The present patent application claims priority to Ukrainian patent application a201711361 filed Nov. 20, 2017, Ukrainian Utility Model application u201711650 filed Nov. 29, 2017 (currently issued as a patent No. 124038), Ukrainian patent application a201711687 filed Nov. 29, 2017, Ukrainian Utility Model application u201713084 filed Dec. 29, 2017, Ukrainian Utility Model application u201713104 filed Dec. 29, 2017, Ukrainian Utility Model application u201800311 filed Jan. 11, 2018, Ukrainian Utility Model application u201802824 filed Mar. 20, 2018, Russian patent application 2018102964 filed Jan. 25, 2018, Russian Utility Model application 2018103638 filed Jan. 31, 2018, Russian patent application 2018104953 filed Feb. 9, 2018, Russian Utility Model application 2018105379 filed Feb. 13, 2018, Russian Utility Model application 2018104336 filed Feb. 21, 2018, Russian patent application 2018111715 filed Apr. 2, 2018.
An invention relates to a field of oil production, in particular, to installations with displacement pumps driven by submersible linear electric motors, and can be used for production of stratum fluids from a marginal well stock from great depths.
A linear submersible motor with permanent magnets (hereinafter referred to as LSMPM) is used to actuate pump plungers in the said device. The known LSMPMs contain inductance coils forming a stationary part, namely a stator, as well as a movable part, namely a slider, formed by permanent magnets located in a stator bore. The specified slider is connected to the pump plungers and provides a reciprocal motion transmission. Changing a voltage polarity in a stator winding ensures a progressive motion of the slider in a longitudinal direction. The mentioned type of equipment has become widely used, mainly in small-diameter wells with a low production rate of less than 25 m3/day, and as a number of such wells increases every year, such installations are becoming progressively solicited. As a result, there are increasingly high requirements for manufacturability, maintainability and reliability of submersible pump units.
Most of currently known pump units include a plunger pump module of reciprocating action and a submersible linear electric motor connected to it by means of a threaded connection with telemetry units contained in a single enclosure, as well as a hydroprotection unit.
Claim for Invention US2015/0176574A1, F04B 47/00 dated 25, Jun. 2015 sets out a submersible wellbore pump, consisting of a static cylinder and a movable plunger, and a submersible motor, connected to the wellbore pump by means of a threaded or flanged connection. The specified motor is connected to a plunger of the submersible wellbore pump and is capable to perform a reciprocal motion of the plunger.
A disadvantage of this technical solution constitutes a relatively low reliability associated with a lack of telemetry and hydraulic compensator units.
Claim for Invention RU2549381 dated 27, Apr. 2015, Int. Cl. F04B 47/06, F04B 17/03, sets out a linear electric motor of a submersible pump unit, comprising a sealed stator containing cores with coils, a current lead and a head designed for connecting to a pump installed therein. A movable stock with a connecting rod, designed for connection to a pump plunger, and an active hermetically sealed slider, connected to the stock by means of a coupling joint, are placed into the stator. The slider contains successively mounted permanent magnets. The head is connected to a stator enclosure by a threaded connection performed through space plates with sealing elements. A compensator with an elastic diaphragm, performed as a bulb, having a middle portion diameter greater than a diameter of each of its end portions, is attached to a base of the stator in an analogical manner, while one end of the diaphragm is connected to the stator base and the other end is connected to a stub connecting the electric motor with the compensator.
Disadvantages of the described technical solution may include a lack of a telemetry unit and electric motor operation control elements, which can lead to an inefficient utilization.
Also, Claim for Invention RU2615775 dated 11, Apr. 2017, Int. Cl. F04B 47/06, F04B 17/03 sets out a borehole pump unit, installable into a wellbore, comprising a submersible part, including a plunger pump provided with pressure valves, and a gravity gas separator, above which a reversing valve unit is arranged, disposed in a single enclosure, comprising a coupling joint designed for fastening the borehole pump unit to the tubing string, as well as a submersible linear electric motor mounted under the plunger pump, comprising a static part in a form of a stator with a three-phase winding and temperature sensors installed, as well as a movable part located in a stator bore in a form of a slider configured to reciprocate with respect to the stator. A telemetry unit is arranged under the linear motor, comprising borehole fluid pressure and temperature sensors, a vibration sensor, an inclinometer and a measuring unit connected to temperature sensors installed in the linear motor and connected to a surface control unit via a zero point of wye-connected linear motor windings.
The described design is a production sample of the submersible pump unit, which is currently in operation, disadvantages of the described technical solution may include a single enclosure performing design, which can complicate its operation and reduce processability, as well as a maintainability.
The specified technical solution is determined to be the closest prior art. The claimed invention aims solving a technical problem constituting a creation of the linear electric submersible pump unit with high performance characteristics, increased reliability and maintainability, and also is executed with an ability to operate in wells of various diameters and productivities.
A technical result achieved from the claimed technical solution implementation consists in unifying the design, reducing its dimensions, as well as increasing the manufacturing processability, which enables manufacturing of separate modules of the pumping unit, regardless of assembling stages completeness, and can lead to significant savings in working hours with a simultaneous increase in products output quantity. Also, a modularity of the design improves its performance characteristics significantly, in particular, the maintainability, allowing to replace faulty modules and resume a pumping unit operation promptly.
A claimed invention essence lies in the fact that the linear electric submersible pump unit is executed in the form of separately enclosed modules connected to each other by means of a detachable connection in order to form a single oil-filled system. This installation includes a linear electric motor module connected by a cable line to the surface control unit by means of a sealed plug and socket connection. The plug and socket connection is arranged beyond an input lead end on an extended electrical conductor. A hydraulic compensator module is installed at a base of the electric motor comprising an elastic diaphragm, an internal cavity of which is performed in fluid communication with a linear electric motor stator cavity by means of a connecting channel passing at attachment points of the elastic diaphragm. The said channel constitutes a part of an oil line, filling the linear electric submersible pump unit, comprising a cavity with wires of communication with the surface control unit. The wires are connected to a submersible module of the telemetric system with implemented hardware-software mode of the surface control unit for checking an insulation. While the hydraulic compensator module comprises a hydromechanical damper of the lowest end point of a moving part stroke of a linear drive, which constitutes an element of a damping system, that also contains a damper of the highest end point placed in a separate enclosure and installed between the linear electric motor module and the pump module.
According to a preferred embodiment of the invention of the linear electric submersible pump unit a detachable connection of the modules is made according to a flange connection approach, consisting of joinable modules and thread bushes mounted at flanks. Providing that one of the bushes comprises a flange and the second one constitutes a counterpart with pre-installed studs. The telemetric system module is equipped with a set of replaceable flanges with mounting holes, located depending on a diameter of an enclosure of the electric submersible pump unit, while a diameter of a mounting hole of the flange is performed constant and corresponds to a diameter of the module enclosure.
According to another preferred embodiment of the invention the telemetry system module comprises a filter switching device, containing a low frequency filter with a switching element of the control system, and is connected to the surface control unit, comprising a low frequency filter mounted on a line of communication with a secondary winding of a three-phase transformer and configured to protect the system from high voltage. Also the surface control unit contains a switching device configured to reverse a polarity of a voltage, fed into the line in order to measure the insulation resistance, and connected to a resistor of voltage removal proportional to a connection line current.
According to the preferred embodiment of the invention the elastic diaphragm of the hydraulic compensator module is hermetically fixed at the attachment points by means of a composite clamp and protected from mechanical damage by means of a non-metallic plug designed to limit deformations of the elastic diaphragm. While the elastic diaphragm of the hydraulic compensator module can be placed eccentrically with respect to a symmetry axis of the linear electric submersible pump unit.
According to the preferred embodiment of the invention the plug and socket connection is performed within overall dimensions of the pump unit enclosure, determined by its largest cross section, and includes the plug and socket connection arranged beyond the input lead end on the extended electrical conductor. The plug and socket connection consists of a hermetically sealed enclosure with at least one electrical conductor inserted inside and fixed by means of sealing polymer elements, while an exposed end of the extended conductor is mounted into the current lead end with a double sided seal by pressing crash elements. Also according to the mentioned embodiment the hermetically sealed plug and socket connection is arranged within an area embedded with respect to the surface and a diminishing socket, installed between a pump unit output and an oilwell tubing input.
Also the essence of the claimed invention consists in the fact that the damping system comprises at least one hydromechanical dynamic load compensating device installed in at least one of the end points of the movable part of the linear drive. The said device consists of a cylindrical chamber with drain ports filled with a working fluid and a movable hollow piston and reciprocating support member with a spring element installed therebetween. Wherein the said cylindrical chamber is configured to be filled with the working fluid from an ambient medium of the pumping unit.
The drain ports of the hydromechanical device in described damping system are spaced along a length of its cylindrical chamber and are designed to decelerate the stroke of the piston as they alternately covered with a piston body and as increase in resistance to a flow of the working fluid occurs.
Also according to the preferred embodiment of the damping system the hydromechanical device installed in at least one of the end points of the movable part stroke of the linear submersible electric motor is arranged to provide communication of the said movable part with a plunger of the pump module by means of a connecting element, installed in the piston cavity.
The mentioned moving part of the linear submersible motor is connected to the plunger of the pump unit by means of a connecting link consisting of a friction couple formed by a hollow enclosure element with a movable rod located inside. A diameter of the movable rod is equal to a diameter of the moving part of the linear submersible electric motor, wherein longitudinal dimensions and a stroke length of the movable rod are selected in such a way as to provide at least partial positioning of the movable part of the linear submersible electric motor within an enclosure element cavity of the friction couple. This thereby compensates radial loads on the movable part of the linear drive, ensuring an alignment and a sealing of the said movable part.
According to the described embodiment the movable part of the linear submersible electric motor consists of a plurality of permanent magnets separated by ferromagnetic inserts, namely magnetic field concentrators, between which copper alloy plugs are installed over the permanent magnets. These plugs provide a decrease in a friction ratio by means of transferring a part of a material onto an inner surface of a conductor pipe, as they wear out. Simultaneously the conductor pipe forms a friction couple with the moving part of the linear electric motor with a reduced friction ratio. Also according to the suggested embodiment, a hardness of the conductor pipe is higher than a hardness of the ferromagnetic inserts and the copper alloy plugs. The said conductor pipe is made of a non-magnetic material and its required hardness is achieved by means of a surface hardening.
An essence of the claimed invention is explained, but is not limited to the following images:
The claimed linear electric submersible pump unit comprises surface 1 (
Submersible part 2 (
Submersible module 11 of the telemetry system is installed at the bottom portion of the pump unit and comprises a set of measuring sensors of well and motor parameters connected with the surface control unit via the zero point of the wye-connected linear motor windings.
Mentioned component parts are executed in the form of separately enclosed modules connected to each other by means of a detachable connection in order to form a single oil-filled system.
Hydraulic compensator module 8 (
The applied telemetric system (
The damping system is integrated into the pump unit construction, as a result it is possible to enable its reliable and continuous operation. Hydraulic compensator module 8 comprises a first damper 33 (
The specified first hydromechanical device constitutes an element of the damping system. The damping system also contains a second damper 34 (
The hydromechanical devices used in the design of the damping system comprise cylindrical chamber 35, 351 filled with the working fluid, drain ports 36, 361, a movable hollow piston 37, 371 with reciprocating support member 38, 381 and a spring element 39 installed therebetween. Said cylindrical chamber 35, 351 is configured for filling with the working fluid from the ambient medium of the linear electric submersible pumping unit.
Drain ports 36, 361 of said first and second hydromechanical devices are spaced along the length of its cylindrical chamber 35, 351 and are designed to decelerate the stroke of piston 37, 371 as they alternately covered with the piston body and as increase in resistance to the working fluid flow occurs. Also, according to the preferred embodiment of the damping system, the hydromechanical device is installed in at least one of the end points of the movable part stroke of the linear submersible electric motor. The second damper 34 is configured to provide a communication of said movable part 62 (
Also, according to the described embodiment of the invention, guide pipe 13 of the linear electric motor movable part 62 is installed inside of piston cavity 37. A relief of a liquid column located inside of guide pipe 13 installed in piston 37 cavity occurs through holes 40 at the bottom of the said guide pipe to the lowest end point as the movable part strokes downward, while piston 37 cavity gets narrow with respect to the diameter of guide pipe 13 and decelerates the stroke of the moving part 62 prior to contacting with said piston 37.
The described modules of the linear electric submersible pump unit are connected with the detachable connection performed according to the flange connection approach (
As previously mentioned, the connection of surface 1 and submergible 2 parts of the pump unit is provided by means of cable line 5 with plug connection 6. The plug and socket connection is performed within overall dimensions of the pump unit enclosure, determined by its largest cross section. The plug and socket connection (
Movable part 62 (
According to the described embodiment of the invention movable part 62 (
The embodiment of the claimed invention contributes to achievement of the mentioned technical result by providing unification of the design with simultaneous increase in the manufacturing processability by means of involving easily removable interoperable modules for its manufacture. Also the described embodiment of the cable plug and socket connection and the hydraulic damper module contributes to decrease in the pump unit dimensions.
According to the claimed invention the telemetry system performance provides an increase in a level of protection from a high-voltage interference by installing filtering devices in the surface and submergible units, moreover, implementation of the described technical solution enables increase in the reliability of operation by providing protection against high voltage and instrumentation of the hardware-software mode of the surface control unit for checking the insulation.
Providing that the arrangement of the described damping system, integrated into the submersible pumping unit construction without any significant increase in its overall dimensions, and the execution of the movable part of the linear drive with elements, reducing the friction ratio, provide a reduction in dynamic loads on the elements of the electrical motor design and contribute to increase in its operating resource.
Number | Date | Country | Kind |
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a 2017 11361 | Nov 2017 | UA | national |
a 2017 11687 | Nov 2017 | UA | national |
u 2017 11650 | Nov 2017 | UA | national |
u 2017 13084 | Dec 2017 | UA | national |
u 2017 13104 | Dec 2017 | UA | national |
u 2018 00311 | Jan 2018 | UA | national |
RU2018102964 | Jan 2018 | RU | national |
RU2018103638 | Jan 2018 | RU | national |
RU2018104953 | Feb 2018 | RU | national |
RU2018105379 | Feb 2018 | RU | national |
RU2018104336 | Feb 2018 | RU | national |
u 2018 02824 | Mar 2018 | UA | national |
RU2018111715 | Apr 2018 | RU | national |
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Number | Date | Country | |
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20190153831 A1 | May 2019 | US |