Claims
- 1. A mud pulse telemetry system, comprising:
a. a drillstring having a drilling fluid flowing therein, said drill string extending in a borehole from a drilling rig to a downhole location; b. a non-rotating stator disposed in the flowing drilling fluid, said stator having a plurality of flow passages to channel the drilling fluid; c. a rotor disposed in the flowing drilling fluid proximate the stator, the rotor having a plurality of flow passages; and d. a motor driven gear system adapted to drive the rotor in a rotationally oscillating manner for generating pressure fluctuations in the drilling fluid.
- 2. The mud pulse telemetry system of claim 1, wherein the motor driven gear system is a planetary drive gear system.
- 3. The mud pulse telemetry system of claim 2, wherein the motor driven gear system is a cam system for converting continuous motor rotation to oscillating rotor motion.
- 4. The mud pulse telemetry system of claim 2 wherein the motor driven gear system is a pin and crank system for driving the rotor in an oscillating motion, said pin being adapted to provide an adjustable eccentricity for adjusting said oscillating rotational motion of said rotor.
- 5. The mud pulse telemetry system of claim 1 further comprising a downhole electronics module wherein the electronics module comprises circuitry, including a programmable processor, adapted to perform programmed instructions for controlling the motion of the motor.
- 6. The mud pulse telemetry system of claim 5 wherein the programmable processor is adapted, according to programmed instructions, to detect and decode a command pressure pulse signal sent from a surface location, said processor thereby modifying the motion of the motor, according to programmed instructions.
- 7. The mud pulse telemetry system of claim 1, further comprising a drive motor chosen from the group consisting of (i) a reversible D.C. motor and (ii) a stepper motor.
- 8. The mud pulse telemetry system of claim 7, further comprising a torsion spring coupling a motor drive shaft to a pulser housing, said torsion spring having a predetermined spring constant such that the torsion spring combined with a plurality of rotating masses comprising the motor drive shaft, a drive shaft, the rotor, and the gear system create a torsional spring-mass system whose torsional resonant frequency is related to the operational oscillating rotor frequency.
- 9. The mud pulse telemetry system of claim 1, further comprising a torsion spring coupling a motor drive shaft to a pulser housing, said torsion spring having a predetermined spring constant such that the torsion spring is related to the operational hydraulic load at the valve.
- 10. A method for providing a high data rate in a mud pulse telemetry system by generating a fast transition in a mud pulse telemetry multivalent encoding scheme.
- 11. The method of claim 10, wherein the multivalent encoding scheme is one of (i) a combination of an amplitude shift key encoding (ASK) scheme and a frequency shift key encoding scheme (FSK); and (ii) a combination of an amplitude shift key encoding (ASK) scheme and a (PSK) phase shift keying encoding scheme
- 12. The method of claim 11, wherein the multivalent encoding scheme of the combination of an amplitude shift key encoding (ASK) scheme and a frequency shift key encoding scheme (FSK) comprises;
a. driving a rotor in an oscillatory periodic motion through at least one first predetermined rotational angle at at least one first predetermined frequency generating at least one first pulse amplitude at the at least one first predetermined frequency; b. changing a drive signal to drive the rotor in an oscillatory periodic motion through at least one second predetermined rotational angle at at least one second predetermined frequency according to the multivalent encoding scheme; and c. attaining at least one second pulse amplitude at the at least one second predetermined frequency in no more than one rotor oscillatory period.
- 13. The method of claim 11 wherein the at least one first predetermined frequency is a continuously changing predetermined frequency constituting at least one first chirp signal.
- 14. The method of claim 12 wherein the at least one second predetermined frequency is a continuously changing predetermined frequency constituting at least one second chirp signal.
- 15. The method of claim 11, wherein the multivalent encoding scheme of the combination of an amplitude shift key encoding (ASK) scheme and a phase shift key encoding scheme (PSK) comprises;
a. driving a rotor in an oscillatory periodic motion through at least one first predetermined rotational angle having at least one first predetermined phase relationship at a predetermined frequency generating at least one first pulse amplitude at the first predetermined phase relationship at the predetermined frequency; b. changing a drive signal to drive the rotor in an oscillatory periodic motion through at least one second predetermined rotational angle at at least one second predetermined phase relationship at the predetermined frequency according to the multivalent encoding scheme; and c. attaining at least one second pulse amplitude at the at least one second predetermined phase relationship at the predetermined frequency in no more than one rotor oscillatory period.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a Continuation-in-Part of U.S. patent application Ser. No. 09/794,964 filed on Feb. 27, 2001.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09794964 |
Feb 2001 |
US |
Child |
10223169 |
Aug 2002 |
US |