WO2025010398A1 - Deep transient testing (dtt) downhole and surface gas rate integration workflow - Google Patents
Deep transient testing (dtt) downhole and surface gas rate integration workflow Download PDFInfo
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- WO2025010398A1 WO2025010398A1 PCT/US2024/036869 US2024036869W WO2025010398A1 WO 2025010398 A1 WO2025010398 A1 WO 2025010398A1 US 2024036869 W US2024036869 W US 2024036869W WO 2025010398 A1 WO2025010398 A1 WO 2025010398A1
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- gas
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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
- E21B21/00—Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
- E21B21/06—Arrangements for treating drilling fluids outside the borehole
- E21B21/063—Arrangements for treating drilling fluids outside the borehole by separating components
- E21B21/067—Separating gases from drilling fluids
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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
- E21B21/00—Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
- E21B21/08—Controlling or monitoring pressure or flow of drilling fluid, e.g. automatic filling of boreholes, automatic control of bottom pressure
-
- 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
- E21B49/00—Testing the nature of borehole walls; Formation testing; Methods or apparatus for obtaining samples of soil or well fluids, specially adapted to earth drilling or wells
- E21B49/08—Obtaining fluid samples or testing fluids, in boreholes or wells
- E21B49/087—Well testing, e.g. testing for reservoir productivity or formation parameters
- E21B49/0875—Well testing, e.g. testing for reservoir productivity or formation parameters determining specific fluid parameters
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/26—Oils; Viscous liquids; Paints; Inks
- G01N33/28—Oils, i.e. hydrocarbon liquids
- G01N33/2823—Raw oil, drilling fluid or polyphasic mixtures
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N9/00—Investigating density or specific gravity of materials; Analysing materials by determining density or specific gravity
-
- 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
Definitions
- the present disclosure generally relates to a formation testing platform for quantifying and monitoring hydrocarbon volumes and surface gas emissions using formation testing data collected by the formation testing platform and integrated with data directly measured at the surface.
- Hydrocarbons and associated gas or free gas that is pumped into the wellbore during sampling and pressure transient testing operations will eventually reach the surface.
- DTT deep transient testing
- hydrocarbons are circulated to surface together with circulated mud. Once on surface, hydrocarbon (and non-hydrocarbon) gases may be separated, and the gas may either be vented to the atmosphere or burned (e.g., flared).
- Certain embodiments of the present disclosure include a method that includes allowing one or more fluids from a subterranean formation to flow through a downhole well tool disposed in a wellbore of a well during a deep transient testing (DTT) operation performed by the downhole well tool.
- the method also includes predicting, via a control system, a predicted DTT surface gas rate based at least in part on measurement data relating to one or more properties of the one or more fluids.
- FIG. 1 is a schematic illustration of a well system, in accordance with embodiments of the present disclosure
- FIG. 2 illustrates a well control system that may include a surface control system to control the well system described herein, in accordance with embodiments of the present disclosure
- FIG. 3 is a side view of a downhole well tool, in accordance with embodiments of the present disclosure.
- FIG. 4 is a flow diagram of a workflow that may be utilized by the downhole well tool to determine the total mass rate of the fluid flowing through the downhole well tool, in accordance with embodiments of the present disclosure
- FIG. 5 is a flow diagram of a workflow that may be utilized by the downhole well tool to determine the total mass rate of gas, in accordance with embodiments of the present disclosure
- FIG. 6 is a flow diagram of a workflow that may be utilized by the downhole well tool to determine the total pumped gas volume accumulated at the surface at standard conditions for each component from the various fluids/flowlines, in accordance with embodiments of the present disclosure;
- FIG. 7 is a flow diagram of a workflow that may be utilized to fine tune determine
- FIG. 8 illustrates an embodiment of the tool control system illustrated in FIG. 1, in accordance with embodiments of the present disclosure.
- connection 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,” “uphole” and “downhole”, “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.
- these terms relate to a reference point as the surface from which downhole operations are initiated as being the top (e.g., uphole or upper) point and the total depth being the lowest (e.g., downhole or lower) point, whether the well (e.g., wellbore, borehole) is vertical, horizontal or slanted relative to the surface.
- real time e.g., computing operations
- substantially real time may be used interchangeably and are intended to describe operations (e.g., computing operations) that are performed without any human-perceivable interruption between operations.
- data relating to the systems described herein may be collected, transmitted, and/or used in control computations in “substantially real time” such that data readings, data transfers, and/or data processing steps occur once every second, once every 0.1 second, once every 0.01 second, or even more frequently, during operations of the systems (e.g., while the systems are operating).
- control commands may be transmitted to certain equipment every five minutes, every minute, every 30 seconds, every 15 seconds, every 10 seconds, every 5 seconds, or even more often, such that operating parameters of the equipment may be adjusted without any significant interruption to the closed-loop control of the equipment.
- control commands may be transmitted to certain equipment every five minutes, every minute, every 30 seconds, every 15 seconds, every 10 seconds, every 5 seconds, or even more often, such that operating parameters of the equipment may be adjusted without any significant interruption to the closed-loop control of the equipment.
- autonomous “automatic”, “automated”, “autonomous”, and so forth, are intended to describe operations that are performed are caused to be performed, for example, by a computing system (i.e., solely by the computing system, without human intervention).
- the formation testing platform described herein provides measurements of pressure, temperature, volumetric flowrate, and total flowed volume, among other operational parameters, versus elapsed time.
- the embodiments described herein include downhole fluid analysis (DFA) sensors to measure and determine fluid properties such as hydrocarbon composition (e.g., weight fractions of CO2, Ci, C2, C3, C4, C5, C&+, and so forth), fluid density, mud filtrate contamination level, gas/oil ratio (GOR), and fomiation volume factors, among other properties, during a test station.
- DFA downhole fluid analysis
- the embodiments described herein include a workflow to enable effective monitoring and control of surface gas emissions during formation testing operations.
- the ability to quantify and monitor surface emissions is also an important first step to help enable reductions in CO2 and greenhouse gas emissions, which also aligns with global sustainable development goals.
- the embodiments described herein include a workflow to integrate surface gas measurements with the predicted rate from downhole measurements during formation testing operations.
- the well system 10 includes a drilling rig 12 positioned over a wellbore 14. Although illustrated as an onshore well system 10, it is noted that the drilling system could instead be an offshore drilling system.
- the drilling rig 12 supports a drill string 16 that extends downhole into the wellbore 14 through a geological formation 18.
- the drill string 16 may be suspended within the wellbore 14 from a hook 22 of the drilling rig 12 via a swivel 24 and a kelly 26.
- the hook 22 may be connected to a hoisting system used to raise and lower the drill string 16 within the wellbore 14.
- a hoisting system may include a crown block and a drawworks that cooperate to raise and lower a traveling block (to which the hook 22 is connected) via a hoisting line.
- the kelly 26 is coupled to the drill string 16, and the swivel 24 allows the kelly 26 and the drill string 16 to rotate with respect to the hook 22.
- a rotary table 28 on a drill floor 30 of the drilling rig 12 may be configured to grip and turn the kelly 26 to drive rotation of the drill string 16 to drill the wellbore 14.
- a top drive system may instead be used to drive rotation of the drill string 16.
- drill cuttings or other debris may collect near the bottom of the wellbore 14.
- Drilling fluid 32 also referred to as drilling mud, may be circulated through the wellbore 14 to remove this debris.
- the drilling fluid 32 may also clean and cool a drill bit disposed at a bottom of the drill string 16 and provide positive pressure within the wellbore 14 to inhibit formation fluids from entering the wellbore.
- the drilling fluid 32 is circulated through the wellbore 14 by a pump 34.
- the drilling fluid 32 is pumped from a mud pit (or some other reservoir, such as a mud tank) into the drill string 16.
- the drilling fluid 32 exits near the bottom of the drill string 16 and returns to the surface of the well system 10 between the wellbore 14 and the drill string 16.
- a return conduit 40 may transfer the returning drilling fluid 32 away from the wellbore 14.
- the returning drilling fluid 32 may be cleansed (e.g., via one or more shale shakers, desanders, or desilters) and reused in the wellbore 14.
- the well system 10 may also include a surface control system 42 located at a surface location of the well system 10, which is configured to control operation of the various equipment of the well system 10, including a downhole well tool 36 conveyed into the wellbore 14 via the drill string 16.
- the downhole well tool 36 may include a tool control system 38 that controls the local functionality of the downhole well tool 36.
- the tool control system 38 of the downhole well tool 36 may communicate with the surface control system 42 such that the control systems 38, 42 collectively control operation of the downhole well tool 36.
- the tool control system 38 of the downhole well tool 36 may include components that are substantially similar to the components of the surface control system 42.
- FIG. 2 illustrates a well control system 60 that may include the surface control system 42 to control the well system 10 described herein.
- the surface control system 42 may include one or more analysis modules 62 (e.g., a program of computer-executable instructions and associated data) that may be configured to perform various functions of the embodiments described herein.
- an analysis module 62 executes on one or more processors 64 of the surface control system 42, which may be connected to one or more storage media 66 of the surface control system 42.
- the one or more analysis modules 62 may be stored in the one or more storage media 66.
- the one or more processors 64 may include a microprocessor, a microcontroller, a processor module or subsystem, a programmable integrated circuit, a programmable gate array, a digital signal processor (DSP), or another control or computing device.
- the one or more storage media 66 may be implemented as one or more non-transitory computer-readable or machine-readable storage media.
- the one or more storage media 66 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); 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
- optical media such as compact disks (CDs) or digital video disks (DVDs); or other types of storage devices.
- the computer-executable instructions and associated data of the analysis module(s) 62 may be provided on one computer-readable or machine-readable storage medium of the storage media 66, or alternatively, may be provided on multiple computer- readable or machine-readable storage media distributed in a large system having possibly plural nodes. Such computer-readable or machine-readable storage medium or media are considered to be part of an article (or article of manufacture), which may refer to any manufactured single component or multiple components.
- the one or more storage media 66 may be located either in the machine running the machine-readable instructions, or may be located at a remote site from which machine-readable instructions may be downloaded over a network for execution.
- the processor(s) 64 may be connected to a network interface 68 of the surface control system 42 to allow the surface control system 42 to communicate with various downhole sensors 44 and surface sensors 46 described herein, as well as communicate with actuators 70 and/or PLCs 72 of surface equipment 74 (e.g., the pump 34, and so forth, illustrated in FIG. 1) and of downhole equipment 76 (e.g., the downhole well tool 36, and so forth, illustrated in FIG. 1) for the purpose of controlling operation of the well system 10, as described in greater detail herein.
- actuators 70 and/or PLCs 72 of surface equipment 74 e.g., the pump 34, and so forth, illustrated in FIG. 1
- downhole equipment 76 e.g., the downhole well tool 36, and so forth, illustrated in FIG.
- the network interface 68 may also facilitate the surface control system 42 to communicate data to cloud storage 50 (or other wired and/or wireless communication network) to, for example, archive the data or to enable external computing systems 78 to access the data and/or to remotely interact with the surface control system 42.
- the well control system 60 illustrated in FIG. 2 is only one example of a well control system, and that the well control system 60 may have more or fewer components than shown, may combine additional components not depicted in the embodiment of FIG. 2, and/or the well control system 60 may have a different configuration or arrangement of the components depicted in FIG. 2.
- the various components illustrated in FIG. 2 may be implemented in hardware, software, or a combination of both hardware and software, including one or more signal processing and/or application specific integrated circuits.
- the operations of the well control system 60 as described herein may be implemented by running one or more functional modules in an information processing apparatus such as application specific chips, such as application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), programmable logic devices (PLDs), systems on a chip (SOCs), or other appropriate devices.
- application specific chips such as application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), programmable logic devices (PLDs), systems on a chip (SOCs), or other appropriate devices.
- ASICs application-specific integrated circuits
- FPGAs field-programmable gate arrays
- PLDs programmable logic devices
- SOCs systems on a chip
- the embodiments described herein include a downhole well tool 36 configured to perform reservoir fluid analysis by drawing in formation fluid and testing the formation fluid downhole or collecting a sample of the formation fluid to bring to the surface.
- the downhole well tool 36 may use a probe and/or packers to isolate a desired region of the wellbore 14 (e.g., at a desired depth) and establish fluid communication with the subterranean formation 18 surrounding the wellbore 14. The probe may draw the formation fluid into the downhole well tool 36.
- the downhole well tool 36 may include a hydraulic module configured to control the flow of fluid through fluid lines of the downhole well tool 36, and a probe that includes one or more inlets for receiving the fluid through the fluid lines of the downhole well tool 36.
- the probe may include multiple inlets (e.g., a sampling probe and a guard probe) that may be used for the sampling described herein.
- the probe may be movable between extended and retracted positions for selectively engaging the wellbore 14 and acquiring fluid samples from the formation 18.
- the downhole well tool 36 may also include a fluid analysis module configured to analyze the fluid flowing through the flowlines.
- the downhole well tool 36 may include one or more fluid collecting chambers configured to store the fluid samples.
- a production test may be conducted by the downhole well tool 36, after inflating dual packers 80 at the bottom of the downhole well tool 36 and flowing the native fluid in the downhole well tool 36, and the produced fluid is conveyed up the toolstring to the tubing circulation head 82 (or, right below, at the level of a flow exit port 84) where the wellbore mud is mixed with the hydrocarbons (e.g., in a mud mixing chamber 86 of the tubing circulation head 82).
- well control may be maintained via the surface equipment 74 (e.g., the pump 34 illustrated in FIG. 1), and the hydrocarbon/wellbore mud mix may be circulated out to flowback equipment of the well system 10.
- the embodiments described herein include a workflow to enable effective monitoring and control of surface gas emissions during formation testing operations.
- the ability to quantify and monitor surface emissions is also an important first step to help enable reductions in CO2 and greenhouse gas emissions, which also aligns with global sustainable development goals.
- the embodiments described herein include a workflow to integrate surface gas measurements with the predicted rate from downhole measurements during formation testing operations.
- FIG. 4 is a flow diagram of a workflow 90 that may be utilized to determine the total mass rate of the fluid flowing through the downhole well tool 36.
- the workflow 90 may include determining how many different fluids (e.g., 1, 2, or even more) are flowing (e.g., either focused or unfocused flow) through the downhole well tool 36 (block 92).
- the workflow 90 may include mapping a flowrate to a fluid density estimation and/or measurement for each different fluid (block 94).
- the workflow 90 may include summing the flowrates for similar fluids (block 96).
- the workflow 90 may include converting volume rate to mass rate by multiplying the summed volume rates to the mapped density (block 98).
- fluid density may either be directly measured with a fluid density sensor of the downhole well tool 36 or estimated using fluid compositional measurements and a fluid model.
- the gas mass for each component in a pumped mixture is of particular importance in dynamic well control (e.g., predicting the interaction of pumped fluids with the mud in the wellbore 14) and to track the mass of pumped gas and surface gas emissions.
- dynamic well control e.g., predicting the interaction of pumped fluids with the mud in the wellbore 14
- a pumped gas log may be generated for real-time monitoring and control.
- the hydrocarbon will dissolve in the wellbore mud.
- OBM oil-based mud
- the fraction of gas that comes out of solution at the surface is called the vapor fraction.
- the vapor fractions of CO2, Ci, C2, C3, C4 and C5 depends on the type of oil, while Ce+ is mainly a liquid component.
- the vapor fractions may be estimated in many different ways, including empirical methods, correlations, or by using a convolutional neural network (CNN) model, a recurrent neural network (RNN) model, or an artificial neural network (ANN) model, or other model.
- CNN convolutional neural network
- RNN recurrent neural network
- ANN artificial neural network
- the input to determine the vapor fractions may be based on the measured fluid GOR, density, other measured fluid properties, and potentially mud-type and circulation rate.
- some vapor fractions may be set to 1 for certain mud/hydrocarbon combinations.
- WBM water-based mud
- the CO2, Ci, and C2 vapor fractions might be set to 1. Note that in certain environments, it may be preferred to estimate an upper limit of the pumped gas rather than taking the risk of underestimation. Therefore, under certain scenarios, the vapor fractions of C3-C5 may be regarded as 1 if there is no better estimation.
- FIG. 5 is a flow diagram of a workflow 100 that may be utilized to determine the total mass rate of gas.
- the workflow 100 may include, for each fluid/flowline identified in the workflow 90 illustrated in FIG. 4, determining a weight fraction from DFA at each measured time step (block 102).
- the workflow 100 may include determining the mass rate of each component of the fluid by multiplying the weight fraction of each component by the total mass flowrate (block 104).
- the workflow 100 may include multiplying the component mass rate calculated in block 104 with the vapor fraction, which may be determined as described above, to determine a mass rate of gas released at the surface (block 106).
- FIG. 6 is a flow diagram of a workflow 112 that may be utilized to determine the total pumped gas volume accumulated at the surface at standard conditions for each component from the various fluids/flowlines.
- the workflow 112 may include determining the total number of moles of gas released at the surface for each component by dividing the mass by molecular weight (block 114).
- the workflow 112 may include determining the total volume of gas released at the surface for each component by multiplying the number of moles by their respective molecular volume (block 116).
- the workflow 112 may optionally include summing the volumes to determine total gas volume (block 118).
- each of the steps of the workflow 112 may be performed by the surface control system 42. Table 1 illustrates molar weights of each gas component (MWj).
- the individual component mass rates determined in the workflow 100 may be determined by dividing the mass of each component by total molecular weight first to determine the molecular rate, which may then be multiplied by the total molecular volume to determine the individual volume rates of each component. These can be summed over time to determine the individual component total volume at the surface.
- determining the actual gas emission rates at the surface at standard conditions during DTT operations includes combining the wellbore volume and mud circulation rates.
- the mass rate and volume rates predicted in workflows 100, 112 may arrive at the surface, delayed by the circulation time, which is the wellbore volume divided by the mud circulation rates.
- both methane and carbon dioxide are considered “greenhouse gas”.
- the mass and volume of these gases may be measured directly using the techniques described herein. Methane is much more potent than carbon dioxide when it comes to trapping heat in the atmosphere. It is, therefore, relatively important to be able to quantify the CO2 equivalent effect of CH4 and the CO2 emissions in case CH4 is flared. However, it is important to note measurements of CH4 and CO2 emissions are needed to be able to apply these conversions.
- the total gas may be assumed to be a summation of the gaseous components.
- the information determined by the workflows 90, 100, 112 illustrated in FIGS. 7-9 may be used in various specific applications.
- the hydrocarbon footprint of any formation testing operation may be quantified. An important step to do so includes quantifying the individual gas component volumes and the total CO2 equivalent volume released to the atmosphere due to pumping fluids from the formation 18 with the downhole well tool 36.
- the reduction of emissions compared to other technologies may be quantified.
- the ability to quantify the emissions of each method/technology is a relatively important first step in reducing the total emissions.
- DTT operations the volume pumped to generate the pressure-transient build up is considerably larger than during wireline formation testing operations, but orders of magnitude smaller than during drill string testing (DST) operations.
- DST drill string testing
- the produced emissions are typically flared.
- the reduced volumes during a DTT operation, compared to a DST operation result in less produced hydrocarbons at the surface.
- the pressure and formation fluid volume pumping limits may be simulated in advance. Doing so may serve as the limiting factor in the amount of hydrocarbons allowed to pump into the well.
- the downhole well tool 36 may pump fluids continuously, and the volume of pumped hydrocarbons or gas may either fully or partially dissolve in OBM or be suspended in the wellbore 14 in WBM environments. In both cases a plume of gas-cut mud may tend to initiate and then accumulate downhole in the wellbore 14 near the test interval depths. These hydrocarbon plumes tend to remain downhole until they are circulated out.
- the flowrate, composition, density, water fraction, and so forth may be determined in substantially real time, and the methods described herein may be used to accurately estimate the total mass of gas. Formation testing operations may continue until the total gas mass limit is reached.
- the current limits are typically set based on total volume pumped rather than the mass of the gaseous components. It should be noted that because the amount of gas may be accurately estimated rather than relying on overly conservative limits (which is the current practice), the methods described herein allow unnecessary wiper trips to be prevented and mitigate potential well control risks.
- the surface gas rate may be determined based on surface measurements.
- gas and mud are circulated to the surface in a mixed state.
- the gas will be dissolved in the mud.
- relatively small bubbles will be suspended in the mud.
- gas and mud will need to be separated to be able to measure the surface gas rate.
- a mud-gas separator MGS may be used to separate the gas from the mud.
- the gas rate may be measured at the output side of the MGS with, for example, a relatively small orifice gas meter or a Coriolis or ultrasonic gas meter.
- a DST separator with some back pressure may be placed before the MGS.
- the gas rate after the DST separator may be measured with, for example, using a multiphase flow meter.
- the mud from the DST separator may still be routed to the MGS, where the separated gas may also be measured (e.g., as described above).
- the MGS may essentially be a second stage separator having its own gas rate measurement capability.
- the mud may be routed to a vacuum degasser, and the gas extracted by the vacuum degasser may also be measured. It will be appreciated that any combination of these gas measurement techniques may be combined together to measure the gas composition sequentially. Specifically, a total compositional gas rate may be determined by summing the compositional gas rates at each stage.
- vapor fraction the fraction of gas that comes out of solution at the surface.
- the vapor fractions of CO2, Ci, C2, C3, C4, and C5 generally depends on the type of oil and mud. Any component above C5 (e.g., Ce+) is expected to be predominantly in liquid phase at the surface, and is expected to remain dissolved in the mud.
- the surface gas rate and gas composition may be predicted based on downhole measurements, with an assumed vapor fraction of 1 for each gaseous component.
- the actual gas rate and gas composition may be directly measured, but with unknown vapor fraction.
- the surface gas rate for each gaseous component that is measured at the surface should be smaller than the surface gas rate that is predicted based on the downhole measurements, with the difference assumed to be caused by the component vapor fraction.
- FIG. 7 is a flow diagram of a workflow 120 that may be utilized to fine tune the DTT surface gas rates determined in steps 1 and 2.
- the workflow 120 may include determining DTT surface gas rate based on downhole measurements (e.g., according to step 1, as illustrated in FIGS. 4-6 and described in the associated paragraphs above) (block 122).
- the workflow 120 may include determining DTT surface gas rate based on surface measurements (e.g., according to step 2, as described above) (block 124).
- the workflow 120 may include calculating vapor fractions for each gaseous component based on a comparison of the DTT surface gas rates determined based on the downhole and surface measurements, respectively (e.g., of steps 1 and 2, respectively) (block 126). Then, in certain embodiments, the workflow 120 may include determining adjusted DTT surface gas rate based on the DTT surface gas rates determined based on the downhole measurements, the DTT surface gas rates determined based on the surface measurements, and the calculated vapor fractions (block 128).
- the vapor fraction may be estimated (calculated).
- the workflows described herein may be used to quantify the volume (or mass) of gaseous components added to the mud system, which is valuable for predicting if the mud may be re-circulated back into the well or if the mud system requires treatment before being used on subsequent wells, or before disposal.
- the surface gas rate measurements may underestimate the true gas rate.
- the surface control system 42 described above may perform much of the processing and control functions described herein.
- the downhole well tool 36 includes a tool control system 38 that controls the local functionality of the downhole well tool 36.
- the tool control system 38 of the downhole well tool 36 may communicate with the surface control system 42 such that the control systems 38, 42 collectively control operation of the downhole well tool 36 (and may be collectively referred to as a “control system”).
- the tool control system 38 of the downhole well tool 36 may include components that are substantially similar to the components of the surface control system 42 illustrated in FIG. 2.
- FIG. 8 illustrates an embodiment of the tool control system 38 illustrated in FIG. 1.
- the tool control system 38 may include one or more analysis modules 130 (e.g., a program of processor executable instructions and associated data) that may be configured to perform various functions of the embodiments described herein.
- an analysis module 130 executes on one or more processors 132 of the tool control system 38, which may be connected to one or more storage media 134 of the tool control system 38.
- the one or more analysis modules 130 may be stored in the one or more storage media 134.
- the one or more processors 132 may include a microprocessor, a microcontroller, a processor module or subsystem, a programmable integrated circuit, a programmable gate array, a digital signal processor (DSP), or another control or computing device.
- the one or more storage media 134 may be implemented as one or more non-transitory computer-readable or machine-readable storage media.
- the one or more storage media 134 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; 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; or other types of storage devices.
- DRAMs or SRAMs dynamic or static random access memories
- EPROMs erasable and programmable read-only memories
- EEPROMs electrically erasable and programmable read-only memories
- flash memories or other types of storage devices.
- Such computer-readable or machine- readable storage medium or media are considered to be part of an article (or article of manufacture), which may refer to any manufactured single component
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Abstract
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| MX2026000012A MX2026000012A (en) | 2023-07-06 | 2026-01-07 | Deep transient testing (dtt) downhole and surface gas rate integration workflow |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202363512107P | 2023-07-06 | 2023-07-06 | |
| US63/512,107 | 2023-07-06 |
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| Publication Number | Publication Date |
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| WO2025010398A1 true WO2025010398A1 (en) | 2025-01-09 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2024/036869 Ceased WO2025010398A1 (en) | 2023-07-06 | 2024-07-05 | Deep transient testing (dtt) downhole and surface gas rate integration workflow |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US20250012776A1 (en) |
| MX (1) | MX2026000012A (en) |
| WO (1) | WO2025010398A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| US12404768B2 (en) * | 2023-06-14 | 2025-09-02 | Schlumberger Technology Corporation | Zero flaring zonal formation testing with drill stem testing capabilities |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20100169020A1 (en) * | 2008-12-29 | 2010-07-01 | Yuqiang Niu | Method and apparatus for real time oil based mud contamination monitoring |
| US20170269252A1 (en) * | 2016-03-17 | 2017-09-21 | Baker Hughes Incorporated | Downhole deep transient measurements with improved sensors |
| US20210324736A1 (en) * | 2020-04-21 | 2021-10-21 | Schlumberger Technology Corporation | Method of performing formation testing operations |
| EP3685004B1 (en) * | 2017-09-19 | 2023-04-12 | M-I L.L.C. | Degassing and analyzing drilling fluid |
| WO2023064325A1 (en) * | 2021-10-12 | 2023-04-20 | Schlumberger Technology Corporation | Combination of a surface well testing facility and a cable formation tester with an active circulation system for obtaining inflow and measuring formation fluid parameters on the surface |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20230349286A1 (en) * | 2020-09-11 | 2023-11-02 | Schlumberger Technology Corporation | Geologic formation characterization |
| US12031431B2 (en) * | 2022-05-24 | 2024-07-09 | Schlumberger Technology Corporation | Downhole acoustic wave generation systems and methods |
-
2024
- 2024-07-05 WO PCT/US2024/036869 patent/WO2025010398A1/en not_active Ceased
- 2024-07-05 US US18/764,515 patent/US20250012776A1/en active Pending
-
2026
- 2026-01-07 MX MX2026000012A patent/MX2026000012A/en unknown
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20100169020A1 (en) * | 2008-12-29 | 2010-07-01 | Yuqiang Niu | Method and apparatus for real time oil based mud contamination monitoring |
| US20170269252A1 (en) * | 2016-03-17 | 2017-09-21 | Baker Hughes Incorporated | Downhole deep transient measurements with improved sensors |
| EP3685004B1 (en) * | 2017-09-19 | 2023-04-12 | M-I L.L.C. | Degassing and analyzing drilling fluid |
| US20210324736A1 (en) * | 2020-04-21 | 2021-10-21 | Schlumberger Technology Corporation | Method of performing formation testing operations |
| WO2023064325A1 (en) * | 2021-10-12 | 2023-04-20 | Schlumberger Technology Corporation | Combination of a surface well testing facility and a cable formation tester with an active circulation system for obtaining inflow and measuring formation fluid parameters on the surface |
Also Published As
| Publication number | Publication date |
|---|---|
| US20250012776A1 (en) | 2025-01-09 |
| MX2026000012A (en) | 2026-03-02 |
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