1. Field of the Invention
The present invention relates to an apparatus and method for manufacturing a centrifugal pump without a shaft. More specifically, the invention relates to a submersible centrifugal pump having multiple impellers, wherein the impellers interconnect and rotate together without the use of a central shaft.
2. Description of the Related Art
Electrical submersible pumps (“ESP”) are used to pump wellbore fluids from the depths of the earth to the surface. A typical ESP has a motor, a seal section, and a pump. The motor rotates a shaft inside the seal section. The seal section shaft is connected to the pump. The ESP pump is typically an impeller pump having multiple stages. Each stage has an impeller and a diffuser. In operation, wellbore fluids enter the first impeller and are accelerated by centrifugal force out of the impeller into the adjacent diffuser. The diffuser reduces the velocity of the wellbore fluid, converts the high velocity to pressure, and directs the fluid into the next impeller. The pressure of the wellbore fluid is increased with each successive stage, until the fluid is discharged from the pump into tubing that carries the fluid to the surface.
A central pump shaft is connected to the seal section shaft. As the motor rotates, it ultimately causes the central pump shaft to rotate. The central pump shaft passes through each impeller. Keys or splines on the shaft engage corresponding slots on each impeller so that the impellers rotate with the shaft. Spacers are frequently required between the impellers so that the impellers are properly spaced to engage the diffusers.
Assembly of the pump can be time consuming and costly. The spacer lengths must be calculated, each of the impellers and spacers must be attached to the central pump shaft, and then the assembled central pump shaft, spacers, and impellers must be installed in the pump housing. It would be advantageous to eliminate the central pump shaft and spacers, thus reducing material costs and assembly time.
An electrical submersible pump (“ESP”) comprises a pump, a seal section, and a motor. The ESP may be suspended from tubing in a wellbore, wherein it is submerged in wellbore fluid. Wellbore fluid is drawn into a pump inlet located on the pump and then pumped up through tubing to the surface.
The motor may be any type of motor including, for example, an electric motor. The shaft of the motor connects to a seal section shaft, which passes through the seal section to the base of the pump. The pump comprises a pump housing and impellers, diffusers, radial supports, a tension spring assembly, and a containment bearing located within the pump housing.
The pump housing is a cylindrical member that forms the outer housing of the pump. It contains and protects many of the pump components. A plurality of diffusers are located within the pump housing. Each diffuser has a central bore, and passages defined by vanes. The vanes extend helically outward from the bore of the diffuser. The cross sectional area of each passage increases as the passage extends upward and inward from the base of the diffuser. Fluid entering the diffuser at high velocity is slowed to a lower velocity but higher pressure by the time it exits the diffuser.
A downward facing interior shoulder below the diffuser vanes may have a thrust bearing washer for engaging an upper surface of the impeller located below the diffuser. A base of the diffuser may have interlocking members for engaging an interlocking member of an adjacent diffuser.
The upward facing edges of the diffuser vanes define a discharge surface. Fluid exiting the diffuser from the discharge surface moves into the impeller above the diffuser. The diffuser may have an impeller support surface on its sidewalls for engaging the lower edges of the next impeller.
The impeller is a rotating pump member that uses centrifugal force to accelerate fluids. Each impeller has a solid hub segment, which is a cylindrical member rotated about an axis of rotation. One end of the solid hub segment has a drive socket, which is a receptacle formed in the surface of the end.
A drive member may be located on the opposite end of the solid hub segment from drive socket. The drive member is generally shaped to fit inside drive socket of an adjacent solid hub segment such that when drive member rotates, it causes the adjacent drive socket to rotate. Some embodiments may have drive sockets located at both ends or drive members located at both ends.
Each impeller has vanes, which may be attached to the solid hub segment. In some embodiments, the impeller vanes and solid hub segment are formed of the same material. Vanes extend radially from the solid hub segment and may be normal to the solid hub segment or may extend at an angle. In some embodiments, the vanes are curved as they extend from solid hub segment. Passages are formed between surfaces of vanes.
The rear wall of the impeller forms an outer edge of the impeller. The rear wall may be attached to an edge of the vanes. In some embodiments, the rear wall is attached to the solid hub segment, either directly or via vanes. In some embodiments, the solid hub segment, vanes, and rear wall are all cast or manufactured as a single piece of material. The rear wall may have a lower lip for engaging an impeller support surface of the diffuser. The rear wall defines a passage extending from below the impeller into the passages formed between vanes.
Each impeller has a front wall that is located at the opposite end of vanes from the rear wall. The front wall may be attached to the vanes. The inner diameter of the front wall may contact the solid hub segment. The front wall may have a sealing surface for sealing against the bearing member of the diffuser.
A containment and support bearing (“top bearing”) is located at one end of the pump housing. The top bearing may be a thrust bearing or any other type of bearing suitable to support the rotation of a plurality of impellers. The top bearing engages the first solid hub segment to allow rotation of the solid hub segment.
A tension spring assembly is attached to the top bearing. It includes a coil spring, which may be located coaxially with the first solid hub segment. In some embodiments, the inner diameter of the coil spring is larger than an outer diameter of the first solid hub segment, and the first solid hub segment passes through the coil spring. One end of the coil spring may engage a shoulder located on the top bearing. A second end of the coil spring may engage an upward facing shoulder on the first solid hub segment. The coil spring is compressed by the first solid hub segment and thus urges the first solid hub segment away from top bearing.
The top bearing and diffuser are placed in pump housing. The first solid hub segment and the first impeller segment, with the tension spring assembly, are placed in the pump housing, such that first impeller segment engages the diffuser and the tension spring assembly engages both the shoulder and the upward facing shoulder. Subsequent diffusers and impellers are alternatingly placed in the pump housing. A base is attached at the end of the pump housing opposite from the top bearing. The tension spring assembly compresses the impeller segments along the central axis, and the diffusers prevent radial movement of impellers.
So that the manner in which the above-recited features, aspects and advantages of the invention, as well as others that will become apparent, are attained and can be understood in detail, more particular description of the invention briefly summarized above may be had by reference to the embodiments thereof that are illustrated in the drawings that form a part of this specification. It is to be noted, however, that the appended drawings illustrate only preferred embodiments of the invention and are, therefore, not to be considered limiting of the invention's scope, for the invention may admit to other equally effective embodiments.
Referring to
Motor 108 may be any type of motor including, for example, an electric motor. Referring to
Pump housing 120 is a cylindrical member, having bore 132, that forms an exterior of pump assembly 104. Housing 120 may be made of metal, plastic, or any other suitably rigid material. Pump housing 120 contains and protects many of the components of pump assembly 104.
Referring to
Each diffuser 124 contains a plurality of passages 138 that extend through diffuser 124. Referring to
The lower edges of diffuser vanes 140 define downward facing interior shoulder 144, which is recessed from lower edge 146 of diffuser 124, as shown in
Lower edge 146 of diffuser 124 forms a generally annular ring that defines a downward facing opening. Lower end 146 of diffuser sidewall 154 may have downward facing lower interlocking member 156, such as a shoulder or rabbet, for receiving a corresponding upper interlocking member 158 on the upper end of an adjacent diffuser 124.
The upward facing edges of diffuser vanes 140 (
Referring still to
One end of each solid hub segment 170 has drive socket 172, which is a receptacle formed in the surface of the end. Drive socket 170 may be any polygonal shape, including, for example, square, hexagonal, or octagonal. Drive socket has an axial depth sufficient to engage drive member 174.
Drive member 174 is located on the opposite end of solid hub segment 170 from drive socket 172. Drive member 174 is a geometric shape protruding from the end surface of solid hub segment 170. The geometric shape could be any polygonal shape, including, for example, square, hexagonal, octagonal. Drive member 174 is generally shaped to fit inside drive socket 172 of an adjacent solid hub segment 170 such that when drive member 174 rotates, it causes the adjacent drive socket 172 to rotate. Drive member 174 and drive socket 172 may be located on either end of solid hub segment 170, provided each drive member 174 or drive socket 172 is able to interlock with an adjacent drive socket 172 or drive member 174. Some embodiments may have drive socket 172 located at both ends or drive member 174 located at both ends. An adapter (not shown) may be used to facilitate the interlocking of members. The adapter (not shown) could be, for example, a key used to join two adjacent sockets 172, or the adapter could be a sleeve having two receptacles for joining two adjacent drive members 174.
Referring to
Referring to
Rear wall 182 may have lower lip 184 for engaging impeller support surface 162 of diffuser 124 (
Referring to
Referring back to
In some embodiments, first hub segment 202, which engages bearing assembly 130, is different than solid hub segment 170 (which may be used in subsequent impellers 122 within pump assembly 104). In some embodiments, first hub segment 202 is a member of first impeller segment 204, wherein vanes 176 extend from first hub segment 202. In other embodiments (not shown), first hub segment 202 may be a shaft segment operably connected to first hub segment 204 by, for example, a socket 172 and drive member 174, in which case first impeller 204 may be identical to subsequent impellers 122.
Tension spring assembly 128 is used to apply axial pressure on impellers 122 and thus keep sockets 172 and drive members 174 engaged while impellers 122 are rotating within pump housing 120. Tension spring assembly 128 includes coil spring 208. Coil spring 208 may be located coaxially with first hub segment 202. In some embodiments, the inner diameter of coil spring 208 is larger than an outer diameter of first hub segment 202, and first hub segment 202 passes through coil spring 208. One end of coil spring 208 may engage shoulder 210 located on containment bearing 130. A second end of coil spring 208 may engage an upward facing shoulder 212 on first hub segment 202. Coil spring 208 is compressed by first hub segment 202 and thus urges first hub segment 202 away from containment bearing 130.
Containment bearing 130 and diffuser 124 are placed in pump housing 120. First hub segment 202 and first impeller segment 204, with tension spring assembly 128, are placed in pump housing 120, such that first impeller segment 204 engages diffuser 124 and tension spring assembly engages both shoulder 210 and upward facing shoulder 212. Subsequent diffusers 124 and impellers 122 are alternatingly placed in pump housing 120. Base 214 is attached at the end of pump housing 120 opposite from containment bearing 130. Tension spring assembly 128 compresses impeller segments along the central axis, and diffusers 124 prevent radial movement of impellers 122.
In operation, motor 108 rotates motor shaft (not shown), which in turn causes seal section shaft 116 to rotate. Seal section shaft 116 engages solid hub segment 170 of the bottom-most impeller 122. Rotational force is transferred via drive sockets 172 and drive members 174 of each solid hub segment 170, thus causing all impellers 122 to rotate together. Tension spring assembly 128 urges impellers 122 to remain engaged while rotating. Impeller support surface 162 engages the lower lip of rear wall 182 to prevent radial dislocation of impellers 122 during rotation. Wellbore fluid entering pump inlet 112 is drawn into passage 178 of impeller 122. The rotation of impeller 122 accelerates fluid out of passage 178 into diffuser passage 138. In diffuser passage 138, the fluid velocity is decreased and pressure is increased. The fluid exits diffuser passage 138, passing through the opening defined by rear wall 182 as it enters the next impeller 122. The wellbore fluid continues to pass through each subsequent diffuser 124 and impeller 122 until it reaches tubing 110, wherein it is propelled up through tubing 110.
While the invention has been shown or described in only some of its forms, it should be apparent to those skilled in the art that it is not so limited, but is susceptible to various changes without departing from the scope of the invention.