Background of the Invention
Field of the Invention
The present invention relates to resistivity well logging systems and methods in general and, more particularly, to resistivity well logging systems and methods for the detection of anisotropic earth formations.
Summary of the Invention
An anisotropic well logging system includes a well logging tool including a first transmitter coil spatially arranged within the well logging tool in a first predetermined manner and a second transmitter coil spatially arranged within the well logging tool in a second predetermined manner which ultimately transmits electromagnetic energy into the formation at a frequency which enables electromagnetic energy to propagate through the surrounding earth formation. A first pair of receiver coils spaced a predetermined distance from each other and from the first transmitter coil and spatially arranged within the well logging tool in the same manner as the first transmitter coil provides signals in accordance with the recieved electromagnetic energy. A second pair of receiver coils spatially arranged within the logging tool in the same predetermined manner as the second transmitter coil and spaced a predetermined distance from each other and another predetermined distance from the second transmitter coil provides signals in accordance with the received electromagnetic energy. A control apparatus controls the first and second transmitters so they alternately transmit the electromagnetic energy into the earth formation and also provides a control signal. Processing apparatus responsive to the control signal from the control apparatus provides one output representative of the vertical resistance of the earth formation and a second output representative of the horizontal reistance of the earth formation in accordance with the signals from the four receivers.
The objects and advantages of the invention will appear more fully hereinafter toward consideration of the detailed description which follows, taken together with the accompanying drawings wherein one embodiment of the invention is illustrated by way of example. It is to be expressly understood, however, that the drawings are for illustration purposes only and are not to be construed as defining the limits of the invention.
Description of the Drawings
FIG. 1 is a graphical representation of an anisotropic well logging tool constructed in accordance with the present invention.
FIG. 2 is a schematic of an anisotropic well logging system constructed in accordance with the present invention.
Description of the Preferred Embodiment
Referring now to FIG. 1, there is shown a well logging tool 5 connected to a logging cable 8 with the coil arrangement in the present invention for anistropy well logging. In this regard, there is a transmitter coil 10 having a common longitudinal axis with logging tool 5. There is also a second transmitter coil 12 whose longitudinal axis is perpendicular to the longitudinal axis of well logging tool 5. There are two receiver coils 16 and 24 having a common longitudinal axis with the longitudinal axis of the well logging tool spaced a predetermined distance from each other. Coils 16 and 24 are spaced predetermined distances from transmitter coil 10. Similarly there are reciever coils 18 and 26 whose longitudinal axes are not common to each other, but are perpendicular to the longitudinal axis of logging tool 5.
With reference to FIG. 2, coils 10, 12, 16, 18, 24 and 26 are shown in schematic form with coils 10 and 12 being connected to power amplifiers 30 and 32 respectively. Power amplifiers 30 and 32 are in turn connected to an electronic switch 34 which is in essence is a single pole, double throw switch controlled by a signal as hereinafter explained. Switch 34 is also connected to a transmitter means 38 which provides the electromagnetic energy to be transmitted into the earth formation by coils 10 and 12. The frequency of the electromagnetic energy may be in the range of 0.5 to 4 megahertz. A preferred frequency has been found to be 2 megahertz.
Coils 16 and 18 are connected to RF amplifiers 40 and 42, respectively, whose outputs are connected to another single pole double throw electronic switch 44. Switch 44 is also responsive to the same control signal as switch 34. Switch 44 is connected to mixer means 46.
Similarly coils 24, 26 are connected to RF amplifiers 50 and 52, respectively, whose outputs in turn are connected to yet another single pole double throw electronic switch 54. Switch 54 is controlled by the same control signal previously mentioned. Switch 54 is connectd to mixer means 56.
A local oscillator 60 provides a signal to mixer means 46 and 56, each of which produces a lower frequency, preferably 2 kilohertz, output to a phase measuring circuit 63. The output from phase measuring circuit 63 is provided to an analog-to-digital converter 67 which in turn is connected to a digital transmission system 68. Digital transmission system 68 is connected to well logging cable 8 and also to a digital-to-analog converter 70. Digital-to-analog convertor 70 provides a gate output signal from the surface electronics unit to switch control circuit 74, which in turn provides the control signal to switches 34, 44 and 54.
Well logging cable 8 is connected to the surface electronics and more specifically to the surface digital transmission system 78. The output of the digital transmission system 78 is also provided back downhole to digital transmission system 68 as hereinafter explained. Another output of digital transmission system 78 is provided to gate means 79 which in essence is a single pole, double throw electronic switch providing outputs to phase-to-resistivity converters 80 and 82, as hereinafter explained. Phase-to-resistivity converters 80, 82 are EPROM memories, containing stored resistivity values associated with different phase measurements. Gate means 79 is controlled by a control signal from gate generator means 86, which also provides the control signal to digital transmission system 78 for transmission downhole to switch control circuit 74. The outputs of phase-to-resistivity means 80, 82 are provided to digital-to-analog converters 90 and 92, respectively, which converts the outputs to analog signals and provides them to a conventional recorder 98. There is also a depth signal being received by recorder 98 from the sheave wheel, which is used in the raising and lowering operation of the well logging tool. The recordings being provided by recorder 98 are correlated to depth in the borehole.
In operation, gate generator means 96 repetitiously provides control pulses to digital transmission system 78 and gate means 79. The control pulses are then transmitted downhole where they are separated by digital transmission system 68 and provided to digital-to-analog converter 70. The digital signals are converted to an analog signal which in turn are processed into a control signal by switch control circuit 74. The control signal from switch control circuit 74 causes switches 34, 44 and 54 to alternately switch between transmitter coils 10 and 12 and receiver coils 16 and 18 and receiver coils 24 and 26, respectively. Thus when the electromagnetic energy from transmitter means 38 is being provided to transmitting coil 10 the electromagnetic energy being received by receiver coils 16 and 24 passes through switches 44 and 54, respectively to mixer means 46 and 56, respectively where they are mixed with the signals from local oscillator means 60.
Phase measurement circuit 63 provides a phase measurement signal, associated only with the longitudinal axis of well logging tool 5, to analog-to-digital converter 67 for conversion to digital signals. The digital signals are transmitted uphole to the digital transmission system 78, which in turn provides them to gate means 79.
Gate means 79 is also controlled by gate generator means 86, and passes the digital to phase data to phase-to-resistivity means 80. Phase-to-resistivity means 80 then selects the appropriate resistivity value in accordance with the digital signals and provides corresponding digital signals to a digital-to-analog converter 90 where they are converted to an analog signal. The analog signal from converter 90 is recorded by recorder 98 as the axial resistivity for the earth formation with the term "axial" identifying the orientation of the measurement coils. Actually, the resistivity measured by these coils is predominantly in the plane perpendicular to the axis of the well logging tool.
Similarly gate generator means 86 will then cause switch control circuit 74 not to provide a control signal and as a result transmitter means 38 provides it electromagnetic energy to transmitter coil 12 which is transmitted into the earth formation. This time, however, radially oriented energy propagates through the earth formation and is detected by receiver coils 18 and 26. Coils 18 and 26 provide signals which are passed through switches 44 and 54, respectively, to mixer means 46 and 56, so that the phase measurement from phase measuring circuit 63 at this time corresponds to the phase measurement for the radial resistivity of the earth formation. It should be noted that the term "radial" identifies the orientation of the measurement coils. Actually, the resistivity measured by these coils is predominantly in a plane parallel to the axis of the well logging sonde. The signal from phase measuring circuit 63 is processed by analog-to-digital converter 67 and digital transmission system 68 which then transmits the signal uphole to digital transmission system 78 and thence through gate means 79, to phase-to-resistivity means 82, and then to digital-to-analog converter 92 where the digital signals are converted to an analog signal representative of the radial resistivity of the earth formation, which is recorded by recorder 98.
It may be desirable to record the resistivity anisotropy factor as the ratio of the axial resistivity to the radial resistivity. In such case the ratio would be taken in digital form with the outputs signals from 80 and 82. Output of the ratio circuit would then be converted to analog for recording.