Claims
- 1. A viscosity sensing device comprising:
a substrate; a tube supported by the substrate and comprising a fluid inlet, a fluid outlet, and a freestanding portion between the fluid inlet and the fluid outlet so as to define a continuous passage through the tube, the freestanding portion being spaced apart from a surface of the substrate; means for vibrating the freestanding portion of the tube at or near a resonant frequency thereof; means for sensing movement of the freestanding portion of the tube; and means for assessing the viscosity of a fluid within the tube by ascertaining the damping effect the fluid within the freestanding potion has on movement of the freestanding portion at or near the resonant frequency.
- 2. A viscosity sensing device according to claim 1, further comprising means for storing data pertaining to the movement of the freestanding potion at or near the resonant frequency.
- 3. A viscosity sensing device according to claim 2, wherein the assessing means ascertains the damping effect by calculating the value of the quality factor of the freestanding potion while vibrating at or near the resonant frequency and comparing the calculated value of the quality factor with a quality factor value stored in the storing means.
- 4. A viscosity sensing device according to claim 2, wherein the assessing means ascertains the damping effect by measuring the value of the peak amplitude of the freestanding potion while vibrating at or near the resonant frequency and comparing the measured value of the peak amplitude with a peak amplitude value stored in the storing means.
- 5. A viscosity sensing device according to claim 2, wherein the assessing means ascertains the damping effect by comparing an amplitude-versus-frequency plot of the freestanding potion with an amplitude-versus-frequency plot stored in the storing means.
- 6. A viscosity sensing device according to claim 1, wherein the assessing means estimates the viscosity of the fluid.
- 7. A viscosity sensing device according to claim 1, wherein the assessing means is operable to intermittently assess the viscosity of the fluid within the tube.
- 8. A viscosity sensing device according to claim 1, wherein the assessing means is operable to continuously assess the viscosity of the fluid within the tube.
- 9. A viscosity sensing device according to claim 1, wherein the fluid flows through the tube during operation of the assessing means.
- 10. A viscosity sensing device according to claim 9, further comprising means for determining the mass flow rate of the fluid flowing through the tube by sensing a Coriolis force-induced twisting of the freestanding portion.
- 11. A viscosity sensing device according to claim 9, further comprising means for determining the density of the fluid flowing through the tube by sensing changes in the resonant frequency of the freestanding portion.
- 12. A viscosity sensing device according to claim 1, wherein the fluid does not flow through the freestanding potion during operation of the assessing means.
- 13. A viscosity sensing device according to claim 1, further comprising means for sensing the temperature of the fluid in the freestanding portion.
- 14. A viscosity sensing device according to claim 1, wherein the freestanding portion is a cantilevered portion of the tube above the surface of the substrate, and the vibrating means and the movement sensing means are electrodes on the surface of the substrate beneath the cantilevered portion of the tube.
- 15. A viscosity sensing device according to claim 1, further comprising a cap hermetically bonded to the substrate so as to define a hermetically-sealed evacuated enclosure containing the freestanding portion.
- 16. A viscosity sensing device according to claim 1, wherein the tube comprises flow turbulators that extend into the passage within the freestanding portion.
- 17. A viscosity sensing device according to claim 1, wherein the tube is formed of semiconducting material.
- 18. A viscosity sensing device according to claim 1, wherein the viscosity sensing device is installed on an engine and the fluid is a lubricating oil within the engine.
- 19. A viscosity sensing device according to claim 1, wherein the fluid flows through the tube during operation of the assessing means, and the device further comprises means for determining the mass flow rate of the fluid flowing through the tube by sensing a Coriolis force-induced twisting of the freestanding portion, means for determining the density of the fluid flowing through the tube by sensing changes in the resonant frequency of the freestanding portion, and means for sensing the temperature of the fluid in the freestanding portion.
- 20. A viscosity sensing device according to claim 19, wherein the device is a component of a lubrication system, the fluid is a lubricant, and the device uses the viscosity, the mass flow rate, the density, and the temperature of the lubricant to indicate the condition of the lubricant and the lubrication system.
- 21. A method of assessing the viscosity of a fluid, the method comprising the steps of:
introducing the fluid into a passage within a freestanding portion of a tube; vibrating the freestanding portion of the tube at or near a resonant frequency thereof; sensing movement of the freestanding portion of the tube; and assessing the viscosity of a fluid within the tube by ascertaining the damping effect the fluid within the freestanding potion has on movement of the freestanding portion at or near the resonant frequency.
- 22. A method according to claim 21, wherein the damping effect is ascertained by calculating the value of the quality factor of the freestanding potion while vibrating at or near the resonant frequency and comparing the calculated value of the quality factor with a stored quality factor value.
- 23. A method according to claim 21, wherein the damping effect is ascertained by measuring the value of the peak amplitude of the freestanding potion while vibrating at or near the resonant frequency and comparing the measured value of the peak amplitude with a stored peak amplitude value.
- 24. A method according to claim 21, wherein the damping effect is ascertained by comparing an amplitude-versus-frequency plot of the freestanding potion with a stored amplitude-versus-frequency plot.
- 25. A method according to claim 21, wherein the damping effect is ascertained by measuring and comparing values of peak amplitudes at two or more resonant nodes while vibrating the freestanding potion at or near the resonant frequency.
- 26. A method according to claim 21, wherein the assessing step includes estimating the viscosity of the fluid.
- 27. A method according to claim 21, further comprising collecting and storing a first set of data pertaining to the movement of the freestanding portion at or near the resonant frequency, and then comparing the first set of data with a second set of data subsequently collected while vibrating the freestanding portion at or near the resonant frequency.
- 28. A method according to claim 21, wherein the assessing step is performed intermittently to assess the viscosity of the fluid within the tube.
- 29. A method according to claim 21, wherein the assessing step is performed continuously to assess the viscosity of the fluid within the tube.
- 30. A method according to claim 21, wherein the fluid flows through the tube during the assessing step.
- 31. A method according to claim 30, further comprising determining the mass flow rate of the fluid flowing through the tube by sensing a Coriolis force-induced twisting of the freestanding portion of the tube.
- 32. A method according to claim 30, further comprising determining the density of the fluid flowing through the tube by sensing changes in the resonant frequency of the freestanding portion of the tube.
- 33. A method according to claim 21, wherein the fluid does not flow through the tube during the assessing step.
- 34. A method according to claim 21, further comprising sensing the temperature of the fluid in the freestanding portion of the tube.
- 35. A method according to claim 21, further comprising the step of micromachining the freestanding portion of the tube to be a cantilevered portion of the tube above a surface of a substrate supporting the tube.
- 36. A method according to claim 35, wherein the freestanding portion of the tube is micromachined to contain flow turbulators that extend into the passage within the freestanding portion of the tube.
- 37. A method according to claim 21, further comprising hermetically bonding a cap to the substrate so as to define a hermetically-sealed evacuated enclosure containing the freestanding portion of the tube.
- 38. A method according to claim 21, wherein the tube is formed of semiconducting material.
- 39. A method according to claim 21, wherein the fluid flows through the tube during the assessing step, and the method further comprises determining the mass flow rate of the fluid flowing through the tube by sensing a Coriolis force-induced twisting of the freestanding portion of the tube, determining the density of the fluid flowing through the tube by sensing changes in the resonant frequency of the freestanding portion of the tube, and sensing the temperature of the fluid in the freestanding portion of the tube.
- 40. A viscosity sensing device according to claim 39, wherein the tube is a component of a lubrication system, the fluid is a lubricant, and the viscosity, the mass flow rate, the density, and the temperature of the lubricant are used to indicate the condition of the lubricant and the lubrication system.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/479,046, filed Jun. 18, 2003.
FEDERAL RESEARCH STATEMENT
[0002] [Federal Research Statement Paragraph]This invention was made with Government support under Agreement No. 70NANB3H3040 awarded by NISTATP. The Government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60479046 |
Jun 2003 |
US |