1. Field of the Disclosure
This disclosure generally relates to exploration and production of hydrocarbons involving investigations of regions of an earth formation penetrated by a borehole. More specifically, the disclosure relates to the characterizing the earth formation using a logging tool in the borehole.
2. Description of the Related Art
A variety of techniques are currently utilized in characterizing earth formations. These methods are designed to determine formation parameters, including, among other things, the resistivity, porosity, dielectric susceptibility, and permeability of a rock formation surrounding a borehole drilled for recovering the hydrocarbons. Electroacoustic methods for earth borehole logging are well known to persons having an ordinary level of skill in the art, and various devices and various techniques have been described for this purpose. Typically, the tools designed to provide the desired information are used to log the borehole. Much of the logging is done after the boreholes have been drilled.
In view of the foregoing, the present disclosure is directed to a method and apparatus for estimating at least one parameter of interest of an earth formation using a constant magnetic field and a harmonic magnetic field on a metallic surface in communication with an earth formation.
One embodiment according to the present disclosure includes a method of estimating a value of at least one parameter of interest of an earth formation, comprising: estimating the value of the at least one parameter of interest using a signal generated by a sensor responsive to acoustic waves generated at a metallic surface in communication with the earth formation, the metallic surface being exposed to a constant magnetic field normal to the metallic surface and a harmonic magnetic field at a plurality of frequencies along the metallic surface.
Another embodiment according to the present disclosure includes a computer-readable medium product having instructions thereon that, when executed, cause at least one processor to perform a method, the method comprising: estimating a value of at least one parameter of interest using a signal generated by a sensor responsive to acoustic waves generated at a metallic surface in communication with an earth formation, the metallic surface being exposed to a constant magnetic field normal to the metallic surface and a harmonic magnetic field at a plurality of frequencies along the metallic surface.
Another embodiment according to the present disclosure includes an apparatus configured to estimate a value of at least one parameter of interest of an earth formation, comprising: a tool configured to be conveyed into a borehole; a first magnetic source on the tool configured to apply a constant magnetic field to a metallic plate in communication with the earth formation, the constant magnetic field being a direction normal to the metallic surface; a second magnetic source on the tool configured to apply a harmonic magnetic field at a plurality of frequencies along the metallic surface; a sensor configured to generate a signal in response to acoustic waves generated at the metallic surface; and at least one processor configured to estimate the value of the at least one parameter of interest using the signal.
The present disclosure is best understood with reference to the accompanying figures in which like numerals refer to like elements and in which like numerals refer to like elements and in which:
In the disclosure that follows, in the interest of clarity, not all features of actual implementations are described. It will of course be appreciated that in the development of any such actual implementation, as in any such project, numerous engineering and technical decisions must be made to achieve the developers' specific goals and subgoals (e.g., compliance with system and technical constraints), which will vary from one implementation to another. Moreover, attention will necessarily be paid to proper engineering and programming practices for the environment in question. It will be appreciated that such development efforts may be complex and time-consuming, outside the knowledge base of typical laymen, but would nevertheless be a routine undertaking for those of ordinary skill in the relevant fields.
Parameters of interest of an earth formation (or other porous medium) may be estimated using acoustic responses due to a constant magnetic field applied normally to a casing boundary and a harmonic magnetic field applied along the casing boundary. Parameters that may be estimated may include, but are not limited to, a characteristic frequency of the formation and conductivity. Illustrative embodiments of the present claimed subject matter are described in detail below.
The tool 104a may be a formation evaluation (FE) tool adapted to measure one or more parameters of interest relating to the earth formation and/or the borehole. The term formation evaluation (FE) tool encompasses measurement devices, sensors, and other like devices that, actively or passively, collect data about the various characteristics of the earth formation 120, directional sensors for providing information about the tool system 100 orientation or direction of movement, formation testing sensors for providing information about the characteristics of the reservoir fluid or for evaluating the reservoir conditions. The formation evaluation (FE) sensors may include resistivity sensors for determining the earth formation 120 resistivity or dielectric constant of the earth formation or the presence or absence of hydrocarbons; acoustic sensors for determining the acoustic porosity of the earth formation and the bed boundary in the earth formation; nuclear sensors for determining density of the earth formation, nuclear porosity and/or certain rock characteristics; or nuclear magnetic resonance (NMR) sensors for determining the porosity and/or other petrophysical characteristics of the earth formation. The direction and position sensors may include a combination of one or more accelerometers, gyroscopes, or magnetometers. The accelerometers preferably may provide measurements along three axes, in particular along three substantially mutually perpendicular axes. The formation testing sensors may collect earth formation fluid samples and determine the properties of the fluid, which may include physical or chemical properties. Pressure measurements may provide information about certain characteristics of the reservoir.
The tool system 100 may include telemetry equipment 150, a local or downhole processor or controller 152, and a downhole power supply 154. The telemetry equipment 150 may provide two-way communication for exchanging data signals between a surface controller or processor 112 and the tool system, as well as for transmitting control signals from the surface controller to the tool system.
A first module 120a may include a first tool 104a configured to measure a first parameter of interest and a second module 120b may include a second tool 104b that is configured to measure a second parameter of interest. In order to execute their assigned tasks, the first tool and the second tool may be in different positions. The positions can be with reference to an object such as the borehole 114, a borehole wall 115, or other proximally positioned tooling. The term “position” may be understood to encompass a radial position, an inclination, and/or an azimuthal orientation. In the illustration of
In an exemplary embodiment, the modules 120a and 120b may each be provided with positioning devices 140a, 140b, respectively, which are configured to maintain the respective modules 120a, 120b at selected radial positions relative to a reference position (e.g., the borehole axis 114a). The positioning devices may also adjust the radial positions of the respective modules upon receiving one or more surface command signals or automatically in a closed-loop type manner. These selected radial positions may be maintained or adjusted independently of the radial position(s) of an adjacent downhole device (e.g., measurement tools, sonde, module, sub, or other like equipment). An articulated member, such a flexible joint 156 that couples the respective modules to the tool system 100 may provide a degree of bending or pivoting to accommodate the radial positioning differences between adjacent modules or other equipment (for example, a processor sonde). One or more of the positioning devices may have fixed positioning members.
Embodiments of the apparatus according to the present disclosure may be used to perform a method.
Turning now to
where c is the speed of light and λ* is the size of the skin layer. It may be assumed that acoustic approximation for uniform deformation is used here for low frequencies.
A system with an interaction between two groups of S-waves in the electrolyte-saturated porous system in the presence of external magnetic fields, taking into account the electrokinetic effect, may be expressed by equations as follows:
In the equations above:
Equations which determine the amplitude of the magnetic field B and velocities u, v, contain four parameters
depending on elastic moduli K=2μ/3+λ, μ, αe, which are, in their turn, found through two longitudinal velocities of sound cl1, cl2 and a transverse one ct
These equations contain the kinetic parameter χ∂, which determines the friction force between the matrix and the fluid. The friction force contained in the motion equations for the fluid moving in a porous matrix, f∂, may be expressed as:
and
The density of the electric current, je, may be expressed as:
where E is the electric field vector, B is a magnetic field vector, χl, χs, may be densities of bulk charges of corresponding sub-systems, χe may be density of electric charge, ρ may be density, and je may be density of electric current. The term “friction coefficient” may be used for the kinetic coefficient χ∂. The coefficient α=α12=α21 may be linked to the electromagnetic constant.
As shown in
In this system, the friction coefficient may be the result of this combination:
B0=(B0,0,0),B=(0,By,Bz),
v=(0,vy,vz),u=(0,uy,uz). (8)
The electrokinetic effect may reduce the friction coefficient. The value of the friction coefficient may be estimated after proper measurements are made. The relationship between the amplitudes of the electromagnetic fields and acoustic waves in an infinite medium during plane wave propagation may be expressed as:
(vy,vz,uy,uz,By,Bz)=(vy,vz,uy,uz,By,Bz)·exp(iωx/ξ−iωt) (9),
where ξ is phase velocity.
Substituting the latter dependence into the initial equations, the non-contradiction conditions may be reduced to finding the sound velocity from the equation:
Meanwhile, the relationship between the amplitudes of the matrix oscillations and the magnetic field may be determined by the equations:
where the following notations are used:
Transversal oscillations considered here exist in the half-space x>0 connected to the porous medium. On the boundary x=0, the following conditions apply. They are the continuity of tangential velocity, the tangential electrical field, and the tangential magnetic field:
The waves that are harmonic in relation to time may be expressed as:
(vy,vz,uy,uz,By,Bz)=(vy,vz,uy,uz,By,Bz)·exp(−iωt) (13)
Substituting the solution from eqn. (9) into eqn. (7), fluid velocity may be expressed through spatial derivatives of the magnetic field and deformation velocities of the porous matrix.
Excluding velocities vz, vy from set (10), magnetic fields and velocities of elastic deformations of the matrix in the half-space may be determined with the equations:
The spatial shape of these waves can be determined from the boundary conditions given above, but the condition of amplitude attenuation in the infinity should be also added. In these equations the following notations are used:
The set of equations obtained can be conveniently reduced to one equation which determines deformation velocity of the matrix:
and after this the magnetic field B=(0, By, Bz) may be determined from eqn. (14). Equation has the following solutions:
uz=N1ze−β
uy=N1ye−β
A dispersion equation which determines exponential factors may have the form:
It should be noted that this frequency function:
may become zero at the external impact frequency equal the resonance frequency (ω=ω*), and in this case the dispersion equation is factorized:
The roots of the above equation may be expressed as:
The roots with positive real parts may be used to determine harmonic magnetic field components, which may be expressed with the following equations:
The linear system solution including given boundary conditions is of the following form:
Notations here,
Coefficients N1z, N2z, N1y, N2y may be determined using eqn. (15).
It is important to note that when ω=ω*, then:
uyext=−i·uzext
Measuring Re uyext and Im uzext, it may be determined at what frequency, ω*, that these amplitudes of Re uyext and Im uzext are equal.
As long as the following equality takes place:
using the last equation electric conductivity may be estimated, knowing the value B0.
In some embodiments, signal amplitudes may be increased by producing a harmonic magnetic field by running electric current through the casing tube 116. In this case:
Using the characteristic frequency, conductivity may be estimated using either of the following equations:
As described herein, the method in accordance with the presently disclosed embodiment of the disclosure involves several computational steps. As would be apparent by persons of ordinary skill, these steps may be performed by computational means such as a computer, or may be performed manually by an analyst, or by some combination thereof. As an example, where the disclosed embodiment calls for selection of measured values having certain characteristics, it would be apparent to those of ordinary skill in the art that such comparison could be performed based upon a subjective assessment by an analyst or by computational assessment by a computer system properly programmed to perform such a function. To the extent that the present disclosure is implemented utilizing computer equipment to perform one or more functions, it is believed that programming computer equipment to perform these steps would be a matter of routine engineering to persons of ordinary skill in the art having the benefit of the present disclosure.
Implicit in the processing of the acquired data is the use of a computer program implemented on a suitable computational platform (dedicated or general purpose) and embodied in a suitable machine readable medium that enables the processor to perform the control and processing. The term “processor” as used in the present disclosure is intended to encompass such devices as microcontrollers, microprocessors, field-programmable gate arrays (FPGAs) and the storage medium may include ROM, RAM, EPROM, EAROM, solid-state disk, optical media, magnetic media and other media and/or storage mechanisms as may be deemed appropriate. As discussed above, processing and control functions may be performed downhole, at the surface, or in both locations.
Although a specific embodiment of the disclosure as well as possible variants and alternatives thereof have been described and/or suggested herein, it is to be understood that the present disclosure is intended to teach, suggest, and illustrate various features and aspects of the disclosure, but is not intended to be limiting with respect to the scope of the disclosure, as defined exclusively in and by the claims, which follow.
While the foregoing disclosure is directed to the specific embodiments of the disclosure, various modifications will be apparent to those skilled in the art. It is intended that all such variations within the scope of the appended claims be embraced by the foregoing disclosure.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/RU2011/000769 | 10/3/2011 | WO | 00 | 6/12/2014 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/051955 | 4/11/2013 | WO | A |
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Number | Date | Country | |
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20140320134 A1 | Oct 2014 | US |