Claims
- 1. A mud motor for use in drilling a borehole, comprising:
- (a) a stator having a helically contoured inner surface;
- (b) a rotor having a helically contoured outer surface rotatably disposed in the stator to rotate along a common axis of the stator and motor, said rotor cooperating with the stator when a pressurized fluid at a known fluid flow rate is passed between the stator and the rotor to generate rotary force; and
- (c) a sensor within the mud motor for determining pressure differential across the rotor at the known fluid flow rate.
- 2. The apparatus as specified in claim 1, wherein the sensor is a differential pressure sensor.
- 3. The apparatus as specified in claim 1, wherein the sensor for determining the differential pressure comprises a pair of pressure sensors for determining pressure across a fixed distance along a length of the rotor axis.
- 4. The apparatus as specified in claim 1, wherein the sensor for determining the differential pressure comprises a first pressure sensor for determining pressure of the fluid above the rotor and a second pressure sensor for determining pressure of the fluid below the rotor.
- 5. The apparatus as specified in claim 1 further having a sensor associated therewith for determining rotary speed of the rotor.
- 6. The apparatus as specified in claim 2 further having a sensor associated therewith for determining rotor torque.
- 7. The apparatus as specified in claim 1 further having a sensor associated therewith for determining vibration of the mud motor.
- 8. The apparatus as specified in claim 1 further having a sensor associated therewith for determining temperature at a suitable place on the mud motor.
- 9. The apparatus as specified in claim 8, wherein the temperature sensor measures the stator temperature.
- 10. A mud motor for use in drilling a borehole, comprising:
- a) a stator having a helically contoured inner surface;
- b) a rotor having a helically contourer outer surface rotatably disposed in the stator to rotate along a common axis of the stator and motor, said rotor cooperating with the stator when a pressurized fluid is passed between the stator and the rotor to generate rotary force; and
- c) at least one temperature sensor within the mud motor for measuring the temperature of a mud motor element for determining an operating parameter of the mud motor during the drilling of the borehole.
- 11. The mud motor as specified in claim 10, wherein the mud motor element is the stator.
- 12. The mud motor as specified in claim 10,
- wherein the at least one temperature sensor includes a plurality of sensors.
- 13. The mud motor as specified in claim 10, wherein the operating parameter is selected from a group comprising (a) an indication of thermal decay of the stator; (b) an indication of high friction due to moving parts of the mud motor; and (c) an indication of operating life of the mud motor.
- 14. A mud motor assembly for use in drilling a borehole, comprising:
- a) a mud motor having a stator having a helically contoured inner surface, a rotor having a helically contoured outer surface rotatably disposed in the stator, said rotor cooperating with the stator when a pressurized fluid is passed between the stator and the rotor to generate rotary force; and
- (b) a bearing assembly having a drive shaft rotatably disposed in a housing, said drive shaft adapted to be rotated by the mud motor, said bearing assembly further having a sensor associated therewith for measuring radial displacement of the drive shaft when said drive shaft is rotated.
- 15. The apparatus as defined in claim 14, wherein the bearing assembly has one or more radial bearings for providing radial support to the drive shaft.
- 16. The apparatus as defined in claim 15 further having an axial bearing for providing axial support to the drive shaft.
- 17. The apparatus as defined in claim 15 further having a sensor associated with the bearing assembly for determining axial displacement of the drive shaft when the drive shaft is rotated.
- 18. The apparatus as defined in claim 15 further having a temperature sensor for determining the temperature of the bearing assembly.
- 19. The apparatus as defined in claim 15, wherein the radial bearings are sealed and lubricated by a suitable oil.
- 20. The apparatus as defined in claim 16, wherein the radial bearings and axial bearings are sealed and lubricated by a suitable oil.
- 21. The apparatus as defined in claim 19, wherein the oil is placed in a reservoir.
- 22. The apparatus as defined in claim 21 further having a sensor associated therewith for measuring the oil level in the reservoir.
- 23. The apparatus as defined in claim 14 further having a sensor associated therewith for determining weight on bit (WOB).
- 24. The apparatus as defined in claim 14 further having a sensor associated with the mud motor for determining pressure differential across the rotor when the pressurized fluid passes between the rotor and the stator.
- 25. The apparatus as specified in claim 24, wherein the sensor is a differential pressure sensor.
- 26. The apparatus as specified in claim 25, wherein the differential pressure sensor is placed within the rotor.
- 27. The apparatus as specified in claim 24, wherein the sensor for determining the differential pressure comprises a pair of pressure sensors for determining pressure across a fixed distance.
- 28. The apparatus as specified in claim 1 further having a sensor associated therewith for determining temperature at a suitable place on the mud motor.
- 29. The apparatus as specified in claim 1 further having a sensor associated therewith for determining the motor rotational speed.
- 30. A drilling tool assembly for use in drilling a borehole, comprising:
- (a) a drill bit;
- (b) a mud motor coupled to the drill for rotating the drill bit, said mud motor having:
- (i) a stator having a helically contoured inner surface,
- (ii) a rotor having a helically contoured outer surface rotatably disposed in the stator to rotate along a common axis of the stator and motor, said rotor cooperating with the stator when a pressurized fluid is passed through the mud motor to generate rotary force,
- (iii) a sensor within the mud motor for providing signals representative of the pressure differential across the mud motor when the pressurized fluid passes through the mud motor; and
- (c) a measurement-while-drilling (MWD) device for determining a formation parameter during drilling of the borehole.
- 31. The apparatus as specified in claim 30, wherein the MWD device is a resistivity device placed between the mud motor and the drill bit.
- 32. The apparatus as specified in claim 30, wherein the MWD device is an inclinometer placed between the mud motor and the drill bit for determining the inclination of the drilling tool assembly during drilling of the borehole.
- 33. The apparatus as specified in claim 30, wherein the MWD device is a device for determining the azimuth of a portion of the drill string.
- 34. The apparatus as specified in claim 30, wherein a gamma ray device placed between the drill bit and the mud motor for determining the gamma ray intensity of the formation is utilized as the MWD device.
- 35. The apparatus as specified in claim 30, wherein the MWD device includes a resistivity device for measuring the formation resistivity and a gamma ray device for measuring the gamma ray intensity of the formation.
- 36. The apparatus as specified in claim 30, wherein the MWD device includes devices for determining the borehole inclination and the drill tool azimuth.
- 37. The apparatus as specified in claim 30, wherein the MWD device includes a resistivity device for measuring the formation resistivity, a gamma ray device for measuring the gamma ray intensity of the formation, device for determining the borehole inclination and a device for determining the drill tool azimuth.
- 38. The apparatus as specified in claim 37, wherein the resistivity, gamma and inclination measuring devices are all placed in a single modular section disposed between the drill bit and the mud motor.
- 39. A drilling tool assembly for use in drilling a borehole, comprising:
- (a) a mud motor having a stator having a helically contoured inner surface, a rotor having a helically contoured outer surface rotatably disposed in the stator, said rotor cooperating with the stator when a pressurized fluid is passed through the mud motor to generate rotary force, and a sensor within the mud motor for providing signals representative of the pressure differential across the rotor when the pressurized fluid passes through the mud motor at a known fluid flow rate;
- (b) a control circuit for receiving and processing signals from the sensor; and
- (d) a telemetry system for receiving signals from the control circuit and for transmitting such received signals to other devices.
- 40. The apparatus as specified in claim 39, wherein the control circuit includes a microprocessor.
- 41. The apparatus as specified in claim 40, wherein the control circuit includes a memory for storing therein programmed instructions.
- 42. The apparatus as specified in claim 41, wherein the telemetry system transmits signals utilizing a mud pulse technique.
- 43. The apparatus as specified in claim 41, wherein the telemetry system transmits signals utilizing acoustic signals.
- 44. The apparatus as specified in claim 39 further having sensor for determining the motor rotational speed and torque during drilling of the borehole.
- 45. The apparatus as specified in claim 39 further having a resistivity device placed between the mud motor and the drill bit for determining the formation resistivity.
- 46. The apparatus as specified in claim 39 further having an inclinometer placed between the mud motor and the drill bit for determining the inclination of the drilling tool assembly during drilling of the borehole.
- 47. The apparatus as specified in claim 39 further having a device for determining the azimuth of a portion of the drill string.
- 48. The apparatus as specified in claim 39 further having a gamma ray device placed between the drill bit and the mud motor for determining the gamma ray intensity of the formation.
- 49. The apparatus as specified in claim 39 further having a resistivity device for measuring the formation resistivity and a gamma ray device for measuring the gamma ray intensity of the formation.
- 50. The apparatus as specified in claim 39 further having additional drill string-installed sensor devices for determining the borehole inclination and the drill tool azimuth.
- 51. The apparatus as specified in claim 39 further having a resistivity device for measuring the formation resistivity, a gamma ray device for measuring the gamma ray intensity of the formation, device for determining the borehole inclination and a device for determining the drill tool azimuth.
- 52. The apparatus as specified in claim 51, wherein the resistivity, gamma and inclination measuring devices are all placed in a single modular section disposed between the drill bit and the mud motor.
- 53. A system for drilling boreholes, comprising:
- (a) a drill string having a drill bit at a bottom end;
- (b) a mud motor coupled to the drill bit, said mud motor rotating the drill bit when a pressurized fluid is passed through the mud motor, said mud motor developing pressure differential across the mud motor when the mud motor is rotating the drill bit, said mud motor including a sensor within the mud motor for providing signals representative of the pressure differential across the mud motor;
- (c) a drawworks coupled to the drill string for controlling weight on bit (WOB) during the drilling of the boreholes; and
- (d) a surface control system for receiving signals representative of the differential pressure across the motor and in response thereto for controlling the WOB during drilling of the boreholes for minimizing mud motor wear.
- 54. The apparatus as specified in claim 53 further having a sensor coupled to the mud motor for providing signals representative of the rotational speed of the mud motor.
- 55. The apparatus as specified in claim 54 wherein the surface control system receives signals representative of the rotational speed of the motor and controls the pressure of the fluid passing through the mud motor during the drilling of the boreholes.
- 56. The apparatus as specified in claim 55 further having a sensor coupled to the mud motor for providing signals representative of the torque on a shaft coupled to the motor.
- 57. The apparatus as specified in claim 56, wherein the surface control system receives signals representative of the torque and controls the pressure of the fluid passing through the mud motor during the drilling of the boreholes.
- 58. The apparatus as specified in claim 56, wherein the surface control system controls the WOB so as to maintain the differential pressure across the motor within a predetermined range.
- 59. The apparatus as specified in claim 53 further having a module containing resistivity, inclination and azimuth measuring devices placed between the drill bit and the mud motor.
- 60. The apparatus as specified in claim 59 further having a logging-while-drilling device placed between the mud motor and the surface control system for determining a characteristic of the earth formation surrounding the borehole being drilled.
- 61. A method of drilling a borehole utilizing a drill string having a drill bit at a bottom end and a mud motor coupled to the drill bit for rotating the drill bit when a pressurized fluid is passed through the mud motor, said method comprising the steps of:
- (a) placing the drill string in the wellbore with the drill bit at the borehole bottom;
- (b) passing the pressurized fluid through the mud motor at a known fluid flow rate to rotate the drill bit;
- (c) measuring differential pressure across the mud motor with a sensor in the mud motor; and
- (d) controlling the drilling of the borehole by controlling weight on the drill bit so as to maintain the differential pressure within a predetermined range of values.
- 62. The method as specified in claim 61, wherein the range of values constitute a single value.
- 63. The method as specified in claim 61 further containing the step of controlling the flow of the pressurized fluid so as to maintain the rotational speed of the mud motor below a maximum value.
- 64. The method as specified in claim 63 further comprising the steps:
- (a) measuring rotor torque of the mud motor; and
- (b) controlling weight on bit so as to also maintain the rotor torque below a maximum value.
- 65. A method of determining the wear condition of a first mud motor during drilling of a borehole by a drill string having a drill bit at a bottom end that is rotated by the first mud motor when a pressurized fluid is passed through the first mud motor, said first mud motor developing pressure differential across the first mud motor when the pressurized fluid passes therethrough, said method comprising:
- (a) placing the drill string in the borehole;
- (b) drilling the borehole for a period of time at an known value of weight on the drill bit (WOB);
- (c) reducing WOB to a relatively small value compared to the known WOB;
- (c) measuring differential pressure across the first mud motor at the reduced WOB and at a known fluid flow rate through the first mud motor; and
- (d) comparing the measured differential pressure with a differential pressure measurement made at the known fluid flow rate of a second mud motor to determine the wear condition of the mud motor.
- 66. The method according to claim 65, wherein the relatively low WOB is substantially equal to zero.
- 67. The method according to claim 65, wherein the differential pressure across the first mud motor is measured by a sensor selected from the group comprising a differential pressure sensor within the first mud motor and a pair of spaced apart pressure sensors in the first mud motor.
- 68. The method according to claim 65, wherein the second mud motor is relatively new and substantially identical in design to the first mud motor.
- 69. A drilling assembly for use in drilling a wellbore, comprising:
- (a) a drilling motor for generating rotary force in response to the flow of a pressurized fluid through the drilling motor; and
- (b) a bearing assembly having:
- (i) a housing;
- (ii) a drive shaft rotatably disposed in the housing, said drive shaft adapted to be rotated by the drilling motor;
- (iii) at least one radial bearing between the drive shaft and the housing for providing lateral restraint to the drive shaft;
- (iv) a thrust bearing in the bearing assembly for restricting axial movement of the drive shaft during drilling of the wellbore; and
- (v) at least one sensor in the bearing assembly that is selected from a group of sensors comprising a radial displacement sensor for determining the radial displacement of the drive shaft, an axial displacement sensor for determining the axial displacement of the drill shaft, at least one temperature sensor for determining the temperature of the bearing assembly at a selected location in the bearing assembly, and a pressure sensor for determining weight on bit during drilling of the wellbore with the drilling assembly.
- 70. The drilling assembly according to claim 69, wherein the at least one radial bearing comprises a first and a second spaced apart radial bearings.
- 71. The drilling assembly according to claim 70, wherein the thrust bearing is disposed between the first and second radial bearings.
- 72. The drilling assembly according to claim 69, wherein the at least one sensor comprises at least one radial displacement sensor and an axial displacement sensor.
- 73. The drilling assembly according to claim 71, wherein the at least one sensor comprises (a) a first radial displacement sensor for measuring the radial displacement of the drill shaft adjacent the first radial bearing, (b) a second radial displacement sensor for measuring the displacement of the drill shaft adjacent the second radial bearing, and (c) an axial displacement sensor for measuring the axial displacement of the drill shaft.
- 74. The drilling assembly according to claim 73, wherein the at least one sensor further comprises at least one temperature sensor for determining the temperature at a selected location of the bearing assembly.
- 75. The drilling assembly according to claim 73, wherein the at least one sensor further comprises at least one load sensor for determining weight on bit during drilling of the wellbore.
- 76. A drilling assembly for use in drilling of a wellbore, comprising:
- (a) a drilling motor for generating rotary force in response to the flow of a pressurized fluid through the drilling motor; and
- (b) a bearing assembly comprising:
- (i) a housing;
- (ii) a drive shaft rotatably disposed in said housing, said drive shaft adapted to be rotated by the drilling motor, and wherein said drive shaft and said housing defining an inclining gap therebetween; and
- (c) a sensor associated with the inclining gap for determining radial and axial displacements of the drill shaft relative to the housing during drilling of the wellbore.
- 77. The drilling assembly according to claim 76 further comprising at least one radial bearing assembly for restricting radial movement the drive shaft and a thrust bearing for restricting axial movement of the drill shaft.
- 78. The drilling assembly according to claim 77 further comprising a second sensor in the bearing assembly that is selected from a group of sensors comprising at least one temperature sensor for determining the temperature at a selected location of the bearing assembly and at least one load sensor for determining weight on bit during drilling of the wellbore.
- 79. A bearing assembly for use in drilling of a wellbore, comprising:
- (a) a housing;
- (b) a drive shaft rotatably disposed in the housing for rotating a drill bit during drilling of the wellbore;
- (c) at least one radial bearing between the drive shaft and the housing for providing lateral restraint to the drive shaft;
- (d) a thrust bearing in the bearing assembly for restricting axial movement of the drive shaft during drilling of the wellbore;
- (e) a source of lubricating fluid for providing the lubricating fluid to the at least one radial bearing and the thrust bearing to lubricate such bearings during drilling of the wellbore; and
- (f) a sensor disposed within or adjacent to said housing which is associated with the source of the lubricating fluid for providing a measurement for determining at least one of the (i) presence of a leak between the source and the bearing, (b) wear condition of the at least one radial bearing, or the remaining life of the at least one radial bearing.
- 80. The bearing assembly according to claim 79, wherein the at least one radial bearing includes a first and second spaced apart radial bearings, each said first and second radial bearings and wherein the thrust bearing is disposed between said first and second radial bearings.
- 81. The bearing assembly according to claim 79, wherein the sensor is a differential pressure sensor for providing signals corresponding to the difference in pressure between the source of the lubricating fluid and the outside environment.
- 82. The bearing assembly according to claim 81, wherein the differential pressure sensor is disposed in a line placed between the source and the outside environment.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 08/212,230 which issued as U.S. Pat. No. 5,456,106 filed on Mar. 3, 1994, which is a continuation-in-part of U.S. patent application Ser. No. 08/060,563, which issued as U.S. Pat. No. 5,325,714 filed on May 12, 1993.
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Foreign Referenced Citations (4)
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1472655 |
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EPX |
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Continuation in Parts (2)
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Number |
Date |
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Parent |
212230 |
Mar 1994 |
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Parent |
60563 |
May 1993 |
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