Claims
- 1. A power amplifier for responding to an information modulated electrical signal to generate a transmission signal for application to a transmission channel, said amplifier comprising:
- a switching device having a first signal port adapted to receive a DC power source, having a control input, and having a second signal port;
- a current steering device coupled to said second signal port of said switching device, said current steering device conducting current in a first direction therethrough more easily than in a second direction therethrough;
- an energy storage device having a first node coupled to said second signal port of said switching device and having a second node for coupling to said transmission channel; and
- a feedback-actuated controller having a first input coupled to said second node of said energy storage device, a second input adapted to receive said information modulated electrical signal, and an output coupled to said control input of said switching device, said controller defining a duration for which said switching device is activated so that said transmission signal corresponds to said information modulated electrical signal.
- 2. A power amplifier as claimed in claim 1 additionally comprising a second energy storage device having a first node coupled to said second node of said energy storage device and having a second node coupled to said current steering device.
- 3. A power amplifier as claimed in claim 2 wherein said second energy storage device comprises a capacitor.
- 4. A power amplifier as claimed in claim 1 additionally comprising a terminal for coupling to said transmission channel, said terminal additionally being coupled to said current steering device.
- 5. A power amplifier as claimed in claim 4 wherein said transmission channel is a well casing, and said power amplifier additionally comprises a casing electrode which is DC coupled to said terminal.
- 6. A power amplifier as claimed in claim 1 wherein said controller additionally has a third input, and said power amplifier additionally comprises an oscillator having an output coupled to said controller third input, said oscillator cooperating with said controller to define a substantially constant frequency at which said switching device activates and deactivates.
- 7. A power amplifier as claimed in claim 6 wherein:
- said information modulated electrical signal exhibits a predetermined frequency; and
- said oscillator exhibits a frequency greater than said predetermined frequency.
- 8. A power amplifier as claimed in claim 6 wherein said feedback-actuated controller comprises:
- an error amplifier having inverting and non-inverting inputs and an output, a first one of said inverting and non-inverting inputs being coupled to said second node of said energy storage device and a second one of said inverting and non-inverting inputs being adapted to receive said information modulated electrical signal; and
- a pulse width modulator circuit having a first input coupled to said error amplifier output and a second input coupled to said oscillator output, said pulse width modulator circuit generating a switching device control signal having a frequency substantially equivalent to a frequency of a signal supplied by said oscillator and having a duty cycle corresponding to an error signal provided by said error amplifier.
- 9. A power amplifier as claimed in claim 1 wherein said feedback-actuated controller comprises a comparison circuit having inverting and non-inverting inputs, a first one of said inverting and non-inverting inputs being coupled to said second node of said energy storage device and a second one of said inverting and non-inverting inputs being adapted to receive said information modulated electrical signal, said comparison circuit providing an error signal which selectably increases and decreases activation duration for said switching device.
- 10. A power amplifier as claimed in claim 1 wherein said transmission channel is a well casing, and said power amplifier additionally comprises a casing electrode DC coupled to said second node of said energy storage device.
- 11. A power amplifier as claimed in claim 1 wherein said current steering device comprises a diode.
- 12. A power amplifier as claimed in claim 1 wherein said energy storage device comprises an inductor.
- 13. A down-hole telemetry apparatus for electromagnetically transmitting information from an underground location through a well casing, said apparatus comprising:
- a battery for electrically energizing said down-hole telemetry apparatus;
- a parameter sensor for providing a parameter signal which characterizes said information;
- a modulator coupled to said sensor for generating a modulation signal exhibiting characteristics which are responsive to said parameter signal;
- a switching device having a first port coupled to said battery, having a control input, and having a second port;
- a diode coupled to said second port of said switching device;
- an inductor having a first node coupled to said second port of said switching device and having a second node;
- a casing electrode DC coupled to said inductor second node, said casing electrode for electromagnetically transmitting said information to said well casing; and
- a feedback-actuated controller having a first input coupled to said inductor second node, a second input coupled to said modulator, and an output coupled to said control input of said switching device, said controller defining a duration for which said switching device is activated so that said casing electrode transmits a signal which corresponds to said modulation signal.
- 14. A down-hole telemetry apparatus as claimed in claim 13 additionally comprising a second casing electrode for coupling to said well casing, said second casing electrode being DC coupled to said diode.
- 15. A down-hole telemetry apparatus as claimed in claim 14 additionally comprising a capacitor coupled between said casing electrode and said second casing electrode.
- 16. A down-hole telemetry apparatus as claimed in claim 15 wherein said controller has a third input, and said apparatus additionally comprises an oscillator having an output coupled to said controller third input, said oscillator cooperating with said controller to define a substantially constant frequency at which said switching device activates and deactivates to optimize operating efficiency of said inductor.
- 17. A down-hole telemetry apparatus as claimed in claim 16 wherein:
- said modulation signal exhibits a frequency which substantially remains less than a maximum frequency; and
- said oscillator exhibits a frequency greater than said maximum frequency.
- 18. A down-hole telemetry apparatus as claimed in claim 17 wherein said feedback-actuated controller comprises:
- an error amplifier having inverting and non-inverting inputs and an output, a first one of said inverting and non-inverting inputs being coupled to said casing electrode and a second one of said inverting and non-inverting inputs being coupled to said modulator; and
- a pulse width modulator circuit having a first input coupled to said comparator output and a second input coupled to said oscillator output, said pulse width modulator circuit generating a switching device control signal having a frequency substantially equivalent to a frequency of a signal supplied by said oscillator and having a duty cycle corresponding to an error signal provided by said error amplifier.
- 19. A down-hole telemetry apparatus as claimed in claim 13 additionally comprising a variable gain circuit coupled between said modulator and said controller, said variable gain circuit operating to control amplitude of signals applied to said well casing.
- 20. A down-hole telemetry apparatus as claimed in claim 19 additionally comprising computing means, coupled between said parameter sensor and said modulator, for controlling the sensing of said information, for formatting of said parameter signal into digital data, and for supplying of said digital data to said modulator.
- 21. A method of coupling an electrical modulation signal produced at an underground location to a well casing for electromagnetic transmission therethrough, said method comprising the steps of:
- switching DC battery current on and off in response to a control signal;
- when said DC battery current is switched on, forming a circuit for said DC battery current through an inductor and said well casing so that a transmission signal is applied to said well casing and so that energy is stored in said inductor;
- when said DC battery current is switched off, forming a circuit for current generated from energy stored in said inductor through said inductor, said well casing, and a diode to continue application of said transmission signal to said well casing;
- sensing the voltage of said transmission signal applied at said well casing;
- generating an error signal which corresponds to error between said electrical modulation signal and said transmission signal applied at said well casing;
- continuously modulating said control signal to reduce said error signal.
- 22. A method as claimed in claim 21 wherein:
- said switching step switches said DC battery current at a substantially constant frequency; and
- said modulating step varies a duty cycle parameter of said substantially constant frequency.
- 23. A method as claimed in claim 21 additionally comprising the step of coupling a capacitor across said well casing throughout said forming steps to stabilize said voltage of said transmission signal for said sensing step.
- 24. A well logging system, comprising:
- an electrode for detecting electromagnetic energy propagated through the earth;
- a receiver coupled to said electrode for decoding signal information from the energy detected by said electrode; and
- a downhole transmitter, comprising:
- a sensor for detecting a downhole condition and for generating an electrical signal corresponding thereto;
- a modulator circuit, for modulating said signal from said sensor;
- a power source;
- a first output electrode, for applying electromagnetic energy to the earth;
- a switch, coupled between said power source and a switch node, said switch having a control input;
- a diode, coupled between said switch node and said voltage;
- an inductor, coupled between said switch node and said first output electrode; and
- a control circuit, having a first input coupled to said modulator circuit, having a second input coupled to said first output electrode, and having an output coupled to the control input of said switch, for controlling the coupling of the power source to the switch node in such a manner that the energy applied to the earth by said first output electrode corresponds to the signal generated by said sensor.
- 25. The system of claim 24, wherein said downhole transmitter further comprises:
- a capacitor coupled between said first output electrode and said reference voltage.
- 26. The system of claim 24, further comprising:
- a second ouput electrode, coupled to said reference voltage, for coupling said reference voltage to the earth.
- 27. The system of claim 24, wherein said control circuit comprises:
- an error amplifier, having a first input coupled to the output of said modulator circuit, having a second input coupled to said first output electrode, and having an output, said error amplifier for presenting a difference signal at its output corresponding to the differential between signals received at its first and second inputs;
- a periodic signal source, for generating a periodic signal; and
- a pulse width modulator circuit, having a first input coupled to the output of said error amplifier, having a second input coupled to said periodic signal source, and having an output coupled to the control input of said switch, for controlling said switch at the frequency of said periodic signal at a duty cycle corresponding to said difference signal.
- 28. The system of claim 27, wherein said periodic signal source comprises an oscillator.
- 29. The system of claim 27, wherein said periodic signal source is said modulator circuit.
- 30. The system of claim 24, wherein said first output electrode is for applying electromagnetic energy to conductive well casing.
Parent Case Info
The present application is a continuation of copending application Ser. No. 396,120, filed Aug. 18, 1989, now abandoned.
US Referenced Citations (7)
Continuations (1)
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Number |
Date |
Country |
Parent |
396120 |
Aug 1989 |
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