Pressure balanced well flow control system
11299959 · 2022-04-12
Assignee
Inventors
- Michael Clark (Montgomery, TX, US)
- Glendell Hendrix (Magnolia, TX, US)
- Alfred B. Homfeld (Humble, TX, US)
Cpc classification
E21B34/025
FIXED CONSTRUCTIONS
E21B34/08
FIXED CONSTRUCTIONS
International classification
Abstract
A pressure balanced well flow control system includes a pressure balanced variable orifice flow control having a controlled flow inlet in fluid communication with a subterranean well and a balance pressure inlet in fluid communication with an outlet end of a fluid pressure isolator. An inlet end of the fluid pressure isolator is in fluid communication with the subterranean well.
Claims
1. A pressure balanced well flow control system, comprising: a pressure balanced variable orifice flow control having a controlled flow inlet in fluid communication with a subterranean well and a balance pressure inlet in fluid communication with an outlet end of a fluid pressure isolator; and wherein an inlet end of the fluid pressure isolator is in fluid communication with the subterranean well, the fluid pressure isolator comprising a piston disposed in a cylinder for communicating pressure in the subterranean well to the balance pressure inlet such that a pressure at the pressure balance inlet is at all times equal to the pressure in the subterranean well.
2. The system of claim 1 wherein the cylinder comprises a connector to couple the cylinder directly to a wellhead, whereby pressure in the subterranean well is communicated to the fluid pressure isolator without using an exposed hydraulic line or an exposed hydraulic hose.
3. The system of claim 1 wherein the cylinder is coupled to a choke manifold.
4. The system of claim 1 wherein the piston comprises a seal on an outlet end side thereof arranged to close the outlet end of the fluid pressure isolator only when the piston is urged against an outlet end of the cylinder.
5. The system of claim 1 wherein the variable orifice flow control comprises a choke.
6. The system of claim 5 wherein the variable orifice choke comprises a manually operated choke.
7. The system of claim 1 wherein a space between the pressure isolator and the pressure balance inlet is filled with incompressible fluid.
8. The system of claim 7 wherein the incompressible fluid comprises hydraulic oil.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4)
(5) The variable orifice flow control (choke) 12 may be, for example, a pressure balanced type, i.e., one in which fluid pressure is functionally applied to opposed sides of an actuator to minimize the amount of force needed to operate the actuator. A pressure balance (compensation) inlet 12C of the variable orifice flow control (choke) 12 may be fluidly coupled to one side of a fluid pressure isolator (e.g., a compensator or transducer) 14. The other side of the fluid pressure isolator 14 may be fluidly coupled to the well W. In the present example embodiment, the fluid pressure isolator's 14 fluid connection to the well W may be made through the choke line 13. In other embodiments, the fluid pressure isolator 14 may be fluidly coupled to the well W directly to the wellhead 10 or to a BOP stack (not shown in
(6) In some embodiments, the fluid pressure isolator 14 may comprise a piston 14B disposed in a cylinder 14A, suitably sealed to the cylinder 14A, to prevent movement of fluid across or by the piston 14B. The choke side of the piston 14B (i.e., the outlet side of the fluid pressure isolator 14) may be fluidly coupled to the choke's 12 pressure balance inlet 12C through an hydraulic line 18. The hydraulic line 18 and the cylinder 14A on the same side of the piston 14B may be completely filled with substantially incompressible fluid 17 such as hydraulic oil. The other side (i.e., the inlet side of the fluid pressure isolator 14) of the piston 14B and corresponding volume within the cylinder 14A may be exposed to well fluid 15, which will be under pressure equal to fluid pressure in the well W. The piston 14B is free to move within the cylinder 14A and thereby communicate well fluid pressure from the well W to the pressure balance inlet 12C. Thus, fluid pressure at the pressure balance inlet 12C will be equal at all times to the pressure in the well fluid 15, and thereby the pressure in the well W.
(7) In the event the hydraulic line 18 fails, fluid pressure in the hydraulic line 18 will be lost. The piston 14B will then be urged against the corresponding end of the cylinder 14A by well fluid 15 pressure. The hydraulic line side of the piston 14B may comprise one or more seals (not shown separately) to effectively close such end of the cylinder 14A to fluid flow in such event. Thus, failure of the hydraulic line 18 will not result in uncontrolled release of well fluid 15 from the fluid pressure isolator 14.
(8)
(9) Another example embodiment is shown in
(10) A pressure balanced well flow control system according to the present disclosure may enable the use of manually operated flow controls such as chokes with minimum operating force and reduced risk of uncontrolled escape of well fluid under pressure. While the present disclosure is made with reference to manually operated variable orifice chokes, it will be appreciated by those skilled in the art that the principle of a system according to the present disclosure is also applicable to power operated variable orifice flow controls. In such circumstances, the size and power needed to operate an actuator may be reduced in contrast to that needed for unbalanced flow controls.
(11) Although only a few examples have been described in detail above, those skilled in the art will readily appreciate that many modifications are possible in the examples. Accordingly, all such modifications are intended to be included within the scope of this disclosure as defined in the following claims.