Claims
- 1. A method for measuring the characteristics of a gas laden with droplets of a liquid, the liquid having a Leidenfrost temperature, the method comprising:
obtaining a first parameter for the gas laden with droplets of a liquid, the first parameter comprising heat loss information from a first probe, the first probe being maintained at a temperature above the Leidenfrost temperature for the liquid; obtaining a second parameter for the gas laden with liquid droplets; and determining a third parameter for the gas laden with liquid droplets from a combination of the first parameter and the second parameter.
- 2. The method according to claim 1, wherein the second parameter comprises heat loss information from a second probe, the second probe being maintained at a second temperature above the Leidenfrost temperature of the liquid.
- 3. The method according to claim 1, wherein the gas laden with droplets of liquid has flow characteristics, and wherein the second parameter includes the flow characteristics.
- 4. The method according to claim 3, wherein the flow characteristics include velocity of the gas laden with liquid.
- 5. The method according to claim 3, wherein the flow characteristics include temperature of the gas laden with liquid.
- 6. The method according to claim 1, wherein the first probe is maintained at the first temperature above the Leidenfrost temperature using a power source, and wherein obtaining the second parameter includes measuring the power from the power source needed to maintain the first probe at the first temperature above the Leidenfrost temperature.
- 7. The method according to claim 4, wherein obtaining the second parameter for the gas laden with liquid droplets includes measuring the velocity of the gas laden with liquid droplets.
- 8. The method according to claim 4, wherein obtaining the second parameter for the gas laden with liquid droplets includes measuring the temperature of the gas laden with liquid droplets.
- 9. The method according to claim 1, wherein the gas laden with droplets of a liquid is contained within a flow device.
- 10. The method according to claim 1, wherein the first probe moves relative to the gas laden with droplets of a liquid.
- 11. The method according to claim 10, wherein the flow device is selected from a group consisting of a gas turbine, a combustion engine, a tank, a pipe, a duct, a manifold, and a chamber.
- 12. The method according to claim 1, wherein the first probe comprises a heating element.
- 13. A system for measuring the characteristics of a gas laden with droplets of a liquid, the liquid having a Leidenfrost temperature, the system comprising:
a first probe maintained at a first temperature above the Leidenfrost temperature for the liquid; a controller coupled to the first probe; and a second probe coupled to the controller, the second probe being maintained at a second temperature above the Leidenfrost temperature for the liquid; wherein the controller provides power to maintain the first probe at the first temperature above the Leidenfrost temperature for the liquid and for measuring the power provided to the first probe; wherein the controller provides power to maintain the second probe at the second temperature above the Leidenfrost temperature for the liquid and for measuring the power provided to the second probe; and wherein an unknown parameter of the gas laden with droplets of a liquid is determined using the measured power provided to the first probe and the measured power provided to the second probe.
- 14. The system according to claim 13, further comprising:
a processor coupled to the controller for determining the heat loss for the power provided using the measured power provided to the first probe and the measured power proved to the second probe.
- 15. The system according to claim 14, wherein the processor determines the unknown parameter.
- 16. A system for measuring the characteristics of a gas laden with droplets of a liquid, the liquid having a Leidenfrost temperature, the system comprising:
a first probe maintained at a first temperature above the Leidenfrost temperature for the liquid; and a controller coupled to the first probe; wherein the controller provides power to maintain the first probe at the first temperature above the Leidenfrost temperature for the liquid and for measuring the power provided to the first probe; wherein at least one parameter of the gas laden with droplets of a liquid is known; and wherein an unknown parameter is determined using the measured power provided to the first probe and the at least one known parameter.
- 17. A sensor probe that measures characteristics of a gas laden with liquid droplets, the sensor probe comprising:
at least two heating elements, each heating element is connected in series with an insulator, a support frame, wherein the insulator connected to each heating element is connected to the support; a controller that controls operation parameters of each of the heating elements, the support frame being connected to the controller; wherein temperature is an operation parameter of the heating elements controlled by the controller, wherein a first heating element of the at least two heating elements is configured to be maintained at a first temperature and a second heating element of the at least two heating elements is configured to be maintained at a second temperature that is less than the first temperature, wherein the first and second temperatures are above a Leidenfrost transition temperature for the liquid at atmospheric conditions and a temperature of the gas laden within the liquid droplets is determined by a relationship between a function of the first and second temperatures of the first and second heating elements positioned in a flow of the gas having a velocity orthogonal to a longitudinal axes of the first and second heating elements and a ratio of power supplied to the first and second heating elements by the controller, the relationship is not affected by the velocity of the gas flow and the presence of the liquid droplets in the gas flow.
- 18. The sensor probe according to claim 17, wherein the liquid is water.
- 19. The sensor probe according to claim 17, wherein the function of the first and second temperatures of the first and second heating elements and ratio of power supplied to the first and second heating elements provides the temperature of the gas laden with the droplets of the liquid based on the following relationship:
- 20. The sensor probe according to claim 16, wherein a liquid volumetric fraction of the gas laden with the droplets of the liquid is determined based on the following relationship:
- 21. The sensor probe according to claim 16, wherein the Leidenfrost transition for the droplets of the liquid is in a range between 300-350° C. at atmospheric conditions.
- 22. The sensor probe according to claim 16, wherein the controller controls the operation parameters of the first and second heating elements simultaneously.
- 23. The sensor probe according to claim 16, wherein the first and second heating elements are cylindrical.
- 24. The sensor probe according to claim 23, wherein the longitudinal axes of the first and second heating elements are parallel relative to each other.
- 25. The sensor probe according to claim 24, wherein the insulator connected to each of the first and second heating elements is comprised of a rigid ceramic.
- 26. The sensor probe according to claim 23, wherein the longitudinal axes of the first and second heating elements are coaxial.
- 27. The sensor probe according to claim 26, wherein the support frame includes three bent rods connected at a first end of each rod and equidistant from each other at a second end of each rod, wherein the second ends of the rods are provided on a line coaxial with the longitudinal axes of the first and second heating elements.
- 28. The sensor probe according to claim 27, wherein a distance between the second ends of the rods is equal to the length of the first and second heating elements.
- 29. The sensor probe according to claim 28 wherein connecting means connect the first and second heating elements to the second ends of the rods.
- 30. The sensor probe according to claim 29 wherein the connecting means comprise a bore formed in the second end of each rod and a fastening means having a threaded portion and a head portion.
- 31. The sensor probe according to claim 30, wherein the bore is sized and configured to receive the threaded portion of the fastening means and the head portion of the fastening means maintains the heating element against the corresponding rod.
- 32. The sensor probe according to claim 30, wherein the fastening means further comprise a clamp having a bore identical to the bore in the second end of each rod and a terminal that maintains a predetermined distance between the clamp and rod,
wherein the bores are sized and configured to receive the threaded portion of the fastening means and the clamp maintains the heating element against the corresponding rod.
- 33. The sensor probe according to claim 26, wherein the first and second heating elements comprise platinum wire.
- 34. The sensor probe according to claim 27, wherein the support frame and connecting rods are enclosed within temperature-shrinking tubing.
- 35. A method of measuring characteristics of a gas laden with liquid droplets using a sensor probe having at least two heating elements, each heating element being connected in series with an insulator and a support frame, a controller controls the temperature of each of the heating elements and is connected to the support frame, wherein a first heating element of the at least two heating elements is configured to be maintained at a first temperature and a second heating element of the at least two heating elements is configured to be maintained at a second temperature that is less than the first temperature, the method comprising the following steps of:
positioning the first and second heating elements in a flow of gas laden with droplets of the liquid, wherein the flow of gas has a velocity that is orthogonal to a longitudinal axes of the first and second heating elements; supplying power from the controller to the first and second heating elements maintaining the first and second temperatures above a Leidenfrost transition temperature for the liquid at atmospheric conditions; and determining a temperature of the gas laden within the droplets of the liquid based on a relationship between a function of the first and second temperatures of the first and second heating elements and the power supplied to the first and second heating elements, wherein the relationship is not affected by the velocity of the gas flow and the presence of the droplets of the liquid in the gas flow.
- 36. The method according to claim 35, comprising the additional step of determining the temperature of the gas laden with the liquid droplets based on the following relationship:
- 37. The method according to claim 35, comprising the step of determining a liquid volumetric fraction of the gas laden based on the following relationship:
- 38. The method according to claim 35, wherein the Leidenfrost transition for the liquid droplets is in a range between 300-350° C. at atmospheric conditions.
- 39. The method according to claim 35, comprising the step of the controller controlling the first and second heating elements simultaneously.
- 40. The method according to claim 35, comprising the step of arranging the first and second heating elements parallel relative to each other.
- 41. The method according to claim 35, comprising the step of arranging the first and second heating elements to be coaxial relative to each other.
- 42. A sensor probe that measures characteristics of a gas laden with liquid droplets, the sensor probe comprising:
at least two heating elements, each heating element being connected in series with an insulator, support means for supporting the at least two heating elements and insulator, wherein the insulator is connected to the support means; control means for controlling operation parameters of each of the heating elements, the support means being connected to the control means; wherein temperature is an operation parameter of the heating elements controlled by the control means, wherein a first heating element of the at least two heating elements is configured to be maintained at a first temperature and a second heating element of the at least two heating elements is configured to be maintained at a second temperature that is less than the first temperature, wherein the first and second temperatures are above a Leidenfrost transition temperature for liquid at atmospheric conditions and a temperature of the gas laden within the liquid droplets is determined by a relationship between a function of the first and second temperatures of the first and second heating elements positioned in a flow of the gas having a velocity orthogonal to a longitudinal axes of the first and second heating elements and a ratio of power supplied to the first and second heating elements by the control means, the relationship is not affected by the velocity of the gas flow and the presence of the liquid droplets in the gas flow.
- 43. The sensor probe according to claim 42, wherein the function of the first and second temperatures of the first and second heating elements and ratio of power supplied to the first and second heating elements provides the temperature of the gas laden with the liquid droplets based on the following relationship:
- 44. The sensor probe according to claim 42, wherein a liquid volumetric fraction of the gas laden with the liquid droplets is determined based on the following relationship:
- 45. The sensor probe according to claim 42, wherein the control means controls the operation parameters of the first and second heating elements simultaneously.
- 46. The sensor probe according to claim 42, wherein the first and second heating elements are parallel relative to each other.
- 47. The sensor probe according to claim 42, wherein the first and second heating elements are coaxial relative to each other.
- 48. The sensor probe according to claim 42, wherein the support means includes three bent rods connected at a first end of each rod and equidistant from each other at a second end of each rod, wherein the second ends of the rods are provided on a line coaxial with the longitudinal axes of the first and second heating elements.
- 49. The sensor probe according to claim 48, wherein a distance between the second ends of the rods is equal to the length of the first and second heating elements.
- 50. The sensor probe according to claim 48, wherein connecting means connect the first and second heating elements to the second ends of the rods.
- 51. The sensor probe according to claim 50, wherein the connecting means comprise a bore formed in the second end of each rod and a fastening means having a threaded portion and a head portion.
- 52. The sensor probe according to claim 51, wherein the bore is sized and configured to receive the threaded portion of the fastening means and the head portion of the fastening means maintains the heating element against the corresponding rod.
- 53. The sensor probe according to claim 51, wherein the fastening means further comprise a clamp having a bore identical to the bore in the second end of each rod and a terminal that maintains a predetermined distance between the clamp and rod,
wherein the bores are sized and configured to receive the threaded portion of the fastening means and the clamp maintains the heating element against the corresponding rod.
- 54. The sensor probe according to claim 48, wherein the support means and connecting rods are enclosed within temperature-shrinking tubing.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This non-provisional application claims the benefit of U.S. Provisional Application No. 60/277,772 filed Mar. 22, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60277772 |
Mar 2001 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
10103561 |
Mar 2002 |
US |
Child |
10465614 |
Jun 2003 |
US |