EP4627182A1 - Well chemical injection control - Google Patents
Well chemical injection controlInfo
- Publication number
- EP4627182A1 EP4627182A1 EP23851062.2A EP23851062A EP4627182A1 EP 4627182 A1 EP4627182 A1 EP 4627182A1 EP 23851062 A EP23851062 A EP 23851062A EP 4627182 A1 EP4627182 A1 EP 4627182A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- well
- chemical
- data
- liquid level
- framework
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/12—Methods or apparatus for controlling the flow of the obtained fluid to or in wells
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B37/00—Methods or apparatus for cleaning boreholes or wells
- E21B37/06—Methods or apparatus for cleaning boreholes or wells using chemical means for preventing or limiting, e.g. eliminating, the deposition of paraffins or like substances
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B41/00—Equipment or details not covered by groups E21B15/00 - E21B40/00
- E21B41/02—Equipment or details not covered by groups E21B15/00 - E21B40/00 in situ inhibition of corrosion in boreholes or wells
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
- E21B43/166—Injecting a gaseous medium; Injecting a gaseous medium and a liquid medium
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B47/00—Survey of boreholes or wells
- E21B47/04—Measuring depth or liquid level
- E21B47/047—Liquid level
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B47/00—Survey of boreholes or wells
- E21B47/10—Locating fluid leaks, intrusions or movements
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B2200/00—Special features related to earth drilling for obtaining oil, gas or water
- E21B2200/20—Computer models or simulations, e.g. for reservoirs under production, drill bits
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B2200/00—Special features related to earth drilling for obtaining oil, gas or water
- E21B2200/22—Fuzzy logic, artificial intelligence, neural networks or the like
Definitions
- a reservoir can be a subsurface formation that can be characterized at least in part by its porosity and fluid permeability.
- a reservoir may be part of a basin such as a sedimentary basin.
- a basin can be a depression (e.g., caused by plate tectonic activity, subsidence, etc.) in which sediments accumulate.
- hydrocarbon fluids e.g., oil, gas, etc.
- a more accurate model of a subsurface region may make a drilling operation more accurate as to a borehole’s trajectory where the borehole is to have a trajectory that penetrates a reservoir, etc., where fluid may be produced via the borehole (e.g., as a completed well, etc.).
- one or more workflows may be performed using one or more computational frameworks and/or one or more pieces of equipment that include features for one or more of analysis, acquisition, model building, control, etc., for exploration, interpretation, drilling, fracturing, production, etc.
- Fig. 1 illustrates an example system that includes various framework components associated with one or more geologic environments
- FIG. 2 illustrates examples of systems
- FIG. 5 illustrates an example of a system
- Fig. 6 illustrates example plots
- FIG. 8 illustrates an example of a framework
- Fig. 10 illustrates examples of computer and network equipment.
- Fig. 1 shows an example of a system 100 that includes a workspace framework 110 that can provide for instantiation of, rendering of, interactions with, etc., a graphical user interface (GUI) 120.
- GUI graphical user interface
- the GUI 120 can include graphical controls for computational frameworks (e.g., applications) 121 , projects 122, visualization 123, one or more other features 124, data access 125, and data storage 126.
- the system 100 can provide for instantiation of one or more computational frameworks for a process operations environment that includes equipment at one or more sites that can perform process operations.
- the workspace framework 110 may be tailored to a particular geologic environment such as an example geologic environment 150.
- the geologic environment 150 may include layers (e.g., stratification) that include a reservoir 151 and that may be intersected by a fault 153.
- the geologic environment 150 may be outfitted with a variety of sensors, detectors, actuators, etc.
- equipment 152 may include communication circuitry to receive and to transmit information with respect to one or more networks 155. Such information may include information associated with downhole equipment 154, which may be equipment to acquire information, to assist with resource recovery, etc.
- Other equipment 156 may be located remote from a wellsite and include sensing, detecting, emitting or other circuitry.
- Such equipment may include storage and communication circuitry to store and to communicate data, instructions, etc.
- one or more satellites may be provided for purposes of communications, data acquisition, etc.
- Fig. 1 shows a satellite in communication with the network 155 that may be configured for communications, noting that the satellite may additionally or alternatively include circuitry for imagery (e.g., spatial, spectral, temporal, radiometric, etc.).
- Fig. 1 also shows the geologic environment 150 as optionally including equipment 157 and 158 associated with a well that includes a substantially horizontal portion that may intersect with one or more fractures 159.
- equipment 157 and 158 associated with a well that includes a substantially horizontal portion that may intersect with one or more fractures 159.
- a well in a shale formation may include natural fractures, artificial fractures (e.g., hydraulic fractures) or a combination of natural and artificial fractures.
- a well may be drilled for a reservoir that is laterally extensive.
- lateral variations in properties, stresses, etc. may exist where an assessment of such variations may assist with planning, operations, etc. to develop a laterally extensive reservoir (e.g., via fracturing, injecting, extracting, etc.).
- the equipment 157 and/or 158 may include components, a system, systems, etc. for fracturing, seismic sensing, analysis of seismic data, assessment of one or more fractures, etc.
- GUI 120 shows some examples of computational frameworks, including the DRILLPLAN, PETREL, TECHLOG, PETROMOD, ECLIPSE, PIPESIM, and INTERSECT frameworks (SLB, Houston, Texas).
- computational frameworks including the DRILLPLAN, PETREL, TECHLOG, PETROMOD, ECLIPSE, PIPESIM, and INTERSECT frameworks (SLB, Houston, Texas).
- the TECHLOG framework can handle and process field and laboratory data for a variety of geologic environments (e.g., deepwater exploration, shale, etc.).
- the TECHLOG framework can structure wellbore data for analyses, planning, etc.
- the PETROMOD framework provides petroleum systems modeling capabilities that can combine one or more of seismic, well, and geological information to model the evolution of a sedimentary basin.
- the PETROMOD framework can predict if, and how, a reservoir has been charged with hydrocarbons, including the source and timing of hydrocarbon generation, migration routes, quantities, and hydrocarbon type in the subsurface or at surface conditions.
- the ECLIPSE framework provides a reservoir simulator (e.g., as a computational framework) with numerical solutions for fast and accurate prediction of dynamic behavior for various types of reservoirs and development schemes.
- the INTERSECT framework can provide completion configurations for complex wells where such configurations can be built in the field, can provide detailed enhanced-oil-recovery (EOR) formulations where such formulations can be implemented in the field, can analyze application of steam injection and other thermal EOR techniques for implementation in the field, advanced production controls in terms of reservoir coupling and flexible field management, and flexibility to script customized solutions for improved modeling and field management control.
- the INTERSECT framework as with the other example frameworks, may be utilized as part of the DELFI cognitive E&P environment, for example, for rapid simulation of multiple concurrent cases. For example, a workflow may utilize one or more of the DELFI environment on demand reservoir simulation features.
- the aforementioned DELFI environment provides various features for workflows as to subsurface analysis, planning, construction and production, for example, as illustrated in the workspace framework 110.
- Such an environment may be referred to as a process operations environment that can include a variety of frameworks (e.g., applications, etc.).
- outputs from the workspace framework 110 can be utilized for directing, controlling, etc., one or more processes in the geologic environment 150 and, feedback 160, can be received via one or more interfaces in one or more forms (e.g., acquired data as to operational conditions, equipment conditions, environment conditions, etc.).
- the visualization features 123 may be implemented via the workspace framework 110, for example, to perform tasks as associated with one or more of subsurface regions, planning operations, constructing wells and/or surface fluid networks, and producing from a reservoir.
- a visualization process can implement one or more of various features that can be suitable for one or more web applications.
- a template may involve use of the JAVASCRIPT object notation format (JSON) and/or one or more other languages/formats.
- JSON JAVASCRIPT object notation format
- a framework may include one or more converters. For example, consider a JSON to PYTHON converter and/or a PYTHON to JSON converter. Such an approach can provide for compatibility of devices, frameworks, etc., with respect to one or more sets of instructions.
- a model may be a simulated version of a geologic environment.
- a simulator may include features for simulating physical phenomena in a geologic environment based at least in part on a model or models.
- a simulator such as a reservoir simulator, can simulate fluid flow in a geologic environment based at least in part on a model that can be generated via a framework that receives seismic data.
- a simulator can be a computerized system (e.g., a computing system) that can execute instructions using one or more processors to solve a system of equations that describe physical phenomena subject to various constraints.
- the aforementioned PIPESIM simulator includes solvers that may provide simulation results such as, for example, multiphase flow results (e.g., from a reservoir to a wellhead and beyond, etc.), flowline and surface facility performance, etc.
- the PIPESIM simulator may be integrated, for example, with the AVOCET production operations framework (SLB, Houston Texas).
- AVOCET production operations framework SLB, Houston Texas
- a reservoir or reservoirs may be simulated with respect to one or more enhanced recovery techniques (e.g., consider a thermal process such as steam-assisted gravity drainage (SAGD), etc.).
- SAGD steam-assisted gravity drainage
- the PIPESIM simulator may be an optimizer that can optimize one or more operational scenarios at least in part via simulation of physical phenomena.
- the MANGROVE simulator provides for optimization of stimulation design (e.g., stimulation treatment operations such as hydraulic fracturing) in a reservoir-centric environment.
- the MANGROVE framework can combine scientific and experimental work to predict geomechanical propagation of hydraulic fractures, reactivation of natural fractures, etc., along with production forecasts within 3D reservoir models (e.g., production from a drainage area of a reservoir where fluid moves via one or more types of fractures to a well and/or from a well).
- the MANGROVE framework can provide results pertaining to heterogeneous interactions between hydraulic and natural fracture networks, which may assist with optimization of the number and location of fracture treatment stages (e.g., stimulation treatment(s)), for example, to increased perforation efficiency and recovery.
- the aforementioned PETREL framework provides components that allow for optimization of exploration and development operations.
- the PETREL framework includes seismic to simulation software components that can output information for use in increasing reservoir performance, for example, by improving asset team productivity.
- various professionals e.g., geophysicists, geologists, and reservoir engineers
- Such a framework may be considered an application (e.g., executable using one or more devices) and may be considered a data-driven application (e.g., where data is input for purposes of modeling, simulating, etc.).
- a framework may be implemented within or in a manner operatively coupled to the DELFI environment, which is a secure, cognitive, cloudbased collaborative environment that integrates data and workflows with digital technologies, such as artificial intelligence and machine learning.
- the DELFI environment may be referred to as the DELFI framework, which may be a framework of frameworks.
- the DELFI framework can include various other frameworks, which can include, for example, one or more types of models (e.g., simulation models, etc.).
- coupled to generally refers to a connection between components, which can be an indirect connection (e.g., with intervening components) or direct connection (e.g., without intervening components).
- a workflow may utilize one or more types of data for one or more processes (e.g., stratigraphic modeling, basin modeling, completion designs, drilling, production, injection, etc.).
- one or more tools may provide data that can be used in a workflow or workflows that may implement one or more frameworks (e.g., PETREL, TECHLOG, PETROMOD, ECLIPSE, etc.).
- a framework or frameworks may be operable in a computational environment, which may be a distributed environment (e.g., cloud-based, etc.).
- a computational environment such as the DELFI environment can provide for coordination between projects and individuals where workflows can depend on one or more types of data and utilize one or more frameworks.
- Fig. 2 shows an example of a geologic environment 210 that includes reservoirs 211-1 and 211-2, which may be faulted by faults 212-1 and 212-2, an example of a network of equipment 230, an enlarged view of a portion of the network of equipment 230, referred to as network 240, and an example of a system 250.
- Fig. 1 shows an example of a geologic environment 210 that includes reservoirs 211-1 and 211-2, which may be faulted by faults 212-1 and 212-2, an example of a network of equipment 230, an enlarged view of a portion of the network of equipment 230, referred to as network 240, and an example of a system 250.
- Fig. 2 shows an example of a geologic environment 210 that includes reservoirs 211-1 and 211-2, which may be faulted by faults 212-1 and 212-2, an example of a network of equipment 230, an enlarged view of a portion of the network of equipment 230, referred to as network 240, and an example of
- the various equipment 214 and 216 can include drilling equipment, wireline equipment, production equipment, etc.
- the equipment 214 as including a drilling rig that can drill into a formation to reach a reservoir target where a well can be completed for production of hydrocarbons.
- one or more features of the system 100 of Fig. 1 may be utilized. For example, consider utilizing a drilling or well plan framework, a drilling execution framework, etc., to plan, execute, etc., one or more drilling operations.
- the network 240 can be an example of a relatively small production system network. As shown, the network 240 forms somewhat of a tree like structure where flowlines represent branches (e.g., segments) and junctions represent nodes. As shown in Fig. 2, the network 240 provides for transportation of oil and gas fluids from well locations along flowlines interconnected at junctions with final delivery at a central processing facility.
- branches e.g., segments
- junctions represent nodes.
- the network 240 provides for transportation of oil and gas fluids from well locations along flowlines interconnected at junctions with final delivery at a central processing facility.
- the instructions 270 can include instructions (e.g., stored in the memory 258) executable by at least one of the one or more processors 256 to instruct the system 250 to perform various actions.
- the system 250 may be configured such that the instructions 270 provide for establishing a framework, for example, that can perform network modeling (see, e.g., the PIPESIM framework of the example of Fig. 1 , etc.).
- one or more methods, techniques, etc. may be performed using one or more sets of instructions, which may be, for example, the instructions 270 of Fig. 2.
- a borehole 332 is formed in subsurface formations 330 by rotary drilling; noting that various example embodiments may also use one or more directional drilling techniques, equipment, etc.
- the drillstring 325 is suspended within the borehole 332 and has a drillstring assembly 350 that includes the drill bit 326 at its lower end.
- the drillstring assembly 350 may be a bottom hole assembly (BHA).
- BHA bottom hole assembly
- the wellsite system 300 can provide for operation of the drillstring 325 and other operations.
- the wellsite system 300 includes the traveling block 311 and the derrick 314 positioned over the borehole 332.
- the wellsite system 300 can include the rotary table 320 where the drillstring 325 pass through an opening in the rotary table 320.
- the wellsite system 300 can include the kelly 318 and associated components, etc., or the top drive 340 and associated components.
- the kelly 318 may be a square or hexagonal metal/alloy bar with a hole drilled therein that serves as a mud flow path.
- the kelly 318 can be used to transmit rotary motion from the rotary table 320 via the kelly drive bushing 319 to the drillstring 325, while allowing the drillstring 325 to be lowered or raised during rotation.
- the kelly 318 can pass through the kelly drive bushing 319, which can be driven by the rotary table 320.
- the rotary table 320 can include a master bushing that operatively couples to the kelly drive bushing 319 such that rotation of the rotary table 320 can turn the kelly drive bushing 319 and hence the kelly 318.
- the kelly drive bushing 319 can include an inside profile matching an outside profile (e.g., square, hexagonal, etc.) of the kelly 318; however, with slightly larger dimensions so that the kelly 318 can freely move up and down inside the kelly drive bushing 319.
- the top drive 340 can provide functions performed by a kelly and a rotary table.
- the top drive 340 can turn the drillstring 325.
- the top drive 340 can include one or more motors (e.g., electric and/or hydraulic) connected with appropriate gearing to a short section of pipe called a quill, that in turn may be screwed into a saver sub or the drillstring 325 itself.
- the top drive 340 can be suspended from the traveling block 311 , so the rotary mechanism is free to travel up and down the derrick 314.
- a top drive 340 may allow for drilling to be performed with more joint stands than a kelly/rotary table approach.
- the mud tank 301 can hold mud, which can be one or more types of drilling fluids.
- mud can be one or more types of drilling fluids.
- a wellbore may be drilled to produce fluid, inject fluid or both (e.g., hydrocarbons, minerals, water, etc.).
- the drillstring 325 (e.g., including one or more downhole tools) may be composed of a series of pipes threadably connected together to form a long tube with the drill bit 326 at the lower end thereof.
- the mud may be pumped by the pump 304 from the mud tank 301 (e.g., or other source) via a the lines 306, 308 and 309 to a port of the kelly 318 or, for example, to a port of the top drive 340.
- the mud can then flow via a passage (e.g., or passages) in the drillstring 325 and out of ports located on the drill bit 326 (see, e.g., a directional arrow).
- a passage e.g., or passages
- the mud can then circulate upwardly through an annular region between an outer surface(s) of the drillstring 325 and surrounding wall(s) (e.g., open borehole, casing, etc.), as indicated by directional arrows.
- the mud lubricates the drill bit 326 and carries heat energy (e.g., frictional or other energy) and formation cuttings to the surface where the mud (e.g., and cuttings) may be returned to the mud tank 301 , for example, for recirculation (e.g., with processing to remove cuttings, etc.).
- heat energy e.g., frictional or other energy
- the mud pumped by the pump 304 into the drillstring 325 may, after exiting the drillstring 325, form a mudcake that lines the wellbore which, among other functions, may reduce friction between the drillstring 325 and surrounding wall(s) (e.g., borehole, casing, etc.). A reduction in friction may facilitate advancing or retracting the drillstring 325.
- the entire drillstring 325 may be pulled from a wellbore and optionally replaced, for example, with a new or sharpened drill bit, a smaller diameter drillstring, etc.
- tripping A trip may be referred to as an upward trip or an outward trip or as a downward trip or an inward trip depending on trip direction.
- the mud can be pumped by the pump 304 into a passage of the drillstring 325 and, upon filling of the passage, the mud may be used as a transmission medium to transmit energy, for example, energy that may encode information as in mud-pulse telemetry.
- mud-pulse telemetry equipment may include a downhole device configured to effect changes in pressure in the mud to create an acoustic wave or waves upon which information may modulated.
- information from downhole equipment e.g., one or more modules of the drillstring 325) may be transmitted uphole to an uphole device, which may relay such information to other equipment for processing, control, etc.
- the drillstring 325 may be fitted with telemetry equipment 352 that includes a rotatable drive shaft, a turbine impeller mechanically coupled to the drive shaft such that the mud can cause the turbine impeller to rotate, a modulator rotor mechanically coupled to the drive shaft such that rotation of the turbine impeller causes said modulator rotor to rotate, a modulator stator mounted adjacent to or proximate to the modulator rotor such that rotation of the modulator rotor relative to the modulator stator creates pressure pulses in the mud, and a controllable brake for selectively braking rotation of the modulator rotor to modulate pressure pulses.
- telemetry equipment 352 that includes a rotatable drive shaft, a turbine impeller mechanically coupled to the drive shaft such that the mud can cause the turbine impeller to rotate, a modulator rotor mechanically coupled to the drive shaft such that rotation of the turbine impeller causes said modulator rotor to rotate, a modulator stator mounted adjacent to or proximate to the modulator
- an alternator may be coupled to the aforementioned drive shaft where the alternator includes at least one stator winding electrically coupled to a control circuit to selectively short the at least one stator winding to electromagnetically brake the alternator and thereby selectively brake rotation of the modulator rotor to modulate the pressure pulses in the mud.
- an uphole control and/or data acquisition system 362 may include circuitry to sense pressure pulses generated by telemetry equipment 352 and, for example, communicate sensed pressure pulses or information derived therefrom for process, control, etc.
- the assembly 350 of the illustrated example includes a logging-while- drilling (LWD) module 354, a measurement-while-drilling (MWD) module 356, an optional module 358, a rotary-steerable system (RSS) and/or motor 360, and the drill bit 326.
- LWD logging-while- drilling
- MWD measurement-while-drilling
- RSS rotary-steerable system
- Such components or modules may be referred to as tools where a drillstring can include a plurality of tools.
- a RSS it involves technology utilized for directional drilling.
- Directional drilling involves drilling into the Earth to form a deviated bore such that the trajectory of the bore is not vertical; rather, the trajectory deviates from vertical along one or more portions of the bore.
- drilling can commence with a vertical portion and then deviate from vertical such that the bore is aimed at the target and, eventually, reaches the target.
- Directional drilling may be implemented where a target may be inaccessible from a vertical location at the surface of the Earth, where material exists in the Earth that may impede drilling or otherwise be detrimental (e.g., consider a salt dome, etc.), where a formation is laterally extensive (e.g., consider a relatively thin yet laterally extensive reservoir), where multiple bores are to be drilled from a single surface bore, where a relief well is desired, etc.
- a target may be inaccessible from a vertical location at the surface of the Earth, where material exists in the Earth that may impede drilling or otherwise be detrimental (e.g., consider a salt dome, etc.), where a formation is laterally extensive (e.g., consider a relatively thin yet laterally extensive reservoir), where multiple bores are to be drilled from a single surface bore, where a relief well is desired, etc.
- a mud motor can present some challenges depending on factors such as rate of penetration (ROP), transferring weight to a bit (e.g., weight on bit, WOB) due to friction, etc.
- a mud motor can be a positive displacement motor (PDM) that operates to drive a bit (e.g., during directional drilling, etc.).
- PDM operates as drilling fluid is pumped through it where the PDM converts hydraulic power of the drilling fluid into mechanical power to cause the bit to rotate.
- a PDM may operate in a combined rotating mode where surface equipment is utilized to rotate a bit of a drillstring (e.g., a rotary table, a top drive, etc.) by rotating the entire drillstring and where drilling fluid is utilized to rotate the bit of the drillstring.
- a surface RPM SRPM
- SRPM surface RPM
- bit RPM can be determined or estimated as a sum of the SRPM and the mud motor RPM, assuming the SRPM and the mud motor RPM are in the same direction.
- a PDM mud motor can operate in a so-called sliding mode, when the drillstring is not rotated from the surface.
- a bit RPM can be determined or estimated based on the RPM of the mud motor.
- a RSS can drill directionally where there is continuous rotation from surface equipment, which can alleviate the sliding of a steerable motor (e.g., a PDM).
- a RSS may be deployed when drilling directionally (e.g., deviated, horizontal, or extended-reach wells).
- a RSS can aim to minimize interaction with a borehole wall, which can help to preserve borehole quality.
- a RSS can aim to exert a relatively consistent side force akin to stabilizers that rotate with the drillstring or orient the bit in the desired direction while continuously rotating at the same number of rotations per minute as the drillstring.
- the LWD module 354 may be housed in a suitable type of drill collar and can contain one or a plurality of selected types of logging tools. It will also be understood that more than one LWD and/or MWD module can be employed. Where the position of an LWD module is mentioned, as an example, it may refer to a module at the position of the LWD module 354, the MWD module 356, etc.
- An LWD module can include capabilities for measuring, processing, and storing information, as well as for communicating with the surface equipment. In the illustrated example, the LWD module 354 may include a seismic measuring device.
- the MWD module 356 may be housed in a suitable type of drill collar and can contain one or more devices for measuring characteristics of the drillstring 325 and the drill bit 326.
- the MWD module 356 may include equipment for generating electrical power, for example, to power various components of the drillstring 325.
- the MWD module 356 may include the telemetry equipment 352, for example, where the turbine impeller can generate power by flow of the mud; it being understood that other power and/or battery systems may be employed for purposes of powering various components.
- the MWD module 356 may include one or more of the following types of measuring devices: a weight-on-bit measuring device, a torque measuring device, a vibration measuring device, a shock measuring device, a stick slip measuring device, a direction measuring device, and an inclination measuring device.
- Fig. 3 also shows some examples of types of holes that may be drilled. For example, consider a slant hole 372, an S-shaped hole 374, a deep inclined hole 376 and a horizontal hole 378.
- a drilling operation can include directional drilling where, for example, at least a portion of a well includes a curved axis.
- a radius that defines curvature where an inclination with regard to the vertical may vary until reaching an angle between about 30 degrees and about 60 degrees or, for example, an angle to about 90 degrees or possibly greater than about 90 degrees.
- a directional well can include several shapes where each of the shapes may aim to meet particular operational demands.
- a drilling process may be performed on the basis of information as and when it is relayed to a drilling engineer.
- inclination and/or direction may be modified based on information received during a drilling process.
- deviation of a bore may be accomplished in part by use of a downhole motor and/or a turbine.
- a motor for example, a drillstring can include a positive displacement motor (PDM).
- PDM positive displacement motor
- a system may be a steerable system and include equipment to perform method such as geosteering.
- a steerable system can be or include an RSS.
- a steerable system can include a PDM or of a turbine on a lower part of a drillstring which, just above a drill bit, a bent sub can be mounted.
- MWD equipment that provides real time or near real time data of interest (e.g., inclination, direction, pressure, temperature, real weight on the drill bit, torque stress, etc.) and/or LWD equipment may be installed.
- LWD equipment can make it possible to send to the surface various types of data of interest, including for example, geological data (e.g., gamma ray log, resistivity, density and sonic logs, etc.).
- the coupling of sensors providing information on the course of a well trajectory, in real time or near real time, with, for example, one or more logs characterizing the formations from a geological viewpoint, can allow for implementing a geosteering method.
- Such a method can include navigating a subsurface environment, for example, to follow a desired route to reach a desired target or targets.
- geosteering can include intentional directional control of a wellbore based on results of downhole geological logging measurements in a manner that aims to keep a directional wellbore within a desired region, zone (e.g., a pay zone), etc.
- geosteering may include directing a wellbore to keep the wellbore in a particular section of a reservoir, for example, to minimize gas and/or water breakthrough and, for example, to maximize economic production from a well that includes the wellbore.
- the wellsite system 300 can include one or more sensors 364 that are operatively coupled to the control and/or data acquisition system 362.
- a sensor or sensors may be at surface locations.
- a sensor or sensors may be at downhole locations.
- a sensor or sensors may be at one or more remote locations that are not within a distance of the order of about one hundred meters from the wellsite system 300.
- a sensor or sensor may be at an offset wellsite where the wellsite system 300 and the offset wellsite are in a common field (e.g., oil and/or gas field).
- the downhole tool can include associated circuitry such as, for example, encoding circuitry that can encode signals, for example, to reduce demands as to transmission.
- circuitry at the surface may include decoding circuitry to decode encoded information transmitted at least in part via mud-pulse telemetry.
- circuitry at the surface may include encoder circuitry and/or decoder circuitry and circuitry downhole may include encoder circuitry and/or decoder circuitry.
- the system 300 can include a transmitter that can generate signals that can be transmitted downhole via mud (e.g., drilling fluid) as a transmission medium. [0079] As an example, one or more portions of a drillstring may become stuck.
- stuck can refer to one or more of varying degrees of inability to move or remove a drillstring from a bore.
- a stuck condition it might be possible to rotate pipe or lower it back into a bore or, for example, in a stuck condition, there may be an inability to move the drillstring axially in the bore, though some amount of rotation may be possible.
- a stuck condition there may be an inability to move at least a portion of the drillstring axially and rotationally.
- the system 400 may be utilized for foam assisted lift, which may be referred to as foam injection.
- foam injection Such an operation may be considered to be a type of EOR operation and/or artificial lift operation.
- the system 400 can aim to optimize well production by introducing a foam chemical (e.g., or chemicals, etc.).
- injection of the chemical can affect productivity of gas wells directly where fine tuning of the injection can improve the productivity of the well.
- foam injection e.g., injection of a foaming agent
- water coming from a reservoir can make a flow stream denser until water droplets from the flow stream drop to the bottom of the well, which can create a plug and backpressure the reservoir formation thereby reducing gas production progressively until the well stops producing.
- a framework may operate using Qg, THP, CHP and THT as inputs to generate one or more of Qfoam (e.g., foam flow rate) and Qmethanol (e.g., methanol flow rate) as outputs (e.g., a foaming agent flow rate and a foaming inhibitor flow rate); noting that through use of a two-way valve and/or one or more other pieces of fluid control equipment, a framework may operate to deliver one or the either, for example, to either form foam or to break foam.
- Qfoam e.g., foam flow rate
- Qmethanol e.g., methanol flow rate
- the inputs and/or one or more proxies for one or more inputs may be received by the framework (e.g., via an interface, etc.) and the outputs can be transmitted via one or more mechanisms (e.g., wired, wireless, etc.) to chemical injection equipment that can control a set point or other suitable controller that can operate according to one or more of the outputs.
- chemical injection equipment e.g., wired, wireless, etc.
- methanol and/or another chemical may be a foam breaker that can disrupt foam structure, for example, if foaming exceeds a desired level and/or if foam breaking is desired.
- Fig. 6 also shows example plots 612 and 614 where, prior to control, gas rate 612 is seen as decreasing with an increase in CHP 614 due to water loading; whereas, after control, gas rate and CHP are relatively stable and constant.
- well behavior can be controlled to some extent via intermittent foam lift (e.g., manual dosing); however, casing pressure buildup can occur gradually as indicated while still having substantial water loading in a wellbore.
- a process can have relatively continuous foam lift according to a set point, which may be manually determined, where casing pressure can be maintained to be relatively low and stable, which means no substantial water loading in the wellbore.
- there can be a substantial increase in gas production per well (e.g., with continuous foam injection compared to manual intermittent operation).
- an approach that utilizes automated control can help to reduce human costs, risks and transportation and can increase gas production efficiency.
- a framework can determine how much foaming agent is needed in real-time to provide for desirable flow from a well.
- the framework can utilize gas rate and liquid level to make such a determination.
- a determination as to how much foaming agent is needed can be in the form of a set point that can be implemented.
- a framework can provide for adaptive set point generation for control of foaming agent injection.
- framework can be implemented locally and/or remotely with respect to a wellsite and/or chemical injection equipment.
- a framework can include features to determine liquid level in one or more manners, for example, from CHP and THP, from a downhole gauge, from a trained machine learning model, etc.
- gas rate it can be determined using an orifice meter or may be determined via one or more other measurements.
- a gas meter can be installed at a wellsite that can measure gas rate, which can be communicated to a framework.
- a framework can determine an appropriate amount of chemical to injection and whether to do so in a continuous and/or a periodic manner.
- Fig. 8 shows an example of a framework 810 that includes various components for inputs 812, gas rate and liquid level 814 and injection amount 816 where output (e.g., injection amount 816) can be transmitted to chemical injection equipment 820.
- a method can include identifying a well condition. For example, consider a method that includes identifying a stable period of production (e.g., stable CHP and THP). In such an example, if a stable period is identified, then the method can proceed to define a baseline for the stable well. However, if not identified, the method can define a baseline for the non-stable well. For example, if a well is not in a stable condition, a method can include adjusting (e.g., manually or automatically) chemical injection of the well until it becomes stable (e.g., stable conditions are achieved).
- adjusting e.g., manually or automatically
- the method can compute the well water rate (e.g., how much water the well may be producing) along with computing foam concentration: 00 * 158.987 * f active 3.78541 * 42 where f conc is in ppm, Qf oam is in liters per day, Q w is in liters per day and f active is in percent.
- a method can proceed to define a baseline for the non-stable well.
- a method can include identifying the stable period of production (e.g., stable CHP and THP), defining a baseline delta pressure (CHP-THP) at the stable condition, and setting a liquid level cutoff value (e.g., as a pressure) as Max_DeltaP@stable condition * 1 .2.
- a stable period of production e.g., stable CHP and THP
- CHP-THP baseline delta pressure
- Max_DeltaP@stable condition * 1 .2 e.g., as a pressure
- a method can include providing various inputs such as, for example, the following inputs:
- WGR_m 3 per10km 3 Water-gas ratio (WGR_m 3 per10km 3 ) 0.05 m 3 /10km 3 (e.g., from well test)
- a machine learning model can be a deep learning model (e.g., deep Boltzmann machine, deep belief network, convolutional neural network, stacked auto-encoder, etc.), an ensemble model (e.g., random forest, gradient boosting machine, bootstrapped aggregation, AdaBoost, stacked generalization, gradient boosted regression tree, etc.), a neural network model (e.g., radial basis function network, perceptron, back-propagation, Hopfield network, etc.), a regularization model (e.g., ridge regression, least absolute shrinkage and selection operator, elastic net, least angle regression), a rule system model (e.g., cubist, one rule, zero rule, repeated incremental pruning to produce error reduction), a regression model (e.
- a deep learning model e.g., deep Boltzmann machine, deep belief network, convolutional neural network, stacked auto-encoder, etc.
- an ensemble model e.g., random forest, gradient boosting machine, bootstrapped
- a machine model may be built using a computational framework with a library, a toolbox, etc., such as, for example, those of the MATLAB framework (MathWorks, Inc., Natick, Massachusetts).
- the MATLAB framework includes a toolbox that provides supervised and unsupervised machine learning algorithms, including support vector machines (SVMs), boosted and bagged decision trees, k-nearest neighbor (KNN), k-means, k-medoids, hierarchical clustering, Gaussian mixture models, and hidden Markov models.
- SVMs support vector machines
- KNN k-nearest neighbor
- KNN k-means
- k-medoids hierarchical clustering
- Gaussian mixture models Gaussian mixture models
- hidden Markov models hidden Markov models.
- DLT Deep Learning Toolbox
- the DLT provides convolutional neural networks (ConvNets, CNNs) and long short-term memory (LSTM) networks to perform classification and regression on image, time-series, and text data.
- ConvNets convolutional neural networks
- LSTM long short-term memory
- the DLT includes features to build network architectures such as generative adversarial networks (GANs) and Siamese networks using custom training loops, shared weights, and automatic differentiation.
- GANs generative adversarial networks
- Siamese networks using custom training loops, shared weights, and automatic differentiation.
- the DLT provides for model exchange various other frameworks.
- a training method can include various actions that can operate on a dataset to train a ML model.
- a dataset can be split into training data and test data where test data can provide for evaluation.
- a method can include cross-validation of parameters and best parameters, which can be provided for model training.
- the TENSORFLOW framework can run on multiple CPUs and GPUs (with optional CUDA (NVIDIA Corp., Santa Clara, California) and SYCL (The Khronos Group Inc., Beaverton, Oregon) extensions for general-purpose computing on graphics processing units (GPUs)).
- TENSORFLOW is available on 64-bit LINUX, MACOS (Apple Inc., Cupertino, California), WINDOWS (Microsoft Corp., Redmond, Washington), and mobile computing platforms including ANDROID (Google LLC, Mountain View, California) and IOS (Apple Inc.) operating system based platforms.
- TENSORFLOW computations can be expressed as stateful dataflow graphs; noting that the name TENSORFLOW derives from the operations that such neural networks perform on multidimensional data arrays. Such arrays can be referred to as "tensors”.
- TFL provides diverse language support, which includes JAVA, SWIFT, Objective-C, C++, and PYTHON. TFL may provide high performance, with hardware acceleration and model optimization. TFL may provide for various machine learning tasks, which may include, for example, prediction, regression, classification, image classification, object detection, pose estimation, question answering, text classification, etc., on one or more of multiple platforms. [00127] Fig.
- FIG. 9 shows an example of a method 900 that includes a reception block 910 for receiving data for a well; a determination block 920 for determining a gas flow rate and a liquid level for the well; a determination block 930 for determining an amount of chemical to inject into the well based on the gas flow rate and the liquid level; and an issuance block 940 for issuing a signal to chemical injection equipment to inject the amount of chemical into the well.
- the method 900 is shown along with various computer-readable media blocks 911 , 921 , 931 and 941 (e.g., CRM blocks). Such blocks may be utilized to perform one or more actions of the method 900. For example, consider the system 990 of Fig. 9 and the instructions 996, which may include instructions of one or more of the CRM blocks 911 , 921 , 931 and 941 .
- a higher liquid level can correspond to a demand for a greater amount of chemical.
- data can include gas flow meter measurement data where, for example, the gas flow meter measurement data are indicative of the gas flow rate.
- data can include downhole gauge data where, for example, the downhole gauge data are indicative of the liquid level.
- data can include one or more of tubing head pressure and casing head pressure where, for example, the data are indicative of liquid level.
- a method can include determining a liquid level by implementing a trained machine learning model.
- the method can include generating the trained machine learning model using data from one or more wells.
- a trained machine learning model can operate on input that includes one or more of tubing head pressure and casing head pressure.
- chemical injection equipment can include a manifold for injection of chemical into one or more wells.
- the manifold may be controllable to inject a specific amount of chemical into a specific well.
- a method can include determining one or more amounts of chemical to inject into one or more wells.
- one or more computer-readable media can include computer-executable instructions executable by a system to instruct the system to: receive data for a well; determine a gas flow rate and a liquid level for the well; determine an amount of chemical to inject into the well based on the gas flow rate and the liquid level; and issue a signal to chemical injection equipment to inject the amount of chemical into the well.
- a computer program product can include one or more computer-readable storage media that can include processor-executable instructions to instruct a computing system to perform one or more methods and/or one or more portions of a method.
- a method or methods may be executed by a computing system.
- Fig. 10 shows an example of a system 1000 that can include one or more computing systems 1001 -1 , 1001 -2, 1001 -3 and 1001 -4, which may be operatively coupled via one or more networks 1009, which may include wired and/or wireless networks.
- the system 1000 can include one or more other components 1008.
- a system can include an individual computer system or an arrangement of distributed computer systems.
- the computer system 1001-1 can include one or more modules 1002, which may be or include processor-executable instructions, for example, executable to perform various tasks (e.g., receiving information, requesting information, processing information, simulation, outputting information, etc.).
- a module may be executed independently, or in coordination with, one or more processors 1004, which is (or are) operatively coupled to one or more storage media 1006 (e.g., via wire, wirelessly, etc.).
- one or more of the one or more processors 1004 can be operatively coupled to at least one of one or more network interface 1007.
- the computer system 1001 -1 can transmit and/or receive information, for example, via the one or more networks 1009 (e.g., consider one or more of the Internet, a private network, a cellular network, a satellite network, etc.).
- the computer system 1001 -1 may receive from and/or transmit information to one or more other devices, which may be or include, for example, one or more of the computer systems 1001 -2, etc.
- a device may be located in a physical location that differs from that of the computer system 1001 -1 .
- a location may be, for example, a processing facility location, a data center location (e.g., server farm, etc.), a rig location, a wellsite location, a downhole location, etc.
- a processor may be or include a microprocessor, microcontroller, processor module or subsystem, programmable integrated circuit, programmable gate array, or another control or computing device.
- the storage media 1006 may be implemented as one or more computer-readable or machine-readable storage media.
- storage may be distributed within and/or across multiple internal and/or external enclosures of a computing system and/or additional computing systems.
- a storage medium or storage media may include one or more different forms of memory including semiconductor memory devices such as dynamic or static random access memories (DRAMs or SRAMs), erasable and programmable read-only memories (EPROMs), electrically erasable and programmable read-only memories (EEPROMs) and flash memories, magnetic disks such as fixed, floppy and removable disks, other magnetic media including tape, optical media such as compact disks (CDs) or digital video disks (DVDs), BLUERAY disks, or other types of optical storage, or other types of storage devices.
- semiconductor memory devices such as dynamic or static random access memories (DRAMs or SRAMs), erasable and programmable read-only memories (EPROMs), electrically erasable and programmable read-only memories (EEPROMs) and flash memories
- magnetic disks such as fixed, floppy and removable disks, other magnetic media including tape
- optical media such as compact disks (CDs) or digital video disks (DVDs), BLUERAY disks, or
- a storage medium or media may be located in a machine running machine-readable instructions, or located at a remote site from which machine-readable instructions may be downloaded over a network for execution.
- various components of a system such as, for example, a computer system, may be implemented in hardware, software, or a combination of both hardware and software (e.g., including firmware), including one or more signal processing and/or application specific integrated circuits.
- a system may include a processing apparatus that may be or include a general purpose processors or application specific chips (e.g., or chipsets), such as ASICs, FPGAs, PLDs, or other appropriate devices.
- a processing apparatus may be or include a general purpose processors or application specific chips (e.g., or chipsets), such as ASICs, FPGAs, PLDs, or other appropriate devices.
- a mobile device may be configured as a cell phone, a tablet, etc.
- a method may be implemented (e.g., wholly or in part) using a mobile device.
- a system may include one or more mobile devices.
- a system may be a distributed environment, for example, a so-called “cloud” environment where various devices, components, etc. interact for purposes of data storage, communications, computing, etc.
- a device or a system may include one or more components for communication of information via one or more of the Internet (e.g., where communication occurs via one or more Internet protocols), a cellular network, a satellite network, etc.
- a method may be implemented in a distributed environment (e.g., wholly or in part as a cloud-based service).
- information may be input from a display (e.g., consider a touchscreen), output to a display or both.
- information may be output to a projector, a laser device, a printer, etc. such that the information may be viewed.
- information may be output stereographically or holographically.
- a printer consider a 2D or a 3D printer.
- a 3D printer may include one or more substances that can be output to construct a 3D object.
- data may be provided to a 3D printer to construct a 3D representation of a subterranean formation.
- layers may be constructed in 3D (e.g., horizons, etc.), geobodies constructed in 3D, etc.
- holes, fractures, etc. may be constructed in 3D (e.g., as positive structures, as negative structures, etc.).
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Abstract
Description
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202263436442P | 2022-12-30 | 2022-12-30 | |
| PCT/US2023/086167 WO2024145433A1 (en) | 2022-12-30 | 2023-12-28 | Well chemical injection control |
Publications (1)
| Publication Number | Publication Date |
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| EP4627182A1 true EP4627182A1 (en) | 2025-10-08 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23851062.2A Pending EP4627182A1 (en) | 2022-12-30 | 2023-12-28 | Well chemical injection control |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20240218765A1 (en) |
| EP (1) | EP4627182A1 (en) |
| CN (1) | CN120530254A (en) |
| WO (1) | WO2024145433A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| CA3248655A1 (en) * | 2022-01-16 | 2023-07-20 | Schlumberger Canada Limited | Liquid loaded well unloading reduction system |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CA2264632C (en) * | 1997-05-02 | 2007-11-27 | Baker Hughes Incorporated | Wellbores utilizing fiber optic-based sensors and operating devices |
| CN112347601B (en) * | 2019-08-08 | 2022-10-04 | 中国石油天然气股份有限公司 | Method for optimizing gas well foam drainage gas production online real-time foaming agent addition |
| CN113323642B (en) * | 2020-02-28 | 2023-10-13 | 中国石油化工股份有限公司 | An online diagnosis of gas well liquid accumulation and intelligent injection method for foam drainage and gas recovery |
| CN112836349B (en) * | 2021-01-08 | 2023-06-02 | 中国石油大学(北京) | Intelligent decision-making method and system for injection-production joint adjustment based on wellbore parameters |
-
2023
- 2023-12-28 EP EP23851062.2A patent/EP4627182A1/en active Pending
- 2023-12-28 CN CN202380091566.7A patent/CN120530254A/en active Pending
- 2023-12-28 US US18/398,799 patent/US20240218765A1/en active Pending
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