WO2000055651A1 - Method for downhole logging - Google Patents

Method for downhole logging Download PDF

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Publication number
WO2000055651A1
WO2000055651A1 PCT/GB2000/000969 GB0000969W WO0055651A1 WO 2000055651 A1 WO2000055651 A1 WO 2000055651A1 GB 0000969 W GB0000969 W GB 0000969W WO 0055651 A1 WO0055651 A1 WO 0055651A1
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WO
WIPO (PCT)
Prior art keywords
seismic
signal
source
seismic signal
shock
Prior art date
Application number
PCT/GB2000/000969
Other languages
French (fr)
Inventor
John William Aidan Millar
Richard Hedley Clarke
William Peter Stuart Bruges
Original Assignee
Groundflow Limited
Sondex Limited
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Groundflow Limited, Sondex Limited filed Critical Groundflow Limited
Priority to US09/936,790 priority Critical patent/US6842697B1/en
Priority to EP00911042A priority patent/EP1171784B1/en
Priority to DE60034936T priority patent/DE60034936D1/en
Priority to CA002367010A priority patent/CA2367010C/en
Publication of WO2000055651A1 publication Critical patent/WO2000055651A1/en
Priority to NO20014496A priority patent/NO327488B1/en

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01VGEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
    • G01V3/00Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation
    • G01V3/18Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging
    • G01V3/26Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging operating with magnetic or electric fields produced or modified either by the surrounding earth formation or by the detecting device
    • G01V3/265Operating with fields produced by spontaneous potentials, e.g. electrochemicals or produced by telluric currents

Definitions

  • the present invention relates to a method and equipment for measuring the properties of subsurface rock from a tool lowered down a borehole.
  • a method and equipment for measuring such properties as the response time and amplitude of the electrokinetic coefficient, porosity and permeability of fluid-bearing porous rocks.
  • the measurement of permeability of rocks surrounding a borehole is important in assessing the location of water or oil reserves, including the quality and quantity of the reservoir rock.
  • Existing methods are unable to measure the permeability of a porous rock directly with any accuracy from a downhole tool.
  • rock permeability is very important in determining at what rate and at what cost these fluids can be produced from boreholes.
  • US Patent 4427944 discloses a method and apparatus for investigating the permeability of earth formations traversed by a borehole in which a source of mechanical excitation is positioned in contact with the surface of a borehole and actuated to excite the formation and produce an electrokinetic potential in the formation which is detected inside the borehole, measured and used to calculate the permeability.
  • Patent Application PCT/GB96/02542 discloses a method of measuring the properties of rock surrounding a borehole in which a seismic pulse is generated downhole which propagates outwards from the borehole to produce electrokinetic signals which are detected within the borehole and used to measure the properties of the surrounding rock.
  • the seismic pulse radiates outwards in all directions and this has been found to give superior results to uni-directional propagation of the seismic pulse as described in US Patent 4427944.
  • a method for measuring the properties of a formation traversed by a borehole in which a directional seismic or sonic signal is generated downhole and is propagated into the surrounding formation and an electrokinetic signal generated by the seismic or sonic signal is detected by detecting means and in which the spatial distribution of the outgoing seismic signal is adjusted so that the electrokinetic signals are generated from different zones around the source.
  • the seismic signal is generated by the generation of a seismic or sonic shock downhole which propagates a seismic signal into the surrounding rock.
  • the distribution of the seismic signal can be varied in three dimensions so that it can be varied azimuthally with respect to source of the seismic shock in the borehole and can be rotated radially about a circle with the source at the centre of the circle, or by a combination of these two modes the distribution of the seismic signal can be varied in any direction.
  • the direction of the seismic signal can be varied mechanically by physically turning the source, for example a substantially uni-directional seismic source can be rotated so the direction of the seismic signal is rotated and it can be moved so that the direction of the seismic signal moves up and down.
  • the seismic signal can be propagated omni-directionally and a shield with an aperture or "window" can be positioned around the source so that the seismic signal propagates through the window; moving the location of the window e.g. by rotating the shield will cause the direction of the seismic signal to change.
  • the direction of the seismic signal is changed by wave interference or wave interaction of two or more sources acting together to produced a seismic signal which is focussed in a particular direction or location so that, by varying the frequency, amplitude and/or phases of the sources of the seismic shock the spatial distribution, direction and location of the outgoing seismic signal can be changed.
  • the superposition, constructive interference and combination of wave fronts to produce a spatially focussed wave is known and the calculations and controls need to produce a specified focussed wave are known.
  • the source of the seismic shock preferably propagates a seismic signal in substantially all directions so that the direction of the combined signal produced can be varied in three dimensions.
  • the source of the seismic signal is preferably not in contact with the borehole wall but positioned substantially centrally within the borehole.
  • Each of the seismic signals is preferably propagated radially outwards in all directions through the borehole fluid (the fluid in the borehole e.g. drilling mud etc.) and, subject to distortion by the borehole wall and variations in the rock, the seismic signal propagates outwards substantially uniformly in all directions. It is the combination of two or more seismic signals which controls the total seismic signal generated and enables the direction to be changed.
  • the electrical signal generated within the surrounding rock is received and detected at the tool within the borehole from substantially the chosen location or direction.
  • This invention also provides apparatus for measuring the properties of rocks surrounding a borehole, which apparatus comprises a casing adapted to be lowered down a bore hole in which casing there is a seismic means for generating seismic signals and a means for varying the direction of the seismic signal and having associated therewith, a means adapted to detect electrical signals generated by the effect of a seismic shock generated by seismic means.
  • the means for generating the seismic signals preferably generates a series of pressure pulses or, more preferably, a continuous pressure oscillation, at one or more finite frequencies. It may consist of a mechanical vibrational device, an electromagnetic device, a sparker source, an explosive source, an airgun operated hydraulically or electrically or any other such conventional sonic source designed for use on a downhole tool but preferably it should be a magnetostrictive or piezoelectric transducer whose signal is controllable electrically.
  • the term "seismic pulse” can include a pulse which can be referred to as a sonic or acoustic pulse.
  • a preferred means for enabling the seismic signals to be generated radially comprises a cylindrical chamber having holes in its side, which when downhole will be full of drilling fluid with the sides of the chamber being close to the sides of the borehole, there being a means to transmit a shock or applied force to the fluid in the chamber so as to cause the shock to be transmitted through the fluid in the chamber through the holes into the surrounding rock.
  • the holes should be distributed substantially uniformly around the casing so that the shock is transmitted in all directions.
  • the shock or force can be applied by any of the means referred to above.
  • the electrical signals can be detected by means of a pair of electrodes positioned within the borehole close to the borehole wall or, alternatively, a coil receiver mounted on the tool or, preferably, an electrode pair or short dipole antenna mounted on the tool aligned centrally within the borehole.
  • a pair of electrodes positioned within the borehole close to the borehole wall or, alternatively, a coil receiver mounted on the tool or, preferably, an electrode pair or short dipole antenna mounted on the tool aligned centrally within the borehole.
  • the equipment of the present invention it is convenient to use one or two electrical receivers placed above and below the acoustic sources, the case of the dipole antennae preferably aligned vertically or horizontally above and below the source and in the case of the coils with the plane of the coil aligned vertically or horizontally at the centre of the borehole.
  • the electrical receiver preferably consists of one or two pairs of electrodes forming a short dipole antenna with electrically isolated ends or two coils with electrically isolated lines. For each pair the ends are preferably connected to an amplifier which amplifies the signals whilst keeping them electrically isolated; this is carried out by referring the potential of each end independently to a floating reference potential.
  • the signals are preferably amplified and converted to digital form before being communicated (e.g. by wire) to the surface for recording and processing.
  • the means for detecting the electrical signals compares the potential at the ends, in the case of the dipole antenna, or measures the electrical field strength in the case of the coil.
  • the potential at the ends of dipole antenna in the one case or of the coil in the other are compared by connecting them to an amplifier in which the potentials are preferably referred to a non-earthed reference (a virtual earth) and these new potentials are amplified and compared.
  • a non-earthed reference potential is that of a common line in the amplification and data acquisition circuitry of the receiver and is not connected directly to earth.
  • This balancing can be achieved manually before running in a given borehole to compensate for variations in electrode performance in a given hole or by means of a suitable electronic circuit giving continuous feedback whereby continual adjustment can be made.
  • Each seismic source preferably continuously emits sound simultaneously on at least two finite frequencies with the resultant oscillation the sum of the various sinusoidal pressure oscillations.
  • these frequencies are between 5Hz and 100 KHz, e.g. about lKHz and 10 KHz.
  • the amplified electrical signals are demodulated with respect to the source frequencies and the amplitude and phase relative to the source sampled at a frequency of about 1-100 Hz per channel and converted from analogue to digital form, of 12 or 16 bit accuracy.
  • the digital data transmitted to surface is recorded as a data file and can then be processed.
  • the seismic signal can be generated whilst the apparatus is lowered or raised up from the borehole, thus providing a continuous or semi-continuous measurement of rock along the borehole.
  • the seismic signal can be generated whilst the apparatus is lowered or raised up from the borehole, thus providing a continuous or semi-continuous measurement of rock along the borehole
  • the amplitude and response of the electrokinetic response to an acoustic pulse have been shown to be closely related to the electrokinetic coefficient and the permeability of the target porous rock respectively.
  • the amplitude and phase of the electrical response with response to the source is a function of both electrokinetic coefficient and permeability; however, measurement of amplitude of response on two frequencies allows each of these properties of the rock to be determined independently.
  • electrokinetic coefficient, electrical conductivity and porosity can be produced.
  • the amplitude and phase of the electrokinetic response at a single frequency are measured are measured, the permeability and porosity may be derived from these.
  • the method of the present invention makes use of an electrokinetic effect in which the seismic wave generated by the seismic source and, passing through the interface of the borehole with the surrounding porous rock and through interfaces within the rock where the fluid properties change, stimulates electrical signals detected at the receiving electrodes or coils.
  • the seismic oscillations within the porous rock give rise to fluid flow within the rock and as cations and anions adhere with differing strengths to capillary walls, a resulting electric dipole is generated within the rock. This electric dipole distorts the quasi-static electric field within the slightly conducting medium of the rock and this distortion propagates back to the tool, where it is measured.
  • a borehole (1) has a tool (2) lowered down it, the tool (2) incorporates two independent seismic sources (3) and (4) which can generate a seismic signal radially in all directions.
  • the seismic sources (3) and (4) are remotely controlled so the amplitude, frequency and/or phase of the shock they generate can be independently varied.
  • the tool (2) is lowered downhole and the seismic sources (3) and (4) operated to generate a seismic wave fronts shown by (7) and (8) in the surrounding rock formation.
  • These wave fronts will generate an interference pattern within the rock formation to produce a focussed wave and a seismic signal will be generated which depends on the combination i.e. location of the focus, of the two wave fronts at any one location.
  • the amplitude, frequency and/or phases of the sources (3) and (4) By varying the amplitude, frequency and/or phases of the sources (3) and (4) the direction and strength of the signal formed by the combination of the signals from (3) and (4) can be controlled and varied in three dimensions.
  • the electrodes (5) and (6) receive the electrokinetic signal generated by this combined seismic signal and it is transmitted to an amplifier and the computer for analysis and recording.

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  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Remote Sensing (AREA)
  • Physics & Mathematics (AREA)
  • Environmental & Geological Engineering (AREA)
  • General Physics & Mathematics (AREA)
  • Electrochemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Chemical & Material Sciences (AREA)
  • Geology (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Electromagnetism (AREA)
  • Geophysics (AREA)
  • Geophysics And Detection Of Objects (AREA)
  • Investigation Of Foundation Soil And Reinforcement Of Foundation Soil By Compacting Or Drainage (AREA)
  • Debugging And Monitoring (AREA)
  • Analysing Materials By The Use Of Radiation (AREA)
  • Length Measuring Devices By Optical Means (AREA)

Abstract

A method and apparatus for measuring the properties such as permeability of the rock surrounding a borehole in which a directional seismic or sonic signal is generated downhole and propagated into the surrounding formation to generate an electrokinetic signal and the focus of the seismic signal is moved in three dimensions in the surrounding rock by physically moving the source or by having two seismic sources which generate oscillating seismic signals at different frequencies and the focus of the seismic signal is varied by wave interference or wave interaction.

Description

Method for Downhole Logging
The present invention relates to a method and equipment for measuring the properties of subsurface rock from a tool lowered down a borehole. In particular it relates to a method and equipment for measuring such properties as the response time and amplitude of the electrokinetic coefficient, porosity and permeability of fluid-bearing porous rocks.
The measurement of permeability of rocks surrounding a borehole is important in assessing the location of water or oil reserves, including the quality and quantity of the reservoir rock. Existing methods are unable to measure the permeability of a porous rock directly with any accuracy from a downhole tool.
In addition to its value in the assessment of the quality and quantity of water or oil reservoirs, rock permeability is very important in determining at what rate and at what cost these fluids can be produced from boreholes.
US Patent 4427944 discloses a method and apparatus for investigating the permeability of earth formations traversed by a borehole in which a source of mechanical excitation is positioned in contact with the surface of a borehole and actuated to excite the formation and produce an electrokinetic potential in the formation which is detected inside the borehole, measured and used to calculate the permeability.
Patent Application PCT/GB96/02542 discloses a method of measuring the properties of rock surrounding a borehole in which a seismic pulse is generated downhole which propagates outwards from the borehole to produce electrokinetic signals which are detected within the borehole and used to measure the properties of the surrounding rock. In this application the seismic pulse radiates outwards in all directions and this has been found to give superior results to uni-directional propagation of the seismic pulse as described in US Patent 4427944.
We have now devised an improved method for downhole logging. According to the invention there is provided a method for measuring the properties of a formation traversed by a borehole in which a directional seismic or sonic signal is generated downhole and is propagated into the surrounding formation and an electrokinetic signal generated by the seismic or sonic signal is detected by detecting means and in which the spatial distribution of the outgoing seismic signal is adjusted so that the electrokinetic signals are generated from different zones around the source.
The seismic signal is generated by the generation of a seismic or sonic shock downhole which propagates a seismic signal into the surrounding rock.
The distribution of the seismic signal can be varied in three dimensions so that it can be varied azimuthally with respect to source of the seismic shock in the borehole and can be rotated radially about a circle with the source at the centre of the circle, or by a combination of these two modes the distribution of the seismic signal can be varied in any direction.
The direction of the seismic signal can be varied mechanically by physically turning the source, for example a substantially uni-directional seismic source can be rotated so the direction of the seismic signal is rotated and it can be moved so that the direction of the seismic signal moves up and down. Alternatively the seismic signal can be propagated omni-directionally and a shield with an aperture or "window" can be positioned around the source so that the seismic signal propagates through the window; moving the location of the window e.g. by rotating the shield will cause the direction of the seismic signal to change.
Preferably the direction of the seismic signal is changed by wave interference or wave interaction of two or more sources acting together to produced a seismic signal which is focussed in a particular direction or location so that, by varying the frequency, amplitude and/or phases of the sources of the seismic shock the spatial distribution, direction and location of the outgoing seismic signal can be changed. The superposition, constructive interference and combination of wave fronts to produce a spatially focussed wave is known and the calculations and controls need to produce a specified focussed wave are known.
In an embodiment of the present invention there are two or more separate sources of the seismic shock spaced apart from each other and there are means to vary the amplitude, frequency and/or phase independently. The source of the seismic shock preferably propagates a seismic signal in substantially all directions so that the direction of the combined signal produced can be varied in three dimensions.
The source of the seismic signal is preferably not in contact with the borehole wall but positioned substantially centrally within the borehole.
Each of the seismic signals is preferably propagated radially outwards in all directions through the borehole fluid (the fluid in the borehole e.g. drilling mud etc.) and, subject to distortion by the borehole wall and variations in the rock, the seismic signal propagates outwards substantially uniformly in all directions. It is the combination of two or more seismic signals which controls the total seismic signal generated and enables the direction to be changed.
The electrical signal generated within the surrounding rock is received and detected at the tool within the borehole from substantially the chosen location or direction.
This invention also provides apparatus for measuring the properties of rocks surrounding a borehole, which apparatus comprises a casing adapted to be lowered down a bore hole in which casing there is a seismic means for generating seismic signals and a means for varying the direction of the seismic signal and having associated therewith, a means adapted to detect electrical signals generated by the effect of a seismic shock generated by seismic means.
The means for generating the seismic signals preferably generates a series of pressure pulses or, more preferably, a continuous pressure oscillation, at one or more finite frequencies. It may consist of a mechanical vibrational device, an electromagnetic device, a sparker source, an explosive source, an airgun operated hydraulically or electrically or any other such conventional sonic source designed for use on a downhole tool but preferably it should be a magnetostrictive or piezoelectric transducer whose signal is controllable electrically. The term "seismic pulse" can include a pulse which can be referred to as a sonic or acoustic pulse.
A preferred means for enabling the seismic signals to be generated radially comprises a cylindrical chamber having holes in its side, which when downhole will be full of drilling fluid with the sides of the chamber being close to the sides of the borehole, there being a means to transmit a shock or applied force to the fluid in the chamber so as to cause the shock to be transmitted through the fluid in the chamber through the holes into the surrounding rock. The holes should be distributed substantially uniformly around the casing so that the shock is transmitted in all directions. The shock or force can be applied by any of the means referred to above.
The electrical signals can be detected by means of a pair of electrodes positioned within the borehole close to the borehole wall or, alternatively, a coil receiver mounted on the tool or, preferably, an electrode pair or short dipole antenna mounted on the tool aligned centrally within the borehole. In the equipment of the present invention it is convenient to use one or two electrical receivers placed above and below the acoustic sources, the case of the dipole antennae preferably aligned vertically or horizontally above and below the source and in the case of the coils with the plane of the coil aligned vertically or horizontally at the centre of the borehole.
The electrical receiver preferably consists of one or two pairs of electrodes forming a short dipole antenna with electrically isolated ends or two coils with electrically isolated lines. For each pair the ends are preferably connected to an amplifier which amplifies the signals whilst keeping them electrically isolated; this is carried out by referring the potential of each end independently to a floating reference potential. The signals are preferably amplified and converted to digital form before being communicated (e.g. by wire) to the surface for recording and processing.
Preferably the means for detecting the electrical signals compares the potential at the ends, in the case of the dipole antenna, or measures the electrical field strength in the case of the coil. The potential at the ends of dipole antenna in the one case or of the coil in the other, are compared by connecting them to an amplifier in which the potentials are preferably referred to a non-earthed reference (a virtual earth) and these new potentials are amplified and compared. Such a procedure allows amplification with very little distortion of the potential to be measured and with a high degree of common-mode noise rejection and is superior to other conventional methods of amplification. Preferably the non-earthed reference potential is that of a common line in the amplification and data acquisition circuitry of the receiver and is not connected directly to earth.
Preferably there is provision for isolating and balancing the signals from each of the electrodes or coils before they reach the amplifier circuit in order to giver the maximum common-mode rejection of electromagnetic noise. This balancing can be achieved manually before running in a given borehole to compensate for variations in electrode performance in a given hole or by means of a suitable electronic circuit giving continuous feedback whereby continual adjustment can be made.
Each seismic source preferably continuously emits sound simultaneously on at least two finite frequencies with the resultant oscillation the sum of the various sinusoidal pressure oscillations. Preferably if two frequencies are used these frequencies are between 5Hz and 100 KHz, e.g. about lKHz and 10 KHz. By variation and combination of these signals the direction of the combined signal can be varied.
Preferably the amplified electrical signals are demodulated with respect to the source frequencies and the amplitude and phase relative to the source sampled at a frequency of about 1-100 Hz per channel and converted from analogue to digital form, of 12 or 16 bit accuracy. The digital data transmitted to surface is recorded as a data file and can then be processed.
The seismic signal can be generated whilst the apparatus is lowered or raised up from the borehole, thus providing a continuous or semi-continuous measurement of rock along the borehole.
The seismic signal can be generated whilst the apparatus is lowered or raised up from the borehole, thus providing a continuous or semi-continuous measurement of rock along the borehole The amplitude and response of the electrokinetic response to an acoustic pulse have been shown to be closely related to the electrokinetic coefficient and the permeability of the target porous rock respectively. For a sonic oscillation of a known frequency the amplitude and phase of the electrical response with response to the source is a function of both electrokinetic coefficient and permeability; however, measurement of amplitude of response on two frequencies allows each of these properties of the rock to be determined independently. After processing a log of rock permeability, electrokinetic coefficient, electrical conductivity and porosity can be produced. Alternatively, if the amplitude and phase of the electrokinetic response at a single frequency are measured are measured, the permeability and porosity may be derived from these.
It is believed that the method of the present invention makes use of an electrokinetic effect in which the seismic wave generated by the seismic source and, passing through the interface of the borehole with the surrounding porous rock and through interfaces within the rock where the fluid properties change, stimulates electrical signals detected at the receiving electrodes or coils. The seismic oscillations within the porous rock give rise to fluid flow within the rock and as cations and anions adhere with differing strengths to capillary walls, a resulting electric dipole is generated within the rock. This electric dipole distorts the quasi-static electric field within the slightly conducting medium of the rock and this distortion propagates back to the tool, where it is measured.
The invention is illustrated in the accompanying drawings which illustrate schematically an embodiment of the invention
Referring to the drawing, a borehole (1) has a tool (2) lowered down it, the tool (2) incorporates two independent seismic sources (3) and (4) which can generate a seismic signal radially in all directions. There are electrodes (5) and (6) connected to an amplifier and a computer which can record and interpret the signals received.
The seismic sources (3) and (4) are remotely controlled so the amplitude, frequency and/or phase of the shock they generate can be independently varied. In use the tool (2) is lowered downhole and the seismic sources (3) and (4) operated to generate a seismic wave fronts shown by (7) and (8) in the surrounding rock formation. These wave fronts will generate an interference pattern within the rock formation to produce a focussed wave and a seismic signal will be generated which depends on the combination i.e. location of the focus, of the two wave fronts at any one location. By varying the amplitude, frequency and/or phases of the sources (3) and (4) the direction and strength of the signal formed by the combination of the signals from (3) and (4) can be controlled and varied in three dimensions.
The electrodes (5) and (6) receive the electrokinetic signal generated by this combined seismic signal and it is transmitted to an amplifier and the computer for analysis and recording.

Claims

Claims
1. A method for measuring the properties of a formation traversed by a borehole in which a directional seismic or sonic signal is generated downhole and is propagated into the surrounding formation and an electrokinetic signal generated by the seismic or sonic signal is detected by detecting means and in which the spatial distribution of the outgoing seismic signal is adjusted so that the electrokinetic signals are generated from different zones around the source of the seismic or sonic signal.
2. A method as claimed in claim 1 in which the seismic signal is generated by the generation of a seismic or sonic shock downhole which propagates a seismic signal into the surrounding rock.
3. A method as claimed in claim 1 or 2 in which the direction of the seismic signal is varied in three dimensions azimuthally with respect to source of the seismic shock in the borehole.
4. A method as claimed in any one of claims 1 to 3 in which the direction of the seismic shock is rotated radially about a circle with the source of the seismic shock at the centre of the circle.
5. A method as claimed in claim 3 or 4 in which the direction of the seismic signal is varied mechanically by physically turning the source
6. A method as claimed in claim 5 in which a substantially uni-directional seismic source is rotated so the direction of the seismic signal is rotated and moved so that the direction of the seismic signal moves up and down.
7. A method as claimed in claim 4 in which the seismic signal is propagated omni- directionally and a shield with an aperture is positioned around the source so that the seismic signal propagates through the aperture and the direction of the seismic signal is changed by moving the location of the aperture.
8. A method as claimed in any one of claims 1 to 4 in which the direction of the seismic signal is changed by wave interference or wave interaction of two or more sources acting together to produced a seismic signal which is focussed in a particular direction or location and by varying the frequency, amplitude and/or phases of the sources of the seismic shock the spatial distribution, direction and location of the outgoing seismic signal is changed.
9. A method as claimed in any one of claims 1 to 8 in which the source of the seismic signal is positioned substantially centrally within the borehole and is not in contact with the borehole wall
10. A method as claimed in claims 8 or 9 in which there are two or more separate sources of the seismic shock spaced apart from each other and there are means to vary the amplitude, frequency and/or phase independently and the source of the seismic shock propagates a seismic signal in substantially all directions so that the direction of the combined signal produced can be varied in three dimensions.
11. A method as claimed in claim 10 in which each seismic source continuously emits sound simultaneously on at least two finite frequencies with the resultant oscillation being the sum of the various sinusoidal pressure oscillations and by variation and combination of these signals the direction of the combined signal is varied.
12. A method as claimed in claim 11 in which the amplified electrical signals are demodulated with respect to the source frequencies and the amplitude and phase relative to the source sampled at a frequency of 1-100 Hz per channel and converted from analogue to digital form, of 12 or 16 bit accuracy.
13. A method as claimed in any one of claims 1 to 12 in which the seismic signal is generated whilst the source of the seismic signal is lowered or raised up from the borehole to provide a continuous or semi-continuous measurement of rock along the borehole
14. Apparatus for measuring the properties of rocks surrounding a borehole, which apparatus comprises a casing adapted to be lowered down a bore hole in which casing there is a seismic means for generating seismic signals and a means for varying the direction of the seismic signal and having associated therewith, a means adapted to detect electrical signals generated in the rock surrounding the bore hole by the effect of a seismic shock generated by seismic means.
15. Apparatus as claimed in claim 14 in which the means for generating the seismic signals generates a series of pressure pulses or a continuous pressure oscillation, at one or more finite frequencies.
16. Apparatus as claimed in claim 14 or 15 in which the means for generating the seismic signals is a magnetostrictive or piezoelectric transducer whose signal is controllable electrically.
17. Apparatus as claimed in any one of claims 14 to 16 in which the means for generating a seismic signal comprises a cylindrical chamber having holes in its side, which when downhole will be full of drilling fluid with the sides of the chamber being close to the sides of the borehole, there being a means to transmit a shock or applied force to the fluid in the chamber so as to cause the shock to be transmitted through the fluid in the chamber through the holes into the surrounding rock
18. Apparatus as claimed in any one of claims 14 to 17 in which the electrical receiver consists of one or two pairs of electrodes forming a short dipole antenna with electrically isolated ends or two coils with electrically isolated lines, the ends of which being connected to an amplifier which amplifies the signals whilst keeping them electrically isolated.
19. Apparatus as claimed in any one of claims 14 to 18 in which there are means to physically turn the source to vary the direction of the seismic signal.
20. Apparatus as claimed in claim 14 to 18 in which there is a shield with an aperture positioned around the seismic source which source is adapted to propagate a seismic signal omni-directionally so that the seismic signal propagates through the aperture and there are means to move the location of the aperture so the direction of the seismic signal is varied.
21. Apparatus as claimed in any one of claims 14 to 18 in which there are two or more sources of seismic signals acting together and means to vary the direction of the seismic signal by wave interference or wave interaction of the two or more sources to produce a seismic signal which is focussed in a particular direction or location and means to vary the frequency, amplitude and/or phases of the sources of the seismic shock to change the spatial distribution, direction and location of the outgoing seismic signal.
22. Apparatus as claimed in any one of claims 14 to 18 in which there are two or more separate sources of the seismic shock spaced apart from each other and there are means to vary the amplitude, frequency and/or phase independently of the seismic shock, the source of the seismic shock being able to propagate a seismic signal in substantially all directions so that the direction of the combined signal produced can be varied in three dimensions.
PCT/GB2000/000969 1999-03-18 2000-03-15 Method for downhole logging WO2000055651A1 (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
US09/936,790 US6842697B1 (en) 1999-03-18 2000-03-15 Method for downhole logging
EP00911042A EP1171784B1 (en) 1999-03-18 2000-03-15 Method for downhole logging
DE60034936T DE60034936D1 (en) 1999-03-18 2000-03-15 HOLE MEASURING METHOD
CA002367010A CA2367010C (en) 1999-03-18 2000-03-15 Method for downhole logging
NO20014496A NO327488B1 (en) 1999-03-18 2001-09-14 Method and device for downhole logging

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB9906096.4 1999-03-18
GBGB9906096.4A GB9906096D0 (en) 1999-03-18 1999-03-18 Method for downhole logging

Publications (1)

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WO2000055651A1 true WO2000055651A1 (en) 2000-09-21

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US (1) US6842697B1 (en)
EP (1) EP1171784B1 (en)
AT (1) ATE363082T1 (en)
CA (1) CA2367010C (en)
DE (1) DE60034936D1 (en)
GB (1) GB9906096D0 (en)
NO (1) NO327488B1 (en)
WO (1) WO2000055651A1 (en)

Cited By (2)

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NO20014496L (en) 2001-10-16
GB9906096D0 (en) 1999-05-12
ATE363082T1 (en) 2007-06-15
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