DRILLING FLUID FLOWBACK TRACKING SYSTEM AND METHOD
20230313623 ยท 2023-10-05
Inventors
Cpc classification
G01F1/00
PHYSICS
E21B21/01
FIXED CONSTRUCTIONS
E21B21/08
FIXED CONSTRUCTIONS
G01N11/00
PHYSICS
International classification
E21B21/08
FIXED CONSTRUCTIONS
E21B21/01
FIXED CONSTRUCTIONS
G01F1/00
PHYSICS
G01L19/00
PHYSICS
G01K13/02
PHYSICS
Abstract
A drilling fluid flowback tracking system and method for determining quantities and qualities of drilling fluid returned from the wellhead in drilling operations, providing a frame, a receiving pipe, a riser pipe, and a surge suppressor for conveying returned drilling fluid, a tapered fluid bin having a calibrated drain slot, which retains fluid at a level corresponding to the inflow rate of the fluid, and flow rate marks for visual correlation of the highest level of outflow with the flow rate of the inflow. Collection and retention of data is further provided through sensors in an inline sensor housing communicating through a data cable with a data collection unit. Remote access to the data collection unit is further provided through a data transceiver and remote data unit.
Claims
1-12. (canceled)
13. A tracking system for drilling fluid returned from a well, comprising: (i) an inline sensor housing mounted in line on the drilling fluid return pipe above the well, adapted to house at least one sensor for sensing quantities, volume, and qualities of returned drilling fluid; (ii) a data collection unit connected to said inline sensor housing through a data cable, adapted to receive, store, and manage data from sensors within said inline sensor housing; (iii) a data transceiver incorporated into said data collection unit, adapted to provide wireless communications with said data collection unit; and (iv) a remote data unit adapted to communicate with said data collection unit through said data transceiver and analyze the quantities, volume, and qualities of the returned drilling fluid as compared with the quantity, volume and qualities of the drilling fluid pumped into the well.
14. The tracking system of claim 13, where said inline sensor housing is further adapted to house an electronic flow rate sensor.
15. The tracking system of claim 13, where said inline sensor housing is further adapted to house a mechanical flow rate sensor.
16. The tracking system of claim 13, where said inline sensor housing is further adapted to house a viscosity sensor.
17. The tracking system of claim 13, where said inline sensor housing is further adapted to house a pressure sensor.
18. The tracking system of claim 13, where said inline sensor housing is further adapted to house a temperature sensor.
19. The tracking system of claim 13, where said inline sensor housing is further adapted to house a pH sensor.
20. The tracking system of claim 13, where said inline sensor housing is further adapted to house a dissolved-material sensor.
21. A method of tracking quantity, volume, and properties of drilling fluid returned from a well, comprising the steps of: (i) providing a tracking system comprising: (a) an inline sensor housing mounted in line on the drilling fluid return riser above a well, the sensor housing adapted to house at least one sensor for sensing quantities, volume, and properties of returned drilling fluid; (b) a data collection unit connected to said inline sensor housing through a data cable, adapted to receive, store, and manage data from sensors within said inline sensor housing; (c) a data transceiver incorporated into said data collection unit, adapted to provide wireless communications with said data collection unit; and (d) a remote data unit adapted to communicate with said data collection unit through said data transceiver; (ii) connecting the tracking system to the return fluid riser; (iii) collecting data generated by the tracking system; and (iv) analyzing the quantities, volume, and properties of the returned drilling fluid as compared with the quantities, volume and properties of the drilling fluid pumped into the well.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Reference will now be made to the drawings, wherein like parts are designated by like numerals, and wherein:
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DETAILED DESCRIPTION OF THE INVENTION
[0026] Referring to
[0027] The surge suppressor 5 empties returned drilling fluid through its opening at the bottom into a tapered fluid bin 6. The tapered fluid bin 6 has a trapezoidal cross-sectional profile, as shown, such that the volume of fluid accommodated at a lower level is less than the volume at a higher level. The front wall of the tapered fluid bin 6 is substantially vertical, and the other three walls are steeply sloped. The sloping walls define a contained space having less volume at the bottom than at the higher levels. The sloping walls also cause sand or debris carried by the returning drilling fluid to fall to the bottom of the tapered fluid bin 6. And the sloping walls cause fluid to flow toward the bottom, creating a flushing flow and avoiding the formation of stagnant areas where sand or debris might build up. The returned drilling fluid is ultimately discharged through the front wall of the tapered fluid bin 6 and drains into the recovery tank or pond.
[0028] Referring to
[0029] An indication of flow rate marks 8 is provided on the tapered fluid bin 6 near the calibrated drain slot 7 so that quick real-time visual determinations of flow rate can be made. For persons not on site or not in sight of the drilling fluid flowback tracking system 1, a feed from a remote video camera might be used, or data from the data collection unit 22, disclosed below, might be used.
[0030] Referring again to
[0031] An embodiment of the drilling fluid flowback tracking system 1 provides for the recording and reporting of such data. An inline sensor housing 11 is incorporated into the riser pipe 4. One or more sensors can be mounted within the inline sensor housing 11. Data from the sensors is transmitted to a data collection unit 12 through a data cable 13. The data collection unit 12 captures and stores the received data in electronic form. Optionally, the data collection unit 12 can display real-time or recent historical data on a screen or printout. The stored data can be exported from the data collection unit 12 for analysis and long-term storage. Because of the harsh operating environment, the data collection unit 12 should be made with components able to operate in the environment, should be contained in a rugged enclosure, and should be removable. A related embodiment also provides a data transceiver 14 and remote data unit 25 providing for wireless remote communications. The data transceiver 14 is incorporated into the data collection unit 12. The remote data unit 25 communicates with the data collection unit 12 through the data transceiver 14. The remote communications can occur within the drilling or workover site and, if the required network service is available, over a wider communications network. Optionally, the remote data unit 15 can be implemented on a smartphone, tablet, or laptop computer device.
[0032] Many other changes and modifications can be made in the system and method of the present invention without departing from the spirit thereof. I therefore pray that my rights to the present invention be limited only by the scope of the appended claims.