THERMAL REGULATING WELL COMPLETION DEVICES AND METHODS
A well completion includes a downhole steam generator (DSG) having a water inlet and a discharge to convey a hot effluent away from the DSG, a stinger having an inner mandrel forming a stinger bore in communication with the discharge and an outer mandrel carrying a seal element, and a passage located between the inner mandrel and the outer mandrel to circulate a cooling fluid from an inlet port to an outlet port. The outlet port may be in communication with the water inlet of the DSG or the stinger bore.
Latest Schlumberger Technology Corporation Patents:
- Temperature measurement at one or more cutting elements of a drill bit
- Dormant packer fracturing completion system
- Predicting torque and drag buckling behavior of a drill string and casing
- Geologic pore system characterization framework
- Updating sustainability action plans for an enterprise based on detected change in input data
A thermal regulating completion device in accordance to one or more embodiments includes an inner mandrel having a bore, an outer mandrel carrying a seal element, and a passage located between the inner and outer mandrels to circulate a cooling fluid between an inlet port and an outlet port. A completion in accordance to one or more embodiments includes a downhole steam generator (DSG) having a water inlet and a discharge to convey a hot effluent away from the DSG, a stinger having an inner mandrel forming a stinger bore in communication with the discharge and an outer mandrel carrying a seal element, and a passage located between the inner mandrel and the outer mandrel to circulate a cooling fluid from an inlet port to an outlet port. A method includes generating a hot effluent at a downhole steam generator, discharging the hot effluent through a bore of a stinger landed in a packer, and circulating water through a passage located proximate to the stinger seal.
The foregoing has outlined some of the features and technical advantages in order that the detailed description of thermal regulating well completion devices, systems and methods that follows may be better understood. Additional features and advantages of the thermal regulating well completion devices, systems and method will be described hereinafter which form the subject of the claims of the invention. This summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used as an aid in limiting the scope of claimed subject matter.
Embodiments of thermal regulating well completion devices, systems and methods are described with reference to the following figures. The same numbers are used throughout the figures to reference like features and components. It is emphasized that, in accordance with standard practice in the industry, various features are not necessarily drawn to scale. In fact, the dimensions of various features may be arbitrarily increased or reduced for clarity of discussion.
It is to be understood that the following disclosure provides many different embodiments, or examples, for implementing different features of various embodiments. Specific examples of components and arrangements are described below to simplify the disclosure. These are, of course, merely examples and are not intended to be limiting. In addition, the disclosure may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed.
As used herein, the terms “connect,” “connection,” “connected,” “in connection with,” and “connecting” are used to mean “in direct connection with” or “in connection with via one or more elements”; and the term “set” is used to mean “one element” or “more than one element”. Further, the terms “couple,” “coupling,” “coupled,” “coupled together,” and “coupled with” are used to mean “directly coupled together” or “coupled together via one or more elements”. As used herein, the terms “up” and “down”; “upper” and “lower”; “top” and “bottom”; and other like terms indicating relative positions to a given point or element are utilized to more clearly describe some elements. Commonly, these terms relate to a reference point as the surface from which drilling operations are initiated as being the top point and the total depth being the lowest point, wherein the well (e.g., wellbore, borehole) is vertical, horizontal or slanted relative to the surface.
Lower completion 20 includes a packer 26 (i.e. production packer) having a polished bore receptacle (PBR) 28 and a tail pipe 30 extending below packer 26. Lower completion 20 may include an isolation device 32 such as a valve (i.e. flow control device) located in tail pipe 30 below packer 26. The thermal regulating devices, systems and methods may be utilized to protect temperature-sensitive components of the lower completion 20 (e.g. seal elements) from the downhole temperatures that may be elevated for example in response to hot effluent 74 (e.g., steam, gas, liquid) discharged from upper completion 22.
Upper completion 22 includes a downhole steam generator (DSG) 36 (e.g. combustor) that utilizes a fuel such as natural gas or methane, and air to convert water to a hot effluent 74, for example steam, for injection into formation 16. Upper completion 22 may include a control line 38 extending from the surface to one or more downhole devices. Control line 38 may be a cable, or umbilical, having more than one conduit for transmitting power and or signals. For example, control line 38 may include hydraulic conduits, electrical conductors, optic fibers and the like. Control line 38 is illustrated in
Upper completion 22 is deployed in the wellbore on a tubing 42 extending from the wellhead to a stinger 44 (seal assembly, stabber assembly) which is landed in PBR 28 of lower completion 20. In accordance to one or more embodiments stinger 44 is configured as a thermal regulating device 44 to thermally regulate lower completion 20, including stinger seals 84. The systems and methods of the present disclosure can be used with any type of packer and with any type of lower completions component that may be sensitive to elevated temperatures. The thermal regulating systems and methods of the present disclosure distributes high-temperature fluids and low-temperature fluids as appropriate to protect such temperature-sensitive components and to efficiently selectively distribute thermal energy.
Upper completion 22 includes a Y-tool 76 at a top end that separates or splits a second or bypass conduit 78 from tubing 42. Bypass conduit 78 is connected back to or combined with tubing 42 downhole at a lower inverted Y-tool 46. Tubing 42 is connected to thermal regulating stinger 44 below inverted Y-tool 46. The section of tubing 42 located between Y-tool 76 and inverted Y-tool 46 is referred to as continuous conduit 80 from time to time.
Downhole steam generator 36 is connected to bypass conduit 78 and it is in communication with air supply 60 or water supply 64 via tubing 42 to receive air or water during steaming operations. Hot effluent 74 (e.g. steam and flue gas) is discharged from DSG 36 into a section of bypass conduit 78 referred to as discharge 48. Discharge 48 of DSG 36 is connected to thermal regulating stinger 44 through inverted Y-tool 46. In accordance with some embodiments a valve 50 (e.g. check valve) is connected within steam discharge 48 between DSG 36 and inverted Y-tool 46 to prevent back flow into DSG 36 from below lower completion 20, e.g. formation fluid. Tubing 42 may include a include a barrier 52, for example a valve or nipple and plug, located in continuous conduit 80 to selectively close the conduit to divert supply fluid (i.e. water or air) to DSG 36 through bypass conduit 78. A plug 53 is illustrated in
Upper completion 22 includes a fuel supply tubing 54 in communication between DSG 36 and a fuel supply 56 (e.g. natural gas, methane, hydrogen, etc.) located at the surface. Fuel supply 56 may include a compressor. Air is communicated to DSG 36 from air supply 60 for example via tubing 42 and bypass conduit 78 or through supply tubing 66. Water may be supplied from water supply 64 for example via tubing 42 and bypass conduit 78, via supply tubing 66, or through the tubing-casing annulus (i.e. wellbore 12). The air and gas are combusted at DSG 36 to convert the supplied water into a hot effluent 74 which is discharged through the lower completion and into the formation. Hot effluent 74 may include the flue gas from the combustion at DSG 36.
Cooling or insulating fluid, for example water, may be supplied (i.e. communicated) to a cooling inlet port 34 of regulating device 44 for example from water supply 64. The cooling fluid may be communicated to regulating device 44 for example through a supply conduit or through wellbore 12. The cooling fluid may be discharged below packer 26 (e.g. into tail pipe 30) or discharged above lower completion 20 and in some embodiments communicated to the inlet of DSG 36. For example, with reference to
Outlet port 35 may be in communication with the water inlet of the DSG or the stinger bore. In
In accordance to one or more embodiments, a passage 92 in communication with or connecting inlet port 34 and outlet port 35 is located between inner mandrel 86 and outer mandrel 82. Inlet port 34 and or outlet port 35 may include or be formed by a one-way flow control device allowing one-way fluid flow in the direction from inlet port 34 to outlet port 35 and blocking fluid flow in the direction from outlet port 35 through inlet port 34. Passage 92 may be formed by a member 90 (e.g. sleeve or coil) surrounding inner mandrel 86. For example, with reference to
Passage 92 extends between inlet port 34 and outlet port 35 for example spiraling about inner mandrel 86. Passage 92 is illustrated in
DSG supply water may be communicated to DSG 36 for conversion to hot effluent 74 from the surface through supply tubing and or through wellbore 12. The water supplied to the DSG inlet may include outlet water 63 discharged from the thermal insulating device. For example, in some embodiments water inlet 65 of DSG 36 may be open to wellbore 12, i.e. in communication with the wellbore annulus, above packer 26 to receive water for conversion to hot effluent 74. Surface water supply 64 (
Insulation 94 is illustrated in
The foregoing outlines features of several embodiments so that those skilled in the art may better understand the aspects of the disclosure. Those skilled in the art should appreciate that they may readily use the disclosure as a basis for designing or modifying other processes and structures for carrying out the same purposes and/or achieving the same advantages of the embodiments introduced herein. Those skilled in the art should also realize that such equivalent constructions do not depart from the spirit and scope of the disclosure, and that they may make various changes, substitutions and alterations herein without departing from the spirit and scope of the disclosure. The scope of the invention should be determined only by the language of the claims that follow. The term “comprising” within the claims is intended to mean “including at least” such that the recited listing of elements in a claim are an open group. The terms “a,” “an” and other singular terms are intended to include the plural forms thereof unless specifically excluded.
Claims
1. A thermal regulating device, comprising:
- a downhole steam generator;
- a supply line to the downhole steam generator configured to deliver fluid to the downhole steam generator from which the downhole steam generator is configured to generate a hot effluent;
- a temperature-sensitive completion component in the well; and
- a heat sink configured to insulate the temperature-sensitive completion component from thermal energy in the hot effluent.
2. The thermal regulating device of claim 1 wherein the heat sink includes the fluid from the supply line before reaching the downhole steam generator.
3. The thermal regulating device of claim 1 wherein the temperature-sensitive completion component is in thermal contact with a formation in a well.
4. The thermal regulating device of claim 1 wherein the supply line is configured to discharge at least a portion of the fluid out of the supply line and into thermal contact with the temperature-sensitive completion component.
5. A thermal regulating completion device, the device comprising:
- an inner mandrel having a bore;
- an outer mandrel surrounding the inner mandrel and carrying a seal element; and
- a passage located between the inner mandrel and the inner mandrel and the outer mandrel to circulate a cooling fluid from an inlet port to an outlet port.
6. The device of claim 5, wherein the inlet port and the outlet port are located at an upper end the device.
7. The device of claim 5, wherein the inlet port is located at an upper end of the device and the outlet port is in communication with the bore.
8. The device of claim 5, comprising an insulation located between the inner mandrel and the outer mandrel.
9. The device of claim 5, comprising an insulation located between the inner mandrel and the outer mandrel; and
- the inlet port and the outlet port are located at an upper end the device.
10. The device of claim 5, comprising an insulation located between the inner mandrel and the outer mandrel; and
- the inlet port is located at an upper end of the device and the outlet port is in communication with the bore.
11. A completion, comprising:
- a downhole steam generator (DSG) having a water inlet and a discharge to convey a hot effluent away from the DSG;
- a stinger having an inner mandrel forming a stinger bore in communication with the discharge and an outer mandrel carrying a seal element; and
- a passage located between the inner mandrel and the outer mandrel to circulate a cooling fluid from an inlet port to an outlet port.
12. The completion of claim 11, wherein the outlet port is in communication with the stinger bore.
13. The completion of claim 11, wherein the outlet port is in communication with the water inlet of the DSG.
14. The completion of claim 11, wherein the stinger includes an insulation located between the inner mandrel and the outer mandrel.
15. The completion of claim 11, wherein:
- the stinger is landed in a packer set in a wellbore;
- the inlet port is located at an upper end of the stinger above the packer; and
- the outlet port is located at an upper end of the stinger above the packer.
16. The completion of claim 15, wherein the outlet port is in communication with the water inlet of the DSG.
17. The completion of claim 11, wherein:
- the stinger is landed in a packer set in a wellbore;
- the inlet port is located at an upper end of the stinger above the packer; and
- the outlet port is in communication with the stinger bore.
18. A method, comprising:
- generating a hot effluent at a downhole steam generator (DSG) incorporated in an upper completion that is deployed in a wellbore;
- discharging the hot effluent through a bore of a stinger landed in a packer, the stinger carrying a seal element; and
- circulating a water through a passage from an inlet port to an outlet port, the passage located proximate to the stinger seal.
19. The method of claim 18, wherein the outlet port is in communication with one of the stinger bore and a water inlet to the DSG.
20. The method of claim 18, wherein the passage is located between an inner mandrel forming the stinger bore and an outer mandrel carrying the seal element.
21. The method of claim 18, wherein:
- the circulating the water includes communicating the water from the wellbore through the inlet port into the passage; and
- the outlet port is in communication with one of the stinger bore and a water inlet to the DSG.
22. The method of claim 18, wherein:
- the circulating the water includes communicating the water through a supply tubing to the inlet port into the passage; and
- the outlet port is in communication with one of the stinger bore and a water inlet to the DSG.
23. The method of claim 18, wherein the stinger comprises:
- an inner mandrel forming the stinger bore;
- an outer mandrel carrying the seal element; and
- an insulation located between the inner mandrel and the mandrel.
24. The method of claim 18, wherein:
- the passage is located between an inner mandrel forming the stinger bore and an outer mandrel carrying the seal element;
- the outlet port is in communication with one of the stinger bore and a water inlet to the DSG; and
- the circulating the water includes communicating the water to the inlet port through one selected from the wellbore and a supply tubing.
Type: Application
Filed: Jan 29, 2014
Publication Date: Jul 30, 2015
Applicant: Schlumberger Technology Corporation (Sugar Land, TX)
Inventors: Bruce Boyle (Sugar Land, TX), Saikumar Mani (Pearland, TX), David Verzwyvelt (West Columbia, TX)
Application Number: 14/167,564