Claims
- 1. An improved drill bit for use in drilling operations in a wellbore, comprising:
a bit body including a plurality of bit legs, each supporting a rolling cone cutter; a coupling member formed at an upper portion of said bit body; at least one temperature sensor for monitoring at least one temperature condition of said improved drill bit during drilling operations; and at least one temperature sensor cavity formed in said bit body and adapted for receiving, carrying, and locating said at least one temperature sensor in a particular position relative to said bit body which is empirically determined to optimize temperature sensor discrimination.
- 2. An improved drill bit for use in drilling operations, according to claim 1:wherein said at least one temperature sensor comprises at least one temperature sensor for each of said plurality of bit legs; and wherein said at least one temperature sensor cavity comprises at least one temperature sensor cavity formed in each of said plurality of bit legs which is adapted for receiving, carrying, and locating a particular temperature sensor in a particular position relative to a particular bit leg, and which is empirically determined to optimize temperature sensor discrimination for that particular bit leg.
- 3. An improved drill bit for use in drilling operating, according to claim 1:wherein said at least one temperature sensor cavity comprises at least one temperature sensor cavity formed in a particular one of said plurality of bit legs which is adapted for receiving, carrying, and locating said at least one temperature sensor in a particular position relative to said particular one of said plurality of bit legs, and which is empirically determined to optimize temperature sensor discrimination.
- 4. An improved drill bit for use in drilling operations, according to claim 3:wherein each of said plurality of bit legs include a bearing head for engagement with a rolling cone cutter; and wherein said particular position comprises a medial position within said bearing head.
- 5. An improved drill bit, according to claim 4:wherein said bearing head is substantially cylindrically symmetrical along a centerline; and wherein said particular position comprises a medial position within said bearing head proximate said centerline.
- 6. An improved drill bit according to claim 5:wherein said bearing head extends between a lower extent of said bit leg and a thrust face; and wherein said particular position comprises a medial position within said bearing head about said centerline between said lower extent of said bit body and said thrust face.
- 7. An improved drill bit, according to claim 1:wherein said improved drill bit includes a lubrication system for providing lubrication for each of said rolling cone cutters; and wherein said at least one temperature sensor is not in communication with said lubrication system.
- 8. An improved drill bit according to claim 1, further comprising:
a service bay formed in said bit body to allow access to at least said at least one temperature sensor cavity.
- 9. An improved drill bit according to claim 1, further comprising:
pressure isolator members to maintain at least said at least one temperature sensor cavity in pressure isolation from said wellbore.
- 10. A method of performing drilling operations in a well bore, comprising:
providing a bit body including a plurality of bit legs, each supporting a rolling cone cutter; providing a coupling member formed at an upper portion of said bit body; providing at least one temperature sensor for monitoring at leas t one temperature condition of said bit body during drilling operations; empirically determining a particular position for said at least one temperature sensor well which optimizes temperature sensor discrimination; forming at least one temperature sensor well in said bit body at said particular position relative to said bit body which is empirically determined to optimize temperature sensor discrimination; locating said at least one temperature sensor in said at least one temperature sensor well; utilizing said improved drill bit during drilling operations in said wellbore; and utilizing said at least one temperature sensor to sense at least one temperature during drilling operations.
- 11. A method of performing drilling operations in a wellbore, according to claim 10:wherein said step of providing at least one temperature sensor comprises providing at least one temperature sensor for each of said plurality of bit legs; and wherein said step of forming at least one temperature sensor well comprises forming at least one temperature sensor cavity formed in each of said plurality of bit legs which is adapted for receiving, carrying, and locating a particular temperature sensor in a particular position relative to a particular bit leg, and which is empirically determined to optimize temperature sensor discrimination for that particular bit leg.
- 12. A method of performing drilling operations in a wellbore, according to claim 10:wherein said step of forming at least one temperature sensor well comprises forming at least one temperature sensor cavity formed in a particular one of said plurality of bit legs adapted for receiving, carrying, and locating said at least one temperature sensor in a particular position relative to said particular one of said plurality of bit legs which is empirically determined to optimize temperature sensor discrimination.
- 13. A method of performing drilling operations in a wellbore, according to claim 12:wherein each of said plurality of bit legs include a bearing head for engagement with a rolling cone cutter; and wherein said particular position comprises a medial position within said bearing head.
- 14. A method of performing drilling operations in a wellbore, according to claim 13:wherein said bearing head is substantially cylindrically symmetrical along a centerline; and wherein said particular position comprises a medial position within said bearing head proximate said centerline.
- 15. A method of performing drilling operations in a wellbore, according to claim 14:wherein said bearing head extends between a lower extent of said bit leg and a thrust face; and wherein said particular position comprises a medial position within said bearing head about said centerline between said lower extent of said bit body and said thrust face.
- 16. A method of performing drilling operations in a wellbore, according to claim 10, further comprises:
wherein said improved drill bit includes a lubrication system for providing lubrication for each of said rolling cone cutters; wherein said at least one temperature sensor is not in communication with said lubrication system.
- 17. A method of performing drilling operations in a wellbore, according to claim 10, further comprising:
providing at least one service bay formed in said bit body to allow access to said at least said temperature sensor cavity.
- 18. A method of providing drilling operations, according to claim 10, further comprising:
providing pressure isolator members to maintain at least said at least one temperature sensor cavity in pressure isolation from said wellbore.
- 19. An improved drill bit for use in drilling operations in a wellbore, comprising:
a bit body including a cutting structure carried thereon; a coupling member formed at an upper portion of said bit body; at least one temperature sensor for monitoring at least one temperature condition of said improved drill bit during drilling operations; and at least one temperature sensor cavity formed in said bit body and adapted for receiving, carrying, and locating said at least one temperature sensor in a particular position relative to said bit body which is empirically determined to optimize temperature sensor discrimination.
- 20. A method of performing drilling operations in a wellbore, comprising:
providing a bit body including a cutting structure; providing a coupling member formed at an upper portion of said bit body; temperature condition of said bit body during drilling operations; empirically determining a particular position for said at least one temperature sensor well which optimizes temperature sensor discrimination; forming at least one temperature sensor well in said bit body at said particular position relative to said bit body which is empirically determined to optimize temperature sensor discrimination; locating said at least one temperature sensor in said at least one temperature sensor well; utilizing said improved drill bit during drilling operations in said wellbore; and utilizing said at least one temperature sensor for monitoring at least one temperature condition during drilling operations.
- 21. An improved drill bit for use in drilling operations in a wellbore, comprising:
a bit body including a plurality of bit legs, each supporting a rolling cone cutter; a coupling member formed at an upper portion of said bit body; at least one operating condition sensor for monitoring at least one operating condition of said improved drill bit during drilling operations and producing an electrical output signal corresponding thereto; a plurality of electrical conductors for coupling electrically-activated components carried by said improved drill bit including said at least one operating condition sensor; a plurality of wire pathways formed in said bit body; and at least one fluid-impermeable tube segment coupled to said bit body and communicatively aligned with said plurality of wire pathways to route and protect said plurality of electrical conductors.
- 22. An improved drill bit according to claim 21, further comprising:
wherein said at least one operating condition sensor comprises at least one operating condition sensor for each of said plurality of bit legs; and wherein said at least one fluid-permeable tube segment comprises a plurality of fluid-impermeable tube segments coupled to said bit body and communicatively aligned with said plurality of wire pathways to route and protect said plurality of electrical conductors, including a fluid-impermeable tube segment extending from a wire pathway formed in each of said plurality of bit legs to a segment connector.
- 23. An improved drill bit according to claim 21, further comprising:
wherein said at least one operating condition sensor comprises at least one temperature sensor for each of said plurality of bit legs; wherein said at least one fluid-impermeable tube segment comprises a plurality of fluid-impermeable tube segments coupled to said bit body and communicatively aligned with said plurality of wire pathways to route and protect said plurality of electrical conductors, including: (a) a plurality of fluid-impermeable tube segments, each communicating with a wire pathway formed in each of said plurality of bit legs at a first end portion; and (b) a segment connector adapted for coupling to a second end portion of said plurality of fluid-impermeable tube segments.
- 24. An improved drill bit according to claim 23:wherein said a plurality of fluid-impermeable tube segments are positioned substantially transverse to a centerline of said improved drill bit.
- 25. An improved drill bit according to claim 23:wherein said segment connector is substantially centrally located relative to said a plurality of fluid-impermeable tube segments.
- 26. An improved drill bit according to claim 23:wherein each of said plurality of fluid-impermeable tube segments are angularly substantially equidistant from adjoining tube segments.
- 27. A method of performing drilling operations in a wellbore, comprising:
providing a bit body including a plurality of bit legs, each supporting a rolling cone cutter; providing a coupling member formed at an upper portion of said bit body; providing at least one operating condition sensor for monitoring at least one operating condition of said bit during drilling operations; providing a plurality of electrical conductors for coupling electrically-activated components carried by said drill bit including said at least one operating conditions; providing a plurality of wire pathways formed in said bit body; providing at least one fluid-impermeable tube segment coupled to said bit body and communicatively aligned with said plurality of wire pathways to route and protect said plurality of electrical conductors. locating said at least one temperature sensor in said at least one temperature sensor well; locating said at least one temperature sensor in said at least one temperature sensor well; utilizing said improved drill bit during drilling operations in said wellbore; utilizing said at least one operating condition sensor to sense at least one temperature during drilling operations.
- 28. A method of performing drilling operations in a wellbore, according to claim 27:wherein said step of providing at least one operating condition sensor comprises providing at least one operating condition sensor for each of said plurality of bit legs; and wherein said step of providing at least one fluid-impermeable tube segment comprises providing a plurality of fluid-impermeable tube segments coupled to said bit body and communicatively aligned with said plurality of wire pathways to route and protect said plurality of electrical conductors, including a fluid-impermeable tube segment extending from a wire pathway formed in each of said plurality of bit legs to a segment connector.
- 29. A method of performing drilling operations in a wellbore, according to claim 28:wherein said plurality of fluid-impermeable tube segments are positioned substantially transverse to a centerline of said improved drill bit.
- 30. A method of performing drilling operations in a wellbore, according to claim 29:wherein said segment connector is substantially centrally located relative to said plurality of fluid-impermeable tube segments.
- 31. A method of performing drilling operations in a wellbore, according to claim 28:wherein each of said plurality of fluid-impermeable tube segments are angularly substantially equidistant from adjoining tube segments.
- 32. A method of manufacturing a rock bit for use in drilling operations in a wellbore, comprising:
providing a plurality of bit legs; forming at least one sensor cavity in each of said plurality of bit legs; forming a wire pathway in each of said plurality of bit legs; providing a plurality of fluid-impermeable tube segments; welding said plurality of bit legs together to form a bit body; securing said plurality of fluid-impermeable tube segments to said bit body in communication with said wire pathway in each of said plurality of bit legs; locating a sensor in said at least one cavity; and routing conductors through said wire pathway in each of said plurality of bit legs and said plurality of fluid-impermeable tube segments.
- 33. A method of manufacturing a rock bit, according to claim 32, further comprising:
sealing said at least one sensor cavity in each of said bit legs, said wire pathway in each of said plurality of bit legs, and said plurality of fluid-impermeable tube segments.
- 34. A method of manufacturing a rock bit, according to claim 32, further comprising:
wherein said sensor in each of said plurality of bit legs comprises a temperature sensor; potting said temperature sensor in a thermally conductive potting material.
- 35. A method of manufacturing a rock bit, according to claim 32, further comprising:
sealing said at least one sensor cavity, said wire pathway in each of said plurality of bit legs, and said plurality of fluid-impermeable tube segments at substantially atmospheric pressure.
- 36. A method of manufacturing a rock bit, according to claim 32, further comprising:
providing a lubrication system for each of said plurality of bit legs; maintaining said lubrication system out of communication with said at least one sensor cavity in each of said plurality of bit legs, said wire pathways in each of said bit legs, and said plurality of fluid-impermeable tube segments.
- 37. An improved drilling apparatus for use in drilling operations in a wellbore, comprising:
a bit body including a plurality of bit legs, each supporting a rolling cone cutter; a lubrication system for each rolling cone cutter for supplying lubricant thereto; a coupling member formed at an upper portion of said bit body; at least one lubricant condition sensor for monitoring at least one electrical condition of said lubricant during drilling operations; and at least one electronic memory member, communicatively coupled to said at least one lubricant condition sensor, bit body, for recording in memory data obtained by said at least one lubricant condition sensor.
- 38. An improved drilling apparatus for use in a drilling operations in a wellbore, according to claim 37, wherein said at least one lubricant condition sensor comprises an electrical component which is sensitive to changes in dielectric constant of said lubricant.
- 39. An improved drilling apparatus for use in drilling operations in a wellbore, according to claim 37., wherein said at least one lubricant condition sensor comprises a capacitor which receives lubricant between capacitor plates and which changes its capacitance value as said lubricant degrades during use.
- 40. An improved drilling apparatus for use in drilling operations in a wellbore, according to claim 37, wherein said at least one lubricant condition sensor provides a general indication of decline in service life of said drill bit.
- 41. An improved drilling apparatus for use in drilling operations in a wellbore, according to claim 37, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system.
- 42. An improved drilling apparatus for use in drilling operations in a wellbore, according to claim 37, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system by monitoring generally the effect of working shearing on said lubricant.
- 43. An improved drilling apparatus for use in drilling operations in a wellbore according to claim 37, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system by monitoring, at least indirectly, a total acid number for said lubricant.
- 44. An improved drilling apparatus for use in drilling operations in a wellbore, according to claim 37, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system by monitoring a total acid number for said lubricant indirectly, by monitoring dielectric constant of said lubricant.
- 45. An improved drilling apparatus according to claim 37, wherein said at least one electronic memory member is located in, and carried by sa id bit body.
- 46. An improved drill bit for use in drilling operations in a wellbore, comprising:
(a) a bit body formed from a plurality of bit legs; (b) each of said plurality of bit legs including:
(1) a bearing head; (2) a rolling cone cutter coupled to said bearing head; (3) a bearing assembly facilitating rotary movement of said rolling cone cutter relative to said bearing head; (4) a lubrication system for providing lubricant to said bearing assembly; (5) an electrical sensor in communication with said lubrication system for monitoring at least one electrical property of said lubricant; (c) electronic memory carried by said bit body; and (d) a sampling circuit for developing digital samples from said sensor from each of said plurality of bit legs and recording said digital samples in said electronic memory.
- 47. A method of performing drilling operations in a wellbore, comprising:
providing a bit body including a plurality of bit legs, each supporting a rolling cone cutter; providing a lubrication system for each rolling cone cutter for supplying lubricant thereto; providing a coupling member formed at an upper portion of said bit body; providing at least one lubricant condition sensor for monitoring at least one electrical condition during drilling operations; providing at least one electronic memory member, communicatively coupled to said at lest one lubricant condition sensor, for recording in memory data obtained by said at least one lubricant condition sensor; utilizing said improved drill bit during drilling operations in a wellbore; utilizing said at least one lubricant condition sensor to sense said at least one electrical condition of said lubricant during drilling operations; and utilizing said at least one electronic memory member for recording data pertaining to said at least one electrical condition of said lubricant.
- 48. A method of performing drilling operations in a wellbore, according to claim 47, wherein said electrical sensor comprises an electrical component which is sensitive to changes in dielectric constant of said lubricant.
- 49. A method of performing drilling operations in a wellbore, according to claim 47, wherein said at least one lubricant condition sensor comprises a capacitor which receives lubricant between capacitor plates and which changes its capacitance value as said lubricant degrades during use.
- 50. A method of performing drilling operations in a wellbore, according to claim 47, wherein said at least one lubricant condition sensor comprises a capacitor which is disposed in a lubricant reservoir and which receives lubricant between capacitor plates and which changes its capacitance value as said lubricant degrades during use.
- 51. A method of performing drilling operations in a wellbore, according to claim 47, wherein said at least one lubricant condition sensor provides a general indication of decline in service life of said drill bit.
- 52. A method of performing drilling operations in a wellbore, according to claim 47, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system.
- 53. A method of performing drilling operations in a wellbore, according to claim 47, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system by monitoring generally the effect of working shearing on said lubricant.
- 54. A method of performing drilling operations in a wellbore, according to claim 47, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system by monitoring changes in dielectric constant due to working shear for said lubricant.
- 55. A method of performing drilling operations in a wellbore, according to claim 47, wherein said at least one lubricant condition sensor provides a general indication of decline in operating condition of said lubrication system by monitoring a total acid number for said lubricant through changes in dielectric constant due to working shear.
- 56. An improved drill bit for use in drilling operations in a wellbore when coupled to a drillstring having a central flow path for communicating drilling fluid, comprising:
a bit body including a cutting structure carried thereon; at least one bit nozzle carried by said bit body for jetting drilling fluid into said wellbore; a flow path through said bit body for supplying said drilling fluid to said at least one bit nozzle; a coupling member formed at an upper portion of said bit body for securing said bit body to said drillstring; at least one sensor for monitoring at least one operating condition during drilling operations; an erodible ball; and a fastener system for securing said erodible ball in a fixed predetermined position relative to said flow path until a predetermined operating condition is detected by said at least one sensor, and for then releasing said erodible ball into said flow path to at least partially obstruct flow through one of said at least one bit nozzles.
- 57. An improved drill bit, according to claim 56, wherein said erodible ball includes at least one of the following:
(1) at least one flow port extending through at least a portion of said erodible ball to allow drilling fluid to pass therethrough and erode said erodible ball; and (2) at least one circumferential groove formed in at least a portion of said erodible ball to allow drilling fluid to pass therethrough and erode said erodible ball.
- 58. An improved drill bit, according to claim 56, wherein said fastener system includes a frangible connector.
- 59. An improved drill bit, according to claim 56, said fastener system includes an electrically-actuable fastener.
- 60. An improved drill bit, according to claim 56, said fastener system includes an electrically-actuable frangible connector.
- 61. An improved drill bit, according to claim 56, said erodible ball will respond at least as one of the following due to contact with said drilling fluid:
(1) dissolve; and (2) disintegrate.
- 62. An improved drill bit, according to claim 56, said fastener system will respond in accordance with at least one of the following upon detection of said predetermined operating condition:
(1) electrically respond to said predetermined operating condition to release said erodible ball; and (2) mechanically respond to said predetermined operating condition to release said erodible ball.
- 63. An improved drill bit, according to claim 56, wherein said at least one flow port comprises a plurality of orthogonally aligned ports extending through said erodible ball.
- 64. An improved drill bit, according to claim 56, wherein said at least one circumferential groove comprises a plurality of intersecting grooves formed on an exterior surface of said erodible ball.
- 65. An improved drill bit, according to claim 56, wherein said erodible ball is eroded by said drilling fluid in a relatively predictable and predetermined manner.
- 66. An improved drill bit, according to claim 56, wherein said erodible ball is eroded by said drilling fluid in no less than a minimum erosion time interval.
- 67. An improved drill bit for use in drilling operations in a wellbore, comprising:
a bit body including a cutting structure carried thereon; a coupling member formed at an upper portion of said bit body; at least one bit condition sensor system for monitoring at least one bit condition of said improved drill bit during drilling operations; at least one semiconductor memory, located in and carried by said bit body, for recording in memory data obtained by said at least one bit condition sensor; and wherein said at least one bit condition sensor system includes:
(a) an electrical sensor component which has at least one electrical attribute which changes in response to changes in said at least one bit condition; (b) a monitoring circuit component for monitoring changes in said at least one electrical attribute of said electrical sensor component as changes occur in said at least one bit condition; and (c) a sampling circuit for sampling said monitoring circuit and recording data in said at least one semiconductor memory.
- 68. An improved drill bit, according to claim 67, wherein said electrical sensor component comprises an electrically resistive component which changes resistance in response to changes in said at least one bit condition.
- 69. An improved drill bit, according to claim 67, wherein said monitoring circuit component comprises an oscillator which changes its frequency of operation in response to changes in said at least one electrical attribute of said electrical sensor component.
- 70. An improved drill bit, according to claim 67, wherein said sampling circuit includes an averaging circuit for averaging an output of said monitoring circuit.
- 71. An improved drill bit, according to claim 67, wherein said electrical sensor component comprises an electrically resistive component which changes resistance in response to change in temperature of said improved drill bit.
- 72. An improved drill bit, according to claim 67:wherein said electrical sensor component comprises an electrically resistive component which changes resistance in response to change in temperature of said improved drill bit; and wherein said monitoring circuit component comprises an oscillator which changes its frequency of operation in response to changes in resistance of said electrical sensor component.
- 73. An improved drill bit, according to claim 67, further comprising:
a lubrication system for lubricating said cutting structure; wherein said electrical sensor component comprises an electrical component which changes at least one electrical attribute in response to changes in condition of said lubrication system; and wherein said monitoring circuit component comprises an oscillator which changes its frequency of operation in response to changes in said at least one electrical attribute of said electrical sensor component.
- 74. An improved drill bit, according to claim 67, further comprising:
a lubrication system for lubricating said cutting structure; wherein said electrical sensor component comprises an electrical component which changes capacitance in response to changes in operating condition of said lubrication system; and wherein said monitoring circuit component comprises an oscillator which changes its frequency of operation in response to changes in said capacitance of said electrical sensor component.
- 75. An improved drill bit, according to claim 67, further comprising:
wherein said electrical sensor component comprises an electrically resistive component which changes resistance in response to change in relative temperature of a portion of said improved drill bit; and wherein said monitoring circuit component comprises an oscillator which changes its frequency of operation in response to changes in resistance of said electrical sensor component.
- 76. An improved drill bit, according to claim 67, further comprising:
a lubrication system for lubricating said cutting structure; wherein said electrical sensor component comprises an electrical component which changes capacitance in response to changes in condition of a lubricant in said lubrication system; and wherein said monitoring circuit component comprises an oscillator which changes its frequency of operation in response to changes in said capacitance of said electrical sensor component.
- 77. An improved drill bit for use in drilling operations in a wellbore when coupled to a drillstring having a central flow path for communicating drilling fluid, comprising:
a bit body including a cutting structure carried thereon; an interior space defined by said bit body, including:
(a) at least one bit nozzle flow path carried by said bit body for jetting drilling fluid into said wellbore; (b) a central flow path through said bit body for supplying said drilling fluid to said at least one bit nozzle flow path; a coupling member formed at an upper portion of said bit body for securing said bit body to said drillstring; at least one sensor for monitoring at least one operating condition during drilling operations; a signal flow path defined through said bit body for connecting said interior space to a space exterior of said bit body; a selectively-actuable flow control device for controlling said signal flow path until a predetermined operating condition is detected at least in part by said at least one sensor; and wherein upon actuation of said selectively-actuable flow control device, at least one detectable pressure change is developed in said wellbore.
- 78. An improved drill bit according to claim 77, wherein said signal flow path connects said interior space to an annular region external to said improved drill bit.
- 79. An improved drill bit according to claim 77, wherein said selectively-actuable flow control device controls said signal flow path by preventing flow.
- 80. An improved drill bit according to claim 77, wherein said selectively-actuable flow control device includes:
a structural body; a selectively-actuable binder which changes state in response to at least one control signal; and a control member for selectively supplying said at least one control signal to said selectively-actuable binder, to cause a state change, an d to change said structural body to change at least one flow condition for said signal flow path.
- 81. An improved drill bit according to claim 77, wherein said selectively-actuable flow control device comprises an electrically-actuable flow control device.
- 82. An improved drill bit according to claim 77, wherein said selectively-actuable flow control device comprises a thermally-actuable flow control device.
- 83. An improved drill bit according to claim 77, wherein, upon actuation, said selectively-actuable flow control device develops a persistent detectable pressure change in said wellbore.
- 84. An improved drill bit according to claim 77, wherein said detectable pressure change comprises a pressure change which is detectable at a surface location du ring drilling operations.
- 85. An improved drill bit for use in drilling operations in a wellbore, comprising:
a bit body; a cutting structure carried by said bit body; a coupling member formed at an upper portion of said bit body; at least one operating condition sensor, located in and carried by said bit body, for monitoring at least one operating condition during drilling operations; at least one electrical power consuming component, located in and carried by said bit body, for receiving and processing data from said at least one operating condition sensor, during drilling operations; an electrical power source, located in and carried by said bit body, for supplying electrical power to said at least one electrical power consuming component; and at least one switch member, electrically connected between said at least one electrical power consuming component and said electrical power source, which automatically switches between a low-power consumption mode of operation to a high-power consumption mode of operation in response to detection of at least one ambient condition ordinarily present during drilling operations.
- 86. An improved drill bit according to claim 85, wherein said at least one switch member comprises at least one pressure actuable switch member.
- 87. An improved drill bit according to claim 85, wherein said low-power consumption mode of operation comprises a no-power consumption mode of operation.
- 88. An improved drilling apparatus including a drill bit coupled to a bottomhole assembly for use in drilling operations in a wellbore, comprising:
a bit body; a cutting structure carried by said bit body; a coupling member formed at an upper portion of said bit body for securing said bit body in said bottomhole assembly; at least one drilling condition sensor, located in and carried by said bit body, for monitoring at least one of the following and producing sensor data in the form of at least one electrical signal corresponding thereto:
(a) a drilling environment condition; (b) a drill bit operating condition; (c) a drilling operation condition; and (d) a formation condition; a controller member for receiving said at least one electrical signal, processing at least one electrical signal, and developing at least one condition conclusion concerning at least one of the following:
(a) a drilling environment condition conclusion; (b) a drill bit operating condition conclusion; and (c) a drilling operation condition conclusion; at least one controllable actuator member carried in at least one of (1) said bit body and (2) said bottomhole subassembly proximate said bit body, for adjusting at least one of the following in response to at least one control signal;
(a) a drill bit operating condition; (b) a drilling operation condition; wherein said controller member supplies at least one control signal to said at least one controllable actuator member in response to changes in at least one of the following:
(a) said sensor data; and (b) said at least one condition conclusion.
- 89. An improved drilling apparatus according to claim 88, further comprising:
an electronic memory member, communicatively coupled to said at least one drilling condition sensor and said controller member for recording sensor data, and providing recorded sensor data to said controller member for analysis.
- 90. An improved drilling apparatus according to claim 88, wherein said controller member comprises a programmable data processing device for executing program instructions which define at least one routine for analyzing said sensor data, developing at least one condition conclusion, and providing at least one control signal to said at least one controllable actuator.
- 91. An improved drilling apparatus according to claim 88, wherein said controller member supplies said at least one control signal, to perform at least one of the following:
(a) increase the influence of said at least one controllable actuator member on the drilling operations; and (b) decrease the influence of said at least one controllable actuator member on the drilling operations.
- 92. An improved drilling apparatus, according to claim 88:wherein said at least one drilling condition sensor provides a substantially continuous flow of sensor data during drilling operations; and wherein said controller member operates substantially continuously during drilling operations to process said sensor data, develop said at least one condition conclusion, and provide said at least one control signal to said a t least one controllable actuator member.
- 93. An improved drilling apparatus according to claim 88:wherein said controller member is provided with at least one operating set point concerning at least one of:
(a) a drill bit operating condition; and (b) a drilling operation condition; wherein said controller member provides said at last one control signal to said at least one controllable actuator in order to obtain operation consistent with said at least one operating set point.
- 94. An improved drilling apparatus according to claim 88:wherein said at least one operating set point comprises at least one desired drilling performance standard for particular drilling conditions.
- 95. An improved drilling apparatus according to claim 88, where in said at least one controllable actuator member comprises at least one of the following:
(a) a system for adjusting an orientation of at least one cutting structure carried by said drill bit; (b) a system for adjusting cone rotation speed for at least one rolling cone cutter carried by said drill bit; (c) a system for adjusting an orientation of at least one nozzle carried by said drill bit; (d) a system for adjusting nozzle opening size of at least one nozzle carried by said drill bit; (e) a system for adjusting at least one orienting pad carried by said bottomhole assembly; (f) a system for adjusting speed of operation of at least one drilling motor carried by said bottomhole assembly; (g) a system for adjusting at least one steering system carried by said bottomhole assembly; and (h) a system for adjusting cutting gage of said drill bit to determine diameter of said wellbore.
- 96. An improved drilling apparatus according to claim 88, wherein said controller member develops said at least one condition conclusion by analyzing said sensor data with respect to time in order to identify at least one of:
(a) trends within said sensor data; (b) patterns within said sensor data; and (c) correspondence to predetermined sensor data profiles.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of the following co-pending, commonly owned patent application U.S. patent application Ser. No. 08/760,122, filed 3 Dec. 1996, entitled Method and Apparatus for Monitoring and Recording of Operating Conditions of a Downhole Drill Bit During Drilling Operations, with the following inventors: Theodore E. Zaleski, Jr., and Scott R. Schmidt; which is a continuation under 37 CFR 1.62 of U.S. patent application Ser. No. 08/643,909, filed 7 May 1996, entitled Method and Apparatus for Monitoring and Recording of Operating Conditions of a Downhole Drill Bit During Drilling Operations, with the following inventors: Theodore E. Zaleski, Jr., and Scott R. Schmidt; which is a continuation of U.S. patent application Ser. No. 08/390,322, filed 16 Feb. 1995, entitled Method and Apparatus for Monitoring and Recording of Operating Conditions of a Downhole Drill Bit During Drilling Operations, with the following inventors: Theodore E. Zaleski, Jr., and Scott R. Schmidt. These prior applications are incorporated herein by reference as if fully set forth.
Divisions (1)
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Continuations (3)
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US |
Child |
08643909 |
May 1996 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
08760122 |
Dec 1996 |
US |
Child |
09012803 |
Jan 1998 |
US |