IP Library › Granted Patent US 8,236,182
Granted Patent B2
US 8,236,182 · App. 13/194,035 · Granted Aug 7, 2012

Separating sand from fluids produced by a well

Assignee: Occidental Oil and Gas Holding Corporation
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Quick Facts
Patent No.
US 8,236,182
App. No.
13/194,035
Granted
Aug 7, 2012
Kind
B2
Abstract

A settling system may be used to separate and/or remove solid particles, such as sand, from fluids produced by wells. The container of the settling system may be cleaned without need for manned-entry.

Claims (53)

1. A method for intercepting solid particles within a stream of fluids flowing from a wellhead, through an interconnecting wellhead line and to a flowline, comprising the steps of

positioning a container in a conduit between and in fluid communication with the interconnecting wellhead line and the flowline, the container having a cross-sectional area greater than the cross-sectional area of the conduit near the inlet to the container, the container having an outer surface including an upper portion above a horizontal axis of a cross-section of the container and a lower portion below the horizontal axis of the container, the container further including at least one access port located in the upper portion of the container, the at least one access port having a predetermined size that prevents substantial human entry into the access port;

passing the stream of fluids flowing from the wellhead and interconnecting wellhead line through the conduit and into the container, the container allowing substantially unidirectional and unobstructed fluid flow between the inlet and the outlet; and

reducing the velocity of the fluid when it enters the container, thereby allowing solid particles in the fluid to settle into the lower portion of the container and preventing a portion of the solid particles from entering the flowline.

2. The method of claim 1 , further comprising the step of vacuuming at least a majority of the solid particles out of the container through the at least one access port by

manually inserting an end of a vacuum hose through the at least one access port,

placing an open end of the vacuum hose in the vicinity of the intercepted solid particles, and

reducing pressure within the vacuum hose to a pressure less than that of atmospheric pressure,

wherein suction is induced upon the solid particles such that they flow through the vacuum hose to the exterior of the container.

3. The method of claim 2 , wherein

said step of positioning a container in a conduit includes positioning a container having a vertical distance of approximately 18 inches from top to bottom of the container,

and wherein the vacuum hose, upon contact with the bottom of the container, deflects to a horizontal orientation and is pushed along the bottom of the container to collect the particles.

4. The method of claim 2 , further comprising the step of

diverting the stream of fluids through a bypass line extending between the well head line and the flowline prior to the step of vacuuming at least a majority of the solid particles out of the container through the at least one access port.

5. The method of claim 1 , further comprising the steps of

affixing a cap to the at least one access port in a manner such that the cap may be manually removed,

fabricating the cap with a plurality of cylindrical holes along the circumference of the cap, and

affixing bolts through the cylindrical holes into the at least one access port and affixing nuts to the bolts,

wherein the nuts may be manually removed from the bolts and the cap may be manually removed from the bolts.

6. The method of claim 1 , wherein the size of the at least one access port is selected to be less than approximately 30 square inches, to prohibit bodily entry into the container.

7. The method of claim 1 , further comprising the steps of predetermining a vertical slip velocity of the solid particles by

estimating physical traits of the solid particles, selected from the group consisting of densities, diameters, and sphericities,

estimating physical traits of the stream of fluids flowing from a wellhead, selected from the group consisting of viscosities and densities, and

inputting the physical traits into Stoke's Law, thereby determining a vertical slip velocity for the solid particles.

8. The method of claim 1 , further comprising the steps of predetermining the length of the container by

calculating a horizontal, cross-sectional flow area of the inside of the container,

specifying a maximum anticipated flow rate of the liquid stream entering the container,

determining the arithmetic quotient of the anticipated flow rate and the cross-sectional flow area, and

determining the arithmetic product of the arithmetic quotient and a predetermined vertical slip velocity.

9. The method of claim 1 , wherein the container is preselected to have dimensions approximately equal to 18 inches in diameter and approximately 12 feet in length, and approximately 250 liters of solid particles are allowed to accumulate before the step of vacuuming at least a majority of the solid particles from the accumulator.

10. A method for intercepting solid particles within a stream of fluids flowing from a wellhead, through an interconnecting wellhead line and to a flowline, comprising the steps of

disposing an elongated container in a conduit between and in fluid communication with the interconnecting wellhead line and the flowline, the elongated container having a cross-sectional area greater than the cross-sectional area of the conduit near the inlet to the elongated container, the elongated container further including one or more access ports located in an upper half of the container and having a predetermined size that prevents substantial human entry into the one or more access ports, the elongated container having an inner surface without any substantial protrusions into an interior cavity of the elongated container; and

passing the stream of fluids flowing from the wellhead and interconnecting wellhead line through the conduit and into the elongated container, wherein the fluid flow through the interior cavity of the elongated container is substantially unidirectional and unobstructed, thereby allowing solid particles in the fluid to settle into the lower portion of the container and preventing a portion of the solid particles from entering the flowline.

11. The method of claim 10 , further comprising the step of vacuuming at least a majority of the solid particles out of the container through the one or more access ports by

manually inserting an end of a vacuum hose through the one or more access ports,

placing an open end of the vacuum hose in the vicinity of the intercepted solid particles, and

reducing pressure within the vacuum hose to a pressure less than that of atmospheric pressure, wherein suction is induced upon said solid particles such that they flow through the vacuum hose to the exterior of the container.

12. The method of claim 11 , further comprising the step of diverting the stream of fluids through a bypass line extending between the well head line and the flowline prior to the step of vacuuming at least a majority of the solid particles out of the container through the one or more access ports.

13. The method of claim 11 , wherein

said step of disposing an elongated container in a conduit includes disposing a container having a vertical distance of approximately 18 inches from top to bottom of the container,

and wherein the vacuum hose, upon contact with the bottom of the container, deflects to a horizontal orientation and is pushed along the bottom of the container to collect the particles.

14. The method of claim 10 , further comprising the steps of

affixing a cap to each of the one or more access ports in a manner such that the cap may be manually removed,

fabricating the cap with a plurality of cylindrical holes along the circumference of the cap, and

inserting bolts through the cylindrical holes into the one or more access ports, and affixing nuts to the bolts,

wherein the nuts and the caps may be manually removed from the bolts.

15. The method of claim 10 , wherein the size of each of the one or more access ports is selected to be less than approximately 30 square inches to prohibit bodily entry into the container.

16. A settling system for intercepting solid particles within a stream of fluids flowing from a well head line and to a flow line, comprising

one or more containers, each said container including: an inlet having a cross sectional area less than a cross sectional area of the container such that a velocity of fluid flowing from said inlet decreases, the decreasing velocity of the fluid allowing solid particles in the fluid to settle to a lower region of said container; an outlet; an inner surface that does not substantially protrude into an inner cavity of said container; and at least one access port located in a top half of said container, said at least one access port adapted to permit mechanical removal of at least a portion of the settled particles from said lower region of the container without substantial human entry into said at least one access port, wherein said container allows for substantial unidirectional and unobstructed fluid flow between said inlet and said outlet.

17. The settling system of claim 16 , wherein said one or more containers have a length such that during use less than about 50% of the solid particles in the fluid pass through said outlet.

18. The settling system of claim 16 , wherein a plurality of said containers are provided and are coupled in parallel.

19. The settling system of claim 16 , wherein a plurality of said containers are provided and are coupled in series.

20. The settling system of claim 16 , wherein each of said at least one access port includes a conduit extending from and sealed around an opening in said container, said conduit sized to permit the passage of mechanical sand removal instruments and to prevent substantial human entry into said access port.

Continuity (3)
Continuation 12769273 · Apr 28, 2010
Division 11955161 · Dec 12, 2007
Related Publication 20120006757A1 · Jan 12, 2012