PROGRAMMABLE PLUG SYSTEM AND METHOD FOR CONTROLLING FORMATION ACCESS IN MULTISTAGE HYDRAULIC FRACTURING OF OIL AND GAS WELLS
20200308930 ยท 2020-10-01
Inventors
Cpc classification
G05B19/402
PHYSICS
G05B19/182
PHYSICS
E21B23/02
FIXED CONSTRUCTIONS
International classification
G05B19/18
PHYSICS
G05B19/402
PHYSICS
Abstract
Programmable plug system for accessing and isolating formations during hydraulic fracturing, consisting of a Programmable Plug and plurality of Sliding Sleeve Valves installed in the casing string of a wellbore wherein Programmable Plug travels down the casing string, through the casing and Sliding Sleeve Valves wherein during its passage the Programmable Plug recognizes and counts each sleeve using on-board sensors, electronics and software and wherein the Programmable Plug utilizes recognition information to locate, activate and set itself into the Sliding Sleeve Valve according to programmed sequence stored in the on-board memory wherein this activation and setting of the Programmable Plug forms physical coupling between Programmable Plug and allows the Programmable Plug to engage and actuate the Sliding Sleeve and wherein applying the pressure from the surface causes opening of the Sliding Sleeve Valve, wherein this opening provides access to the zone adjacent to the Sliding Sleeve Valve while sealing and isolating the zones below the Sliding Sleeve Valve and wherein applying the pressure in the opposite direction, or pulling on the winch attached to the Programmable Plug causes the Programmable Plug to unset itself and travel up the casing string towards the next Sliding Sleeve Valve where setting, actuation, and opening is repeated for that Sliding Sleeve Valve.
Claims
1. Programmable Plug System for controlling formation access in multi stage hydraulic fracturing of oil & gas wells comprising: a. Programmable Plug b. Plurality of Sliding Sleeve Valves featuring specific internal diameter detectable by Programmable Plug sensors c. Instrumented slick line or wire line winch
2. Programmable Plug of claim 1 comprising: a. Sensors Section b. Electro-Mechanical Section c. Dogs and Seal Section
3. Sensors Section of claim 2 comprising: a. Tubular body b. At least one battery powered sensor capable of detecting a change of internal diameter of the tubular traversed by the plug c. At least one battery powered sensor capable of detecting the direction of movement of the Programmable Plug
4. Sensors Section of claim 2 comprising: a. Tubular body b. One, two or more sets of proximity switches positioned apart in the axial direction wherein each set is comprising of plurality of proximity switches arranged in radial direction around longitudinal axis of the plug with the sensing face facing the outer surface of the tubular body wherein said face is flush with the outer surface or offset a certain distance wherein the switches are activated by the change in diameter between casing and Sliding Sleeve being traversed.
5. Sensors Section of claim 2 comprising: a. Tubular body b. One, two or more sets of coils positioned apart for the given distance in the axial direction wherein each coil is wound into circular groves on the outer surface of the tubular body positioned apart in the longitudinal plug axis direction wherein the outer cylindrical surface of the coil is flush with the tubular body outer surface or offset from it a certain distance and wherein said coils detect the change in diameter between casing and the Sliding Sleeve being traversed.
6. Sensors Section of claim 2 comprising: a. Tubular body b. One, two or more sets of coils positioned apart in the axial direction wherein each set of coils consists of plurality of individual coils with coil axis arranged in radial direction around longitudinal axis wherein one of the side surfaces of the coils is flush with outer surface of tubular body or is offset from said surface for the certain distance inward or outward and wherein said coils detect the change in diameter between casing and Sliding Sleeve Valve.
7. Sensors Section of claim 2 comprising: a. Tubular body b. One or more sets of spring loaded pins wherein said pins are allowed to retract upon mechanical contact with the smaller diameter section of the Sliding Sleeve valve wherein this retraction of said pins is detected using one or many optical, ultrasonic, proximity or force sensors installed in the sensors head.
8. Electro-mechanical Section of claim 2 comprising; a. Tubular body with sealed inner cavity b. Battery operated microprocessor or microcontroller connected to one or many sensors programmed to periodically read sensors and record the presence of Sliding Sleeve Valve, record the current number of the Sliding Sleeve Valve being traversed and compare it against the current sequence number and record time c. Battery powered memory storing pre-programmed sequence of Sliding Sleeve numbers that need to be actuated d. Batteries e. Battery powered electric actuator
9. Dogs and Seal Section of claim 2 comprising: a. Tubular body b. Dogs to engage and lock into the Sliding Sleeve Valve c. Seal to seal against Sliding Sleeve Valve and insulate pressure below the Programmable Plug from the larger pressure above it d. Axially moving shaft to activate and deactivate dogs coupled with electric actuator e. Wire-line or slick-line connection
10. Sliding Sleeve Valve of claim 1 comprising: a. Outer tubular body with threads to fit in the casing string b. Circularly arranged holes placed around tubular body axis providing fluid communication between inside and outside of the tubular body c. Inner tubular body which fits into the outer tubular body and seals holes in the outer tubular body. Inner tubular body is axially moved by the Programmable Plug of claim 2 along the tubular body axis wherein it opens or closes holes in the outer tubular body d. Inner tubular body with a specific inner diameter allowing the Programmable Plug of claim 2 to detect and count the Sliding Sleeves Valve, latch into it and seal it.
11. Instrumented steel wire winch of claim 1 comprising: a. Coil of steel wire terminated with a connector to connect to the Programmable Plug of claim 2 b. Actuator for turning the coil and pulling the Programmable Plug c. Electronic encoder for measuring slick line/wire line movement. d. Slick line/wire line tension-meter e. Timer synchronized with time recorded by a microprocessor and microcontroller of claim 8b
12. Method for controlling formation access in multistage hydraulic fracturing of Oil and Gas wells, the method comprising steps of: a. Installing of Sliding Sleeve Valves at designated depths b. Programming the sequence of Sliding Sleeve Valve numbers into the memory of Programmable Plug wherein the Sliding Sleeve Valve number corresponds to its position in the casing counted from the top of the well wherein the Sliding Sleeve Valve at the smallest depth is marked as the first and wherein its number is designated as one c. Disposing Programmable Plug into the casing of a wellbore d. Pumping the fluids into the casing e. Causing the Programmable Plug to travel inside the casing towards the bottom of the well f. Monitoring sensor signals and detecting the passage of Programmable Plug through Sliding Sleeve Valve g. Increasing the current Sliding Sleeve Valve number each time the Programmable Plug detects the passage through the Sliding Sleeve Valve in downward direction h. Comparing the current Sliding Sleeve Valve number with the current sequence number stored in memory i. Activating the dogs and setting the Programmable Plug into the Sliding Sleeve Valve when current Sliding Sleeve Valve number is equal to the current sequence number j. Confirming the Programmable Plug was set and Sliding Sleeve Valve was open by correlating pressure reading from the pumps k. Selecting the next number from the sequence stored in memory l. Allowing the Programmable Plug to move up the casing m. Decreasing the current Sliding Sleeve Valve number each time the Programmable Plug detects the passage through the Sliding Sleeve Valve in upward direction n. Confirming the setting of the Programmable Plug using winch rotary encoder and tension sensor o. Pulling the Programmable Plug out of the casing with the wire line or slick line winch
We claim:
1. Programmable Plug System for controlling formation access in multi stage hydraulic fracturing of oil & gas wells comprising: a. Programmable Plug b. Plurality of Sliding Sleeve Valves featuring specific internal diameter detectable by Programmable Plug sensors c. Instrumented slick line or wire line winch
2. Programmable Plug of claim 1 comprising: a. Sensors Section b. Electro-Mechanical Section c. Dogs and Seal Section
3. Sensors Section of claim 2 comprising: a. Tubular body b. At least one battery powered sensor capable of detecting a change of internal diameter of the tubular traversed by the plug c. At least one battery powered sensor capable of detecting the direction of movement of the Programmable Plug
4. Sensors Section of claim 2 comprising: a. Tubular body b. One, two or more sets of proximity switches positioned apart in the axial direction wherein each set is comprising of plurality of proximity switches arranged in radial direction around longitudinal axis of the plug with the sensing face facing the outer surface of the tubular body wherein said face is flush with the outer surface or offset a certain distance wherein the switches are activated by the change in diameter between casing and Sliding Sleeve being traversed.
5. Sensors Section of claim 2 comprising: a. Tubular body b. One, two or more sets of coils positioned apart for the given distance in the axial direction wherein each coil is wound into circular groves on the outer surface of the tubular body positioned apart in the longitudinal plug axis direction wherein the outer cylindrical surface of the coil is flush with the tubular body outer surface or offset from it a certain distance and wherein said coils detect the change in diameter between casing and the Sliding Sleeve being traversed.
6. Sensors Section of claim 2 comprising: a. Tubular body b. One, two or more sets of coils positioned apart in the axial direction wherein each set of coils consists of plurality of individual coils with coil axis arranged in radial direction around longitudinal axis wherein one of the side surfaces of the coils is flush with outer surface of tubular body or is offset from said surface for the certain distance inward or outward and wherein said coils detect the change in diameter between casing and Sliding Sleeve Valve.
7. Sensors Section of claim 2 comprising: a. Tubular body b. One or more sets of spring loaded pins wherein said pins are allowed to retract upon mechanical contact with the smaller diameter section of the Sliding Sleeve valve wherein this retraction of said pins is detected using one or many optical, ultrasonic, proximity or force sensors installed in the sensors head.
8. Electro-mechanical Section of claim 2 comprising; a. Tubular body with sealed inner cavity b. Battery operated microprocessor or microcontroller connected to one or many sensors programmed to periodically read sensors and record the presence of Sliding Sleeve Valve, record the current number of the Sliding Sleeve Valve being traversed and compare it against the current sequence number and record time c. Battery powered memory storing pre-programmed sequence of Sliding Sleeve numbers that need to be actuated d. Batteries e. Battery powered electric actuator
9. Dogs and Seal Section of claim 2 comprising: a. Tubular body b. Dogs to engage and lock into the Sliding Sleeve Valve c. Seal to seal against Sliding Sleeve Valve and insulate pressure below the Programmable Plug from the larger pressure above it d. Axially moving shaft to activate and deactivate dogs coupled with electric actuator e. Wire-line or slick-line connection
10. Sliding Sleeve Valve of claim 1 comprising: a. Outer tubular body with threads to fit in the casing string b. Circularly arranged holes placed around tubular body axis providing fluid communication between inside and outside of the tubular body c. Inner tubular body which fits into the outer tubular body and seals holes in the outer tubular body. Inner tubular body is axially moved by the Programmable Plug of claim 2 along the tubular body axis wherein it opens or closes holes in the outer tubular body d. Inner tubular body with a specific inner diameter allowing the Programmable Plug of claim 2 to detect and count the Sliding Sleeves Valve, latch into it and seal it.
11. Instrumented steel wire winch of claim 1 comprising: a. Coil of steel wire terminated with a connector to connect to the Programmable Plug of claim 2 b. Actuator for turning the coil and pulling the Programmable Plug c. Electronic encoder for measuring slick line/wire line movement. d. Slick line/wire line tension-meter e. Timer synchronized with time recorded by a microprocessor and microcontroller of claim 8b
12. Method for controlling formation access in multistage hydraulic fracturing of Oil and Gas wells, the method comprising steps of: a. Installing of Sliding Sleeve Valves at designated depths b. Programming the sequence of Sliding Sleeve Valve numbers into the memory of Programmable Plug wherein the Sliding Sleeve Valve number corresponds to its position in the casing counted from the top of the well wherein the Sliding Sleeve Valve at the smallest depth is marked as the first and wherein its number is designated as one c. Disposing Programmable Plug into the casing of a wellbore d. Pumping the fluids into the casing e. Causing the Programmable Plug to travel inside the casing towards the bottom of the well f. Monitoring sensor signals and detecting the passage of Programmable Plug through Sliding Sleeve Valve g. Increasing the current Sliding Sleeve Valve number each time the Programmable Plug detects the passage through the Sliding Sleeve Valve in downward direction h. Comparing the current Sliding Sleeve Valve number with the current sequence number stored in memory i. Activating the dogs and setting the Programmable Plug into the Sliding Sleeve Valve when current Sliding Sleeve Valve number is equal to the current sequence number j. Confirming the Programmable Plug was set and Sliding Sleeve Valve was open by correlating pressure reading from the pumps k. Selecting the next number from the sequence stored in memory l. Allowing the Programmable Plug to move up the casing m. Decreasing the current Sliding Sleeve Valve number each time the Programmable Plug detects the passage through the Sliding Sleeve Valve in upward direction n. Confirming the setting of the Programmable Plug using winch rotary encoder and tension sensor o. Pulling the Programmable Plug out of the casing with the wire line or slick line winch
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF THE INVENTION
[0037] Programmable Plug System comprises of Programmable Plug assembly (
[0038] Second tubular section (Electro-Mechanical Section) (
[0039] Third tubular section (Dogs and Seal Section) (
[0040] Plurality of Sliding Sleeve Valves is installed in the casing string at specific depths determined by wellbore design. Sliding Sleeve Valve consists of outer tubular body (Sliding Sleeve Valve Body) (
[0041] Programmable Plug may be used as standalone unit wherein it is pumped down hole and moved up hole by well pressure. Optionally, Programmable Plug may be used with wire line or slick line winch for convenience and enhanced operations. Standard wire line/ slick line connection is part of the Programmable Plug (