US3186513A - Method and mechanism for lubricating the bearings of a pump rotor and motor combination for pumping an abradant-containing liquid - Google Patents

Method and mechanism for lubricating the bearings of a pump rotor and motor combination for pumping an abradant-containing liquid Download PDF

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US3186513A
US3186513A US236607A US23660762A US3186513A US 3186513 A US3186513 A US 3186513A US 236607 A US236607 A US 236607A US 23660762 A US23660762 A US 23660762A US 3186513 A US3186513 A US 3186513A
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pump
liquid
bearings
pressure side
hydroclone
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James T E Dunn
Robert J Sloat
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C32/00Bearings not otherwise provided for
    • F16C32/06Bearings not otherwise provided for with moving member supported by a fluid cushion formed, at least to a large extent, otherwise than by movement of the shaft, e.g. hydrostatic air-cushion bearings
    • F16C32/0629Bearings not otherwise provided for with moving member supported by a fluid cushion formed, at least to a large extent, otherwise than by movement of the shaft, e.g. hydrostatic air-cushion bearings supported by a liquid cushion, e.g. oil cushion
    • F16C32/064Bearings not otherwise provided for with moving member supported by a fluid cushion formed, at least to a large extent, otherwise than by movement of the shaft, e.g. hydrostatic air-cushion bearings supported by a liquid cushion, e.g. oil cushion the liquid being supplied under pressure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D13/00Pumping installations or systems
    • F04D13/02Units comprising pumps and their driving means
    • F04D13/06Units comprising pumps and their driving means the pump being electrically driven
    • F04D13/0606Canned motor pumps
    • F04D13/0613Special connection between the rotor compartments
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/70Suction grids; Strainers; Dust separation; Cleaning
    • F04D29/708Suction grids; Strainers; Dust separation; Cleaning specially for liquid pumps
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16JPISTONS; CYLINDERS; SEALINGS
    • F16J15/00Sealings
    • F16J15/16Sealings between relatively-moving surfaces
    • F16J15/40Sealings between relatively-moving surfaces by means of fluid

Definitions

  • the bearings of the motor that drives such'a pump, and of the pump rotor are lubricated by circulating the liquid through the sealed-off bearings of the combination, and filters are relied upon to filter out the abrasive particles. Since one purpose of using a canned motor is to avoid radiation danger by leakage past pump bearing seals, or to persons who would have to lubricate or otherwise servicethe motor and pump combination, it follows that the use of filters does not eliminate that danger, for the filters must be removed and replaced periodically, and must be disposed of.
  • the filters cannot be relied upon to filter out all abrasive particles, and progressive wear in the bearings from particles that pass the filters shortens the useful life of the combination.
  • the filters tend to clog progressively, and their efficiency varies correspondingly.
  • the present invention deals with this problem, and approaches its solution in a different way.
  • the liquid being pumped, whatever the kind or concentration of abrasive particles is so handled that a liquid circuit bled oil the main stream or pump circuit is mechanically cleared-specificially, is centrifugally cleared-of abrasive particles; the particles are returned immediately and continuously to the main pump circuit and pass off with the main stream, and the cleared liquid is passed continuously through the bearings and thence back to the main stream.
  • This cleared liquid lubricates and cools the bearings, and has been found to increase their useful life by many times the longest life under other conditions.
  • the pump can operate submerged, and is self-contained, for the liquid circuit wherein the lubricating liquid is tapped oil, and wherein it is cleared, is small, and can be an integral part of the housing of pump and/or motor, requiring no external lines nor servicing.
  • a pump so submerged in the liquid being pumped will not, if it should leak at the bearing 'scals, constitute a source of dangerous radiation, for the liquid is in any event radioactive.
  • the invention is illustrated diagrammatically in the accompanying drawing, which is a sectional view, in a typical form, but with no attempt to show a specific mechanical construction.
  • the invention concerns not only the mechanism, but also the method, by which the bearings are lubricated.
  • a small centrifugal cyclonic separator often called a hydroclone, and capable of generating a tangential acceleration velocity of some 7000 GS, is employed, and is connected in the pumps hydraulic circuit in a way which is characteristic of this invention.
  • Hydroclones are not per se new, but the relationship of a hydroclone with the pumps circuit is new, and it is the circuit as a whole, including the hydroclone, that is considered to be the novel subject matter of this invention.
  • a canned motor 9 including field windings and a rotative armature 91 is housed within a sealed housing 92.
  • the armatures journals 93 are supported in bearings 94a and 94b, sealed off in a compartment within the housing 92.
  • These bearings and journals which also support the pump rotor, may be of various forms, but should by preference have large bearing areas and be relieved or otherwise have channels for movement through them of a lubricating liquid; this relief is indicated in the drawing by a clearance space between the journals and their bearings.
  • the bearings would normally be of a type to sustain end thrust loads as well as radial thrust loads, but no attempt has been made to represent this or any specific type of hearing, as such are conventional, and constitute no part of this invention.
  • the motor 9 is connected to a pump 1 of suitable type and capacity, as for example one which includes a centrifugal rotor 11,'to which the armature 91 is directconnected, rotative within a scroll or casing 12.
  • a pump 1 of suitable type and capacity, as for example one which includes a centrifugal rotor 11,'to which the armature 91 is directconnected, rotative within a scroll or casing 12.
  • Inlet to the pump is at 10 and delivery at 13.
  • the particular type of pump is not a limiting part of this invention, nor is the manner in which it is connected to or. driven by the motor 9.
  • the main pump circuit may be assumed to be one i which draws liquid from a source that entrains a certain quantity and type of abrasive particles, of varying sizes, delivering them at 10 into the pump housing, and passing thence from the outlet at 13 under the pressure head afforded by the rotor 11.
  • the pump circuit may be an open one that is, the delivered liquid may not return to the source, or it may be a closed one, wherein the delivered liquid at 13 returns to the source and eventually is recirculated through the pump.
  • the invention is useful with either aclosed or ani open main pump circuit.
  • the circuit illustrated is an open one. Therelative coni centration of particles is shown at various parts of the cirmotor.
  • a clarifying circuit is bled oil from the main pump circuit, and usually is returned to the same.
  • the specific locations of the respective bleed-off and return points are not material, so long as there is an effective and adequate pressure difference between such points.
  • the clarifying circuit as shown in cludes the blecd otf line 2, taking off from the delivery side of the pump housing at 20, and the return line 21, connecting at 22 to the intake side of the pump.
  • the clarifying circuit also includes between its ends a hydroclone 23, to the top of which line 2 is connected to deliver tangentially thereinto by the nozzle 2a, and to the bottom of which hydroclone the return line 21 connects.
  • a clear water line 25 taps liquid from the vicinity of the axis of the hydroclone, near its inlet 21:, through the ,nipple 25a.
  • Clear water line 25 connects at 26 to the interior of the motor housing 92, at a point or points where the clear water floods the bearings 94:: and 94b, and then finds its way back at 27, near the rotors axis, to the interior of pump casing 12.
  • the arrows show the direction of flow in the several circuits and lines.
  • the pump '1 draws in water (or other liquid) laden with more or less particulate abradants, at 10.
  • the rotor 11 impresses this water with a pressure head. Most of it issues at 13, but a small part is bled off at 20, and is delivered at pressure at the nozzle 2a, directed tangentially of the hydroclone 23. Because of the centrifugal effect therein, and the relatively high specific gravity of the particles suspended in the water, these particles are thrown outwardlly, and follow the inner wall of the hydroclone, as shown by the spiral line, and
  • the nipple 2Sa within this clear central core, taps off clear water, still under some pressure, and delivers it at 26 to the bearings, which it lubricates and cools.
  • the separated particles follow down the wall of the hydroclone to its drain outlet at 21a to line 21, and are returned at 22, with bled-off water in excess of what is needed for lubrication, to the pump intake, at 10. There they enter the main stream of the pumped liquid, and pass from the pump.
  • the clear water after lubricating the bearings at 94a and 94b, re-enters the main stream of pumped liquid, in the vicinity of the pumps axis where pressure is lowest, and behind the rotor from the intake at 10, and it too passes from the pump.
  • the lubricating system is a completely closed one, and requires no servicing or attention. It operates wholly by virtue of pump-created pressures.
  • the hydroclone and its circuit 2, 21, and the clear water line25 all can be small in size and can be incorporated within or integrated with the housing of the pump and There are no moving parts in the clarifying circuit, hence the system is free from vibration, and there is nothing to wear, except as the abradants in time may 4 score the wall of the hydroclone. It was found that such a system handling a total weight of 6.7 tons of sand (dry weight basis) during the timed consumed in a test, at a concentration ratio of 1.744% of the water, under accelerated wear conditions increased the usable life of a canned motor, from the standpoint of bearing abrasion, by a factor of 160.
  • the clear water was found to contain no particles of a size as large as 5 microns, although initially a high pcrccntagewcre of a size greater than 35 mesh.
  • the few particles found in the clear water were mostly of a size from 1 to 3 microns, which tended to polish rather than to cut the bearings. Particles ranging from 4 up to 5 microns amounted to no more than 0.1% of the burden of solids in the main stream. Operation of the test pump was smooth and quiet, and noise only developed just prior to termination at 79.6 hours.
  • a canned motor pump system comprising a casing, v
  • a motor driven pump enclosed by said casing and having anti-friction bearings, housing means disposed about said bearing, said pump having anoutlet, and having an inlet in liquid-conductive communication with one extremity of the bearing housing means, means forming a clarifying circuit including serially a hydroclone and liquid-conducting connections between such hydroclone and said pump inlet and outlet, thereby to create a core of relatively clear liquid in the hydrocloneby operation of the pump, and a liquid-conducting connection fromthe hydroclone core region to an opposite extremity of the bearing housing means, whereby pump suction draws relatively clear liquid from the hydroclone through such bearings.
  • a pumping apparatus adapted for transferring a liquid having abradant material therein comprising in combination: an electric motor having an armature; a pump 7 .bearings, and to said pump adapted to provide clear liquid from said hydrocyclone to said bearings; and third liquid conduit means connected to said hydrocyclonc outlet.
  • a liquid pumping apparatus comprising in combination: an electric motor having bearings; a pump connected to said motor and adapted to be driven thereby, said pump having an inlet for receiving liquid at a first pressure and an: outlet for discharging liquid at a second pressure i which is higher than said first pressure; a hydrocyclone having an inlet connected to said pump at a location to receive liquid from said pump at a pressure greater than said first pressure, an outlet connected to said pump inlet, and a clear liquid tap; and means defining a liquid conduit having said bearings disposed therein connected to said tap and having a discharge opening maintained at a pressure lower than said second pressure.
  • a canned motor pump which inciudes a rotor and having a high pressure side and a low pressure side and adapted to deliver a main stream of liquid, means enclosing the motor and the rotor having pump intake and discharge openings, bearings disposed within said means for rotatively supporting the rotor, a bleed-off circuit connected at one end to the high pressure side of the pump, and at its other end to a region of lesser pressure than the pressure in said high pressure side, a hydroclone connected between the ends of said bleed-off circuit, to receive liquid from and return it to the bleed-off circuit, a clear liquid line tapping the axial core of said hydroclone and leading liquid thence to the bearings, and means to conduct the clear liquid from the bearings to a region of pressure lower than the pressure in said high pressure side.
  • a lubricating system for a canned motor and pump which includes a rotor and having a high pressure side and a low pressure side, enclosure means enclosing the motor and the rotor, said enclosure means being formed with a pump intake and a pump discharge opening, motor and rotor bearings carried by said enclosure means, a
  • bleed-elf circuit connected at one end to said high pressure side of the pump, and at its opposite end to said low pressure side of the pump, a hydroclone connected in said bleed-off circuit between its ends, and arranged to direct liquid from said high pressure side of the pump tangentially within the hydroclone and to return liquid to the low pressure side of the pump, a clear liquid line tapping the axial core of said hydroclone and leading liquid thence to said bearings, and means to conduct the clear liquid from the hearings to a region of pressure lower than the pressure in said high pressure side of the pump.
  • the method of lubricating the bearings of a canned motor pump rotor combination having a high pressure side and a low pressure side used in pumping liquid which contains abradants comprises bleeding off liquid from said high pressure side, delivering the bledoff liquid to a region of pressure lower than the pressure in said high pressure side, centrifuging the bled-otf liquid to define a clear liquid core, and tapping off clear liquid from such core and delivering it to the bearings of the motor-rotor combination.

Description

June 1, 1965 J 'r. E. DUNN ETAL METHOD AND MECHANISM FOR LUBRICATING THE BEARINGS OF A PUMP ROTOR AND MOTOR COMBINATION FOR PUMPING AN ABRADANT-CONTAINING LIQUID Filed Nov. 9, 1962 INVENTOR. JAMES 17. E. DUN/Y B W Y4 ITIUR/YEYJ United States The minimizing of bearing wear in certain installations is a problem that has received intensive study, yet up to now without a satisfactory solution. Such installations utilize a canned motor-one which is sealed and requires no normal lubrication after being put into use-to drive a pump rotor that pumps a liquid which contains a certain burden of abrasive particles that are radioactive. The bearings of the motor that drives such'a pump, and of the pump rotor, are lubricated by circulating the liquid through the sealed-off bearings of the combination, and filters are relied upon to filter out the abrasive particles. Since one purpose of using a canned motor is to avoid radiation danger by leakage past pump bearing seals, or to persons who would have to lubricate or otherwise servicethe motor and pump combination, it follows that the use of filters does not eliminate that danger, for the filters must be removed and replaced periodically, and must be disposed of.
Moreover, the filters cannot be relied upon to filter out all abrasive particles, and progressive wear in the bearings from particles that pass the filters shortens the useful life of the combination. The filters tend to clog progressively, and their efficiency varies correspondingly.
Also, the filters and the lines to and from them require extra space, and restrict the design of the motors and pumps. Attempts have been made to prolong bearing life by choice of more durable bearing and journal materials, but so far have met with .no noteworthy success. problem persists when the'purnped liquid contains even minor amounts of abrasive solids.
The present invention deals with this problem, and approaches its solution in a different way. According to this invention the liquid being pumped, whatever the kind or concentration of abrasive particles, is so handled that a liquid circuit bled oil the main stream or pump circuit is mechanically cleared-specificially, is centrifugally cleared-of abrasive particles; the particles are returned immediately and continuously to the main pump circuit and pass off with the main stream, and the cleared liquid is passed continuously through the bearings and thence back to the main stream. This cleared liquid lubricates and cools the bearings, and has been found to increase their useful life by many times the longest life under other conditions. Thereby the full advantages of a canned motor can be realized, and the entire installation is free of restrictions as to external connections and the use of filters, for none are required; the pump can operate submerged, and is self-contained, for the liquid circuit wherein the lubricating liquid is tapped oil, and wherein it is cleared, is small, and can be an integral part of the housing of pump and/or motor, requiring no external lines nor servicing. Moreover, a pump so submerged in the liquid being pumped will not, if it should leak at the bearing 'scals, constitute a source of dangerous radiation, for the liquid is in any event radioactive.
The invention herein is especially useful in the handling of liquids that contain radioactive particles, and in installations that employv canned motors, and will be described in detail as so employed, but the principles of this invention are also useful in other uses and instalatent O The I "ice lations, hence restriction is not to be implied from the specific references, but only as the claims may require.
Among advantages of this invention are (1) the compactness of the pump, since the means for separation of abradants is small, and readily incorporated in the pump and motor casings themselves, and such compaetness promotes ease in handling, increase rigidity, and reduces vibration; (2) bearing requirements are reduced to a minimum, eliminating major alignment problems and reducing the number of wear points; (3) the hermetically sealed motor permits submerged operation, and eliminates the need for foot-valves and/or bottom outlets on tanks, as well as provision for priming; (4) initial and replacement costs are lower than if standar long-shaft pumps are used; (5) in-line application of the abrasive-clearing means makes it possible to eliminate the process vessel or pump tank, thus reducing equipment cost and the size of the building for housing the equipment.
The invention is illustrated diagrammatically in the accompanying drawing, which is a sectional view, in a typical form, but with no attempt to show a specific mechanical construction. The invention concerns not only the mechanism, but also the method, by which the bearings are lubricated.
According to this invention a small centrifugal cyclonic separator, often called a hydroclone, and capable of generating a tangential acceleration velocity of some 7000 GS, is employed, and is connected in the pumps hydraulic circuit in a way which is characteristic of this invention. Hydroclones are not per se new, but the relationship of a hydroclone with the pumps circuit is new, and it is the circuit as a whole, including the hydroclone, that is considered to be the novel subject matter of this invention.
Referring to the drawing, a canned motor 9 including field windings and a rotative armature 91 is housed within a sealed housing 92. The armatures journals 93 are supported in bearings 94a and 94b, sealed off in a compartment within the housing 92. These bearings and journals, which also support the pump rotor, may be of various forms, but should by preference have large bearing areas and be relieved or otherwise have channels for movement through them of a lubricating liquid; this relief is indicated in the drawing by a clearance space between the journals and their bearings. The bearings would normally be of a type to sustain end thrust loads as well as radial thrust loads, but no attempt has been made to represent this or any specific type of hearing, as such are conventional, and constitute no part of this invention.
The motor 9 is connected to a pump 1 of suitable type and capacity, as for example one which includes a centrifugal rotor 11,'to which the armature 91 is directconnected, rotative within a scroll or casing 12. Inlet to the pump is at 10 and delivery at 13. Again, the particular type of pump is not a limiting part of this invention, nor is the manner in which it is connected to or. driven by the motor 9.
The main pump circuit may be assumed to be one i which draws liquid from a source that entrains a certain quantity and type of abrasive particles, of varying sizes, delivering them at 10 into the pump housing, and passing thence from the outlet at 13 under the pressure head afforded by the rotor 11. The pump circuit may be an open one that is, the delivered liquid may not return to the source, or it may be a closed one, wherein the delivered liquid at 13 returns to the source and eventually is recirculated through the pump. The invention is useful with either aclosed or ani open main pump circuit. The circuit illustrated is an open one. Therelative coni centration of particles is shown at various parts of the cirmotor.
drawing.
Coming to the present invention, a clarifying circuit is bled oil from the main pump circuit, and usually is returned to the same. The specific locations of the respective bleed-off and return points are not material, so long as there is an effective and adequate pressure difference between such points. The clarifying circuit as shown in cludes the blecd otf line 2, taking off from the delivery side of the pump housing at 20, and the return line 21, connecting at 22 to the intake side of the pump. The clarifying circuit also includes between its ends a hydroclone 23, to the top of which line 2 is connected to deliver tangentially thereinto by the nozzle 2a, and to the bottom of which hydroclone the return line 21 connects.
In addition, a clear water line 25 taps liquid from the vicinity of the axis of the hydroclone, near its inlet 21:, through the ,nipple 25a. Clear water line 25 connects at 26 to the interior of the motor housing 92, at a point or points where the clear water floods the bearings 94:: and 94b, and then finds its way back at 27, near the rotors axis, to the interior of pump casing 12. The arrows show the direction of flow in the several circuits and lines.
It will be noted that there is a marked pressure difference between the bleed-off point at 20 and the return point at 22. By suitable location of these two points in the pump delivery line from 13 and the pump intake line to 10, or by suitable valve means or the like, this pressure difference can be regulated, but ordinarily it would be desirable to utilize the maximum pressure difference which the pump will afford.v The hydroclone 23 is at a pressure corresponding to the pressure difference between 20 and 22, less any line drop. The whirling of the liquid within the hydroclone creates an axial core which is at a lesser pressure than the liquid centrifugally urged against its wall, yet the cores pressure is still great er than the pumps intake pressure, so that the clarified liquid still tends to flow through the bearings 94a and 94b, and to return to the pump intake at 27. Likewise, the pressure difference between 20 and 22 ensures flow to the hydroclone and back to the pump intake.
In operation the pump '1 draws in water (or other liquid) laden with more or less particulate abradants, at 10. The rotor 11 impresses this water with a pressure head. Most of it issues at 13, but a small part is bled off at 20, and is delivered at pressure at the nozzle 2a, directed tangentially of the hydroclone 23. Because of the centrifugal effect therein, and the relatively high specific gravity of the particles suspended in the water, these particles are thrown outwardlly, and follow the inner wall of the hydroclone, as shown by the spiral line, and
' leave the central core of water, at least in the upper portiontherein, substantially free of particles.
The nipple 2Sa, within this clear central core, taps off clear water, still under some pressure, and delivers it at 26 to the bearings, which it lubricates and cools. The separated particles follow down the wall of the hydroclone to its drain outlet at 21a to line 21, and are returned at 22, with bled-off water in excess of what is needed for lubrication, to the pump intake, at 10. There they enter the main stream of the pumped liquid, and pass from the pump. The clear water, after lubricating the bearings at 94a and 94b, re-enters the main stream of pumped liquid, in the vicinity of the pumps axis where pressure is lowest, and behind the rotor from the intake at 10, and it too passes from the pump.
It will be seen that the lubricating system is a completely closed one, and requires no servicing or attention. It operates wholly by virtue of pump-created pressures.
The hydroclone and its circuit 2, 21, and the clear water line25, all can be small in size and can be incorporated within or integrated with the housing of the pump and There are no moving parts in the clarifying circuit, hence the system is free from vibration, and there is nothing to wear, except as the abradants in time may 4 score the wall of the hydroclone. It was found that such a system handling a total weight of 6.7 tons of sand (dry weight basis) during the timed consumed in a test, at a concentration ratio of 1.744% of the water, under accelerated wear conditions increased the usable life of a canned motor, from the standpoint of bearing abrasion, by a factor of 160. This corresponds to increasing its life expectancy in excess of twenty years, as compared with the presently specified period of two years for pumps and motors in similar service. The clear water was found to contain no particles of a size as large as 5 microns, although initially a high pcrccntagewcre of a size greater than 35 mesh. The few particles found in the clear water were mostly of a size from 1 to 3 microns, which tended to polish rather than to cut the bearings. Particles ranging from 4 up to 5 microns amounted to no more than 0.1% of the burden of solids in the main stream. Operation of the test pump was smooth and quiet, and noise only developed just prior to termination at 79.6 hours.
The compactness and simplicity of the present system enables the pump to be used in installations for which a similar pump of the filtering type would be awkward, and would require much additional space, lines, and similar complications.
There is no attempt made, in this system, to remove particles from the process liquid. The operation is merely one to prevent entry of particles into the bearings. The system is, in effect, a self-cleaning filter, in which the particles are separated fromthat portion of the liquid which is to lubricate the bearings, and the particles and the clear liquid are again returned to the main stream, thus disposing of the particles. If desired, the'underfiow stream, at 22, could be bled off to a settling decanter, where the solids could be isolated from the process, but this seems an unnecessary refinement. There being no filter assuch, in the present invention, nor any collection of separated particles, nothing remains for periodical removal or attention, and disposal.
We claim as our invention:
1. A canned motor pump system comprising a casing, v
a motor driven pump enclosed by said casing and having anti-friction bearings, housing means disposed about said bearing, said pump having anoutlet, and having an inlet in liquid-conductive communication with one extremity of the bearing housing means, means forming a clarifying circuit including serially a hydroclone and liquid-conducting connections between such hydroclone and said pump inlet and outlet, thereby to create a core of relatively clear liquid in the hydrocloneby operation of the pump, and a liquid-conducting connection fromthe hydroclone core region to an opposite extremity of the bearing housing means, whereby pump suction draws relatively clear liquid from the hydroclone through such bearings.
2. A pumping apparatus adapted for transferring a liquid having abradant material therein comprising in combination: an electric motor having an armature; a pump 7 .bearings, and to said pump adapted to provide clear liquid from said hydrocyclone to said bearings; and third liquid conduit means connected to said hydrocyclonc outlet.
3. A liquid pumping apparatus comprising in combination: an electric motor having bearings; a pump connected to said motor and adapted to be driven thereby, said pump having an inlet for receiving liquid at a first pressure and an: outlet for discharging liquid at a second pressure i which is higher than said first pressure; a hydrocyclone having an inlet connected to said pump at a location to receive liquid from said pump at a pressure greater than said first pressure, an outlet connected to said pump inlet, and a clear liquid tap; and means defining a liquid conduit having said bearings disposed therein connected to said tap and having a discharge opening maintained at a pressure lower than said second pressure.
4. The combination with a canned motor pump which inciudes a rotor and having a high pressure side and a low pressure side and adapted to deliver a main stream of liquid, means enclosing the motor and the rotor having pump intake and discharge openings, bearings disposed within said means for rotatively supporting the rotor, a bleed-off circuit connected at one end to the high pressure side of the pump, and at its other end to a region of lesser pressure than the pressure in said high pressure side, a hydroclone connected between the ends of said bleed-off circuit, to receive liquid from and return it to the bleed-off circuit, a clear liquid line tapping the axial core of said hydroclone and leading liquid thence to the bearings, and means to conduct the clear liquid from the bearings to a region of pressure lower than the pressure in said high pressure side.
5. The combination of claim 4, wherein the bleedotf circuit is connected, at its end opposite the connection to the high pressure side of the pump, to the low pressure side of the pump, to constitute a closed circuit.
6. The combination of claim 4, wherein the conducting means for the clear liquid connects with the low pressure side of the pump to return the clear liquid to the main stream.
7. A lubricating system for a canned motor and pump which includes a rotor and having a high pressure side and a low pressure side, enclosure means enclosing the motor and the rotor, said enclosure means being formed with a pump intake and a pump discharge opening, motor and rotor bearings carried by said enclosure means, a
bleed-elf circuit connected at one end to said high pressure side of the pump, and at its opposite end to said low pressure side of the pump, a hydroclone connected in said bleed-off circuit between its ends, and arranged to direct liquid from said high pressure side of the pump tangentially within the hydroclone and to return liquid to the low pressure side of the pump, a clear liquid line tapping the axial core of said hydroclone and leading liquid thence to said bearings, and means to conduct the clear liquid from the hearings to a region of pressure lower than the pressure in said high pressure side of the pump.
8. The method of lubricating the bearings of a canned motor pump rotor combination having a high pressure side and a low pressure side used in pumping liquid which contains abradants, which method comprises bleeding off liquid from said high pressure side, delivering the bledoff liquid to a region of pressure lower than the pressure in said high pressure side, centrifuging the bled-otf liquid to define a clear liquid core, and tapping off clear liquid from such core and delivering it to the bearings of the motor-rotor combination.
9. The method specified in claim 8, wherein the tappedoff clear liquid, after lubricating the bearings, is returned to said low pressure side.
References Cited by the Examiner UNITED STATES PATENTS 2,741,990 4/56 White 103-87 2,963,980 12/60 White 103-411 3,011,638 12/61 Glover 210-512 X FOREIGN PATENTS 988,508 5/51 France.
LAVERNE D. GEIGER, Primary Examiner.
MILTON KAUFMAN, Examiner.

Claims (1)

  1. 8. THE METHOD OF LUBRICATING THE BEARINGS OF A CANNED MOTOR PUMP ROTOR COMBINATION HAVING A HIGH PRESSURE SIDE AND A LOW PRESSURE SIDE USED IN PUMPING LIQUID WHICH CONTAINS ABRADANTS, WHICH METHOD C OMPRISES BLEEDING OFF LIQUID FROM SAID HIGH PRESSURE SIDE, DELIVERING THE BLEDOFF LIQUID TO A REGION OF PRESSURE LOWER THAN THE PRESSURE IN SAID HIGH PRESSURE SIDE, CENTRIFUGING THE BLED-OFF LIQUID TO DEFINE A CLEAR LIQUID CORE, AND TAPPING OFF CLEAR LIQUID
US236607A 1962-11-09 1962-11-09 Method and mechanism for lubricating the bearings of a pump rotor and motor combination for pumping an abradant-containing liquid Expired - Lifetime US3186513A (en)

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US236607A US3186513A (en) 1962-11-09 1962-11-09 Method and mechanism for lubricating the bearings of a pump rotor and motor combination for pumping an abradant-containing liquid
US64675367 USRE26570E (en) 1962-11-09 1967-05-24 Method and mechanism for lubricating the shaft elements of a pump rotor for pumping an abradant-containing liquid

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Cited By (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3363569A (en) * 1965-12-09 1968-01-16 Vernon D. Roosa Fuel pump and purging system therefor
US3415041A (en) * 1967-08-18 1968-12-10 Frederick Kraissl Jr. Oil separators
US3467178A (en) * 1966-12-27 1969-09-16 Trane Co Transformer cooling apparatus
US3788762A (en) * 1972-02-22 1974-01-29 Avco Corp Self-lubricated pump with means for lubricant purification
US3837432A (en) * 1973-02-26 1974-09-24 Kendrick L Mc Lubrication system for pneumatic device
US3850550A (en) * 1971-08-05 1974-11-26 Hydr O Matic Pump Co Centrifugal pump and motor
US3929639A (en) * 1973-07-23 1975-12-30 Gaston County Dyeing Mach Filtering apparatus and process
US4047847A (en) * 1975-03-26 1977-09-13 Iwaki Co., Ltd. Magnetically driven centrifugal pump
US4094794A (en) * 1974-04-16 1978-06-13 Escher Wyss Gmbh Hydrocyclone
US4401575A (en) * 1981-08-10 1983-08-30 Shell Oil Company BS And W in crude oil streams
US4416586A (en) * 1980-04-19 1983-11-22 Klein, Schanzlin & Becker Aktiengesellschaft Submersible motor pump assembly
US4920863A (en) * 1986-09-24 1990-05-01 Mitsui & Co., Ltd. Plunger pump
US5131806A (en) * 1986-09-30 1992-07-21 Mitsui & Co., Ltd. Pump
US5779434A (en) * 1997-02-06 1998-07-14 Baker Hughes Incorporated Pump mounted thrust bearing
US20040144534A1 (en) * 2003-01-28 2004-07-29 Lee Woon Y Self lubricating submersible pumping system
EP1477683A2 (en) * 2003-05-16 2004-11-17 KSB Aktiengesellschaft Canned motor pump
US6939115B2 (en) * 2001-08-18 2005-09-06 Pierburg Gmbh Wet-type rotor pump
EP1757816A3 (en) * 2005-08-26 2008-06-04 Wilo Ag Device for pumps
US20090220330A1 (en) * 2008-03-03 2009-09-03 Henry Mark S Vapor phase lubrication system
WO2010090576A1 (en) * 2009-02-05 2010-08-12 Scania Cv Ab Cooling system for liquid cooling of a combustion engine
WO2012030431A1 (en) * 2010-08-31 2012-03-08 General Electric Company System and method for multiphase pump lubrication
US20120103567A1 (en) * 2010-10-28 2012-05-03 Spx Corporation Internally directed air jet cooling for a hydraulic pump
WO2012079765A1 (en) * 2010-12-17 2012-06-21 Eagleburgmann Germany Gmbh & Co. Kg Slide ring seal with a pressure device
US20130287875A1 (en) * 2010-12-07 2013-10-31 Naofumi Yoshimi Fluid feeder and tire curing device
WO2014042626A1 (en) * 2012-09-12 2014-03-20 Cunningham Christopher E Subsea multiphase pump or compressor with magnetic coupling and cooling or lubrication by liquid or gas extracted from process fluid
US20160290362A1 (en) * 2014-07-11 2016-10-06 Hitachi, Ltd. Compressor or Gas Extraction System
US20190145442A1 (en) * 2017-11-09 2019-05-16 Florida State University Research Foundation, Inc. Systems and methods for actively controlling a vortex in a fluid
WO2020127977A1 (en) 2018-12-20 2020-06-25 Fsubsea As Subsea pump system with process lubricated bearings
US10801309B2 (en) 2012-09-12 2020-10-13 Fmc Technologies, Inc. Up-thrusting fluid system

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FR988508A (en) * 1944-01-04 1951-08-28 Improvements made to sediment separators carried by a fluid stream, in particular those intended for the continuous purification of a lubricating stream
US2741990A (en) * 1952-11-26 1956-04-17 Howard T White Motor driven pumps
US2963980A (en) * 1957-05-03 1960-12-13 Fostoria Corp Fluid take off connections for motor driven pumps and the like
US3011638A (en) * 1957-09-06 1961-12-05 Ici Ltd Cyclones

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR988508A (en) * 1944-01-04 1951-08-28 Improvements made to sediment separators carried by a fluid stream, in particular those intended for the continuous purification of a lubricating stream
US2741990A (en) * 1952-11-26 1956-04-17 Howard T White Motor driven pumps
US2963980A (en) * 1957-05-03 1960-12-13 Fostoria Corp Fluid take off connections for motor driven pumps and the like
US3011638A (en) * 1957-09-06 1961-12-05 Ici Ltd Cyclones

Cited By (39)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3363569A (en) * 1965-12-09 1968-01-16 Vernon D. Roosa Fuel pump and purging system therefor
US3467178A (en) * 1966-12-27 1969-09-16 Trane Co Transformer cooling apparatus
US3415041A (en) * 1967-08-18 1968-12-10 Frederick Kraissl Jr. Oil separators
US3850550A (en) * 1971-08-05 1974-11-26 Hydr O Matic Pump Co Centrifugal pump and motor
US3788762A (en) * 1972-02-22 1974-01-29 Avco Corp Self-lubricated pump with means for lubricant purification
US3837432A (en) * 1973-02-26 1974-09-24 Kendrick L Mc Lubrication system for pneumatic device
US3929639A (en) * 1973-07-23 1975-12-30 Gaston County Dyeing Mach Filtering apparatus and process
US4094794A (en) * 1974-04-16 1978-06-13 Escher Wyss Gmbh Hydrocyclone
US4047847A (en) * 1975-03-26 1977-09-13 Iwaki Co., Ltd. Magnetically driven centrifugal pump
US4416586A (en) * 1980-04-19 1983-11-22 Klein, Schanzlin & Becker Aktiengesellschaft Submersible motor pump assembly
US4401575A (en) * 1981-08-10 1983-08-30 Shell Oil Company BS And W in crude oil streams
US4920863A (en) * 1986-09-24 1990-05-01 Mitsui & Co., Ltd. Plunger pump
US5131806A (en) * 1986-09-30 1992-07-21 Mitsui & Co., Ltd. Pump
US5779434A (en) * 1997-02-06 1998-07-14 Baker Hughes Incorporated Pump mounted thrust bearing
US5957656A (en) * 1997-02-06 1999-09-28 Baker Hughes Incorporated Pump mounted thrust bearing
US6939115B2 (en) * 2001-08-18 2005-09-06 Pierburg Gmbh Wet-type rotor pump
US20040144534A1 (en) * 2003-01-28 2004-07-29 Lee Woon Y Self lubricating submersible pumping system
EP1477683A3 (en) * 2003-05-16 2009-05-27 KSB Aktiengesellschaft Canned motor pump
EP1477683A2 (en) * 2003-05-16 2004-11-17 KSB Aktiengesellschaft Canned motor pump
EP1757816A3 (en) * 2005-08-26 2008-06-04 Wilo Ag Device for pumps
AT502338B1 (en) * 2005-08-26 2009-06-15 Wilo Ag PUMP FOR PROMOTING A LIQUID MEDIUM
US20090220330A1 (en) * 2008-03-03 2009-09-03 Henry Mark S Vapor phase lubrication system
US8215895B2 (en) * 2008-03-03 2012-07-10 Rolls-Royce Corporation Vapor phase lubrication system
WO2010090576A1 (en) * 2009-02-05 2010-08-12 Scania Cv Ab Cooling system for liquid cooling of a combustion engine
AU2011296527B2 (en) * 2010-08-31 2016-02-04 General Electric Company System and method for multiphase pump lubrication
WO2012030431A1 (en) * 2010-08-31 2012-03-08 General Electric Company System and method for multiphase pump lubrication
US20120103567A1 (en) * 2010-10-28 2012-05-03 Spx Corporation Internally directed air jet cooling for a hydraulic pump
US8979507B2 (en) * 2010-10-28 2015-03-17 Spx Corporation Internally directed air jet cooling for a hydraulic pump
US20130287875A1 (en) * 2010-12-07 2013-10-31 Naofumi Yoshimi Fluid feeder and tire curing device
WO2012079765A1 (en) * 2010-12-17 2012-06-21 Eagleburgmann Germany Gmbh & Co. Kg Slide ring seal with a pressure device
WO2014042626A1 (en) * 2012-09-12 2014-03-20 Cunningham Christopher E Subsea multiphase pump or compressor with magnetic coupling and cooling or lubrication by liquid or gas extracted from process fluid
CN105074223A (en) * 2012-09-12 2015-11-18 Fmc技术股份有限公司 Subsea multiphase pump or compressor with magnetic coupling and cooling or lubrication by liquid or gas extracted from process fluid
AU2012389801B2 (en) * 2012-09-12 2017-12-14 Fmc Technologies, Inc. Subsea multiphase pump or compressor with magnetic coupling and cooling or lubrication by liquid or gas extracted from process fluid
US10393115B2 (en) 2012-09-12 2019-08-27 Fmc Technologies, Inc. Subsea multiphase pump or compressor with magnetic coupling and cooling or lubrication by liquid or gas extracted from process fluid
US10801309B2 (en) 2012-09-12 2020-10-13 Fmc Technologies, Inc. Up-thrusting fluid system
US20160290362A1 (en) * 2014-07-11 2016-10-06 Hitachi, Ltd. Compressor or Gas Extraction System
US20190145442A1 (en) * 2017-11-09 2019-05-16 Florida State University Research Foundation, Inc. Systems and methods for actively controlling a vortex in a fluid
US10718362B2 (en) * 2017-11-09 2020-07-21 The Florida State University Research Foundation, Inc. Systems and methods for actively controlling a vortex in a fluid
WO2020127977A1 (en) 2018-12-20 2020-06-25 Fsubsea As Subsea pump system with process lubricated bearings

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