmission rate in the well fluid.

20. Method according to claim 18 , characterised in that the method provides an adaptive function by means of downhole pulse actuator interrogating with downhole pressure recorder in order to optimally adjust the pressure pulses for communication.

21. Method according to claim 18 , characterised in that the fluctuations in the well fluid are pressure fluctuations.

22. Method according to claim 18 , characterised in that

the data are sensor data received from sensors in the well, and

the data are transmitted to a receiver.

23. Method according to claim 18 , characterised in that the fluctuations in the well fluid are detected on the earth's surface, on the seabed or in any other receiver station connected to the well fluid or process system.

24. Method according to claim 18 , characterised in that the fluctuations in the well fluid are changes in the regular flow of the well fluid and the method is executed in a wild flow process.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE ADDRESS OF THE ASSIGNEE PREVIOUSLY RECORDED ON REEL 051838 FRAME 0393. ASSIGNOR(S) HEREBY CONFIRMS THE CHANGE OF NAME. Recorded Feb 19, 2020
From: WELL TECHNOLOGY AS
To: TENDEKA AS
Reel/Frame 051969/0552 →
CHANGE OF NAME Recorded Feb 6, 2020
From: WELL TECHNOLOGY AS
To: TENDEKA AS
Reel/Frame 051838/0393 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2007
From: GODAGER, OYVIND
To: WELL TECHNOLOGY AS
Reel/Frame 019743/0441 →
Priority Claims (1)
NO 20044338 · Oct 12, 2004 · national
Continuity (1)
Related Publication 20070296606A1 · Dec 27, 2007