WO2022020441A1 - Estimation of objective driven porous material mechanical properties - Google Patents
Estimation of objective driven porous material mechanical properties Download PDFInfo
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- WO2022020441A1 WO2022020441A1 PCT/US2021/042530 US2021042530W WO2022020441A1 WO 2022020441 A1 WO2022020441 A1 WO 2022020441A1 US 2021042530 W US2021042530 W US 2021042530W WO 2022020441 A1 WO2022020441 A1 WO 2022020441A1
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
- G01N27/02—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating impedance
- G01N27/04—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating impedance by investigating resistance
- G01N27/06—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating impedance by investigating resistance of a liquid
- G01N27/07—Construction of measuring vessels; Electrodes therefor
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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
- E21B49/02—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 by mechanically taking samples of the soil
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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
- E21B47/00—Survey of boreholes or wells
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N15/00—Investigating characteristics of particles; Investigating permeability, pore-volume or surface-area of porous materials
- G01N15/08—Investigating permeability, pore-volume, or surface area of porous materials
- G01N15/088—Investigating volume, surface area, size or distribution of pores; Porosimetry
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
- G01N27/26—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
- G01N27/416—Systems
- G01N27/42—Measuring deposition or liberation of materials from an electrolyte; Coulometry, i.e. measuring coulomb-equivalent of material in an electrolyte
- G01N27/44—Measuring deposition or liberation of materials from an electrolyte; Coulometry, i.e. measuring coulomb-equivalent of material in an electrolyte using electrolysis to generate a reagent, e.g. for titration
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N29/00—Investigating or analysing materials by the use of ultrasonic, sonic or infrasonic waves; Visualisation of the interior of objects by transmitting ultrasonic or sonic waves through the object
- G01N29/04—Analysing solids
- G01N29/07—Analysing solids by measuring propagation velocity or propagation time of acoustic waves
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2203/00—Investigating strength properties of solid materials by application of mechanical stress
- G01N2203/0058—Kind of property studied
- G01N2203/0069—Fatigue, creep, strain-stress relations or elastic constants
- G01N2203/0075—Strain-stress relations or elastic constants
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2291/00—Indexing codes associated with group G01N29/00
- G01N2291/02—Indexing codes associated with the analysed material
- G01N2291/028—Material parameters
- G01N2291/02827—Elastic parameters, strength or force
Definitions
- An embodiment of a method of estimating a material mechanical property of a porous material, for an application or objective with a specific application frequency and application strain amplitude includes estimating an application frequency and an application strain amplitude for use in a targeted application or objective, and constructing a frequency transfer function based on measurement data acquired using measurement signals having a measurement frequency range and a measurement strain amplitude, the frequency transfer function relating the material mechanical property to measurement frequencies, the measurement frequency range including a measurement frequency different from the application frequency.
- the method also includes constructing a strain amplitude transfer function based on the measurement data, the strain amplitude transfer function relating the material mechanical property at the measurement strain amplitude and the material mechanical property at the application strain amplitude, the measurement strain amplitude different from the application strain amplitude, deriving the material mechanical property from the frequency transfer function using the application frequency, and predicting the material mechanical property from the strain amplitude transformation function using the derived material mechanical property.
- An embodiment of a system for estimating a material mechanical property of a subterranean material, for an application or objective with a specific application frequency and application strain amplitude includes a processing device configured to determine an estimated application frequency and an estimated application strain amplitude for use in a targeted application or objective, the processing device configured to receive measurement data acquired using measurement signals having a measurement frequency range and a measurement strain amplitude.
- the processing device is configured to construct a frequency transfer function based on the measurement data, the frequency transfer function relating the material mechanical property to measurement frequencies, the measurement frequency range including a measurement frequency different from the application frequency.
- the processing device is also configured to constructing a strain amplitude transfer function based on the measurement data, the strain amplitude transfer function relating the material mechanical property at the measurement strain amplitude and the material mechanical property at the application strain amplitude, the measurement strain amplitude different from the application strain amplitude.
- the processing device is further configured to derive the material mechanical property from the frequency transfer function using the application frequency, and predict the material mechanical property from the strain amplitude transformation function using the derived material mechanical property.
- Figure l is a side cross-sectional view of an embodiment of a drilling and/or measurement system
- Figure 2 depicts aspects of an embodiment of a method of estimating subterranean material properties
- Figure 3 depicts an example of dependence of a rock mechanical property on frequency and strain amplitude
- Figure 4 is a strain amplitude-frequency map that illustrates differences in conditions and measurement parameters used in performing measurements (e.g., rock deformation, seismic, sonic, and ultrasonic measurements) for various applications;
- Figure 5 depicts an example of stress-strain curves used to construct a correlation between material properties;
- Figure 6 depicts an example of a correlation function constructed based on the stress-strain curves of Figure 5;
- Figure 7 is a flow chart depicting an embodiment of a method of predicting a subterranean material property
- Figure 8 depicts an example of a wave velocity function derived based on the method of Figure7;
- Figure 9 depicts an embodiment of a method of generating a frequency transfer function
- Figure 10 depicts an example of frequency transfer functions
- Figure 11 depicts an example of a strain amplitude transfer function
- Figure 12 depicts an example of frequency transfer functions
- [0018] 13 illustrates an example of generation of a strain amplitude transfer function and derivation of a mechanical property therefrom
- Figure 14 illustrates an example of wave velocities calculated according to the method of Figure 12.
- Figure 15 depicts an example of wave velocities calculated according to embodiments described herein.
- the systems and methods described herein provide for predicting or estimating material properties of porous media, such as mechanical properties, at a frequency and deformation (strain) amplitude used in an application, from subterranean measurements (e.g., logs) or surface measurements (e.g., laboratory testing).
- the material properties include objective-driven or application-driven porous media mechanical properties, such as frequency-dependent formation mechanical properties (e.g., Young’s modulus, rock strength) from downhole logs or laboratory testing.
- Frequency dependent material properties include mechanical properties of a subterranean material that are affected by the parameters of seismic, sonic, ultrasonic signals and/or an operation applied to the material when performing measurements and/or during the application.
- An embodiment of a method includes initially determining parameters used in an application that is being performed and/or planned, such as by using a frequency- amplitude space map.
- Various frequencies and deformation (strain) amplitudes are selected, where at least one of the frequencies is a frequency used in an application (e.g., drilling, hydraulic fracturing, sanding) for predicting the mechanical property (an application frequency Fa), and one of the frequencies is a frequency used to measure a material property under a laboratory and/or subterranean measurement condition (a measurement frequency Fm).
- Various measurement frequencies Fm and amplitudes (Am) are selected and used to determine material properties at application conditions.
- the method also includes constructing a transformation function based on measurements that relates material properties measured under different frequency conditions.
- the material properties include at least a first property and a second property (e.g., a so- called static property measured at very low frequency and a so-called dynamic property measure at high frequency).
- An example of a transformation function is a correlation function that relates a static mechanical property and a dynamic mechanical property.
- the correlation is objective or application driven, in that the type of application or objective (i.e., frequency Fa and strain amplitude (Aa) associated with the application or objective) is considered when building the correlation. It is noted that Fa and Aa for a given application may be the same or different than Fm and Am used in measurements.
- Subterranean measurements are performed using a specific frequency (measurement frequency) or other measurement parameter.
- the transformation function is adjusted using the subterranean measurements.
- different frequencies or other measurement parameters used during the different measurements e.g., downhole measurement parameters and laboratory measurement parameters
- the second material property e.g., wave velocity or Young’s modulus
- application parameters e.g., frequency and/or amplitude
- adjustment of the transformation function includes calculating a first wave velocity function from surface (e.g., laboratory) measurements performed on a material using the various frequencies and when the material is in various conditions, such as fluid saturation conditions.
- the various conditions include at least a first condition (a surface or laboratory condition) such as a dry condition, and a second condition (a downhole or subterranean condition) such as a saturated condition or other condition of the material as encountered during the operation.
- the first wave velocity function describes wave velocity at various frequencies and conditions based on surface (e.g., laboratory) measurements.
- Subterranean (e.g., downhole) acoustic measurements are performed and applied to the first wave function to shift or otherwise adjust the first wave velocity function to a second wave velocity function.
- the adjusted wave velocity function can be used to predict the material property used in an application with a specific frequency and strain amplitude.
- Embodiments described herein provide a number of advantages and technical effects.
- Embodiments described herein provide an application-driven approach to estimating material properties at an operational frequency and strain amplitude, by generating correlation functions specific to a type of application. As a result, material properties associated with an application at a given frequency and strain amplitude can be accurately predicted.
- Step a of Figure 2 discussed below is the determination of rock mechanical properties from surface laboratory triaxial (static) and laboratory ultrasonic (dynamic) measurements
- a second step e.g., Step b of Figure 2 discussed below
- Step b of Figure 2 is to construct a laboratory dynamic and laboratory static rock mechanical property transformation and apply it directly to downhole logging (dynamic) measurements to derive the static mechanical properties to be used during various applications.
- the frequency and deformation amplitude of subterranean materials under an application are often different than that used in the laboratory measurements and/or downhole logging measurements.
- the system 10 is a downhole drilling and/or measurement system 10, components of which are disposed in a borehole 12. It is noted that the embodiment is described as a drilling system for illustrative purposes, and is not intended to be limiting. Embodiments described herein may be applicable to any of a variety of applications, including applications performed at or near the surface and/or downhole processes. Examples of surface applications include quarrying, rock sculpting and blasting, demolishing a construction and others. Examples of downhole or subterranean applications include drilling, stimulation (e.g., fracturing), fluid injection, production and others.
- stimulation e.g., fracturing
- a drill string 14 is disposed in the borehole 12, which penetrates at least one earth formation 16.
- the borehole 12 is shown in FIG. 1 to be of constant diameter, the borehole is not so limited.
- the borehole 12 may be of varying diameter and/or direction (e.g., azimuth and inclination).
- the drill string 14 is made from, for example, a pipe or multiple pipe sections.
- the system 10 and/or the drill string 14 include a drilling assembly 18.
- Various measurement tools may be incorporated into the system 10 to affect measurement regimes such as wireline measurement or logging-while-drilling (LWD).
- the drilling assembly 18 which may be configured as a bottomhole assembly (BHA), includes a drill bit 20 and is configured to be conveyed into the borehole 12 from a drilling rig 22.
- the drilling assembly includes a coring assembly configured to obtain core samples of the formation 16.
- one or more downhole components include sensor devices 24 configured to measure various parameters of the formation and/or borehole.
- one or more parameter sensors are configured for formation evaluation measurements relating to the formation, borehole, geophysical characteristics and/or borehole fluids.
- These sensors may include formation evaluation sensors (e.g., gamma ray, borehole caliper, resistivity, dielectric constant, neutron porosity, sonic, and density), sensors for measuring geophysical parameters (e.g., sonic velocity or travel time), and sensors for measuring borehole fluid parameters (e.g., resistivity, viscosity, density, clarity, rheology, and pH level).
- one or more of the sensors are configured to perform formation material measurements based on sonic and/or seismic measurements.
- a sonic measurement device or tool 24 is deployed downhole and used to emit acoustic signals having a selected frequency, detect reflected waves as measurement signals, and estimate material properties such as strength, density, porosity, Young’s modulus, bulk modulus and others.
- Properties of the measurement signals such as sonic velocity are related to mechanical properties of formation material (e.g., rock) such as elastic moduli (e.g., Young’s modulus) at the measurement frequency and strain amplitude.
- the drilling assembly 18 and sensor devices 24 are configured to communicate with one or more processors, such as a downhole electronics unit 26 and/or a surface processing unit 28.
- the processor(s) may receive data and communication signals from the downhole components and/or transmit control signals to the components. Signals and data may be transmitted via any suitable transmission device or system, such as a cable 30. Other techniques used to transmit signals and data include wired pipe, electric and/or fiber optic connections, mud pulse, electromagnetic and acoustic telemetry.
- the processor or processors are configured to receive data and predict material property as described herein.
- the surface processing unit 28, the sensor devices 24 and/or other components may also include components as necessary to provide for storing and/or processing data collected from various sensors therein.
- the surface processing unit 28 includes a processor 32, a data storage device (or a computer-readable medium) 34 for storing, data, models and/or computer programs or software 36.
- the surface processing unit 28 or other processing device is configured to predict a material property based on building a transformation function, such as a correlation function, that relates a first material property to a second material property, matching the measurement to application frequency.
- the material may be rock, subterranean materials, etc.
- the first material property is a dynamic mechanical property such as dynamic Young’s modulus
- the second material property is a static mechanical property such as static Young’s Modulus.
- Other mechanical properties that can be predicted include confined compressive strength, tensile strength and others.
- Embodiments described herein provide a methodology of obtaining application objective-driven material (e.g., mechanical) properties.
- An objective driven material property is a property of a material that can behave differently or have different values depending on a targeted specific application.
- Embodiments are described herein in the context of porous media mechanical properties, including frequency-dependent formation mechanical properties (e.g., Young’s modulus, rock strength). The embodiments are not so limited, as they can be applied to any of various mechanical properties that can be measured on surface or estimated using downhole measurements.
- the embodiments provide methods for predicting a material property or properties, which include generating or acquiring a transformation function between material properties based on test measurements, which may include surface measurements and/or downhole measurements.
- the transformation function is a correlation function that relates two different mechanical properties, such as static and dynamic Young’s modulus.
- test measurements refer to measurement data acquired prior to application. The test measurements are used to build the transformation function.
- the transformation function represents a correlation or relationship between at least two material properties (a first property and a second property), such as a dynamic mechanical property and a static mechanical property.
- the transformation function is used to predict the second material property.
- the method includes developing a wave velocity function based on test measurements, transforming the wave velocity function based on application conditions, and estimating the second property from the transformed or adjusted wave velocity function.
- the estimated first property is then applied to the transformation function to derive the second material property for a targeted specific application with a specific application frequency and strain amplitude.
- Figure 2 is a block diagram representing general aspects of a method of estimating a material property. The method is discussed in conjunction with blocks 51-53, which represent various measurements, data and information considered when making a material property prediction.
- the method is based on the specific operation or objective for which the prediction is performed based on the operational frequency and strain amplitude.
- an operation is intended to describe any objective or process for which material property predictions are useful.
- the operations may be surface operations or subterranean operations. Examples of surface operations include quarrying rocks or other material, tunneling rock formations or other subterranean regions, rock sculpturing, evaluating construction foundations (e.g., for buildings, bridges, dams, etc.) and demolition of constructions.
- Examples of subterranean operations include evaluating a formation (e.g., evaluating formation subsidence, sanding potentials with different reservoirs (gas, oil, and water)), drilling, borehole evaluations (e.g., stability), perforation, stimulation (e.g., fracturing, acid injection, etc.).
- Other operations that may be applicable include, drilling a well with different reservoirs (gas, oil, water), evaluating wellbore stability (with water/oil based muds inside the borehole), designing a fracturing job with different fluids, designing a perforation job, designing sanding controls, etc.
- material property information is acquired from surface and subterranean (e.g., downhole) measurements (block 52) in which the test measurement frequencies may be different from the operational frequency for a specific application objective (block 51).
- surface and/or subsurface measurements are used to derive a correlation between a first material property at a measurement frequency (Fm) and amplitude (Am) and a second material property at an application frequency (Fa) and amplitude (Aa).
- Fm measurement frequency
- Am amplitude
- Aa amplitude
- surface laboratory data is collected from core samples to determine stress properties and derive a correlation function between material properties.
- various rock mechanical properties can be derived from tests at test measurement frequencies and amplitudes.
- the material properties include mechanical properties that are frequency-dependent. Examples of such properties include elastic properties such as Young’s modulus, shear modulus, bulk modulus, Poisson’s ratio, Biot’s coefficient, and inelastic properties such as material strength, failure parameters and fracture properties (e.g., fracture size, number, gradient, etc.)
- Figure 2 shows aspects of a conventional workflow representing a conventional method of predicting material properties.
- the conventional workflow includes a first step (Step a) of determining rock mechanical properties and/or correlations between measurements and rock mechanical properties.
- a second step (Step b) includes applying determined rock mechanical properties and/or correlations to various applications (shown in block 51).
- the conventional workflow may include measuring dynamic mechanical properties in a lab at an ultrasonic frequency, measuring static mechanical properties in a lab at a lower frequency, building a static-dynamic property transform or transforms, and extracting static mechanical properties.
- lab measurements of static mechanical properties are directly used in an application without considering the effects of frequency and strain amplitude.
- incorrect static mechanical values may be derived from the transform(s), because they do not account for effects of frequencies on dynamic mechanical properties.
- Embodiments and methods described herein address the above deficiencies and are based on that recognition that rock mechanical properties used for targeted applications should depend on the application frequency (Fa) and strain amplitude (Aa), which may or may not be the same as the measurement frequency (Fm) and strain amplitude (Am) used in establishing the frequency and strain amplitude transform relationships. Therefore, the effect of frequency and amplitude is considered when determining rock mechanical properties for specific applications.
- Fa application frequency
- Aa strain amplitude
- Am strain amplitude
- Rock mechanical properties used for targeted applications depend on the application frequency (Fa) and strain amplitude (Aa), which may or may not be the same as the measurement frequency (Fm) and strain amplitude (Am) used in establishing the frequency and strain amplitude transform relationships. Therefore, effect of frequency and amplitude is considered when determining rock mechanical properties for specific applications.
- An embodiment of an objective driven workflow is described with reference to Figure 2.
- the objective driven workflow includes a number of steps, denoted Step 1, Step 2, Step 3, and Step 4. It is noted that all of the steps may be performed in the order described or in a different order. In addition, the objective driven workflow may exclude one or more of the steps and/or include additional steps.
- Step 1 rock mechanical properties are measured using one or more of various different techniques with various measurement frequencies (Fm) and associated strain amplitudes (Am).
- Fm measurement frequencies
- Am strain amplitudes
- Such techniques include, for example, lab static measurements, lab dynamic measurements, downhole logging, seismic measurements and others.
- a correlation or transform function may be built based on the measurements at Step 1, which relates rock mechanical properties to Fm and Am.
- An example of a transform function is shown in Figure 3, which indicates the dependence of a rock mechanical property on frequency and strain amplitude.
- the application frequency (Fa) and strain amplitude (Aa) for a target objective or application is determined.
- the target application include wellbore stability, hydraulic fracturing design, drill bit design, subsurface subsidence and other applications.
- rock mechanical properties that correspond to the determined Aa and Fa are derived from the correlation or transform function.
- the transform function of Figure 3 provides a value of a rock mechanical property (e.g., point E) that corresponds to the determined Aa and Fa.
- the derived rock properties are applied to the target application or objective.
- the method accounts for the observation that the frequency or frequency range (i.e., frequency of acoustic, or other measurement signal, or operations) that is useful for estimating a material property can depend on factors such as the measurement mode (e.g., frequency of acoustic signals), conditions of the material, and the objective for which the material property is being estimated.
- the measurement mode e.g., frequency of acoustic signals
- the objective for which the material property is being estimated can depend on factors such as the measurement mode (e.g., frequency of acoustic signals), conditions of the material, and the objective for which the material property is being estimated.
- Figure 4 depicts a frequency-amplitude space map 60 that illustrates how performed measurements of rock mechanical properties (e.g., lab measurements and/or downhole measurements) can have frequencies that are different than the frequencies used in applications.
- rock mechanical properties e.g., lab measurements and/or downhole measurements
- Measurements can be performed on the surface and/or downhole.
- the frequency and strain amplitude used in various measurements are called measurement frequency (Fm) and strain amplitude (Am). These measurements are used to build the transformation functions and thereafter used to derive rock mechanical properties used in various applications at selected application frequencies (Fa) and strain amplitudes (Aa).
- Fm measurement frequency
- Am strain amplitude
- dynamic measurements refer to measurements performed at higher frequencies, with no consideration with respect to amplitude
- Fa and Aa are different in various applications, such as wellbore stability evaluation, hydraulic fracturing design, drill bit design, subsurface subsidence, etc. Fa and Aa may be the same as or different from Fm and Am
- the frequency-amplitude space 60 shows how measurements performed for different applications encountered in the industry have different frequencies and strain amplitudes.
- measurements performed may have different frequencies depending on the types of measurements (e.g., sonic downhole logging, ultrasonic laboratory testing).
- rock mechanical properties for application in drilling evaluation and/or drill bit design employs frequencies Fa of about 0.1-3 Hz (shown graphically as sub- space 61), while the frequencies Fa for borehole stability evaluation are in the range of about 10 5 -10 6 Hz (shown as sub-space 62).
- Young’s modulus (YM) is used for both subsidence analysis and hydraulic fracturing design, whose frequencies and strain amplitudes are different.
- estimations of YM for subsidence analysis or evaluation employs frequencies Fa of about 10 12 -10 u Hz and strain amplitudes of around about 0.01 (shown as sub-space 63).
- estimations of YM for fracturing design employs frequencies Fa of about 0.1-0.5 Hz and strain amplitudes of about 0.1-0.5 (shown as sub-space 64). It is expected that formation strength and Young’s modulus will be different when interacting with external forces with different frequencies and strain amplitudes.
- Rock mechanical properties are commonly derived from laboratory deformation measurements, in which the frequency Fm range is from 10 7 to 10 4 (see sub-space 65), which is different from those used in laboratory ultrasonic test measurement (sub-space 66), seismic measurements (sub-space 67), and downhole logging measurements (sub-space 68).
- formation mechanical properties should be derived or measured under a specific frequency or frequency range, and under a specific strain amplitude or amplitude range.
- Figures 5 and 6 illustrate an example of current practice in the industry of generating a correlation or transform function.
- the correlation function relates the so-called lower frequency static Young’s modulus (E s ) and the higher frequency dynamic Young’s modulus (Ed) of a formation material.
- E s lower frequency static Young’s modulus
- Ed dynamic Young’s modulus
- the correlation function can be built to relate a variety of material and/or mechanical properties.
- the static Young’s modulus is determined by measured stress-strain data, such as stress-strain data 70 measured on a core sample in a rock mechanics laboratory.
- the stress-strain data 70 includes a radial strain curve 72 and an axial strain curve 74.
- the lower frequency so-called static Young’s modulus, E s in this example, is computed at 50% of the peak strength, represented by point 76.
- the higher frequency so- called dynamic Young’s modulus (E d ) can be calculated from downhole sonic and density logs or laboratory ultrasonic wave velocity measurements on core samples.
- the dynamic Young’s modulus can be calculated based on the following equation: [0064] Where E d is the dynamic Young’s modulus, V P and V s are the compression (P) and shear ( S) wave velocities measured from downhole logging tools or laboratory ultrasonic experiments, respectively, and p is the bulk density of the formation or rock samples.
- Figure 6 shows an example of a correlation function illustrated as a function of static and dynamic Young’s modulus.
- the correlation function is built based on ultrasonic measurements performed in a laboratory on core samples.
- a correlation function is derived by plotting measurement data on a graph 80.
- the measurement data is shown as data points 82, from which a correlation function 84 is derived, which in this example is a linear function.
- Figure 7 illustrates aspects of an embodiment of a computer-implemented method 100 of predicting a material property such as a rock or other material mechanical property.
- the method 100 may be performed by a processor or processors (e.g., the downhole electronics unit 26 and/or the surface processing unit 28), either exclusively or in conjunction with a human operator.
- the method 100 is discussed in conjunction with the system of FIG. 1, but can be performed by any suitable processing device or system.
- the method 100 includes a plurality of stages or steps represented by blocks 101-107, all of which can be performed sequentially. However, in some embodiments, one or more of the stages can be performed in a different order than that shown or fewer than the stages shown may be performed.
- the method 100 provides for predicting the static Young’s moduli profile from downhole logs, but can be applied to any desired mechanical or material property at any desired frequency and strain amplitude, based on target application(s).
- the method 100 is discussed in conjunction with a drilling operation, however the method is applicable to any desired application.
- a correlation function relating a first material property and a second material property of a subterranean material is generated or acquired.
- the correlation function is based on test measurements performed at the surface (e.g., laboratory core measurements) and/or downhole (during previous phases of the operation and/or during another operation performed at the same or similar location, and/or during an operation performed in a similar formation).
- the correlation function 84 is generated from test measurement data acquired by lab triaxial tests and ultrasonic measurements of core samples of subterranean material.
- the correlation function relates a static material property to a dynamic material property.
- a static property refers to a property that is measured at very low frequency once equipment is installed in place, such as rock strength, hardness, etc.
- a dynamic property may change with frequency due to interactions between downhole components and formation materials, fluid circulation and other factors.
- the correlation function is described below in the context of predicting static Young’s modulus based on a correlation between the dynamic Young’s modulus and the static Young’s modulus, but is not so limited.
- the correlation function 84 between surface derived (i.e., lab- derived) static and dynamic Young’s moduli for a material or materials is first built through performing laboratory tests on core samples under a first condition, e.g., a dry condition at room temperature.
- the tests are based on, for example, acoustic measurements having at least one test measurement parameter.
- the test measurement parameter includes a frequency of ultrasonic signals.
- the result is a correlation between the static Young’s modulus (E s ) and the dynamic Young’s modulus (Ed)
- a wave velocity function Viabif) based on test measurements is generated by measuring wave velocity at various frequencies and conditions.
- the velocity function Viabif) describes the wave velocity as a function of frequency (i.e., Viab ftfrequency )) at various material conditions.
- the material condition includes at least one test condition, such as a dry condition (i.e., no significant fluid in the material pore structure), and at least one subterranean condition, such as a fully or partially saturated condition.
- the wave velocity function Viabif also describes the wave velocity at various frequencies.
- the frequencies include at least one test frequency Fm, such as an ultrasonic or other acoustic frequency typically used in testing environments (e.g., laboratories).
- the frequencies also include at least one other frequency, i.e., measurement frequency or frequencies Fm used to perform downhole measurements and/or the application frequency Fa due to downhole component movement (e.g., rotational rate and/or vibration) during an application.
- the velocity function Viabif) is based on wave velocities and at conditions including a dry condition, and conditions in which the core sample is saturated with fresh water (FW), 2% brine, 20% brine and oil, respectively.
- the wave velocity V under such frequencies and conditions may be measured from core samples, or considered to be known based on pre-existing information.
- Viabif An example of the Viabif function is shown in Figure 8 as line 200.
- the Viabif) function is constructed based on velocities measured at a low frequency (LF), one or more medium frequencies (MF) and a high frequency (HF).
- the high frequency HF is an ultrasonic or other acoustic wave frequency typically used in testing environments.
- the medium frequency MF is at a frequency at which a downhole logging tool operates (e.g., about 20 kHz), the high frequency HF is an ultrasonic frequency (e.g., about 1000 kHz) used in surface tests, and the low frequency LF is a lower surface test frequency.
- the Viabif) function is derived from test measurements performed at various frequencies when the core sample is under one or more conditions expected to be encountered downhole, such as saturation conditions.
- wave velocities V HF, s at,Lab are measured based on test measurements using a high frequency HF in a laboratory on a sample under a saturated condition (Sat).
- wave velocities V MF, s at,Lab are measured based on test measurements using one or more medium frequencies MF.
- Wave velocities Vn.s mj.nh associated with a low frequency LF or other operating frequency can be directly measured or derived from the Viabif) function.
- the surface-derived velocity function Viabif is shifted or otherwise adjusted based on downhole measurements (e.g., logging measurements). For example, downhole wave velocity measurements (V/ og ) taken at a frequency are compared to wave velocity measurements according to the Viabif) function, and the Viabif) function is shifted, e.g., as shown in Figure 7, to a wave velocity function Voownhoieif) ⁇
- This function is also referred to as a “frequency transfer” function or a “frequency transformation” function
- the wave velocity VLF , R ese rv oi r which represents the wave velocity at a downhole measurement frequency and a subterranean condition (e.g., saturated), is derived from the VDownhoie(f) function.
- the wave velocity VLF, Reservoir at the low frequency LF is derived from the VDownhoie(f) function, shown as line 202.
- the wave velocity VLF, Reservoir which is associated with the saturated condition, is transformed into a wave velocity value VLF, Dry, Re ervoir under the test condition (e.g., dry).
- the wave velocity VLF, Dry, Reservoir is derived using a fluid substitution model, or other model or simulation.
- An example of such as model is a Gassmann fluid substitution model.
- Vpo the wave velocity at the dry condition
- S shear wave velocity at the dry condition
- P and S wave velocities Vp and Vs at a downhole condition can be represented as:
- G and K ⁇ r are the shear and bulk modulus of the rock frame at the dry condition
- Km and Rm are the bulk modulus and density of fluid in the rock
- p B and p s are the rock bulk density and solid material density
- K s is the bulk modulus of the solid material
- f is the porosity.
- the wave velocity VLF, Dry, Reservoir (at the low frequency under the dry condition) is used to determine the wave velocity under the dry condition at the high frequency (e.g., test frequency).
- This wave velocity denoted as VHF, Dry, Reservoir
- VHF, Dry, Reservoir can be computed based on VLF, Dry, Reservoir.
- the wave velocity at a dry condition can be considered to be independent of frequency, thus VHF, Dry, Reservoir can be considered to be the same as VLF, Dry, Reservoir.
- the dynamic Young’s modulus (E s ) is then derived from the dry frequencies.
- the static Young’s modulus (E d ) is derived from the correlation function (e.g., the function 84) using the derived dynamic Young’s modulus E s.
- the correlation function e.g., the function 84
- the derived dynamic Young’s modulus E s is derived from the correlation function (e.g., the function 84) using the derived dynamic Young’s modulus E s.
- rock mechanical properties at the targeted application frequency (Fa) and strain amplitude (Aa) are not available or cannot be measured from rock samples (e.g., no rock samples or no techniques to measure), they can be derived from other available measurements such as lab, seismic, and/or downhole logging. In this case, transfer functions are established by considering effects of frequency and strain amplitude.
- Figures 9 and 10 depict an example of a method 120 of developing a frequency transfer function for an application or objective.
- the frequency transfer function is developed to consider the frequency effect and derive the wave velocities at a targeted Fa (e.g. hydraulic fracturing application frequency).
- Fa e.g. hydraulic fracturing application frequency
- the frequency transfer function is a downhole frequency transfer function, which is derived by estimating the Vi ab if) and adjusting the Vi ab if) function as described herein.
- This example may be part of stages 102 and 103 of the method 100.
- the method 120 includes a plurality of stages or steps represented by blocks 121-128, all of which can be performed sequentially. However, in some embodiments, one or more of the stages can be performed in a different order than that shown or fewer than the stages shown may be performed.
- This example is discussed in conjunction with a hydraulic fracturing application, and the frequency transfer function is used to design a hydraulic fracturing job. Also in this example, downhole logging measurements are used to derive the transfer function. The method is not so limited, as various other measurements can be used.
- the method 120 is described in conjunction with the wave velocity functions shown in Figure 10 for illustration purposes.
- the various measurements described below may be performed in the order described or in another order. In addition, one or more of the measurements may be excluded.
- the functions are shown as linear in Figure 10, they are not so limited and can be curved or otherwise form any shape or follow any path.
- the test condition is a dry condition
- the subterranean condition is a fully saturated condition.
- the conditions can be any of a variety of conditions, such as different saturation levels, types of fluid, temperature, pressure and others.
- the method 120 may be performed for any number of conditions (e.g., a dry condition and different saturation levels).
- a “dry” condition may include one or more conditions where the material or core sample is not completely devoid of fluid, but has some level of fluid saturation that is less than a fluid saturation level associated with the subterranean condition.
- wave velocities VnFDr Lab are measured by applying ultrasonic measurement signals to a dry core sample using a high frequency (HF), e.g., a frequency of acoustic or ultrasonic signals used in a laboratory or testing environment.
- HF high frequency
- An example of a high frequency is about 1000 kHz.
- wave velocities ViFDr Lab associated with measurement signals having a low frequency are acquired.
- a low frequency is a frequency of acoustic signals used in downhole measurements, such as about 20 kHz or several Hz.
- Wave velocity data can be measured by applying measurement signals to the core sample using the low frequency.
- the low frequency wave velocities Vn j )n j.ah at the dry condition can be assumed to be equal to the high frequency wave velocities VHFDr Lab.
- a Gassmann fluid substitution model is used to derive wave velocities ViFSatLab under a fully saturated condition and low frequency.
- a Gassmann equation is used to derive LF wave velocities, or LF wave velocities are directly measured under the fully saturated condition, resulting in velocity
- wave velocities VMF,sat,Lab are measured at various medium frequencies at fully saturated condition. For example, the velocity is shown as Point D in Figure 10.
- VHF,sat,Lab are measured at a high frequency (block 125).
- the wave velocity is measured under the fully saturated condition, resulting in velocity VnFSat.Lab (Point E in Figure 10).
- the Viabif) function at a fully saturated condition is built from the velocities acquired at blocks 123-125.
- the VDownhoie(f) function is then built using downhole measurements (block 127).
- the Viabif) function and the VDownhoie(f) function are shown in Figure 10 as lines 200 and 202, respectively.
- the Viabif) function is transferred or shifted to the VDownhoie(f) function based on logging date ( Viog ), shown as Point F.
- Vi og Point F
- Vseismic seismic measurements
- V m situ in-situ measurements
- V m situ in-situ measurements
- the V Downhoie (f) function can thus be based on various types of measurements.
- D can be negative, zero, or positive, which takes into account the difference in the measurement conditions between lab and downhole, e.g., stress, temperature, and so on.
- wave velocities at the application frequency Fa can then be calculated from the V Downhoie (f) function.
- the application frequency is calculated in Figure 10 as Point X.
- the wave velocity can then be used to calculate rock mechanical properties at the application frequency.
- the calculated rock mechanical properties can be further corrected based on application strain amplitude using another transfer function, referred to herein as a strain amplitude transfer function.
- the strain amplitude transfer function is used to transfer rock mechanical properties measured at Am to those at application Aa. This transfer function may be built using laboratory tests, which measure rock mechanical properties at both Am and Aa. Note that rock samples having different porosities and mineralogical compositions result in different rock mechanical properties.
- Figure 11 shows an example of a strain amplitude transfer function.
- the horizontal and vertical axes are rock mechanical property measurements on rock samples of different porosities and mineralogical composition, at Am and Aa.
- Point X is a rock mechanical property value at Fa (e.g., the wave velocity or Young’s Modulus, which was derived as discussed above in conjunction with Figures 9 and 10. From this value, rock mechanical property at Aa and (Fa), shown as Point R, can be derived from a strain amplitude transfer function 210. Point R can then be used as the rock mechanical property in targeted application of Fa and Aa.
- Fa rock mechanical property value at Fa
- Aa and (Fa) rock mechanical property at Aa and (Fa)
- Point R can then be used as the rock mechanical property in targeted application of Fa and Aa.
- the straight line transfer function can be any place below, above or on the 1:1 line.
- Frequency and strain amplitude transfer functions are not necessary used in sequential order. They can be used in any order or used together.
- the following is a description of an example of a method of predicting static mechanical properties, performed based on the methods 100 and 120 discussed above.
- a static mechanical property is predicted for a wellbore stability evaluation application, based on downhole logging measurements.
- Static mechanical properties are used in wellbore stability applications, which have similar frequency and strain amplitude as that in the surface lab static tests.
- This example includes building a Viabif) frequency transfer function to build a lab frequency transfer function based on lab measurements. Downhole logging measurements represented by Point F in Figure 10 are used to transfer the Viabif) function to the downhole frequency transfer function VDownhoieif).
- the VDownhoie(f) function is used to derive the wave velocity at point C’ (low frequency, fully saturated). Gassmann equation is then used to obtain the wave velocities at Point B’ (low frequency, dry condition). The wave velocity at Point A’ is assumed to be equal to point B’. The dynamic mechanical properties (e.g., dynamic Young’s Modulus) are then calculated using the wave velocity at Point A’
- a strain amplitude transfer function is utilized to calculate the static mechanical properties at an application frequency Fa and amplitude Aa.
- the static Young’s modulus at strain amplitude Aa is measured from triaxial tests, and the dynamic Young’s modulus at measurement strain amplitude Am is measured from ultrasonic wave velocities measurements at a dry condition.
- the static Young’s modulus may be calculated from 50% of peak strength in the triaxial test, or can be calculated at any portion of curve 74, depending on the applications. Peak strength is one stress state where the rock sample breaks apart subjected to externally applied force.
- a strain amplitude transfer function between lab dynamic and lab static Young’s modulus is built.
- the strain amplitude transfer function corresponds to the correlation function 84.
- the static Young’s modulus at wellbore stability application frequency (Fa) and strain amplitude (Aa) is derived based on the dynamic Young’s Modulus calculated at Point A’.
- static Youngs Modulus at Fa and Aa is shown as Point R. This value has already been frequency corrected using the downhole frequency transfer function.
- Figure 14 is a wave-velocity vs frequency graph that illustrates an example of the performance of the method 100 and/or the method 120.
- the Viabif) function is developed from core measurements at various frequencies and saturation conditions. Downhole wave velocity measurements are taken during downhole measurements using medium frequency MF acoustic signals (represented by data point D), and downhole measurements are used to shift the Vi ab if) function to the Vo o wnh oie if) function, represented by line 130.
- the wave velocity at the saturated condition at low frequency VLF, Reservoir (point C) is determined from the Voownhoieif) function, and the wave velocity VLF , Dry , R e e rv oi r under the dry condition (point B) is derived using a Gassmann fluid substitution model.
- the velocity VHF , Dry , R ese rv oi r at the high frequency HF is determined (point A).
- the dynamic Young’s modulus E d is computed from the wave velocity at the high frequency and dry condition, and the static Young’s modulus E s is derived from the lab-derived correlation function of static-dynamic moduli (e.g., at Figure 5).
- Figure 15 shows a comparison between wave velocities measured using laboratory experiments on material samples, and wave velocities calculated based on methods described herein. Three sandstone outcrops were selected to perform laboratory experiments at dry and fluid saturated conditions.
- Table 1 shows the measured bulk density (dry), porosity, and permeability of three sandstone samples:
- Table 2 shows the measured mineral ogical concentration (weight%) from x- ray diffraction analysis.
- Figure 15 shows a comparison between the wave velocity VHF , Dry , R e e rv oi r for the three samples as predicted using the methods described herein (“Vp Calc”) and the wave velocity as directly measured in the laboratory (“Vp Lab Dry Meas ”) The Vp Calc axis represents As is shown, the predicted and measured velocity match very well, thus demonstrating the applicability of the embodiments described herein.
- various analyses and/or analytical components may be used, including digital and/or analog systems.
- the system may have components such as a processor, storage media, memory, input, output, communications link (wired, wireless, pulsed mud, optical or other), user interfaces, software programs, signal processors (digital or analog) and other such components (such as resistors, capacitors, inductors and others) to provide for operation and analyses of the apparatus and methods disclosed herein in any of several manners well-appreciated in the art.
- teachings may be, but need not be, implemented in conjunction with a set of computer executable instructions stored on a computer readable medium, including memory (ROMs, RAMs), optical (CD-ROMs), or magnetic (disks, hard drives), or any other type that when executed causes a computer to implement the method of the present invention.
- ROMs, RAMs random access memory
- CD-ROMs compact disc-read only memory
- magnetic (disks, hard drives) any other type that when executed causes a computer to implement the method of the present invention.
- These instructions may provide for equipment operation, control, data collection and analysis and other functions deemed relevant by a system designer, owner, user or other such personnel, in addition to the functions described in this disclosure.
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| NO20230160A NO20230160A1 (en) | 2020-07-23 | 2021-07-21 | Estimation of objective driven porous material mechanical properties |
| SA523442273A SA523442273B1 (en) | 2020-07-23 | 2023-01-22 | Estimation of objective driven porous material mechanical properties |
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| US20090132169A1 (en) * | 2007-11-19 | 2009-05-21 | Schlumberger Technology Corporation | Methods and systems for evaluating fluid movement related reservoir properties via correlation of low-frequency part of seismic data with borehole measurements |
| US20120314538A1 (en) * | 2011-06-08 | 2012-12-13 | Chevron U.S.A. Inc. | System and method for seismic data inversion |
| US20170152736A1 (en) * | 2014-06-05 | 2017-06-01 | National Oilwell Varco Norway As | Method and device for estimating downhole string variables |
| US20180128102A1 (en) * | 2016-11-04 | 2018-05-10 | Board Of Regents, The University Of Texas System | Sensing Formation Properties During Wellbore Construction |
| US20190257972A1 (en) * | 2018-02-17 | 2019-08-22 | Datacloud International, Inc. | Vibration while drilling data processing methods |
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| EP3427087B1 (en) * | 2016-03-09 | 2021-12-29 | Triad National Security, LLC | Time-reversed nonlinear acoustics for downhole pressure measurements |
| US11086040B2 (en) * | 2016-03-09 | 2021-08-10 | Triad National Security, Llc | Time-reversed nonlinear acoustics for wellbore integrity characterization |
| US11156082B2 (en) * | 2017-06-21 | 2021-10-26 | Schlumberger Technology Corporation | Downhole characterization of formation pressure |
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| US20090132169A1 (en) * | 2007-11-19 | 2009-05-21 | Schlumberger Technology Corporation | Methods and systems for evaluating fluid movement related reservoir properties via correlation of low-frequency part of seismic data with borehole measurements |
| US20120314538A1 (en) * | 2011-06-08 | 2012-12-13 | Chevron U.S.A. Inc. | System and method for seismic data inversion |
| US20170152736A1 (en) * | 2014-06-05 | 2017-06-01 | National Oilwell Varco Norway As | Method and device for estimating downhole string variables |
| US20180128102A1 (en) * | 2016-11-04 | 2018-05-10 | Board Of Regents, The University Of Texas System | Sensing Formation Properties During Wellbore Construction |
| US20190257972A1 (en) * | 2018-02-17 | 2019-08-22 | Datacloud International, Inc. | Vibration while drilling data processing methods |
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