Claims
- 1. A method for operating a digital flowmeter comprising:
operating the digital flowmeter in a random sequence mode, where the random sequence mode is characterized by a first drive signal that includes randomly-generated values and that causes a vibration of a flowtube; operating the digital flowmeter in a positive feedback mode, where the positive feedback mode is characterized by a sensor signal that corresponds to the vibration and that is used as a second drive signal for maintaining the vibration; and operating the digital flowmeter in a digital synthesis mode, where the digital synthesis mode is characterized by a synthesis of a third drive signal for maintaining the vibration.
- 2. The method of claim 1 further comprising transitioning the digital flowmeter between two or more of the random sequence mode, the positive feedback mode, and the digital synthesis mode.
- 3. The method of claim 1 wherein operating the digital flowmeter in the random sequence mode comprises filtering the randomly-generated values to remove frequency components above a pre-determined cut-off level.
- 4. The method of claim 3 wherein filtering the randomly-generated values comprises setting the pre-determined cut-off level based on a range of potential resonance frequencies associated with the flowtube.
- 5. The method of claim 1 wherein operating the digital flowmeter in the random sequence mode comprises filtering the randomly-generated values to remove frequency components above a first pre-determined cut-off level and below a second pre-determined cut-off level.
- 6. The method of claim 1 further comprising operating the digital flowmeter in a zero-output mode, the zero-output mode characterized by having a zero-value drive signal.
- 7. The method of claim 6 wherein operating the digital flowmeter in the random sequence mode comprises:
detecting a pre-determined condition; and initiating operation of the zero-output mode, based on the predetermined condition.
- 8. The method of claim 7 wherein operating the digital flowmeter in the zero-output mode comprises:
detecting a pre-determined amount of time has passed; and transitioning operation of the digital flowmeter into the positive feedback mode.
- 9. The method of claim 7 wherein detecting the pre-determined condition comprises detecting an end of a pre-determined time period.
- 10. The method of claim 1 wherein operating the digital flowmeter in the positive feedback mode comprises:
detecting a first pre-determined condition; and initiating operation of the digital synthesis mode, based on the first pre-determined condition.
- 11. The method of claim 10 wherein detecting the first pre-determined condition comprises:
detecting a signal waveform within the sensor signal; determining that the signal waveform has a pre-determined characteristic; and transitioning operation of the digital flowmeter from the positive feedback mode into the digital synthesis mode.
- 12. The method of claim 11 wherein determining that the signal waveform has a pre-determined characteristic comprises determining that the signal waveform has sinewave characteristics.
- 13. The method of claim 11 further comprising:
detecting an instability associated with the operation of the digital flowmeter in the digital synthesis mode; and transitioning operation of the digital flowmeter from the digital synthesis mode into the positive feedback mode, in response to detecting the instability.
- 14. The method of claim 11 further comprising:
detecting an instability associated with the operation of the digital flowmeter in the digital synthesis mode; and transitioning operation of the digital flowmeter from the digital synthesis mode into the random sequence mode, in response to detecting the instability.
- 15. The method of claim 10 wherein operating the digital flowmeter in the positive feedback mode comprises:
detecting a second predetermined condition; and transitioning operation of the flowmeter from the positive feedback mode into the random sequence mode, based on the second predetermined condition.
- 16. The method of claim 15 wherein detecting the second predetermined condition comprises detecting an instability in an operation of the flowmeter.
- 17. The method of claim 1 wherein operating the digital flowmeter in the positive feedback mode comprises filtering an initial sensor signal to obtain the sensor signal.
- 18. The method of claim 1 wherein the sensor signal is a digital signal, and operating the digital flowmeter in the positive feedback mode comprises converting an analog sensor signal into the sensor signal.
- 19. The method of claim 1 wherein operating the digital flowmeter in the positive feedback mode comprises:
buffering the sensor signal to obtain a buffered sensor signal; and selecting values from the buffered sensor signal to use as the second drive signal so as to compensate for a delay associated with the second drive signal, where the delay is associated with a digital element associated with the flowmeter.
- 20. The method of claim 1 wherein operating the digital flowmeter in the digital synthesis mode comprises filtering an initial sensor signal to obtain the sensor signal.
- 21. The method of claim 1 wherein operating the digital flowmeter in the digital synthesis mode comprises basing the synthesis of the third drive signal on an analysis of the sensor signal.
- 22. A digital flowmeter comprising:
a vibratable flowtube; a sensor connected to the flowtube and operable to sense information about a motion of the flowtube; a driver connected to the flowtube and operable to impart energy to the flowtube; a filter system; a random-value generator operable to generate random-frequency signals; and a control and measurement system operable to apply the filter system to the random-frequency signals and supply filtered, random-frequency signals to the driver for application to the flowtube of a first drive signal during a first mode, and further operable to transition the digital flowmeter into a second mode characterized by a second drive signal.
- 23. The digital flowmeter of claim 22 wherein the control and measurement system is operable to transition the digital flowmeter from the second mode to the first mode, in response to detecting a system disturbance associated with the digital flowmeter.
- 24. The digital flowmeter of claim 22 wherein the second mode is a zero-output mode in which the second drive signal has a magnitude of substantially zero, and the control and measurement system transitions the digital flowmeter from the first mode to the second mode after a pre-determined amount of time.
- 25. The digital flowmeter of claim 24 wherein the control and measurement system is further operable to transition the digital flowmeter from the second mode into a third mode, the third mode being a positive feedback mode characterized by a third drive signal that includes components of a sensor signal detected by the sensor and fed back to the driver.
- 26. The digital flowmeter of claim 25 wherein the control and measurement system is further operable to transition the digital flowmeter from the third mode back into the first mode, in response to detecting a system disturbance associated with the digital flowmeter.
- 27. The digital flowmeter of claim 25 wherein the control and measurement system is further operable to transition the digital flowmeter from the third mode into a fourth mode, the fourth mode being characterized by a drive signal that is synthesized by the control and measurement system based on an analysis of the sensor signal.
- 28. The digital flowmeter of claim 27 wherein the filter system is operable to filter an initial sensor signal to obtain the sensor signal.
- 29. The digital flowmeter of claim 27 wherein the sensor signal is a digital signal.
- 30. The digital flowmeter of claim 27 wherein the control and measurement system initiates transition from the third mode to the fourth mode in response to a pre-determined event.
- 31. The digital flowmeter of claim 30 wherein the pre-determined event includes detection of sinewave components within the sensor signal.
- 32. The digital flowmeter of claim 27 wherein the control and measurement system is further operable to transition the digital flowmeter from the fourth mode to the third mode, upon detecting a system disturbance associated with the digital flowmeter.
- 33. The digital flowmeter of claim 27 wherein the control and measurement system is further operable to transition the digital flowmeter from the fourth mode to the first mode, upon detecting a system disturbance associated with the digital flowmeter.
- 34. The digital flowmeter of claim 22 wherein the second mode is a positive feedback mode in which the second drive signal includes components of a sensor signal detected by the sensor and fed back to the driver.
- 35. The digital flowmeter of claim 22 wherein the second mode is a digital synthesis mode in which the second drive signal is synthesized based on an analysis of a sensor signal detected by the sensor.
- 36. The digital flowmeter of claim 22 wherein the filter subsystem is operable to filter the random-frequency signals to include a pre-determined range of frequencies within the filtered, random-frequency signals.
- 37. A flowmeter comprising:
a vibratable flowtube; a sensor connected to the flowtube and operable to sense information about a motion of the flowtube by way of a sensor signal; a driver connected to the flowtube and operable to impart energy to the flowtube by way of a drive signal; and a digital transmitter operable to select and implement, from among a plurality of operational modes, an operational mode determined to be best-suited for a current operational environment of the digital flowmeter.
- 38. The flowmeter of claim 37 wherein the plurality of operational modes includes a random-sequence mode to generate the drive signal, in which the digital transmitter generates random frequencies, filters the random frequencies to obtain filtered random frequencies and delivers the filtered random frequencies to the driver.
- 39. The flowmeter of claim 38 wherein the digital transmitter filters the random frequencies to retain frequencies within a pre-determined frequency range.
- 40. The flowmeter of claim 38 wherein the random-sequence mode is selected and implemented during a startup operation of the flowmeter.
- 41. The flowmeter of claim 37 wherein the plurality of operational modes includes a zero-output mode, in which a magnitude of the drive signal is substantially zero.
- 42. The flowmeter of claim 37 wherein the plurality of operational modes includes a positive feedback mode, in which a sensor signal is processed and supplied to the driver.
- 43. The flowmeter of claim 37 wherein the plurality of operational modes includes a digital synthesis mode, in which the drive signal is digitally synthesized, based on an analysis of the sensor signal.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from U.S. Provisional Application No. 60/368,153, filed Mar. 29, 2002, and titled ELLIPTICAL FILTER FOR DIGITAL FLOWMETER, and is a Continuation in Part of U.S. application Ser. No. 10/xxx,xxx, filed Mar. 28, 2003, and titled DRIVE TECHNIQUES FOR A DIGITAL FLOWMETER, both of which are incorporated by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60368153 |
Mar 2002 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
10400922 |
Mar 2003 |
US |
| Child |
10402131 |
Mar 2003 |
US |