Claims
- 1. An apparatus for determining the viscosity of a fluid over plural shear rates using a decreasing pressure differential, said apparatus comprising:
a fluid source elevated at a first reference position above a horizontal reference position; a valve in fluid communication with said fluid source via a first port for controlling a flow of fluid from said fluid source; a flow restrictor having a first end and a second end, said first end being in fluid communication with a second port of said valve, said flow restrictor having some known dimensions and being positioned at said horizontal reference position; a lumen having one end in fluid communication with a third port of said valve and another end being exposed to atmospheric pressure, said lumen being positioned at an angle greater than zero degrees with respect to said horizontal reference position; a processor coupled to said valve for controlling said valve to permit the flow of fluid into said lumen to form a column of fluid therein whereby a pressure differential is formed between a level of said column of fluid and said flow restrictor, said processor also being arranged for operating said valve to isolate said lumen from said fluid source and for coupling said flow restrictor and said lumen together to generate a falling column of fluid in said lumen, said falling column of fluid moving through said lumen, through said valve and said flow restrictor at a first shear rate caused by said pressure differential, said movement of fluid causing said pressure differential to decrease from said first shear rate for generating said plural shear rates; a sensor for detecting the movement of said falling column of fluid, said sensor generating data relating to the movement of said falling column of fluid over time; an electric/magnetic field generator for subjecting said flow restrictor to an electric/magnetic field when the fluid is flowing therein; and said processor, also coupled to said sensor, for calculating the viscosity of the fluid over a range of plural shear rates based on said data relating to the movement of said falling column of fluid over time and said some known dimensions.
- 2. The apparatus of claim 1 wherein said electric/magnetic field generator comprises an electric field generator for generating a static electric field or an alternating electric field and wherein the fluid is an electrorheological fluid.
- 3. The apparatus of claim 2 wherein said flow restrictor comprises a capillary tube that is subjected to a static electric field, or an alternating electric field with respect to time, when the fluid is flowing therethrough.
- 4. The apparatus of claim 3 wherein said lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 5. The apparatus of claim 4 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 6. The apparatus of claim 5 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 7. The apparatus of claim 6 wherein the electrorheological fluid is the circulating blood of a living being and the fluid source is the vascular system of the living being.
- 8. The apparatus of claim 2 wherein said flow restrictor comprises a slit having opposed walls each of which form a positive electrode and a negative electrode, respectively, for said static electric field, or which form alternating electrodes with respect to time for said alternating electric field, the fluid being in contact with said opposed walls when flowing therethrough and the fluid being subjected to said electric field.
- 9. The apparatus of claim 8 wherein said lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 10. The apparatus of claim 1 wherein said electric/magnetic field generator comprises a magnetic field generator for generating a static magnetic field or an alternating magnetic field and wherein the fluid is a magnetorheological fluid.
- 11. The apparatus of claim 10 wherein said flow restrictor comprises a capillary tube that is subjected to a static magnetic field, or an alternating magnetic field with respect to time, when the fluid is flowing therethrough.
- 12. The apparatus of claim 11 wherein said lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 13. The apparatus of claim 9 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 14. The apparatus of claim 13 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 15. The apparatus of claim 12 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 16. The apparatus of claim 15 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 17. The apparatus of claim 1 wherein said sensor comprises a light array and a charge coupled device.
- 18. The apparatus of claim 17 wherein said light array comprises a plurality of light emitting diodes arranged in linear fashion to illuminate said riser tube along the length of said riser tube.
- 19. The apparatus of claim 16 wherein the magnetorheological fluid is the circulating blood of a living being and the fluid source is the vascular system of the living being.
- 20. An apparatus for determining the viscosity of a fluid over plural shear rates using a decreasing pressure differential, said apparatus comprising:
a fluid source elevated at a first reference position above a horizontal reference position; a valve in fluid communication with said fluid source via a first port for controlling a flow of fluid from said fluid source, said valve comprising a second port having a first lumen coupled thereto, said first lumen having a portion positioned at said horizontal reference position; a flow restrictor having a first end and a second end, said first end being in fluid communication with a third port of said valve, said flow restrictor having some known dimensions; a second lumen having one end in fluid communication with a said second end of said flow restrictor and another end being exposed to atmospheric pressure, said second lumen being positioned at an angle greater than zero degrees with respect to said horizontal reference position, said flow restrictor and said valve being located at a position below said horizontal reference position; a processor coupled to said valve for controlling said valve to permit the flow of fluid into said flow restrictor and said second lumen to form a column of fluid therein whereby a pressure differential is formed between a level of said column of fluid and said portion of said first lumen, said processor also being arranged for operating said valve to isolate said flow restrictor and said second lumen from said fluid source and for coupling said flow restrictor and said second lumen to said first lumen to generate a falling column of fluid in said second lumen and said flow restrictor, said falling column of fluid moving through said second lumen, through said flow restrictor, through said valve and through said first lumen at a first shear rate caused by said pressure differential, said movement of fluid causing said pressure differential to decrease from said first shear rate for generating said plural shear rates; a sensor for detecting the movement of said falling column of fluid, said sensor generating data relating to the movement of said falling column of fluid over time; an electric/magnetic field generator for subjecting said flow restrictor to an electric/magnetic field when the fluid is flowing therein; and said processor, also coupled to said sensor, for calculating the viscosity of the fluid over a range of plural shear rates based on said data relating to the movement of said falling column of fluid over time and said some known dimensions.
- 21. The apparatus of claim 20 wherein said electric/magnetic field generator comprises an electric field generator for generating a static electric field or an alternating electric field and wherein the fluid is an electrorheological fluid.
- 22. The apparatus of claim 21 wherein said flow restrictor comprises a capillary tube that is subjected to a static electric field, or an alternating electric field with respect to time when the fluid is flowing therethrough.
- 23. The apparatus of claim 22 wherein said second lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column
- 24. The apparatus of claim 23 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 25. The apparatus of claim 24 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 26. The apparatus of claim 25 wherein the electrorheological fluid is the circulating blood of a living being and the fluid source is the vascular system of the living being.
- 27. The apparatus of claim 21 wherein said flow restrictor comprises a slit having opposed walls each of which form a positive electrode and a negative electrode, respectively, for said static electric field, or which form alternating electrodes with respect to time for said alternating electric field, the fluid being in contact with said opposed walls when flowing therethrough and the fluid being subjected to said electric field.
- 28. The apparatus of claim 27 wherein said second lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 29. The apparatus of claim 20 wherein said electric/magnetic field generator comprises a magnetic field generator for generating a static magnetic field, or an alternating magnetic field and wherein the fluid is a magnetorheological fluid.
- 30. The apparatus of claim 29 wherein said flow restrictor comprises a capillary tube that is subjected to a static magnetic field, or an alternating magnetic field with respect to time when the fluid is flowing therethrough.
- 31. The apparatus of claim 30 wherein said second lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 32. The apparatus of claim 28 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 33. The apparatus of claim 32 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 34. The apparatus of claim 31 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 35. The apparatus of claim 34wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 36. The apparatus of claim 20 wherein said sensor comprises a light array and a charge coupled device.
- 37. The apparatus of claim 36 wherein said light array comprises a plurality of light emitting diodes arranged in linear fashion to illuminate said riser tube along the length of said riser tube.
- 38. The apparatus of claim 35 wherein the magnetorheological fluid is the circulating blood of a living being and the fluid source is the vascular system of the living being.
- 39. An apparatus for determining the viscosity of a fluid over plural shear rates using a decreasing pressure differential, said apparatus comprising:
a fluid source elevated at a first reference position above a horizontal reference position; a valve in fluid communication with said fluid source via a first port for controlling a flow of fluid from said fluid source, said valve further comprising a second port that is exposed to atmospheric pressure; a flow restrictor having a first end, said flow restrictor having some known dimensions and being positioned at said horizontal reference position; a lumen having one end in fluid communication with a third port of said valve and another end that is in fluid communication with said first end of said flow restrictor, said lumen being positioned at an angle greater than zero degrees with respect to said horizontal reference position; a processor coupled to said valve for controlling said valve to permit the flow of fluid into said lumen to form a column of fluid therein whereby a pressure differential is formed between a level of said column of fluid and said flow restrictor, said processor also being arranged for operating said valve to isolate said lumen from said fluid source and for coupling said lumen to said third port to generate a falling column of fluid in said lumen, said falling column of fluid moving through said lumen and through said flow restrictor at a first shear rate caused by said pressure differential, said movement of fluid causing said pressure differential to decrease from said first shear rate for generating said plural shear rates; a sensor for detecting the movement of said falling column of fluid, said sensor generating data relating to the movement of said falling column of fluid over time; an electric/magnetic field generator for subjecting said flow restrictor to an electric/magnetic field when the fluid is flowing therein; and said processor, also coupled to said sensor, for calculating the viscosity of the fluid over a range of plural shear rates based on said data relating to the movement of said falling column of fluid over time and said some known dimensions.
- 40. The apparatus of claim 39 wherein said electric/magnetic field generator comprises an electric field generator for generating a static electric field or an alternating electric field and wherein the fluid is an electrorheological fluid.
- 41. The apparatus of claim 40 wherein said flow restrictor comprises a capillary tube that is subjected to a static electric field, or an alternating field with respect to time, when the fluid is flowing therethrough.
- 42. The apparatus of claim 41 wherein said lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 43. The apparatus of claim 42 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 44. The apparatus of claim 43 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 45. The apparatus of claim 44 wherein the electrorheological fluid is the circulating blood of a living being and the fluid source is the vascular system of the living being.
- 46. The apparatus of claim 40 wherein said flow restrictor comprises a slit having opposed walls each of which form a positive electrode and a negative electrode, respectively, for said static electric field, or which form alternating electrodes with respect to time for said alternating electric field, the fluid being in contact with said opposed walls when flowing therethrough and the fluid being subjected to said electric field.
- 47. The apparatus of claim 46 wherein said lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 48. The apparatus of claim 39 wherein said electric/magnetic field generator comprises a magnetic field generator for generating a static magnetic field, or an alternating magnetic field, and wherein the fluid is a magnetorheological fluid.
- 49. The apparatus of claim 48 wherein said flow restrictor comprises a capillary tube that is subjected to a static magnetic field, or an alternating field with respect to time, when the fluid is flowing therethrough.
- 50. The apparatus of claim 49 wherein said lumen comprises a riser tube that is positioned vertically with respect to said horizontal reference position and wherein said sensor monitors the movement of said falling column.
- 51. The apparatus of claim 47 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 52. The apparatus of claim 51 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 53. The apparatus of claim 50 wherein said processor utilizes a non-linear viscoplastic model in calculating the viscosity of the fluid, said processor determining the viscosity (η) as follows:
- 54. The apparatus of claim 53 wherein said processor determines the yield stress, τ0, of the fluid as follows:
- 55. The apparatus of claim 39 wherein said sensor comprises a light array and a charge coupled device.
- 56. The apparatus of claim 55 wherein said light array comprises a plurality of light emitting diodes arranged in linear fashion to illuminate said riser tube along the length of said riser tube.
- 57. The apparatus of claim 54 wherein the magnetorheological fluid is the circulating blood of a living being and the fluid source is the vascular system of the living being.
- 58. A method of determining the viscosity of a fluid over plural shear rates using a decreasing pressure differential, said method comprising the steps of:
(a) elevating a fluid source above a horizontal reference position and disposing the fluid source in fluid communication with a first port of a valve; (b) disposing one end of a lumen in fluid communication with a second port of said valve with the other end of said lumen exposed to atmospheric pressure, said lumen being positioned at an angle greater than zero degrees; (c) disposing one end of a flow restrictor in fluid communication with a third port of said valve at said horizontal reference position, said flow restrictor comprising some known parameters; (d) operating said valve to couple said first port with said second port to generate a column of fluid of a predetermined length in said lumen, said column of fluid of a predetermined length establishing a pressure differential between said column of fluid and said horizontal reference position; (e) operating said valve to decouple said second port from said first port and to couple said second port with said third port to generate a falling column of fluid in said lumen, thereby decreasing said pressure differential which causes the fluid to experience a plurality of shear rates; (f) applying an electric/magnetic field to said flow restrictor as the fluid flows through said flow restrictor; (g) detecting the movement of the fluid through said lumen over time to generate data relating to the movement of the fluid through said lumen; and (h) calculating the viscosity of the fluid over a range of shear rates based on said data and said some known parameters.
- 59. The method of claim 58 wherein said electric/magnetic field is a static electric field or an alternating electric field and wherein the fluid is an electrorheological fluid.
- 60. The method of claim 59 wherein said flow restrictor comprises a slit having opposed walls each of which form a positive pole and a negative pole, respectively, for said static electric field, or which form alternating electrodes with respect to time for said alternating electric field, the fluid being in contact with said opposed walls when flowing therethrough.
- 61. The method of claim 60 wherein said electric/magnetic field comprises a static magnetic field, or an alternating magnetic field, and wherein the fluid is a magnetorheological fluid.
- 62. The method of claim 61 wherein said flow restrictor comprises a capillary tube that is subjected to a static magnetic field, or an alternating magnetic field, when the fluid is flowing therethrough.
- 63. The method of claim 60 wherein said step of calculating the viscosity of the fluid includes utilizing a non-linear viscoplastic model where the viscosity (η) is defined as follows:
- 64. The method of claim 63 further comprising the step of determining the yield stress, τ0, of the fluid from the following relationship:
- 65. The method of claim 62 wherein said step of calculating the viscosity of the fluid includes utilizing a non-linear viscoplastic model where the viscosity (I)) is defined as follows:
- 66. The method of claim 65 further comprising the step of determining the yield stress, τ0, of the fluid as follows:
- 67. A method of determining the viscosity of a fluid over plural shear rates using a decreasing pressure differential, said method comprising the steps of:
(a) elevating a fluid source above a horizontal reference position and disposing the fluid source in fluid communication with a first port of a valve; (b) disposing one end of a flow restrictor, having some known parameters, in fluid communication with a second port of said valve with the other end of said flow restrictor being in fluid communication with one end of a first lumen, said first lumen having another end exposed to atmospheric pressure, said first lumen being positioned at an angle greater than zero degrees with respect to said horizontal reference position; (c) positioning said flow restrictor and said valve below said horizontal reference position and coupling a third port of said valve with a second lumen and wherein a portion of said second lumen is disposed at said horizontal reference position; (d) operating said valve to couple said first port with said second port to generate a column of fluid of a predetermined length in said flow restrictor and said first lumen, said column of fluid of a predetermined length establishing a pressure differential between said column of fluid and said horizontal reference position; (e) operating said valve to decouple said second port from said first port and to couple said second port with said third port to generate a falling column of fluid in said flow restrictor and said first lumen, thereby decreasing said pressure differential which causes the fluid to experience a plurality of shear rates; (f) applying an electric/magnetic field to said flow restrictor as the fluid flows through said flow restrictor; (g) detecting the movement of the fluid through said first lumen over time to generate data relating to the movement of the fluid through said first lumen; and (h) calculating the viscosity of the fluid over a range of shear rates based on said data and said some known parameters.
- 68. The method of claim 67 wherein said electric/magnetic field is a static electric field or an alternating electric field and wherein the fluid is an electrorheological fluid.
- 69. The method of claim 68 wherein said flow restrictor comprises a slit having opposed walls each of which form a positive pole and a negative pole, respectively, for said static electric field, or which form alternating electrodes with respect to time for said alternating electric field, the fluid being in contact with said opposed walls when flowing therethrough.
- 70. The method of claim 67 wherein said electric/magnetic field comprises a static magnetic field, or an alternating magnetic field, and wherein the fluid is a magnetorheological fluid.
- 71. The method of claim 70 wherein said flow restrictor comprises a capillary tube that is subjected to a static magnetic field or an alternating magnetic field when the fluid is flowing therethrough.
- 72. The method of claim 69 wherein said step of calculating the viscosity of the fluid includes utilizing a non-linear viscoplastic model where the viscosity (q) is defined as follows:
- 73. The method of claim 72 further comprising the step of determining the yield stress, τ0, of the fluid from the following relationship:
- 74. The method of claim 71 wherein said step of calculating the viscosity of the fluid includes utilizing a non-linear viscoplastic model where the viscosity (η) is defined as follows:
- 75. The method of claim 74 further comprising the step of determining the yield stress, τ0, of the fluid as follows:
- 76. A method of determining the viscosity of a fluid over plural shear rates using a decreasing pressure differential, said method comprising the steps of:
(a) elevating a fluid source above a horizontal reference position to establish a pressure differential between said fluid source and said horizontal reference position, and disposing the fluid source in fluid communication with a first port of a valve; (b) disposing one end of a lumen in fluid communication with a second port of said valve with the other end of said lumen being in fluid communication with a flow restrictor disposed at said horizontal reference position, said flow resistor comprising some known parameters and said lumen being positioned at an angle greater than zero degrees with respect to said horizontal reference position; (c) positioning a third port of said valve to be exposed to atmospheric pressure; (d) operating said valve to couple said first port with said second port to generate a column of fluid of a predetermined length in said lumen; (e) operating said valve to decouple said second port from said first port and to couple said second port with said third port to generate a falling column of fluid in said lumen, thereby decreasing said pressure differential which causes the fluid to experience a plurality of shear rates; (f) applying an electric/magnetic field to said flow restrictor as the fluid flows through said flow restrictor; (g) detecting the movement of the fluid through said lumen over time to generate data relating to the movement of the fluid through said lumen; and (h) calculating the viscosity of the fluid over a range of shear rates based on said data and said some known parameters.
- 77. The method of claim 76 wherein said electric/magnetic field is a static electric field or an alternating electric field and wherein the fluid is an electrorheological fluid.
- 78. The method of claim 77 wherein said flow restrictor comprises a slit having opposed walls each of which form a positive electrode and a negative electrode, respectively, for said static electric field, or which form alternating electrodes with respect to time for said alternating electric field, the fluid being in contact with said opposed walls when flowing therethrough.
- 79. The method of claim 76 wherein said electric/magnetic field comprises a static magnetic field or an alternating magnetic field and wherein the fluid is a magnetorheological fluid.
- 80. The method of claim 79 wherein said flow restrictor comprises a capillary tube that is subjected to a static magnetic field, or an alternating magnetic field, when the fluid is flowing therethrough.
- 81. The method of claim 78 wherein said step of calculating the viscosity of the fluid includes utilizing a non-linear viscoplastic model where the viscosity (η) is defined as follows:
- 82. The method of claim 81 further comprising the step of determining the yield stress, τ0, of the fluid from the following relationship:
- 83. The method of claim 79 wherein said step of calculating the viscosity of the fluid includes utilizing an non-linear viscoplastic model where the viscosity (η) is defined as follows:
- 84. The method of claim 83 further comprising the step of determining the yield stress, τ0, of the fluid as follows:
RELATED APPLICATIONS
[0001] This application is an Application based on Application Ser. No. 09/722,954, filed Nov. 27,2000, entitled ELECTRORHEOLOGICAL AND MAGNETORHEOLOGICAL FLUID SCANNING RHEOMETER, which is based on a Provisional Application Serial No. 60/227,759 filed Aug. 25,2000 entitled ELECTRORHEOLOGICAL FLUID SCANNING VISCOMETER, and is also a Continuation-in-Part of Application Ser. No. 09/573,267 (now U.S. Pat. No. 6,402,703 (Kensey, et al.)), filed May 18, 2000 entitled DUAL RISER/SINGLE CAPILLARY VISCOMETER, and all of whose entire disclosures are incorporated by reference herein.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60227759 |
Aug 2000 |
US |
Divisions (2)
|
Number |
Date |
Country |
Parent |
09722954 |
Nov 2000 |
US |
Child |
10196936 |
Jul 2002 |
US |
Parent |
09573267 |
May 2000 |
US |
Child |
10196936 |
Jul 2002 |
US |