Claims
- 1. An electrical pump for lifting fluids from a wellbore, the wellbore having a tubular residing therein, the electrical pump comprising:
a stator; an armature that linearly reciprocates relative to the stator; a pump housing for housing the pump, the pump housing having a flow path therethrough; and wherein the pump is operatively connected to the armature and is reciprocated with the armature.
- 2. The electrical pump of claim 1, wherein the pump is attached to the armature.
- 3. The electrical pump of claim 1, wherein the armature comprises a modular construction of armature modules.
- 4. The electrical pump of claim 3, wherein the armature modules are wired in parallel.
- 5. The electrical pump of claim 1, wherein the stator comprises a modular construction of stator modules.
- 6. The electrical pump of claim 5, wherein the stator modules are wired in parallel.
- 7. The electrical pump of claim 1, wherein the electrical pump is a positive displacement pump.
- 8. The electrical pump of claim 1, wherein the relative reciprocation is controlled by a controller.
- 9. The electrical pump of claim 8, wherein the controller controls at least a portion of the armature.
- 10. The electrical pump of claim 8, wherein the controller controls at least a portion of the stator.
- 11. The electrical pump of claim 8, wherein the controller is programmable.
- 12. The electrical pump of claim 1, further comprising a standing valve and a traveling valve.
- 13. The electrical pump of claim 1, wherein the flow path comprises an inner bore.
- 14. The electrical pump of claim 1, wherein:
the electrical pump is a positive displacement pump; the armature comprises a modular construction of armature modules, the armature modules reciprocating together within the stator; and the stator comprises a modular construction of stator modules.
- 15. The electrical pump of claim 14, wherein the reciprocation of the armature modules is controlled by a controller.
- 16. The electrical pump of claim 5, wherein the pump housing comprises a stator housing for supporting the stator modules, the stator housing having a first end and a second end, the first end being connected to the tubular.
- 17. The electrical pump of claim 3, wherein the pump housing comprises an armature housing for supporting the armature modules, the armature housing having a first end, a second end, and an inner bore therethrough.
- 18. The electrical pump of claim 17, further comprising:
a pump inlet connected to the stator housing proximal to the second end of the stator housing; and a pump outlet connected to the armature housing proximal to the second end of the armature housing, and being reciprocated by the armature housing.
- 19. An electrical pump for lifting fluids from a wellbore, the wellbore having a tubular residing therein, the electrical pump comprising:
a stator; an armature that linearly reciprocates relative to the stator; an stator housing for supporting the stator, the stator housing having a first end and a second end, the first end being connected to the tubular; an armature housing for supporting the armature, the armature housing having a first end, a second end, and an inner bore therethrough; a pump inlet connected to the stator housing proximal to the second end of the stator housing; and a pump outlet connected to the armature housing proximal to the second end of the armature housing, and being reciprocated by the armature housing.
- 20. The electrical pump of claim 19, wherein the electrical pump is a positive displacement pump.
- 21. The electrical pump of claim 20, wherein:
the stator generates an oscillating magnetic field in response to direct current pulses that are cyclically switched in order to reverse polarity of the magnetic field; and the armature reciprocates within the stator in response to the oscillating magnetic field of the stator.
- 22. The electrical pump of claim 20, wherein:
the pump inlet comprises an inlet port housing, and a standing valve within the inlet port housing; and the pump outlet comprises an outlet port housing, and a traveling valve within the outlet port housing.
- 23. The electrical pump of claim 19, wherein the armature housing and the connected pump outlet may be removed from the tubular without pulling the tubular from the wellbore.
- 24. The electrical pump of claim 23, further comprising a fishing neck connected to the first end of the armature housing.
- 25. The electrical pump of claim 19, wherein the armature housing and the connected pump outlet may be removed from the tubular without pulling the stator housing and the connected pump inlet from the wellbore.
- 26. The electrical pump of claim 19, wherein the pump inlet may be removed from the stator housing without removing the stator housing from the wellbore.
- 27. The electrical pump of claim 22, wherein the inlet port housing comprises an upper end having a fishing neck, and a second end housing the inlet port check valve.
- 28. The electrical pump of claim 26, wherein:
the stator generates an oscillating magnetic field in response to direct current pulses that are cyclically switched; and the armature reciprocates within the stator in response to the oscillating magnetic field of the stator.
- 29. The electrical pump of claim 27, further comprising a latching assembly for unlatching the inlet port housing from the stator housing, the latching assembly comprising:
a series of radially disposed locking segments, each locking segment having a vertical member and a horizontal member, the vertical member configured to be received within a locking segment recess within the stator housing when the locking segments are in their latched position, and the horizontal member configured to be received within an inlet port housing recess when the locking segments are in their unlatched position; at least one unlatching biasing member around the locking segments to bias the locking segments in their unlatched position; a lock segment latching member radially disposed about the inlet port housing intermediate the fishing neck of the inlet port housing and the lower end of the inlet port housing; and a plurality of lock segment biasing members radially connected to the lock segment latching member for biasing the locking segments outward in their latched position, the biasing force of the lock segment biasing members being greater than the biasing force of the unlatching biasing member.
- 30. The electrical pump of claim 29 wherein:
the lock segment latching member further comprises a fishing neck for receiving a spear on a fishing tool; and the plurality of lock segment biasing members release from the locking segments when the lock segment latching member is raised by a fishing tool.
- 31. The electrical pump of claim 21, wherein the stator defines a plurality of stator modules, each stator module comprising a series of coils for generating the oscillating magnetic field and a stator housing portion.
- 32. The electrical pump of claim 31, wherein each of the plurality of stator modules is electrically wired with a power source in parallel such that a failure of one of the stator modules does not produce a failure of another of the stator modules.
- 33. The electrical pump of claim 31, wherein each of the stator modules is multiplexed such that each of the stator modules is capable of being selectively activated.
- 34. The electrical pump of claim 32, wherein the armature defines a plurality of armature modules, each armature module comprising a series of magnets having a polarity and an armature housing portion, the polarities of the magnets being arranged to cause linear reciprocation of the armature modules and armature housing in response to the oscillating magnetic field of the stator coils.
- 35. An electrical pump for lifting fluids from a wellbore, the wellbore having a tubular residing therein, the electrical pump comprising:
a stator comprising a plurality of stator modules; an armature comprising a plurality of armature modules, the armature being movable relative to the stator; a housing for the pump, the pump housing having a pump inlet and a pump outlet, and being connected to the tubular, the pump housing also being configured to receive the stator and the armature.;
- 36. The electrical pump of claim 35, wherein the electrical pump is a linear positive displacement pump.
- 37. The electrical pump of claim 35, wherein the relative reciprocation is controlled by a controller.
- 38. The electrical pump of claim 37, wherein the controller controls at least a portion of the armature.
- 39. The electrical pump of claim 37, wherein the controller controls at least a portion of the stator.
- 40. The electrical pump of claim 36, wherein the armature modules are wired in parallel.
- 41. The electrical pump of claim 36, wherein the stator modules are wired in parallel.
- 42. The electrical pump of claim 36, wherein each stator module comprises a series of coils for generating an oscillating magnetic field in response to direct current pulses.
- 43. The electrical pump of claim 42, wherein each armature module comprises a series of magnets having a polarity, the polarities of the magnets being arranged to cause linear reciprocation of the armature modules in response to the oscillating magnetic field of the stator coils..
- 44. The electrical pump of claim 43, further comprising a tubular stator housing having a wall, a first end, and a second end, the stator housing being connected in series to the tubular.
- 45. The electrical pump of claim 44, further comprising an armature housing having a first end, a second end, an inner wall, and a bore extending therethrough, the armature housing concentrically residing with the stator housing, and the plurality of armature magnets residing around the inner wall so as to cause the armature housing to reciprocate with the armature.
- 46. The electrical pump of claim 45, further comprising:
a pump inlet connected to the stator housing proximal to the second end of the stator housing; and a pump outlet connected to the armature housing proximal to the second end of the armature housing, and being reciprocated by the armature housing.
- 47. The linear electrical pump of claim 46, wherein:
the pump inlet comprises an inlet port housing, and a standing valve within the inlet port housing; and the pump outlet comprises an outlet port housing, and a traveling valve within the outlet port housing.
- 48. The linear electrical pump of claim 47, wherein the armature housing and the connected pump outlet may be removed from the tubing without pulling the production tubing from the wellbore.
- 49. The electrical pump of claim 46, wherein the pump inlet may be removed from the stator housing without removing the stator housing from the wellbore.
- 50. The electrical pump of claim 35, wherein each of the stator modules is electrically wired with a power source in parallel such that a failure of one of the stator modules does not produce a failure of another of the stator modules.
- 51. The electrical pump of claim 35, wherein each of the stator modules is multiplexed such that each of the stator modules is capable of being selectively activated.
- 52. The electrical pump of claim 47, further comprising a latching assembly for unlatching the standing valve from the stator housing.
- 53. The electrical pump of claim 35, further comprising:
a pump inlet connected to the stator housing proximal to the second end of the stator housing; and a pump outlet connected to the armature housing proximal to the second end of the armature housing, and being reciprocated by the armature housing.
- 54. The electrical pump of claim 53, wherein:
the stator generates an oscillating magnetic field in response to alternating current; and the armature reciprocates within the stator in response to the oscillating magnetic field of the stator.
- 55. The electrical pump of claim 54, wherein the armature comprises a plurality of electromagnetic coils.
- 56. The electrical pump of claim 55, further comprising a power cable for providing power to the electromagnetic coils of the armature, the power cable being configured to permit linear reciprocation of the armature within the stator.
- 57. The electrical pump of claim 56, wherein the power cable comprises a spring portion residing within the longitudinal axis of the bore of the tubular or stator housing.
- 58. The electrical pump of claim 57, wherein:
the pump inlet comprises an inlet port housing, and a standing valve within the inlet port housing; and the pump outlet comprises an outlet port housing, and a traveling valve within the outlet port housing, the pump outlet being disposed above the pump inlet.
- 59. The electrical pump of claim 58, wherein the armature housing and the connected pump outlet may be removed from the production tubular without pulling the production tubular from the wellbore.
- 60. The electrical pump of claim 59, wherein the armature housing and the connected pump outlet may be removed from the production tubular without pulling the stator housing and the connected pump inlet from the wellbore.
- 61. The electrical pump of claim 60, further comprising a latching assembly for unlatching the inlet port housing from the stator housing.
- 62. The linear electrical pump of claim 61, wherein the latching assembly comprises:
a series of radially disposed locking segments, each locking segment having a vertical member and a horizontal member, the vertical member configured to be received within a locking segment recess within the stator housing when the locking segments are in their latched position, and the horizontal member configured to be received within an inlet port housing recess when the locking segments are in their unlatched position; at least one unlatching biasing member around the locking segments to bias the locking segments in their unlatched position; a lock segment latching member radially disposed about the inlet port housing intermediate the fishing neck and the lower end of the inlet port housing; and a plurality of lock segment biasing members for biasing the locking segments outward in their latched position, the biasing force of the lock segment biasing members being greater than the biasing force of the unlatching biasing member.
- 63. The electrical pump of claim 62, wherein:
the lock segment latching member further comprises a fishing neck for receiving a spear on a fishing tool; and the plurality of lock segment biasing members release from the locking segments when the lock segment latching member is raised by a fishing tool.
- 64. A wellbore apparatus for lifting fluids from a wellbore, the wellbore having a tubular residing therein, the wellbore completion apparatus comprising:
a first electrical pump in fluid communication with the production tubular; and at least one additional electrical pump also in fluid communication with the tubular.
- 65. The wellbore apparatus of claim 64, wherein:
the first electrical pump and each of the at least one additional electrical pumps is in series with the production tubular; and the first electrical pump is above each of the at least one additional electrical pumps.
- 66. The wellbore apparatus of claim 65, wherein each of the at least one additional electrical pumps is a linear submersible pump comprising:
a stator; an armature that linearly reciprocates relative to the stator; a stator housing for housing the stator, the stator housing having a first end and a second end, the first end being connected to the production tubular; an armature housing for housing the armature, the armature housing having a first end, a second end, and an fluid flow path therethrough, a pump inlet proximal to the second end of the stator housing; and a pump outlet proximal to the second end of the armature housing, and being reciprocated by the armature housing.
- 67. The wellbore apparatus of claim 66, wherein the armature housing and the connected pump outlet may be removed from the production tubular without pulling the production tubular from the wellbore.
- 68. The wellbore apparatus of claim 66, wherein the armature housing and the connected pump outlet may be removed from the wellbore without pulling the stator housing and the connected pump inlet from the wellbore.
- 69. The wellbore apparatus of claim 66, wherein the pump inlet may be removed from the stator housing without removing the stator housing from the wellbore.
- 70. The wellbore apparatus of claim 66, wherein:
the armature of the pump and of each of the at least one additional pumps comprises a plurality of interchangeable armature modules mechanically connected end-to-end; and the stator of the pump and of each of the at least one additional pumps comprises a plurality of interchangeable stator modules mechanically connected end-to-end.
- 71. The wellbore apparatus of claim 70, wherein each of the stator modules of the first and the at least one additional electrical pumps is electrically wired with a power source in parallel such that a failure of one of the stator modules does not produce a failure of another of the stator modules.
- 72. The wellbore apparatus of claim 70, wherein each of the stator modules of the first and the at least one additional electrical pumps is multiplexed such that each of the stator modules is capable of being selectively activated.
- 73. The wellbore apparatus of claim 64, wherein each of the electrical pumps is a rotary pump.
- 74. A wellbore pumping method utilizing an electrical pump for lifting fluids from a wellbore, the wellbore having a tubular residing therein, and the electrical pump comprising:
an electrical motor having an armature, the armature defining a fluid flow path such that fluids may travel therethrough; a plurality of stator modules, the stator modules being electrically wired in parallel such that a failure of one of the stator modules does not produce a failure of another of the stator modules, and wherein each of the stator modules is multiplexed such that each of the stator modules is capable of being independently activated; and a pump in fluid communication with and movable by the armature, with the pump being connected to and in fluid communication with the armature; the wellbore completion method comprising the steps of:
activating selected stator modules; and lifting fluids from the wellbore.
- 75. The wellbore pumping method of claim 74, wherein:
the tubular is a production tubular; the fluids are production fluids being lifted up to the earth's surface; the pump comprises a standing valve and a traveling valve through which the production fluids flow; and the traveling valve of the pump is connected to the armature.
- 76. The wellbore pumping method of claim 75, wherein the step of activating selected stator modules comprises activating less than all of the plurality of stator modules.
- 77. The wellbore pumping method of claim 76, further comprising the step of activating additional stator modules at a point later in the producing life of the wellbore.
- 78. The wellbore pumping method of claim 77, wherein the step of activating additional stator modules at a point later in the producing life of the wellbore formation occurs after at least one of the selected stator modules fails.
- 79. The wellbore pumping method of claim 78, wherein the step of activating additional stator modules at a point later in the producing life of the wellbore occurs after the production pressure in the wellbore drops.
- 80. The wellbore pumping method of claim 75, wherein the armature comprises a modular construction of armature modules.
- 81. The wellbore pumping method of claim 80, wherein the armature modules are wired in parallel.
- 82. A wellbore pumping method utilizing a plurality of electrical pumps for lifting fluids from a wellbore up to the earth's surface, the wellbore having a tubular residing therein, and each of the electrical pumps comprising:
a stator; an armature that reciprocates relative to the stator,; a standing valve; and a traveling valve; the wellbore completion method comprising the steps of:
activating at least one but less than all of the electrical pumps; and activating at least one additional electrical pump at a point later in the producing life of the wellbore.
- 83. The wellbore pumping method of claim 82, wherein the step of activating at least one additional electrical pump at a point later in the producing life of the wellbore formation occurs after one of the selected electrical pumps fails.
- 84. The wellbore pumping method of claim 82, wherein the step of activating at least one additional electrical pump at a point later in the producing life of the wellbore formation occurs after the production pressure in the wellbore formation drops.
- 85. The wellbore pumping method of claim 82, wherein a first of the electrical pumps is positioned above each of the additional electrical pumps such that operation of the first of the electrical pumps relieves the hydrostatic head acting upon the additional electrical pumps and the production tubular.
- 86. The wellbore pumping method of claim 82, wherein the stator comprises a plurality of coils for generating an oscillating magnetic field, with each coil electrically wired with a power source in parallel such that a failure of one the coils does not produce a failure of another of the coils, and wherein each of the coils is multiplexed such that each of the coils is capable of being independently activated.
- 87. The wellbore pumping method of claim 82, wherein:
the armature comprises a first end, a second end, and an inner bore therethrough for receiving production fluids; the armature reciprocates within the stator; and the traveling valve is reciprocated by the armature.
- 88. The wellbore pumping method of claim 82, wherein the armature comprises a modular construction of armature modules.
- 89. The wellbore pumping method of claim 88, wherein the armature modules are wired in parallel.
- 90. The wellbore pumping method of claim 82, wherein the stator comprises a modular construction of stator modules.
- 91. The wellbore pumping method of claim 90, wherein the stator modules are wired in parallel.
- 92. The electrical pump of claim 82, wherein the relative reciprocation is controlled by a controller.
- 93. The electrical pump of claim 92, wherein the controller controls at least a portion of the armature.
- 94. The electrical pump of claim 92, wherein the controller controls at least a portion of the stator.
- 95. The electrical pump of claim 92, wherein the controller is programmable.
- 96. A method for selectively tailoring pumping capacity in a wellbore, the wellbore utilizing a plurality of electrical pumps for lifting fluids from a wellbore, the wellbore having a tubular residing therein, each of the electrical pumps comprising:
an electrical motor; an outlet section through which fluids exit from the tubular; an inlet section through which fluids re-enter the tubular; and a container for housing fluids around the motor, the container having a first opening fluidly sealed around the tubular, and a second opening also fluidly sealed around the tubular; the method for selectively tailoring pumping capacity comprising the steps of:
activating at least one but less than all of the electrical pumps; and activating at least one additional electrical pump.
- 97. The method for selectively tailoring pumping capacity of claim 96, wherein:
the electrical motor is a rotary electrical motor; the outlet section is connected to the rotary electrical motor at a first location; and the inlet section is connected to the rotary electrical motor at a second location.
- 98. The method for selectively tailoring pumping capacity of claim 96, wherein the tubular is a production tubular for delivering production fluids to the earth's surface.
- 99. The method for selectively tailoring pumping capacity of claim 96, wherein the step of activating at least one additional electrical pump occurs at a point later in the producing life of the wellbore formation after one of the selected electrical pumps fails.
- 100. The method for selectively tailoring pumping capacity of claim 96, wherein the step of activating at least one additional electrical pump occurs at a point later in the producing life of the wellbore formation after the production pressure in the wellbore formation drops.
- 101. The method for selectively tailoring pumping capacity of claim 96, wherein a first of the electrical pumps is positioned above at least one additional electrical pump such that operation of the first electrical pump relieves a portion of the hydrostatic head acting upon the additional electrical pump.
- 102. The method for selectively tailoring pumping capacity of claim 96, further comprising the step of placing a packer in series with the tubular in order to seal the wellbore around the tubular above one of the plurality of electrical pumps.
- 103. A method for selectively tailoring pumping capacity in a wellbore completion, the wellbore completion utilizing a plurality of electrical pumps for lifting fluids from a wellbore, the wellbore having a production tubular residing therein, the method comprising the steps of:
placing at least one lower electrical pump in fluid communication with the production tubular downhole; and placing at least one upper electrical pump in fluid communication with the production tubular at a depth above the at least one lower electrical pump such that operation of the upper electrical pump relieves a portion of the hydrostatic head acting upon the production tubular below the upper electrical pump.
- 104. The method for selectively tailoring pumping capacity of claim 103, wherein each of the plurality of electrical pumps employs a linear reciprocating motor.
- 105. The method for selectively tailoring pumping capacity of claim 103, wherein each of the plurality of electrical pumps employs a rotary motor.
- 106. A method for optimizing fluid production from a wellbore, the wellbore utilizing a plurality of electrical pumps for lifting fluids from a wellbore, the wellbore having a production tubular residing therein, the method comprising the steps of:
operating at least one pump; and operating additional pumps to optimize fluid production.
- 107. The method for selectively tailoring pumping capacity of claim 106, wherein each of the electrical pumps employs a linear reciprocating motor.
- 108. The method for selectively tailoring pumping capacity of claim 106, wherein each of the electrical pumps employs a rotary motor.
- 109. An electrical pumping system for lifting fluids from a wellbore, the wellbore system comprising:
a plurality of linear motor driven pumps; and a controller for selectively controlling the plurality of linear motor driven pumps.
- 110. The electrical pumping system of claim 109, wherein each of the plurality of linear motor driven pumps comprises:
a stator; an armature that linearly reciprocates relative to the stator; a pump housing for housing the pump, the pump housing having an end and an inner bore therethrough; and wherein the pump is operatively connected to the armature and is reciprocated with the armature.
- 111. The electrical pumping system claim 110, wherein the pump is attached to the armature.
- 112. The electrical pumping system of claim 110, wherein the armature comprises a modular construction of armature modules.
- 113. The electrical pumping system of claim 112, wherein the armature modules are wired in parallel.
- 114. The electrical pumping system of claim 110, wherein the stator comprises a modular construction of stator modules.
- 115. The electrical pumping system of claim 114, wherein the stator modules are wired in parallel.
- 116. The electrical pumping system of claim 110, further comprising a standing valve and a traveling valve.
- 117. The electrical pump of claim 110, wherein:
the electrical pump is a positive displacement pump; the armature comprises a modular construction of armature modules, the armature modules reciprocating together within the stator; and the stator comprises a modular construction of stator modules.
- 118. The electrical pumping system of claim 117, further comprising a tubular stator housing for housing the stator modules, the stator housing having a first end and a second end, the first end being connected to the production tubular.
- 119. The electrical pumping system of claim 117, further comprising a tubular armature housing for housing the armature, the armature housing having a first end, a second end, and an inner bore therethrough.
- 120. The electrical pumping system of claim 119, further comprising:
a pump inlet connected to the stator housing proximal to the second end of the stator housing; and a pump outlet connected to the armature housing proximal to the second end of the armature housing, and being reciprocated by the armature housing.
- 121. An electrical pumping system for lifting fluids from a wellbore, the wellbore having a tubular residing therein, the electrical pumping system comprising:
a plurality of stators; a plurality of armatures, each of the plurality of armatures being movable relative to a corresponding stator; a plurality of pumps, at least one of the pumps having a flow path therethrough; a plurality of pump housings, each of which houses at least one of the pumps; and wherein each of the pumps is operatively connected to a corresponding armature, and movable with the corresponding armatures.
- 122. The electrical pumping system of claim 121, wherein the pumps are linear pumps.
- 123. The electrical pumping system of claim 121, wherein the pumps are rotary pumps.
- 124. The electrical pumping system of claim 121, wherein at least one of the pumps is a linear pump, and at least one of the pumps is a rotary pump.
- 125. The electrical pumping system of any of claims 122, 123 and 124, wherein one or more of the pumps are selectively activated and deactivated.
- 126. The electrical pumping system of claim 125, wherein at least one of the pumps is activated in order to replace another of the pumps that has failed.
- 127. The electrical pumping system of claim 125, wherein at least one of the pumps is deactivated due to electrical failure in that pump.
- 128. The electrical pumping system of claim 125, wherein at least one of the pumps is selectively activated as wellbore pressure decreases and more pumping pressure is needed.
- 129. The electrical pumping system of claim 125, wherein at least one of the pumps is operatively connected to the tubular, and at least two of the pumps are separated by a packer.
- 130. The electrical pumping system of claim 129, wherein at least two of the pumps are selectively operated.
- 131. The electrical pumping system of claim 129, wherein:
the tubular is a single production tubular; the wellbore is completed in more than one producing zone; and the pumps produce production fluids through the tubular from more than one producing zone.
- 132. The electrical pumping system of claim 131, wherein:
a first of the pumps receives fluids from a first producing zone, and pumps production fluids upward in the production tubular to a second pump; and the second pump receives production fluids from the first pump and from the second producing zone such that fluids from the first and second producing zones are commingled in the production tubular.
- 133. The electrical pumping system of claim 132, wherein one or more of the pumps is a positive displacement pump.
- 134. The electrical pumping system of claim 133, wherein one or more of the pumps are electrically driven linear reciprocating pumps.
- 135. The electrical pumping system of claim 132, wherein one or more of the pumps are electrically driven rotary pumps.
- 136. The electrical pumping system of claim 131, wherein:
a first of the pumps receives fluids from a first producing zone, and pumps production fluids in the production tubular to a disposal zone; and a second pump receives production fluids from a second producing zone, and pumps production fluids in the production tubular upward to the surface.
- 137. The electrical pumping system of claim 136, wherein one or more of the pumps is a positive displacement pump.
- 138. The electrical pumping system of claim 137, wherein one or more of the pumps are electrically driven linear reciprocating pumps.
- 139. The electrical pumping system of claim 136, wherein one or more of the pumps are electrically driven rotary pumps.
- 140. An electrical pump for lifting fluids from a wellbore, the wellbore having a tubular residing therein, and the tubular having a fluid flow path therethrough, the electrical pump comprising:
an electric motor portion, the electric motor portion having a fluid flow path therethrough; a pump portion operatively connected to the electric motor portion, the pump portion being in fluid communication with the fluid flow path of the tubular and also being in fluid communication with the fluid flow path of the electric motor portion.
- 141. The electrical pump of claim 140, wherein the electrical motor portion is a rotary motor.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to a pending provisional patent application entitled “Submersible Electrical Pump, and Method for Using Plurality of Submersible Electrical Pumps for Well Completion.” That provisional application was filed on Jun. 26, 2001, and was assigned Serial No. Prov. 60/301,332.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60301332 |
Jun 2001 |
US |