Claims
- 1. A method of communicating telemetry information comprising:
grouping data words to form data frames; transmitting a preamble before each data frame; and transmitting the data frames immediately after the respective preamble.
- 2. The method of claim 1, wherein the preamble includes a quiet interval.
- 3. The method of claim 1, wherein the preamble includes a timing synchronization sequence.
- 4. The method of claim 1, wherein the preamble includes a training sequence.
- 5. The method of claim 1, wherein the act of transmitting the data frames includes using quadrature amplitude modulation to impress the data onto a carrier signal.
- 6. The method of claim 1, further comprising:
prepending a synchronization word and a data word count to each group of data words;
and appending a checksum to each group of data words.
- 7. The method of claim 6, further comprising:
scrambling each group of data words by combining the group of data words with a mask.
- 8. The method of claim 1, further comprising:
receiving the preambles; generating a local clock signal that is synchronized with a timing synchronization sequence in the preambles; and updating coefficients of an adaptive filter using a training sequence in the preambles.
- 9. A telemetry transmitter comprising:
a scrambler configured to exclusive-or data frames with a mask; a preamble generator configured to provide a preamble before each data frame; a modulator coupled to the preamble generator to receive the preambles and coupled to the scrambler to receive scrambled data frames, wherein the modulator is configured to modulate the preambles and scrambled data frames to form a quadrature amplitude modulated (QAM) signal, wherein the preamble is identical from frame to frame.
- 10. The telemetry transmitter of claim 9, wherein the preamble includes:
a quiet interval; a timing synchronization sequence; and a training sequence.
- 11. The telemetry transmitter of claim 9, further comprising:
a high pass filter configured to block low-frequency components of the QAM signal; and an isolation transformer configured to couple the filtered QAM signal to telemetry conductors contained within composite tubing.
- 12. A well comprising:
a wireline cable tubing having a telemetry conduit; a surface system coupled to the telemetry conduit; and a downhole instrument coupled to the surface system via the telemetry conduit, wherein the downhole instrument is configured to transmit telemetry information to the surface system using burst quadrature amplitude modulation (burst-QAM).
- 13. The well of claim 12, wherein the burst-QAM uses a signal constellation of 16 points.
- 14. The well of claim 12, wherein the wireline cable includes multiple electrical conductors, of which one or more serve as the telemetry conduit.
- 15. The well of claim 12, wherein the downhole instrument is configured to transmit the telemetry information in data frames, and wherein the data frames are interspersed with quiet periods.
- 16. The well of claim 12, wherein the downhole instrument is configured to transmit the telemetry information in data frames, and wherein each data frame is preceded by a respective timing synchronization sequence.
- 17. The well of claim 12, wherein the downhole instrument is configured to transmit the telemetry information in data frames, and wherein each data frame is preceded by a respective training sequence.
- 18. The well of claim 15, wherein each data frame consists of a plurality of synchronization words, a data count field, a plurality of data words, and a check word.
- 19. The well of claim 12, wherein the downhole instrument includes a transmit path having a preamble generator configured to transmit a preamble before each data frame.
- 20. The well of claim 19, wherein the transmit path includes a data scrambler configured to combine data frame data words with a mask to randomize the data words.
- 21. The well of claim 20, wherein the transmit path includes a direct digital synthesis modulator configured to modulate the scrambled data words using quadrature amplitude modulation.
- 22. The well of claim 21, wherein the transmit path includes a high pass filter coupled between the direct digital synthesis modulator and an isolation transformer.
- 23. The well of claim 20, wherein the surface system includes an uplink receive path having:
a timing recovery module configured to generate a clock signal locked to a timing synchronization sequence preceding each data frame in the telemetry signal; an adaptive equalizer configured to update filter coefficients in response to a training sequence preceding each data frame in the telemetry signal; a framing module configured to strip the timing synchronization sequences and the training sequences from the telemetry signal; and a descrambling module configured to combine the data frames with the mask to reverse a downhole scrambling operation.
- 24. The well of claim 23, wherein the timing synchronization sequences and training sequences are repeated at least 10 times per second.
- 25. A well comprising:
a tubing string that extends into a well bore; a downhole instrument mounted on a lower end of the tubing string; and a wireline cable that extends along the tubing string through an interior space, wherein the downhole instrument is configured to transmit telemetry information to an upper end of the tubing string via telemetry conduits in the wireline, using burst quadrature amplitude modulation (burst-QAM).
- 26. The well of claim 25, wherein the wireline cable includes multiple electrical conductors, of which one or more serve as the telemetry conduit.
- 27. The well of claim 25, wherein the downhole instrument is configured to transmit the telemetry information in data frames, and wherein the data frames are interspersed with quiet periods.
- 28. The well of claim 25, wherein the downhole instrument is configured to transmit the telemetry information in data frames, and wherein each data frame is preceded by a respective timing synchronization sequence.
- 29. The well of claim 25, wherein the downhole instrument is configured to transmit the telemetry information in data frames, and wherein each data frame is preceded by a respective training sequence.
- 30. The well of claim 27, wherein each data frame consists of a plurality of synchronization words, a data count field, a plurality of data words, and a check word.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of U.S. patent application Ser. No. 09/599,343, filed Jun. 22, 2000, and entitled “Burst QAM Downhole Telemetry System” by inventors Michael Wei and William Trainor.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09599343 |
Jun 2000 |
US |
Child |
10017176 |
Dec 2001 |
US |