EP4551837A1 - Motor drive shaft spring clutch in electrical submersible pump - Google Patents
Motor drive shaft spring clutch in electrical submersible pumpInfo
- Publication number
- EP4551837A1 EP4551837A1 EP23847229.4A EP23847229A EP4551837A1 EP 4551837 A1 EP4551837 A1 EP 4551837A1 EP 23847229 A EP23847229 A EP 23847229A EP 4551837 A1 EP4551837 A1 EP 4551837A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- spring
- hub
- shaft
- pump
- receptacle
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D7/00—Slip couplings, e.g. slipping on overload, for absorbing shock
- F16D7/02—Slip couplings, e.g. slipping on overload, for absorbing shock of the friction type
- F16D7/022—Slip couplings, e.g. slipping on overload, for absorbing shock of the friction type with a helical band or equivalent member co-operating with a cylindrical torque limiting coupling surface
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/12—Methods or apparatus for controlling the flow of the obtained fluid to or in wells
- E21B43/121—Lifting well fluids
- E21B43/128—Adaptation of pump systems with down-hole electric drives
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D13/00—Pumping installations or systems
- F04D13/02—Units comprising pumps and their driving means
- F04D13/021—Units comprising pumps and their driving means containing a coupling
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D13/00—Pumping installations or systems
- F04D13/02—Units comprising pumps and their driving means
- F04D13/06—Units comprising pumps and their driving means the pump being electrically driven
- F04D13/08—Units comprising pumps and their driving means the pump being electrically driven for submerged use
- F04D13/10—Units comprising pumps and their driving means the pump being electrically driven for submerged use adapted for use in mining bore holes
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D15/00—Control, e.g. regulation, of pumps, pumping installations or systems
- F04D15/0077—Safety measures
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/04—Shafts or bearings, or assemblies thereof
- F04D29/043—Shafts
- F04D29/044—Arrangements for joining or assembling shafts
Definitions
- This disclosure relates in general to electrical submersible well pumps (ESP), and in particular to a clutch mechanism that prevents spinning of the motor drive shaft unless power is being supplied to the motor.
- ESP electrical submersible well pumps
- a typical ESP includes an electrical motor having a rotating drive shaft that drives the pump.
- the pump may be a centrifugal pump or another type.
- the motor is typically a three-phase AC motor of an induction electric type, but permanent magnet motors are also employed.
- the electrical charge can be dangerous to nearby technicians.
- One instance can occur when the ESP is being run into the well on production tubing.
- Well fluid can flow up through the pump, resulting in forward spinning of the motor shaft.
- Technicians normally deploy a power cable at the same time and strap the power cable onto the production tubing every 20 feet or so. The terminals at the upper end of the power cable could be exposed and electrocute the technician.
- Helical spring brakes are known to be used on helicopter shafts and washing machine shafts for various purposes. However, helical spring brakes have not been configured and mounted to ESP shaft assemblies.
- ESP electrical submersible well pump assembly
- the drive train of this example is made up of a motor shaft coupled to the electrical motor, a pump shaft coupled to the pump, and a connector having a driven hub assembly.
- the driven hub assembly includes a driven hub shaft having an end coupled with the pump shaft, a driven hub receptacle connected to an end of the driven hub shaft that is distri from the pump shaft, andadrivenhub cavity formed in the driven hub recqitade.
- a hdicd spring with a fixed portion and a flex portion that inserts into the driven hub cavity, when the spring is rotationally static an outer surface of the flex portion is spaced radially inward from an inner surface of die hub receptacle and when die spring is rotated in a first direction the flex portion outer surface radidly expands into contact with the inner surface of the hub recqitade so that the spring is rotationally coupled to the driven hub assembly and a drive hub assembly having an end coupled to the motor shaft and an opposing end affixed to the fixed end of the spring.
- energizing the dectrical motor rotates the motor shaft and drive hub assembly to rotate the spring in the first direction.
- coils in the flex portion have a radial thickness that reduces with distance from the fixed portion.
- coils in the flex portion have an axid thickness tiiat reduces with distance from the fixed portion.
- the drive hub assembly further indudes a drive hub recqitade, a drive hub cavity in the drive hub recqitade that receives and attadies to an end of the fixed portion, a drive hub shaft having an end that attadies to the dectricd motor and an opporing aid that attadies to the drive hub receptade.
- a length of the spring disposed in the driven hub receptacle exceeds a length of the spring disposed in die drive hub recqitade.
- the ESP further optionally indudes a sed section disposed between the dectricd motor and the pump, and where the drive train extends through the sed section.
- the spring is optionally rotated in a second direction that is opposite die first direction, the outer surface of the flex portion is spaced radidly inward from the sidewdls of the driven hub recqitade and the driven hub receptade is freely rotatable with respect to the spring.
- the ESP dtemativdy further indudes a dutch spring for arresting rotation of the driven hub assembly.
- an dectricd submersible well pump assembly indudes an dectricd motor having a motor shaft is rotated in a first direction when the dectricd motor is energized, a pump having a pump shaft, and a drive train with a connector with opposing ends coupled to the motor and pump shafts, the connector made up of drive and driven hub assemblies that each have receptacles and shafts connected to the receptacles that couple respectively to the pump shaft and motor shaft, and a helical spring with an end affixed in the drive hub assembly receptacle and an opposing end inserted into the driven hub assembly receptacle that when rotationally static is spaced radially inward from inner sidewalls of the driven hub assembly receptacle and that when rotated in the first direction expands radially outward into engaging contact so that the drive and driven hub assemblies are rotationally coupled.
- the helical spring includes coils, and where the coils in the driven hub assembly have a radial thickness that reduces with distance from the drive hub assembly, or optionally, the coils in the driven hub assembly have an axial thickness that reduces with distance from the drive hub assembly.
- the outer surface of the spring is spaced radially inward from the sidewalls of the driven hub receptacle and the driven hub receptacle is freely rotatable with respect to the spring.
- an electrical submersible well pump assembly (“ESP”) includes an electrical motor that has a motor shaft that is rotated in a first direction when the electrical motor is energized, a pump having a pump shaft, and a drive train having an end rotationally coupled with the motor shaft and an opposing end coupled with the pump shaft.
- the drive train includes a connector with a helical spring that when rotated in the first direction radially expands and couples with a driven member in the connector to transmit rotational force through the connector, and that when rotationally static decouples from the driven member and defines a break in the drive train. Further optionally in this example, the break is in the drive train when the spring is rotated in a direction opposite to the first direction.
- the connector further optionally includes a drive member affixed to an end of the spring distal from the driven member, and where radial and axial dimensions of the spring are reduced with distance away from the drive member.
- the driven member has an annular receptacle that defines a cylindrically shaped cavity in which the spring is inserted, and where a taper is formed along an inner surface of the receptacle.
- FIG. 1 is a side view an ESP supported on tubing, the ESP being in accordance with this disclosure.
- Fig. 2 is a schematic sectional and exploded view of the coupling between the seal section shaft and motor shaft of Fig. 1, the coupling being shown in a position when the motor is not powered.
- Fig. 3 is a schematic sectional view of the coupling of Fig. 2 while the motor is powered.
- Fig. 4 is a perspective view of the spring clutch of the coupling of Fig. 2, shown removed from the coupling.
- Fig. 5 is a perspective view of an alternate embodiment of the spring clutch of Fig. 4, shown removed from the coupling assembly.
- FIG. 6 is a schematic sectional view of an alternate embodiment of the coupling of Fig.
- FIG. 7 is a schematic sectional view of another alternate embodiment of the coupling of [0019]
- Fig. 8 is a perspective view of the spring clutch of the coupling of Fig. 7, shown removed from the coupling.
- FIG. 9 is a schematic sectional view of another alternate embodiment of the coupling of
- Fig. 10 is a schematic side sectional view of another alternate embodiment of the coupling of Fig. 2.
- Fig. 10A is a side sectional enlarged view of a portion of the example coupling of Fig.
- Fig. 11 is a side sectional view of an example of a spring for use with the coupling of
- Fig. 12A is a side sectional view of a portion of the example coupling of Fig. 10 shown in a non-operating mode.
- Fig. 12B is a side sectional view of a portion of the example coupling of Fig. 10 shown in an operating mode.
- Fig. 13 is an axial view of the spring of Fig. 11 in a rotating mode.
- Fig. 14 is a schematic side sectional view of another alternate embodiment of the coupling of Fig. 2.
- a wellhead (not shown) at the surface supports an electrical submersible pump (ESP) 13 on a string of production tubing 15.
- ESP 13 includes a pump 17, which is illustrated to be a centrifugal pump with a large number of pump stages, each stage having a rotatable impeller and a non-rotating diffuser.
- Pump 17 has a rotationally driven pump shaft 18 and intake port 19 for drawing in well fluid from casing 11 and discharging the well fluid into production tubing 15.
- a rotary gas separator (not shown) could be mounted to the lower end of pump 17 for separating gas from liquid in the well fluid flowing into pump 17. If so, pump intake port 19 would be in the gas separator and the drive shaft within the gas separator may be considered to be a lower extension of pump shaft 18.
- a motor 21 with a motor shaft 22 drives pump shaft 18 of pump 17.
- Motor 21 is typically a three-phase electrical motor filled with a dielectric lubricant.
- Motor 21 may be a permanent magnet motor having a rotor containing permanent magnets that rotate in response to electromagnetic fields of a non-rotating stator.
- a seal section 23 connected between motor 21 and pump 17 has a pressure equalizer that reduces a pressure differential between the lubricant in motor 21 and well fluid on the exterior.
- the pressure equalizer could be mounted below motor 21.
- a seal section shaft 24 that drives pump shaft 18 and is driven by motor shaft 22.
- a power cable 25 with a motor lead extension on its lower end extends downward from the wellhead alongside production tubing 15 to a receptacle on an upper portion of motor 21 for powering motor 21.
- ESP 13 could be supported on a string of coiled tubing, which is a continuous steel tube deployed from a reel at the surface.
- ESP coiled tubing has a power cable inside rather than on the exterior. In that instance, motor 21 and seal section
- a first or lower connector 27 connects motor 21 to seal section
- second connector 29 connects seal section 23 to pump 17. If a rotary gas separator is employed, second connector 29 would connect seal section 23 to the gas separator.
- a third connector would connect the gas separator to the pump.
- a clutch coupling 33 will be located within one of the connectors
- clutch coupling 33 is a motor/seal section coupling located in first connector 27.
- Motor shaft 22 has a splined upper end 37 in engagement with a lower portion of clutch coupling 33.
- Seal section shaft 24 has a lower splined end 41 that is engagement with an upper portion of clutch coupling 33.
- a conventional coupling (not shown) will connect seal section shaft 24 to pump shaft 18 in this example.
- clutch coupling 33 transfers the driving rotation of motor shaft 22 to seal section shaft 24, which in turn transfers the driving rotation to pump shaft 18. Even if motor 21 is not powered, pump shaft 18 can rotate in a normal driving direction while ESP 13 is being lowered into casing 11 during installation due to well fluid flowing upward through pump intake ports 19. Also, after installation if motor
- clutch coupling 33 in first connector 27, it will be immersed in and lubricated by dielectric motor lubricant of motor 21.
- clutch coupling 33 could be located within second connector 29, however it would be immersed and lubricated by well fluid, rather than motor lubricant.
- clutch coupling 33 has a lower or motor end hub 43 with an integrally formed adapter 44 on its lower end.
- Adapter 44 has an internally splined socket 45 that receives splined upper end 37 of motor shaft 22.
- Other types of connections are feasible, including making adapter 44 and lower hub 43 an integral part of motor shaft 22.
- Clutch coupling 33 has an upper or pump end hub 47 with an adapter 49 having an internally splined socket 51 facing upward for receiving the lower splined end 41 of seal section shaft 24.
- Clutch coupling 33 has a helical coiled clutch spring 53 comprising helical turns 55 extending from the lower or motor end to the upper or pump end. Both the lower and upper ends of helical turns 63 are free prior to installation in clutch coupling 33.
- Clutch spring 53 shown also in Fig. 4, may be manufactured by making a helical cut through the wall of a tubular block of metal. When viewed in an axial cross-section, as shown in Fig. 3, each helical turn 55 has a rectangular shape in this example. When looking downward from the upper end, helical turns 55 define a counterclockwise helical path extending in the opposite direction from the driving direction of motor shaft 22. The normal driving direction of motor shaft 22 in these embodiments is clockwise, but it could be reversed.
- clutch spring 53 is fixed to lower hub 43 for rotation therewith in this embodiment.
- One technique for securing clutch spring 53 to lower hub 43 employs a shrink ring or clamp 57 that clamps the lower portion of clutch spring 55 tightly around lower hub 43.
- Shrink ring 57 may be a solid annular member that employs a thermal process to cause it to shrink in diameter so that it can be first inserted over lower hub 43, then shrunk to tightly clamp the lower end of clutch spring 53 to lower hub 43.
- shrink ring 57 may be a shape memory alloy such as Nitinol that shrinks when heat is applied and retains the smaller diameter after the heat is removed.
- Shrink ring 57 clamps only the lower portion of helical turns 55, and the remaining turns 55 may retain their original diameter.
- upper hub 47 is a receptacle with an open lower end.
- Upper hub 47 is a receptacle with an open lower end.
- clutch spring helical turns 55 fits within the receptacle defined by upper hub 47. Initially, the upper portion of helical turns 55 are spaced radially inward from upper hub sidewall 61 by a slight clearance; or they could be lightly touching.
- Fig. 5 illustrates a spring clutch 65 as an alternate embodiment of spring clutch 53.
- a screw 67 depends from a closed lower end of spring clutch
- Screw 67 engages a threaded hole in lower hub 43 to secure the lower portion of spring clutch 65 to lower hub 43 for rotation.
- the upper portion of spring clutch 65 would engage upper hub sidewall 61 (Fig. 2) in response to driving rotation of lower hub 43 in the same manner as described in connection with Figs 2 - 4.
- the threads of screw 67 are in a direction that tightens when motor shaft 22 turns.
- coupling 69 has a lower adapter 71 that may have a splined socket similar to socket 45 in Fig. 2.
- Lower hub 73 joins lower adapter 71 and comprises an upward facing receptacle with an open upper end and an inward-facing cylindrical sidewall 74.
- Upper adapter 75 and upper hub 77 may be the same as in Fig. 2-3.
- Upper hub 77 is a downward-facing receptacle with an inward-facing sidewall 79.
- Clutch spring 81 may be the same as clutch spring 53 of Fig. 2.
- the lower portion of helical turns 83 will be in an initial frictional or interference engagement with sidewall 74 of lower hub 73.
- the upper portion of helical turns 83 will initially not be in gripping engagement with upper hub sidewall 79. Rather the upper portion of helical turns 83 will be spaced slightly from or lightly touching upper hub sidewall 79. The touching, if any, would only be a few degrees of contact between clutch spring 81 and upper hub sidewall 79 due to manufacturing tolerances. No complete 360 degree contact between clutch spring 81 and upper hub sidewall 79 occurs initially.
- clutch coupling 85 has a lower hub 87 that is a cylindrical rod, similar to lower hub 43 in Fig. 2.
- a lower adapter 89 with a splined socket depends downward from lower hub 87 and may be integral with it.
- An upper adapter 91 and an upper hub 93 having an inward-facing sidewall 94 may be constructed as in Fig. 2 or Fig. 7.
- Upper hub 93 is also a receptacle with an inward-facing sidewall 94.
- clutch spring 95 differs from clutch spring 53 (Fig. 2) in that it has lower helical turns 97 that turn or extend in the opposite direction to upper helical turns 99.
- Lower helical turns 97 extend in the same direction as the direction of rotation of motor shaft
- Lower adapter 89 may have an outer flange 100, and the lower end of clutch spring 95 may abut flange 100.
- Fig. 8 is a pictorial representation of clutch spring 95.
- Clutch coupling 102 in Fig. 9 is another embodiment. It has a lower hub 101 that is a rod or pedestal with a cylindrical exterior. Lower hub 101 has an upper extension 101a that is also a rod and may be smaller in outer diameter than lower hub 101.
- a lower adapter 105 joins lower hub 101 and has a socket for receiving motor shaft splined end 37 (Fig. 2). Lower adapter 105 has an external flange 103. Lower hub 101, flange 103, lower adapter 105, and upper extension 101a are secured and rotate together.
- Upper hub 107 is a receptacle having a closed upper end 107a and a cylindrical wall
- Upper end 107a and cylindrical wall 107b are secured to each other and rotate together.
- An upper adapter 111 joins and is secured to closed upper end 107a of upper hub 107.
- Upper adapter 111 has a splined socket for receiving seal section shaft lower splined end 41 (Fig. 2).
- Lower hub extension 101a extends upward in upper hub 107 and may be in abutment with upper closed end 107a. However, upper closed end 107a is rotatable relative to lower hub extension 101a when pump shaft 18 (Fig. 1) is rotating and motor shaft 22 not rotating.
- Bearings 113 are shown schematically at the interface of the top of lower hub extension 101a and closed upper end 107a to facilitate rotation of upper closed end 107a relative to lower hub extension 101a.
- Upper hub cylindrical wall 107b extends down into an interface with lower hub flange 103.
- Bearings 115 are located at this interface for improved alignment and performance. Bearings 115 enable rotation of upper hub cylindrical wall 107b relative to lower hub flange 103 when pump shaft 18 (Fig. 1) is rotating and motor shaft 22 not rotating.
- Clutch spring 117 may be constructed the same as clutch spring 95 of Fig. 7. Clutch spring 117 has lower helical turns 119 that encircle lower hub 101 with an initial interference fit. The outer diameter of lower helical turns 119 is separated from upper hub inward-facing sidewall 109 by a clearance. Clutch spring 117 has upper helical turns 121 that extend helically in an opposite direction to lower helical turns 119 in this example. Upper helical turns 121 may have the same inner and outer diameters as lower helical turns 119. However, the inner diameter of upper helical turns 121 is separated from lower hub extension 101a by an annular clearance because of the smaller outer diameter of lower hub extension 101a than lower hub 101. The outer diameter of upper helical turns 121 may initially be spaced a slight distance from upper hub sidewall 109 as in the other embodiments.
- clutch spring 117 rotates in the same direction, causing lower helical turns 119 to contract and more tightly grip lower hub
- clutch spring 117 does not rotate because upper helical turns 121 will have retracted in diameter enough to lose gripping engagement with upper hub sidewall 109 once motor shaft
- FIG. 10 shown in a side sectional view is an example of an alternate embodiment of a connector 130 optionally for use in coupling together the shafts 18, 24, 22
- the connector 130 includes an outer housing 132 shown as a generally annular structure, with an inner chamber 133, and one end connected to an annular base 134.
- housing 132 and base 134 are combined in a single structure.
- a bore 135 extends axially through base 134 and along axis Ax.
- An end of housing 132 distal from base 134 connects to a section 136 and an end of the base 134 distal from housing 132 connects to a section 138.
- Sections 136, 138 optionally represent the different sections of ESP 13 (Fig. 1), such as pump section 21, seal section 23, and pump section 17. Further optionally, connector
- adapter 140 with a splined socket 142 formed axially within. One side of the socket 142 is formed to receive an end of a shaft 144 within.
- shaft 144 represents the motor shaft 22 or the seal shaft 24 ( Figure 1).
- adapter 140 rotationally couples shaft 144 with a drive hub assembly 146 shown within housing
- assembly 146 includes a drive hub shaft 148 that extends axially within the base bore 135 and forms a splined socket 142 to mate with shaft 144.
- a drive hub receptacle 142 also joins an end of shaft 148 on the opposite end of adapter 140 and disposed within bore 135.
- Receptacle 150 includes a base 151 shown extending radially from an end of shaft 148 within housing 132 and annular sidewalls 152 that project axially away from the outer periphery of base within chamber 133.
- a drive hub cavity 154 is defined within the sidewalls 152 that faces away from shaft 148.
- a driven hub assembly 156 that includes an elongate driven hub shaft 158 that projects axially away from drive hub assembly 146 to outside of housing 132.
- Driven hub assembly 156 also includes a driven hub receptacle 160 which is made up of a base 161 projecting radially from and end of shaft 158 inside housing 132 and annular sidewalls 162 within the chamber 133 that project axially from an outer periphery from base and towards assembly 146.
- a driven hub receptacle 160 which is made up of a base 161 projecting radially from and end of shaft 158 inside housing 132 and annular sidewalls 162 within the chamber 133 that project axially from an outer periphery from base and towards assembly 146.
- the shafts 158, 148 project through openings 164, 165 that are formed through bulkheads 166, 167.
- Bulkhead 166 is formed on an end of housing 132 opposite from base 134 and bulkhead 167 is formed on an end of base 134 adjacent to housing 132.
- Bearings 168, 169 are disposed respectively within the openings 164, 165 and between shafts 158, 148.
- Driven hub assembly 156 includes a cavity 170 formed within the sidewalls 162.
- the connector 130 and attached shaft 144 make up part of a drive train 171 for translating rotational energy from the motor 21 to the pump 17 (Fig. 1).
- the drive train 171 optionally includes a break; a break refers to a location or locations where adjacent axial sections of the drive train 171 are rotationally decoupled from one another or are coupled with something else that restricts or prohibits rotation of the drive train 171.
- a helical spring 172 is shown inside housing 132 and having illustrated with a lengthwise portion within the drive hub cavity 154 and another lengthwise portion within the driven hub cavity 170.
- sidewalls 142, 162 fully circumscribe spring 172 and a length of spring 172 is substantially the same as the combined lengths of cavities 154, 170; in alternatives the length of spring 172 differs from the combined lengths of cavities 154, 170.
- helical spring 172 has a generally annular configuration with an optional cylindrical spacer 174 inserted in a bore extending axially within spring 172.
- dowels 175 insert into axial openings from on opposing sides of spacer 174 and that register with openings formed axially within bases 151, 161.
- An optional ring bearing 176 is shown provided in the annular space between an outer surface of the sidewalls 152, 162 and an inner surface of housing 132. Bearing 176 is an annular member with an axial length greater than its radius and that circumscribes an interface where the sidewalls 152, 162 abut one another.
- Figure 10A illustrates in detail a portion of the connector 130 of Figure 10 and includes an interface I that represents different portions of spring 172.
- a taper 177 is schematically shown along an inner surface of sidewalls 162 representing a change in a diameter of chamber
- Interface I is positioned in a plane where the terminal ends of the sidewalls 152, 162 are in abutting contact.
- a fixed portion 178 is a portion of spring 172 within and circumscribed by sidewalls 152 that as shown is press-fit within sidewalls 152 so that drive hub assembly 146 and spring are rotationally coupled with one another. In this example, rotation of shaft 148 in the clockwise direction of curved arrow AR causes rotation of spring 172 in the same rotational direction.
- a flex portion 180 is a portion of spring 172 within and circumscribed by sidewalls 162. In the example shown while the spring 172 is static or otherwise not rotating a radial clearance 182 is shown between an outer surface of flex portion 180 and an inner surface of the sidewalls 162. Also provided in Figure 10A is a length L 178 representing an axial length of the fixed portion 178 along axis Ax and a length L 180 representing a length of the flex portion
- length L 180 is greater than length L 178 .
- Fig. I l a side sectional view of spring 172 is shown made up of coils
- spring 172 is in a static or non-rotating configuration and with a spring outer diameter OD 172 that is substantially constant along the entire axial length of spring 172.
- spring inner diameter ID 172 is shown generally constant along the axial length of the fixed portion 178 and along an axial length of flex portion 180 until ID 172 increases at transition 186 and stays generally constant from second transition 187 to the terminal end of spring 172.
- spring inner diameter ID 172 increases entire distance from transition 186 until the last coil 184 m .
- Fig. 12B Shown in Fig. 12B is an example of spring 172 rotating (or being rotated) in a first direction
- spring 172 is rotated by energizing motor 21 (Fig. 1) to rotate shafts 22, 144 and drive hub assembly 146 that in turn rotate spring 172 in the direction A RI through the fixed relationship between spring 172 and drive hub receptacle 150.
- Rotating spring 172 in the direction of A RI radially expands at least some of the outer diameter of coils
- FIG. 13 Shown in Figure 13 is a downhole directed axial view of an end of spring 172 in the rotational mode and being rotated in clockwise direction A RI and about axis A 172 .
- a free end 189 of spring 172 and on coil 184 m is urged radially outward due to rotational of spring 172.
- the outer radial displacement of coils 184 l-m is in response to centrifugal force imparted onto the spring 172 when being rotated.
- spring 172 When spring 172 is dynamically static, such as when motor 21 (Fig. 1) is not being energized and not creating rotation in its shaft 22, coils 184 l-m of flex portion 180 are in their static outer diameter OD180 static so that a clearance 182 (Fig. 12A) exists between spring 172 and the driven hub assembly 156. Due to the clearance 182, rotation of the driven hub receptacle 160 is not translated to the spring 172 and no rotational forces are transmitted through the connector 130; which blocks reverse rotation of motor 21 (Fig. 1). Referring to
- FIG 10 in alternatives a counterclockwise rotational force, illustrated as A R2 and in a direction opposite A RI , is applied to shaft 158 on a side opposite spring 172.
- a R2 counterclockwise rotational force
- a RI counterclockwise rotational force
- Any frictional forces between opposing surfaces of spring 172 and receptacle 150 resulting from rotating spring 172 counterclockwise are insufficient to engage spring 172 with receptacle 150, so that rotational force is not transmitted along the entire length of drive train 171 if shaft 158 is rotated counterclockwise as described above .
- a break B is defined in the drive train 171 by the existence of the clearance 182.
- connector 130 such as from reverse rotation is from a component in the drive train 171 that is uphole of the connector 130.
- a break is selectively formed in the drive train 171 when there is no rotation of spring 172.
- spring 172 is configured so that a break in the drive train 171 is formed when the spring 172 is rotated in a direction A R2 .
- motor 21 (Fig.
- motor 21 speed continues to increase until reaching a normal operating speed of about 3600 rpm and continues to operate at that speed until its operation is adjusted such as by suspending the supply of electricity.
- a column of fluid is collected in production tubing 15 (Fig. 1) uphole from the pump 17, a back flow of the fluid through the pump 17 and across its impellers (not shown) rotates impellers and pump shaft 18 in a counterclockwise direction, which in turn rotates shaft 158 in counterclockwise direction AR 2 .
- the break B in the connector 130 is formed by clearance 182 (Fig, 10A) when shaft 158 rotates in counterclockwise direction AR 2 so that adjacent sections of the drive train 171 (i.e., driven hub assembly 156 and drive hub assembly 146) are rotationally decoupled from one another.
- FIG. 14 shown in a side sectional view is an alternate example of connector 130A that like the embodiment of Figure 10 includes a housing 132A coupled to a base 134A, a chamber 133A inside housing 132A, and sections 136A, 138A on opposing ends of housing 132A and base 134A.
- An adapter 140A provides coupling between shaft 144A and shaft 148A of a drive hub assembly 146A.
- the example of Figure 14 further includes a driven hub assembly 156A with a downward facing cavity 170A and an upward-facing receptacle
- receptacle 190 A formed by sidewalls 162A that extend axially past the base portion of the driven hub assembly 156A and away from drive hub assembly 146A.
- a clutch spring 192A having a helical orientation opposite to that of spring 172A.
- a spacer 193A is provided in the annular space between shaft 158A and inner surface of spring 192A and an insert 194A is disposed in chamber 133A with a radial base and axial sidewalls 194A that circumscribe a portion of spring 192A.
- Spring 192A has a fixed portion 196A that is affixed to the upward-facing receptacle 190A. and includes a flex portion 198A that is circumscribed by sidewalls 195A.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Mining & Mineral Resources (AREA)
- Life Sciences & Earth Sciences (AREA)
- Geology (AREA)
- Physics & Mathematics (AREA)
- Environmental & Geological Engineering (AREA)
- Fluid Mechanics (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Structures Of Non-Positive Displacement Pumps (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US17/874,869 US12038013B2 (en) | 2020-05-06 | 2022-07-27 | Motor drive shaft spring clutch in electrical submersible pump |
| PCT/US2023/028495 WO2024025838A1 (en) | 2022-07-27 | 2023-07-24 | Motor drive shaft spring clutch in electrical submersible pump |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4551837A1 true EP4551837A1 (en) | 2025-05-14 |
| EP4551837A4 EP4551837A4 (en) | 2025-10-29 |
Family
ID=89707231
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23847229.4A Pending EP4551837A4 (en) | 2022-07-27 | 2023-07-24 | MOTOR DRIVESHAFT SPRING COUPLING IN AN ELECTRIC SUBMERSIBLE PUMP |
Country Status (4)
| Country | Link |
|---|---|
| EP (1) | EP4551837A4 (en) |
| CN (1) | CN119422017A (en) |
| CA (1) | CA3262285A1 (en) |
| WO (1) | WO2024025838A1 (en) |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0153079A1 (en) | 1984-02-13 | 1985-08-28 | Pacific Scientific Company | Capstan spring centrifugal clutch |
| US4763764A (en) * | 1987-06-12 | 1988-08-16 | General Motors Corporation | Wrapped spring, overrunning clutch assembly |
| ITUA20161447A1 (en) * | 2016-03-08 | 2017-09-08 | Ind Saleri Italo Spa | PUMP UNIT WITH ELECTRIC DRIVE AND MECHANICAL DRIVE WITH JOINT GROUP |
| US11795962B2 (en) * | 2020-04-17 | 2023-10-24 | Baker Hughes Oilfield Operations, Llc | Shear pin and drive shaft spring brake in electrical submersible pump |
| US12038013B2 (en) * | 2020-05-06 | 2024-07-16 | Baker Hughes Oilfield Operations, Llc | Motor drive shaft spring clutch in electrical submersible pump |
| US11608721B2 (en) | 2020-05-06 | 2023-03-21 | Baker Hughes Oilfield Operations Llc | Motor drive shaft spring clutch in electrical submersible pump |
-
2023
- 2023-07-24 EP EP23847229.4A patent/EP4551837A4/en active Pending
- 2023-07-24 WO PCT/US2023/028495 patent/WO2024025838A1/en not_active Ceased
- 2023-07-24 CA CA3262285A patent/CA3262285A1/en active Pending
- 2023-07-24 CN CN202380049647.0A patent/CN119422017A/en active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| EP4551837A4 (en) | 2025-10-29 |
| CN119422017A (en) | 2025-02-11 |
| CA3262285A1 (en) | 2024-02-01 |
| WO2024025838A1 (en) | 2024-02-01 |
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