WO2018049055A2 - Drilling geomechanics salt creep monitoring - Google Patents
Drilling geomechanics salt creep monitoring Download PDFInfo
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- WO2018049055A2 WO2018049055A2 PCT/US2017/050523 US2017050523W WO2018049055A2 WO 2018049055 A2 WO2018049055 A2 WO 2018049055A2 US 2017050523 W US2017050523 W US 2017050523W WO 2018049055 A2 WO2018049055 A2 WO 2018049055A2
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V20/00—Geomodelling in general
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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
- 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
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V11/00—Prospecting or detecting by methods combining techniques covered by two or more of main groups G01V1/00 - G01V9/00
- G01V11/002—Details, e.g. power supply systems for logging instruments, transmitting or recording data, specially adapted for well logging, also if the prospecting method is irrelevant
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V1/00—Seismology; Seismic or acoustic prospecting or detecting
- G01V1/28—Processing seismic data, e.g. for interpretation or for event detection
- G01V1/30—Analysis
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V1/00—Seismology; Seismic or acoustic prospecting or detecting
- G01V1/40—Seismology; Seismic or acoustic prospecting or detecting specially adapted for well-logging
- G01V1/44—Seismology; Seismic or acoustic prospecting or detecting specially adapted for well-logging using generators and receivers in the same well
- G01V1/48—Processing data
- G01V1/50—Analysing data
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V11/00—Prospecting or detecting by methods combining techniques covered by two or more of main groups G01V1/00 - G01V9/00
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V2200/00—Details of seismic or acoustic prospecting or detecting in general
- G01V2200/10—Miscellaneous details
- G01V2200/16—Measure-while-drilling or logging-while-drilling
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V99/00—Subject matter not provided for in other groups of this subclass
Definitions
- Salt is primarily a massive halite deposit averaging 96% purity, with some occasional trapped sediment inclusions.
- the impurities are classified into three categories: anhydrite, other evaporates (sylvite, gypsum and carnalite), and other impurities (quartz, dolomite, feldspar, and clay). These inclusions may be affected by creep mechanisms; inclusions surrounded by highly mobile salt tend to be more unstable or can contain overpressure. Salt deposits may be nonradioactive, non-porous, low density, high velocity, electrically nonconductive and soluble.
- salt bodies Some oil and gas plays are located below salt bodies.
- drillers are called upon to drill through thick salt layers, e.g., up to 6000 m (about 20,000 ft).
- the salt can exhibit considerable deformation when drilled. This deformation may be a function of the magnitude of in-situ stresses, mud density, exposure time, temperature and the mineralogical composition. The process causing the deformation is known as "salt creep.”
- Salt creep effects may complicate well construction in salt formations. For example, salt creep may result in excessive torque, pack offs, stuck pipes, casing running blockage, and poor cementing jobs.
- the salt exit may have a rubble zone where mud losses and wellbore instability are seen.
- Embodiments of the disclosure may provide a method including obtaining data representing a subterranean domain, the subterranean domain comprising a salt layer, obtaining an initial model of salt creep for a well penetrating the salt layer, generating a second model of salt creep by revising the initial model while drilling the well based on measurements collected in the well, and determining one or more revised drilling parameters using the second model while drilling the well.
- Embodiments of the disclosure may also provide a computing system including one or more processors a memory system including one or more non-transitory computer-readable media storing instructions that, when executed by at least one of the one or more processors, cause the computing system to perform operations, the operations including obtaining data representing a subterranean domain, the subterranean domain comprising a salt layer, obtaining an initial model of salt creep for a well penetrating the salt layer, generating a second model of salt creep by revising the initial model while drilling the well based on measurements collected in the well, and determining one or more revised drilling parameters using the second model while drilling the well.
- Embodiments of the disclosure may further provide a non-transitory computer-readable media storing instructions that, when executed by at least one processors, cause a computing system to perform operations, the operations including obtaining data representing a subterranean domain, the subterranean domain comprising a salt layer, obtaining an initial model of salt creep for a well penetrating the salt layer, generating a second model of salt creep by revising the initial model while drilling the well based on measurements collected in the well, and determining one or more revised drilling parameters using the second model while drilling the well.
- Figures 1A, IB, 1C, ID, 2, 3A, and 3B illustrate simplified, schematic views of an oilfield and its operation, according to an embodiment.
- Figure 4 illustrates a flowchart of a method for determining drilling parameters while accounting for salt creep, according to an embodiment.
- Figure 5A illustrate a plot of time-of-exposure logs for every meter drilled where salt is present and radial closure model, according to an embodiment.
- Figure 5B illustrates a schematic view of a well, according to an embodiment.
- Figure 5C illustrate another plot of time-of-exposure logs for every meter drilled where salt is present and radial closure model, according to an embodiment.
- Figures 8A and 8B illustrate plots of borehole salt closure velocities with different salt creep models considering the same well condition, according to an embodiment.
- Figure 9 illustrates a schematic view of a computing system, according to an embodiment.
- first, second, etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another.
- a first object could be termed a second object, and, similarly, a second object could be termed a first object, without departing from the scope of the invention.
- the first object and the second object are both objects, respectively, but they are not to be considered the same object.
- FIGS 1A-1D illustrate simplified, schematic views of oilfield 100 having subterranean formation 102 containing reservoir 104 therein in accordance with implementations of various technologies and techniques described herein.
- Figure 1A illustrates a survey operation being performed by a survey tool, such as seismic truck 106.1, to measure properties of the subterranean formation.
- the survey operation is a seismic survey operation for producing sound vibrations.
- one such sound vibration e.g., sound vibration 112 generated by source 110
- sensors such as geophone-receivers 118, situated on the earth's surface.
- the data received 120 is provided as input data to a computer 122.1 of a seismic truck 106.1, and responsive to the input data, computer 122.1 generates seismic data output 124.
- This seismic data output may be stored, transmitted or further processed as desired, for example, by data reduction.
- Figure IB illustrates a drilling operation being performed by drilling tools 106.2 suspended by rig 128 and advanced into subterranean formations 102 to form wellbore 136.
- Mud pit 130 is used to draw drilling mud into the drilling tools via flow line 132 for circulating drilling mud down through the drilling tools, then up wellbore 136 and back to the surface.
- the drilling mud is typically filtered and returned to the mud pit.
- a circulating system may be used for storing, controlling, or filtering the flowing drilling mud.
- the drilling tools are advanced into subterranean formations 102 to reach reservoir 104. Each well may target one or more reservoirs.
- the drilling tools are adapted for measuring downhole properties using logging while drilling tools.
- the logging while drilling tools may also be adapted for taking core sample 133 as shown.
- Computer facilities may be positioned at various locations about the oilfield 100 (e.g., the surface unit 134) and/or at remote locations.
- Surface unit 134 may be used to communicate with the drilling tools and/or offsite operations, as well as with other surface or downhole sensors.
- Surface unit 134 is capable of communicating with the drilling tools to send commands to the drilling tools, and to receive data therefrom.
- Surface unit 134 may also collect data generated during the drilling operation and produce data output 135, which may then be stored or transmitted.
- Sensors (S), such as gauges, may be positioned about oilfield 100 to collect data relating to various oilfield operations as described previously. As shown, sensor (S) is positioned in one or more locations in the drilling tools and/or at rig 128 to measure drilling parameters, such as weight on bit, torque on bit, pressures, temperatures, flow rates, compositions, rotary speed, and/or other parameters of the field operation. Sensors (S) may also be positioned in one or more locations in the circulating system.
- Drilling tools 106.2 may include a bottom hole assembly (BHA) (not shown), generally referenced, near the drill bit (e.g., within several drill collar lengths from the drill bit).
- BHA bottom hole assembly
- the bottom hole assembly includes capabilities for measuring, processing, and storing information, as well as communicating with surface unit 134.
- the bottom hole assembly further includes drill collars for performing various other measurement functions.
- the bottom hole assembly may include a communication subassembly that communicates with surface unit 134.
- the communication subassembly is adapted to send signals to and receive signals from the surface using a communications channel such as mud pulse telemetry, electro-magnetic telemetry, or wired drill pipe communications.
- the communication subassembly may include, for example, a transmitter that generates a signal, such as an acoustic or electromagnetic signal, which is representative of the measured drilling parameters.
- a signal such as an acoustic or electromagnetic signal
- telemetry systems such as wired drill pipe, electromagnetic or other known telemetry systems.
- the wellbore is drilled according to a drilling plan that is established prior to drilling.
- the drilling plan typically sets forth equipment, pressures, trajectories and/or other parameters that define the drilling process for the wellsite.
- the drilling operation may then be performed according to the drilling plan. However, as information is gathered, the drilling operation may need to deviate from the drilling plan. Additionally, as drilling or other operations are performed, the subsurface conditions may change.
- the earth model may also need adjustment as new information is collected
- the data gathered by sensors (S) may be collected by surface unit 134 and/or other data collection sources for analysis or other processing.
- the data collected by sensors (S) may be used alone or in combination with other data.
- the data may be collected in one or more databases and/or transmitted on or offsite.
- the data may be historical data, real time data, or combinations thereof.
- the real time data may be used in real time, or stored for later use.
- the data may also be combined with historical data or other inputs for further analysis.
- the data may be stored in separate databases, or combined into a single database.
- Surface unit 134 may include transceiver 137 to allow communications between surface unit 134 and various portions of the oilfield 100 or other locations.
- Surface unit 134 may also be provided with or functionally connected to one or more controllers (not shown) for actuating mechanisms at oilfield 100.
- Surface unit 134 may then send command signals to oilfield 100 in response to data received.
- Surface unit 134 may receive commands via transceiver 137 or may itself execute commands to the controller.
- a processor may be provided to analyze the data (locally or remotely), make the decisions and/or actuate the controller. In this manner, oilfield 100 may be selectively adjusted based on the data collected. This technique may be used to optimize (or improve) portions of the field operation, such as controlling drilling, weight on bit, pump rates, or other parameters. These adjustments may be made automatically based on computer protocol, and/or manually by an operator. In some cases, well plans may be adjusted to select optimum (or improved) operating conditions, or to avoid problems.
- Figure 1C illustrates a wireline operation being performed by wireline tool 106.3 suspended by rig 128 and into wellbore 136 of Figure IB.
- Wireline tool 106.3 is adapted for deployment into wellbore 136 for generating well logs, performing downhole tests and/or collecting samples.
- Wireline tool 106.3 may be used to provide another method and apparatus for performing a seismic survey operation.
- Wireline tool 106.3 may, for example, have an explosive, radioactive, electrical, or acoustic energy source 144 that sends and/or receives electrical signals to surrounding subterranean formations 102 and fluids therein.
- Wireline tool 106.3 may be operatively connected to, for example, geophones 118 and a computer 122.1 of a seismic truck 106.1 of Figure 1A. Wireline tool 106.3 may also provide data to surface unit 134. Surface unit 134 may collect data generated during the wireline operation and may produce data output 135 that may be stored or transmitted. Wireline tool 106.3 may be positioned at various depths in the wellbore 136 to provide a survey or other information relating to the subterranean formation 102.
- Sensors such as gauges, may be positioned about oilfield 100 to collect data relating to various field operations as described previously. As shown, sensor S is positioned in wireline tool 106.3 to measure downhole parameters which relate to, for example porosity, permeability, fluid composition and/or other parameters of the field operation.
- Figure ID illustrates a production operation being performed by production tool 106.4 deployed from a production unit or Christmas tree 129 and into completed wellbore 136 for drawing fluid from the downhole reservoirs into surface facilities 142.
- the fluid flows from reservoir 104 through perforations in the casing (not shown) and into production tool 106.4 in wellbore 136 and to surface facilities 142 via gathering network 146.
- Sensors (S), such as gauges, may be positioned about oilfield 100 to collect data relating to various field operations as described previously. As shown, the sensor (S) may be positioned in production tool 106.4 or associated equipment, such as Christmas tree 129, gathering network 146, surface facility 142, and/or the production facility, to measure fluid parameters, such as fluid composition, flow rates, pressures, temperatures, and/or other parameters of the production operation.
- Production may also include injection wells for added recovery.
- One or more gathering facilities may be operatively connected to one or more of the wellsites for selectively collecting downhole fluids from the wells ite(s).
- Figures IB- ID illustrate tools used to measure properties of an oilfield
- the tools may be used in connection with non-oilfield operations, such as gas fields, mines, aquifers, storage or other subterranean facilities.
- non-oilfield operations such as gas fields, mines, aquifers, storage or other subterranean facilities.
- various measurement tools capable of sensing parameters, such as seismic two-way travel time, density, resistivity, production rate, etc., of the subterranean formation and/or its geological formations may be used.
- Various sensors (S) may be located at various positions along the wellbore and/or the monitoring tools to collect and/or monitor the desired data. Other sources of data may also be provided from offsite locations.
- Figures 1A-1D are intended to provide a brief description of an example of a field usable with oilfield application frameworks.
- Part of, or the entirety, of oilfield 100 may be on land, water and/or sea.
- oilfield applications may be utilized with any combination of one or more oilfields, one or more processing facilities and one or more wellsites.
- Figure 2 illustrates a schematic view, partially in cross section of oilfield 200 having data acquisition tools 202.1, 202.2, 202.3 and 202.4 positioned at various locations along oilfield 200 for collecting data of subterranean formation 204 in accordance with implementations of various technologies and techniques described herein.
- Data acquisition tools 202.1-202.4 may be the same as data acquisition tools 106.1-106.4 of Figures 1A-1D, respectively, or others not depicted.
- data acquisition tools 202.1-202.4 generate data plots or measurements 208.1-208.4, respectively. These data plots are depicted along oilfield 200 to demonstrate the data generated by the various operations.
- Data plots 208.1-208.3 are examples of static data plots that may be generated by data acquisition tools 202.1-202.3, respectively; however, it should be understood that data plots 208.1- 208.3 may also be data plots that are updated in real time. These measurements may be analyzed to better define the properties of the formation(s) and/or determine the accuracy of the measurements and/or for checking for errors. The plots of each of the respective measurements may be aligned and scaled for comparison and verification of the properties.
- Static data plot 208.1 is a seismic two-way response over a period of time. Static plot
- the 208.2 is core sample data measured from a core sample of the formation 204.
- the core sample may be used to provide data, such as a graph of the density, porosity, permeability, or some other physical property of the core sample over the length of the core. Tests for density and viscosity may be performed on the fluids in the core at varying pressures and temperatures. Static data plot
- 208.3 is a logging trace that typically provides a resistivity or other measurement of the formation at various depths.
- a production decline curve or graph 208.4 is a dynamic data plot of the fluid flow rate over time.
- the production decline curve typically provides the production rate as a function of time.
- measurements are taken of fluid properties, such as flow rates, pressures, composition, etc.
- Other data may also be collected, such as historical data, user inputs, economic information, and/or other measurement data and other parameters of interest.
- the static and dynamic measurements may be analyzed and used to generate models of the subterranean formation to determine characteristics thereof. Similar measurements may also be used to measure changes in formation aspects over time.
- the subterranean structure 204 has a plurality of geological formations 206.1-206.4. As shown, this structure has several formations or layers, including a shale layer 206.1, a carbonate layer 206.2, a shale layer 206.3 and a sand layer 206.4. A fault 207 extends through the shale layer 206.1 and the carbonate layer 206.2.
- the static data acquisition tools are adapted to take measurements and detect characteristics of the formations.
- oilfield 200 may contain a variety of geological structures and/or formations, sometimes having extreme complexity. In some locations, typically below the water line, fluid may occupy pore spaces of the formations.
- Each of the measurement devices may be used to measure properties of the formations and/or its geological features. While each acquisition tool is shown as being in specific locations in oilfield 200, it will be appreciated that one or more types of measurement may be taken at one or more locations across one or more fields or other locations for comparison and/or analysis.
- the data collected from various sources may then be processed and/or evaluated.
- seismic data displayed in static data plot 208.1 from data acquisition tool 202.1 is used by a geophysicist to determine characteristics of the subterranean formations and features.
- the core data shown in static plot 208.2 and/or log data from well log 208.3 are typically used by a geologist to determine various characteristics of the subterranean formation.
- the production data from graph 208.4 is typically used by the reservoir engineer to determine fluid flow reservoir characteristics.
- the data analyzed by the geologist, geophysicist and the reservoir engineer may be analyzed using modeling techniques.
- Figure 3 A illustrates an oilfield 300 for performing production operations in accordance with implementations of various technologies and techniques described herein.
- the oilfield has a plurality of wellsites 302 operatively connected to central processing facility 354.
- the oilfield configuration of Figure 3 A is not intended to limit the scope of the oilfield application system. Part, or all, of the oilfield may be on land and/or sea. Also, while a single oilfield with a single processing facility and a plurality of wellsites is depicted, any combination of one or more oilfields, one or more processing facilities and one or more wellsites may be present.
- Each wellsite 302 has equipment that forms wellbore 336 into the earth.
- the wellbores extend through subterranean formations 306 including reservoirs 304.
- These reservoirs 304 contain fluids, such as hydrocarbons.
- the wellsites draw fluid from the reservoirs and pass them to the processing facilities via surface networks 344.
- the surface networks 344 have tubing and control mechanisms for controlling the flow of fluids from the wellsite to processing facility 354.
- FIG. 3B illustrates a side view of a marine -based survey 360 of a subterranean subsurface 362 in accordance with one or more implementations of various techniques described herein.
- Subsurface 362 includes seafloor surface 364.
- Seismic sources 366 may include marine sources such as vibroseis or airguns, which may propagate seismic waves 368 (e.g., energy signals) into the Earth over an extended period of time or at a nearly instantaneous energy provided by impulsive sources.
- the seismic waves may be propagated by marine sources as a frequency sweep signal.
- marine sources of the vibroseis type may initially emit a seismic wave at a low frequency (e.g., 5 Hz) and increase the seismic wave to a high frequency (e.g., 80-90Hz) over time.
- the component(s) of the seismic waves 368 may be reflected and converted by seafloor surface 364 (i.e., reflector), and seismic wave reflections 370 may be received by a plurality of seismic receivers 372.
- Seismic receivers 372 may be disposed on a plurality of streamers (i.e., streamer array 374).
- the seismic receivers 372 may generate electrical signals representative of the received seismic wave reflections 370.
- the electrical signals may be embedded with information regarding the subsurface 362 and captured as a record of seismic data.
- each streamer may include streamer steering devices such as a bird, a deflector, a tail buoy and the like, which are not illustrated in this application.
- the streamer steering devices may be used to control the position of the streamers in accordance with the techniques described herein.
- seismic wave reflections 370 may travel upward and reach the water/air interface at the water surface 376, a portion of reflections 370 may then reflect downward again (i.e., sea-surface ghost waves 378) and be received by the plurality of seismic receivers 372.
- the sea-surface ghost waves 378 may be referred to as surface multiples.
- the point on the water surface 376 at which the wave is reflected downward is generally referred to as the downward reflection point.
- the electrical signals may be transmitted to a vessel 380 via transmission cables, wireless communication or the like.
- the vessel 380 may then transmit the electrical signals to a data processing center.
- the vessel 380 may include an onboard computer capable of processing the electrical signals (i.e., seismic data).
- seismic data i.e., seismic data
- surveys may be of formations deep beneath the surface.
- the formations may typically include multiple reflectors, some of which may include dipping events, and may generate multiple reflections (including wave conversion) for receipt by the seismic receivers 372.
- the seismic data may be processed to generate a seismic image of the subsurface 362.
- Marine seismic acquisition systems tow each streamer in streamer array 374 at the same depth (e.g., 5-10m).
- marine based survey 360 may tow each streamer in streamer array 374 at different depths such that seismic data may be acquired and processed in a manner that avoids the effects of destructive interference due to sea-surface ghost waves.
- marine- based survey 360 of Figure 3B illustrates eight streamers towed by vessel 380 at eight different depths. The depth of each streamer may be controlled and maintained using the birds disposed on each streamer.
- Figure 4 illustrates a flowchart of a method 400 for selecting drilling parameters, borehole diameters, etc., e.g., while drilling a wellbore, according to an embodiment.
- the method 400 may account for salt creep.
- the method 400 may be iterative, as the drilling parameters may serve as both input and output.
- Illustrative drilling parameters include borehole depth, borehole diameter, mud weight, and rate of penetration, among others.
- the method 400 may enable the calculation of wellbore diameter as a function of time exposure, using, e.g., two analytical models (such as the Barker and Liu equations, discussed in greater detail below).
- the method 400 may include obtaining an initial salt-creep model of a subterranean domain, as at 402.
- This may be a theoretical model of salt creep based on data collected prior to drilling the well, e.g., from offset wells, seismic surveys, and other sources of information about the subterranean domain, as detailed by way of example above.
- This model may allow for setting or may otherwise inform the setting of initial drilling parameters, as at 404, with such parameters being subject to refinement/calibration by implementation of the present method 400. Further, such setting make take place automatically or through interaction with engineers, operators, etc.
- Drilling parameters may include rate-of-penetration (ROP), casing depth, torque profiles, borehole diameter profile, etc.
- ROP rate-of-penetration
- drilling may commence, and the method 400 may also include receiving drilling measurements, as at 406.
- the drilling measurements may include measurements taken while drilling the wellbore, e.g., using logging-while-drilling (LWD) and/or measuring-while-drilling (MWD) equipment.
- LWD logging-while-drilling
- MWD measuring-while-drilling
- the measurements may also or instead include analyses of cuttings or conducted in the wellbore, which may provide insight into the salt mineralogy and composition of the rock (or salt) in the subterranean domain.
- the measurements received at 406 may be received in real-time, e.g., as the drilling occurs.
- the measurements taken may include any combination or subset of static temperatures and gradients thereof, annular pressures and gradients thereof, weight-on-bit, torque, rate-of- penetration, etc. Further, based on the measurements, the minerealogical composition of the subterranean domain (or portions thereof) may be inferred.
- the method 400 may include generating an exposure time log for a unit of depth (e.g., each meter) drilled in salt, as at 408, e.g., from the beginning of the drilling operation to the estimated casing time that is set during planning. If a reaming operation is applied, the time count may be restarted at the specific depth interval.
- a unit of depth e.g., each meter
- the time count may be restarted at the specific depth interval.
- the method 400 may also include determining vertical and/or deviatoric horizontal stresses in the subterranean domain, as at 410. Based on the stresses and the measurements collected, the method 400 may also include determining a salt compliance model, as at 412, which may be or include an updated salt creep model generated in part based on the initial salt-creep model.
- the salt compliance model may then be calibrated, as at 414.
- the calibration may be iterative, as shown, and may run in real-time, during drilling, until the model converges with measured conditions.
- Such calibration may include determining a torque and drag model and comparing with measured torque behavior over time and/or depth as well the torque off bottom in reaming operation.
- such calibration may employ the time exposure log and the stress computation, as will be described in greater detail below.
- the method 400 may include determining a bore hole diameter profile, as at 416. Such profile may specify bore diameters at depth or time intervals, and may specify total strain as a function of time. Further, the method 400 may include determining a wellbore closure speed profile, as at 418, based on the hole diameter profile. Such wellbore closure speed profile may be specified per depth intervals. The wellbore closure speed may be, for example, the change in hole diameter over the change in time.
- the method 400 may also include determining one or more new drilling parameters (e.g., ROP, RPM, ESD), as at 420.
- the method 400 may include determining hole diameter profiles, as based on this, drilling parameters may be set to control such hole diameters reduction. Further, based on the salt model and the borehole profile, other drilling parameters such as mud density, casing depth, intervals to ream, and rate-of-penetration may also be calculated.
- the provision of such drilling parameters at 420 may also be iterative or may be constrained by pre-existing (e.g., tolerable and/or accomplishable) ranges, e.g., as dictated by equipment on hand, risk, etc.
- the new drilling parameters Once the new drilling parameters are set, they may be fed back as the drilling parameters at 404 for subsequent runs of the method 400, e.g., in real-time during drilling.
- the salt model may be revised either in real-time or off-line based on measurements taken during the drilling process, as at 422. Such revisions may be fed back to the salt model either at 402 or 412, as shown.
- salt rocks also called evaporites
- Several constitutive models are used to simulate the time-dependent deformation under a constant deviatoric stress. This creep behavior may be influenced by the salt layer thickness, formation temperature, mineralogical composition, water content, presence of impurities, and the extent to which differential stresses are applied to the salt body.
- borehole creep using a finite element model that modeled the process while the borehole was excavated in stages.
- a power-law creep model may be used that includes a time-hardening component. The simulations may reveal that during salt movement, the radial and tangential stresses near the borehole decrease with time; however, the tangential stress far away from the borehole wall (at the radial distance of 10 to 20 borehole radii) may increase with time.
- the stress distribution around the wellbore may be approximated as elastic, allowing for the development of an analytical equation to allow engineering calculation at different stress, temperature, and closure -rate combinations.
- This equation is based on steady-state creep of salt formations and can be applied at any stress and temperature combination.
- This analytical equation express the radius of the well as a function of time:
- Equation (1) may be referred to as "Baker's Equation.”
- This solution may be used when designing mud weights, drilling parameters, cement, and casing to control salt creep. However, using finite element simulations, it may be determined that equation (1) overestimates the rate of borehole closure. Field experience has also suggested that the solution generated based on equation (1) produces pessimistic wellbore closure forecasts.
- the parameters are the same as in equation (1).
- the method 400 may thus simulate the salt creep, and thus may begin by building a salt-creep model and determining the input parameters using a predrill model from offset well or laboratory data associated with finite element analysis.
- the method 400 thus allows a comparison between the expected creep and real data to evaluate the real closure rate and define the appropriate model (as at 412) plus the parameters to fit the real behavior of the salt.
- Some variables that define salt creeping are related to deviatoric stresses, temperature, mineralogical composition, and time exposure. During real-time monitoring, these variables may be controlled to provide accurate input for creep calculation. Overburden is updated with a measured or synthetic density log derived from offset wells based on the sonic log, formation temperature is estimated with geothermal gradient from offset wells (preferably those with salt sections that have a temperature measurement with WL tools), mineralogical composition is inferred from LWD logging tools and surface sample description, and time is clocked from the time of drilling each meter and estimating the time until casing is run and cemented.
- some of the salt impurities may be related to sediment inclusions with higher density compared to pure salt. Velocity increases slightly with depth, and the density of rock salt may not show a clear relationship with velocity; therefore, direct correlations may not be applied to define salt density.
- well logs may be reviewed in correlation wells and the density estimated for salt bodies. An empirical relationship may be established or utilized for velocity versus depth from the log data analysis. One way to obtain the density log data is to use the appropriate LWD or WL tools.
- Salt formations may be assumed to have in-situ stresses equal in each direction and those stresses may equal the overburden (isotropic stress state considered). When salt sections are drilled with mud weight equivalent less than salt stresses, the salt may creep.
- Figure 5A illustrates the calculation of an exposure time log, according to an embodiment.
- the drilling time calculation is related to the estimated ROP based on correlation wells with similar conditions and updated with the real data.
- Figure 5A shows the expected exposure time of each meter drilled in salt on the two well sections indicated in Figure 5B.
- the time relation is one input for salt creep estimation (Figure 5C).
- Figure 5C shows the radial closure estimation as a function of time correction exposure, meaning that the behavior of salt creep may be modeled as a function of real drilling progress.
- the prognosis may be estimated using the updated model, and new drilling time estimations (as a function of real ROP and drilling operations).
- Figure 5A shows exposure time for two sections drilled in salt. On the vertical axis, drilled depth is shown, while horizontal axis displays the number of hours that elapsed from drilling to setting casing.
- Line 500 shows exposure time for first section drilled into salt. Because uncertainty in salt creeping velocity, one trip was done to ream drilled interval. After reaming that interval, initial borehole diameter is considered to be same as bit size and exposure time computation is restarted, as indicated by line 501.
- Line 502 shows exposure time for another section drilled in salt after previous casing was set. This graph provides estimated time of exposure for salt sections which is an input parameter to calculate salt creep.
- Figure 5C shows the change in borehole radius at given time for four different depths.
- Line 506 represents borehole radius closure at 3344 m TVD, the model shows that borehole closure is the lowest compared to other intervals (This is caused by lower overburden and lower temperature at shallower depth).
- Line 508 shows that borehole radius closure at 3904 m TVD happens at higher rates compared to shallower intervals.
- a borehole diameter is estimated based on the real and planned mud weight.
- Figures 6A and 6B shows six depths of the salt interval, for both creep methodologies, considering the same input parameters. Borehole diameter is calculated as a function of expected exposure time in a 100% halite interval.
- the Barker equation simulation ( Figure 6A) has more salt movement than is seen in the Von Mises elasto-viscoplastic model ( Figure 6B) with the same input data.
- Figures 8A and 8B show the creep velocity profile expected in the salt sections.
- the creep velocity is independent of time exposure and can be interpreted as a salt property that is a function of the depth. Both creep models assume that the creep velocity is constant with time.
- Figures 8A and 8B show the effect of deviatory stresses and temperature since it is calculated with the same mud weight. As the drilling depth increases, the deviatory stress rises as a function of overburden and the temperature increases as a function of geothermal gradient. The graph shows that creep velocity is higher for intervals which are deeper (caused by higher overburden, higher temperature). The creep velocity is different when comparing the Barker and Liu equations. The Barker equation shows higher salt creep velocity than the Von Mises approach.
- Drilling parameters monitoring is part of the method 400, used to calibrate the creep model.
- a high closure velocity of a hole can cause sticking around a bit or stabilizers, increasing the friction and making it difficult to transfer weight to the bit.
- torsional vibration can be produced and torque off bottom can increase, causing to decrease the ROP.
- Stuck pipe events can also be frequent.
- the torque behavior together with the presence of stick-slip, shocks and vibrations can be used as salt creep indicators during drilling operations.
- the risk of stuck pipe due to differential sticking in interbedded permeable zones such as sands needs to be considered.
- losses there may also be a potential for losses when drilling through massive salt bodies, especially when are using high mud weight to control the creep.
- the losses can be in fractures/salt weld or permeable inclusions in the salt.
- open fractures can be associated with a section of low creep velocity.
- a salt creep model can identify zones with high risk of losses when offset well information is available. The correlation between mud loss events, salt creep model and seismic/geologic interpretation could help identifying the mechanism of losses.
- Salt creep monitoring can be applied in massive salt or in a thin salt layer.
- a thin layer of salt may prove to be more problematic than a massive salt body for drilling operations, because a thin layer might indicate that the salt is highly mobile.
- Temperature may be a variable in the accuracy of the creep model.
- the temperature profile may depend on the shape of the salt body and the regional heat flow.
- a salt sheet may have a different profile from one with a bulbous or canopy shape. The profile may also depend on where the well may penetrate the salt.
- the temperature profile may be estimated through the propagation of the thermal gradient from offset wells. The uncertainty of this methodology is proportional to the number of offset wells and the geological correlation.
- the salt has higher thermal conductivity than shales and sandstones. This thermal property can generate a cooling effect at the base of the salt and a heating effect at the top, influencing the thermal gradient of the adjacent formations.
- the second methodology to determine the temperature profile is a numerical scheme. If there are no measurements available in the area, and the shape of the salt is known, a numerical scheme may model the temperature distribution in and around the salt, considering a steady-state regime.
- the functions described can be implemented in hardware, software, firmware, or any combination thereof.
- the techniques described herein can be implemented with modules (e.g., procedures, functions, subprograms, programs, routines, subroutines, modules, software packages, classes, and so on) that perform the functions described herein.
- a module can be coupled to another module or a hardware circuit by passing and/or receiving information, data, arguments, parameters, or memory contents.
- Information, arguments, parameters, data, or the like can be passed, forwarded, or transmitted using any suitable means including memory sharing, message passing, token passing, network transmission, and the like.
- the software codes can be stored in memory units and executed by processors.
- the memory unit can be implemented within the processor or external to the processor, in which case it can be communicatively coupled to the processor via various means as is known in the art.
- any of the methods of the present disclosure may be executed by a computing system.
- Figure 9 illustrates an example of such a computing system 900, in accordance with some embodiments.
- the computing system 900 may include a computer or computer system 901 A, which may be an individual computer system 901 A or an arrangement of distributed computer systems.
- the computer system 901 A includes one or more analysis module(s) 902 configured to perform various tasks according to some embodiments, such as one or more methods disclosed herein. To perform these various tasks, the analysis module 902 executes independently, or in coordination with, one or more processors 904, which is (or are) connected to one or more storage media 906.
- the processor(s) 904 is (or are) also connected to a network interface 907 to allow the computer system 901 A to communicate over a data network 909 with one or more additional computer systems and/or computing systems, such as 901B, 901C, and/or 90 ID (note that computer systems 90 IB, 901C and/or 90 ID may or may not share the same architecture as computer system 901 A, and may be located in different physical locations, e.g., computer systems 901A and 901B may be located in a processing facility, while in communication with one or more computer systems such as 901 C and/or 90 ID that are located in one or more data centers, and/or located in varying countries on different continents).
- additional computer systems and/or computing systems such as 901B, 901C, and/or 90 ID
- computer systems 90 IB, 901C and/or 90 ID may or may not share the same architecture as computer system 901 A, and may be located in different physical locations, e.g., computer systems 901A and 901B may
- a processor can include a microprocessor, microcontroller, processor module or subsystem, programmable integrated circuit, programmable gate array, or another control or computing device.
- the storage media 906 can be implemented as one or more computer-readable or machine-readable storage media. Note that while in the example embodiment of Figure 9 storage media 906 is depicted as within computer system 901 A, in some embodiments, storage media 906 may be distributed within and/or across multiple internal and/or external enclosures of computing system 901 A and/or additional computing systems.
- Storage media 906 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), BLU- RAY ® 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), BLU- RAY ® disk
- Such computer- readable or machine -readable storage medium or media is (are) considered to be part of an article (or article of manufacture).
- An article or article of manufacture can refer to any manufactured single component or multiple components.
- the storage medium or media can be located either in the machine running the machine-readable instructions, or located at a remote site from which machine-readable instructions can be downloaded over a network for execution.
- computing system 900 contains one or more creep modelling module(s) 908.
- computer system 901A includes the creep modelling module 908.
- a single creep modelling module may be used to perform some or all aspects of one or more embodiments of the methods.
- a plurality of creep modelling modules may be used to perform some or all aspects of methods.
- computing system 900 is only one example of a computing system, and that computing system 900 may have more or fewer components than shown, may combine additional components not depicted in the example embodiment of Figure 9, and/or computing system 900 may have a different configuration or arrangement of the components depicted in Figure 9.
- the various components shown in Figure 9 maybe 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 steps in the processing methods described herein may be implemented by running one or more functional modules in information processing apparatus such as general purpose processors or application specific chips, such as ASICs, FPGAs, PLDs, or other appropriate devices.
- information processing apparatus such as general purpose processors or application specific chips, such as ASICs, FPGAs, PLDs, or other appropriate devices.
- Geologic interpretations, models and/or other interpretation aids may be refined in an iterative fashion; this concept is applicable to embodiments of the present methods discussed herein.
- This can include use of feedback loops executed on an algorithmic basis, such as at a computing device (e.g., computing system 900, Figure 9), and/or through manual control by a user who may make determinations regarding whether a given step, action, template, model, or set of curves has become sufficiently accurate for the evaluation of the subsurface three-dimensional geologic formation under consideration.
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Abstract
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Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US16/330,753 US20190227192A1 (en) | 2016-09-07 | 2017-09-07 | Drilling Geomechanics Salt Creep Monitoring |
| CA3035908A CA3035908A1 (en) | 2016-09-07 | 2017-09-07 | Drilling geomechanics salt creep monitoring |
| GB1904529.3A GB2569481A (en) | 2016-09-07 | 2017-09-07 | Drilling geomechanics salt creep monitoring |
| NO20190314A NO20190314A1 (en) | 2016-09-07 | 2019-03-07 | Drilling geomechanics salt creep monitoring |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201662384361P | 2016-09-07 | 2016-09-07 | |
| US62/384,361 | 2016-09-07 |
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| WO2018049055A2 true WO2018049055A2 (en) | 2018-03-15 |
| WO2018049055A3 WO2018049055A3 (en) | 2018-07-12 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2017/050523 Ceased WO2018049055A2 (en) | 2016-09-07 | 2017-09-07 | Drilling geomechanics salt creep monitoring |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US20190227192A1 (en) |
| CA (1) | CA3035908A1 (en) |
| GB (1) | GB2569481A (en) |
| NO (1) | NO20190314A1 (en) |
| WO (1) | WO2018049055A2 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2019232395A1 (en) * | 2018-05-31 | 2019-12-05 | Saudi Arabian Oil Company | Salt mobility assessment and review technique (smart) for exploratory wells |
Families Citing this family (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11790320B2 (en) * | 2020-06-25 | 2023-10-17 | Schlumberger Technology Corporation | Approaches to creating and evaluating multiple candidate well plans |
| CN112257280B (en) * | 2020-10-29 | 2023-04-07 | 桂林电子科技大学 | Liquid-solid phase continuous form prediction method for reflow soldering BGA group soldering points |
| US12162051B2 (en) | 2021-04-28 | 2024-12-10 | Henry Crichlow | Disposal of high-level waste into deep salt formations |
| CN114791484B (en) * | 2022-04-12 | 2023-09-19 | 石家庄铁道大学 | Method for determination of creep rate in underground salt caverns |
| CN119985251B (en) * | 2025-01-20 | 2025-11-07 | 太原理工大学 | Methods for predicting rock permeability in the elastic-viscoelastic-viscoplastic deformation stage |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB2354852B (en) * | 1999-10-01 | 2001-11-28 | Schlumberger Holdings | Method for updating an earth model using measurements gathered during borehole construction |
| US8885440B2 (en) * | 2007-01-05 | 2014-11-11 | Madhumita Sengupta | Constructing velocity models near salt bodies |
| CN103959100A (en) * | 2011-10-03 | 2014-07-30 | 兰德马克绘图国际公司 | Enhanced 1-D method for prediction of mud weight window for subsalt well sections |
| RU2640324C2 (en) * | 2013-12-17 | 2017-12-27 | Халлибертон Энерджи Сервисез Инк. | Calibration of drilling modelling including evaluation of stretch and twist of drill string |
| GB2538469B (en) * | 2014-05-30 | 2020-08-05 | Halliburton Energy Services Inc | Methods for formulating a cement slurry for use in a subterranean salt formation |
-
2017
- 2017-09-07 WO PCT/US2017/050523 patent/WO2018049055A2/en not_active Ceased
- 2017-09-07 GB GB1904529.3A patent/GB2569481A/en not_active Withdrawn
- 2017-09-07 US US16/330,753 patent/US20190227192A1/en not_active Abandoned
- 2017-09-07 CA CA3035908A patent/CA3035908A1/en not_active Abandoned
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2019
- 2019-03-07 NO NO20190314A patent/NO20190314A1/en not_active Application Discontinuation
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2019232395A1 (en) * | 2018-05-31 | 2019-12-05 | Saudi Arabian Oil Company | Salt mobility assessment and review technique (smart) for exploratory wells |
| US11078786B2 (en) | 2018-05-31 | 2021-08-03 | Saudi Arabian Oil Company | Salt mobility assessment and review technique (smart) for exploratory wells |
Also Published As
| Publication number | Publication date |
|---|---|
| GB2569481A (en) | 2019-06-19 |
| CA3035908A1 (en) | 2018-03-15 |
| NO20190314A1 (en) | 2019-03-07 |
| US20190227192A1 (en) | 2019-07-25 |
| WO2018049055A3 (en) | 2018-07-12 |
| GB201904529D0 (en) | 2019-05-15 |
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