EP3555479A1 - Impeller integrated motor for centrifugal compressor - Google Patents

Impeller integrated motor for centrifugal compressor

Info

Publication number
EP3555479A1
EP3555479A1 EP17822968.8A EP17822968A EP3555479A1 EP 3555479 A1 EP3555479 A1 EP 3555479A1 EP 17822968 A EP17822968 A EP 17822968A EP 3555479 A1 EP3555479 A1 EP 3555479A1
Authority
EP
European Patent Office
Prior art keywords
impeller
compressor
stator assembly
interactive component
rotor assembly
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
Application number
EP17822968.8A
Other languages
German (de)
French (fr)
Inventor
Jagadeesh Tangudu
Vishnu M. Sishtla
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Carrier Corp
Original Assignee
Carrier Corp
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Carrier Corp filed Critical Carrier Corp
Publication of EP3555479A1 publication Critical patent/EP3555479A1/en
Pending legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D25/00Pumping installations or systems
    • F04D25/02Units comprising pumps and their driving means
    • F04D25/06Units comprising pumps and their driving means the pump being electrically driven
    • F04D25/0606Units comprising pumps and their driving means the pump being electrically driven the electric motor being specially adapted for integration in the pump
    • 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
    • F04D13/021Units comprising pumps and their driving means containing a coupling
    • F04D13/024Units comprising pumps and their driving means containing a coupling a magnetic coupling
    • 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
    • F04D29/26Rotors specially for elastic fluids
    • F04D29/28Rotors specially for elastic fluids for centrifugal or helico-centrifugal pumps for radial-flow or helico-centrifugal pumps
    • F04D29/284Rotors specially for elastic fluids for centrifugal or helico-centrifugal pumps for radial-flow or helico-centrifugal pumps for compressors
    • 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
    • F04D29/40Casings; Connections of working fluid
    • F04D29/42Casings; Connections of working fluid for radial or helico-centrifugal pumps
    • 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
    • F04D29/40Casings; Connections of working fluid
    • F04D29/42Casings; Connections of working fluid for radial or helico-centrifugal pumps
    • F04D29/4206Casings; Connections of working fluid for radial or helico-centrifugal pumps especially adapted for elastic fluid pumps

Definitions

  • Embodiments of this disclosure relate generally to a centrifugal compressors and, more particularly, to an electric motor for driving a centrifugal compressor.
  • a motor is provided for driving a compressor mechanism.
  • the size and type of the motor required is dependent upon several factors, including the capacity of the compressor and the operating environment of the compression system.
  • Centrifugal compressors are often used in refrigeration systems. Centrifugal compressors are usually driven by electric motors that are commonly included in a housing that encases both the motor and the compressor. Such motors typically have an overhung arrangement where an unsupported end of the rotor is easily accessible within the housing. The overhung configuration not only results in asymmetric and increased loads on the motor shaft but also increases the size, complexity, and manufacturing cost of the compressor.
  • an impeller of a centrifugal compressor comprising includes an impeller body rotatable about an impeller axis and a motor operable to drive said impeller about said impeller axis.
  • the motor includes a stator assembly and a rotor assembly. The rotor assembly being associated with said impeller body.
  • said rotor assembly further comprises at least one interactive component configured to interact with a magnetic field generated by said stator assembly to drive said impeller about said impeller axis.
  • said at least one interactive component is not coupled to an electrical source separate from said stator assembly.
  • said at least one interactive component is integrally formed with said impeller body.
  • said at least one interactive component is removably coupled to said impeller body.
  • said at least one interactive component is coupled to an exterior surface of said impeller body.
  • said at least one interactive component is at least partially embedded within said impeller body.
  • said at least one interactive component comprises a plurality of interactive components positioned about a periphery of said impeller body.
  • said stator assembly includes at least one electrical component operable to generate a magnetic field when power is applied thereto.
  • said at least one electrical component is positioned in vertical alignment with said at least one interactive component.
  • a clearance between said at least one electrical component and said at least one interactive component is uniform about said impeller body.
  • a clearance between said at least one electrical component and said at least one interactive component varies about said impeller body.
  • a centrifugal compressor includes a housing having a suction port and a discharge port.
  • An impeller is rotatable relative to said housing to draw a fluid in through said suction port and discharge said fluid through said discharge port.
  • a motor is operably coupled to said impeller to rotate said impeller about an impeller axis.
  • the motor includes a stator assembly and a rotor assembly. The rotor assembly being associated with said impeller.
  • said at least one interactive component is not coupled to an electrical source separate from said stator assembly.
  • a chiller refrigeration system includes a condenser, evaporator, and compressor arranged in fluid communication to form a refrigeration circuit.
  • the compressor is a centrifugal compressor including a housing having a suction port and a discharge port.
  • An impeller is rotatable relative to said housing to draw a fluid in through said suction port and discharge said fluid through said discharge port.
  • a motor is operably coupled to said impeller to rotate said impeller about an impeller axis.
  • the motor includes a stator assembly and a rotor assembly, said rotor assembly being associated with said impeller.
  • FIG. 1 is schematic diagram of an example of a chiller system
  • FIG. 2 is a cross-sectional schematic diagram of a centrifugal compressor
  • FIG. 3 is a cross-sectional schematic diagram of a centrifugal compressor according to an embodiment.
  • the chiller refrigeration system 20 includes a compressor 22, a condenser 24, and a cooler or evaporator 26 fluidly coupled to form a circuit.
  • a first conduit 28 extends from adjacent the outlet 30 of the cooler 26 to the inlet 32 of the compressor 22.
  • the outlet 34 of the compressor is coupled by a conduit 36 to an inlet 38 of the condenser 24.
  • the condenser 24 includes a first chamber 40 and a second chamber 42, the second chamber 42 being accessible only from the interior of the first chamber 40.
  • a float valve 44 within the second chamber 42 is connected to an inlet 46 of the cooler 26 by another conduit 48.
  • the compressor 22 may include a rotary, screw, or reciprocating compressor for small systems, or a screw compressor or a centrifugal compressor for larger systems.
  • the refrigeration cycle of the chiller refrigeration system 20 may be described as follows.
  • the compressor 22 receives a refrigerant vapor from the e aporator/cooler 26 and compresses it to a higher temperature and pressure, with the relatively hot vapor then passing into the first chamber 40 of the condenser 24 where it is cooled and condensed to a liquid state by a heat exchange relationship with a cooling medium, such as water or air for example.
  • a cooling medium such as water or air for example.
  • the second chamber 42 has a lower pressure than the first chamber 40, a portion of the liquid refrigerant flashes to vapor, thereby cooling the remaining liquid.
  • the refrigerant vapor within the second chamber 42 is re-condensed by the cool heat exchange medium.
  • the refrigerant liquid then drains into the second chamber 42 located between the first chamber 40 and the cooler 26.
  • the float valve 44 forms a seal to prevent vapor from the second chamber 42 from entering the cooler 26.
  • the refrigerant As the liquid refrigerant passes through the float valve 44, the refrigerant is expanded to a low temperature two phase liquid/vapor state as it passed into the cooler 26.
  • the cooler 26 is a heat exchanger which allows heat energy to migrate from a heat exchange medium, such as water for example, to the refrigerant gas. When the gas returns to the compressor 22, the refrigerant is at both the temperature and the pressure at which the refrigeration cycle began.
  • the chiller refrigeration system 20 and refrigeration cycle illustrated and described herein are intended as an example only.
  • FIG. 2 An example of a typical centrifugal compressor, such as compressor 22 of the chiller system 20, is shown in more detail in FIG. 2.
  • the compressor 22 includes a housing 50 containing an electric motor 52 and an impeller 54 drivable by the electric motor 52.
  • the motor 52 is arranged within a motor compartment 56 of the housing 50.
  • the motor stator 58 is fixedly mounted to the housing 50 within the compartment 56, and the motor rotor 60 is arranged at least partially within the stator 58 and is rotatable about a rotor axis R.
  • the rotor 60 is coupled to a shaft 62 mounted to the housing 50 via one or more mechanical and/or electromagnetic bearings (not shown).
  • the impeller 54 is coupled to an impeller shaft 64.
  • the impeller shaft 64 is mounted to the housing 50 via one or more mechanical and/or electromagnetic bearings (not shown) and is rotatable about an impeller axis I.
  • the impeller axis I is offset from the motor axis R thereby requiring a transmission assembly 66 to operabiy couple the motor shaft 62 and the impeller shaft 64.
  • embodiments of the compressor 22 that do not include a transmission assembly 66 because the impeller 54 is directly mounted to the motor shaft 62 are also within the scope of the disclosure.
  • the impeller 54 is operable to draw fluid in through the suction port or inlet 32, compress the fluid, and discharge the fluid from the discharge port or outlet 34 (shown in FIG. 1).
  • a diffuser 68 (FIG. 1) may be used to decelerate the refrigerant to a low velocity while converting kinetic energy to pressure energy, and a discharge plenum (not shown) in the form of a volute collects the discharge vapor for subsequent flow to a condenser 24.
  • an inlet guide vane assembly 70 Positioned near the inlet 32 of the compressor 30 is an inlet guide vane assembly 70. Because a fluid flowing from the cooler 26 to the compressor 22 must first pass through the inlet guide vane assembly 70 before entering the impeller 54, the inlet guide vane assembly 70 may be used to control the fluid flow into the compressor 22.
  • the inlet guide vanes of the inlet guide vane assembly 70 are generally triangular in plan form and are mounted for synchronized rotation about an associated vane axis between a maximally closed position and a maximally open condition.
  • the electric motor 52 may be integrated with the impeller 54.
  • the electric motor 52 operable to drive rotation of the impeller 54 about the impeller axis I includes a stator assembly 72 coupled to a shroud 74 and a rotor assembly 76 associated with the impeller 54 and configured to rotate about the impeller axis I.
  • the shroud 74 is a composite or laminate structure having one or more electrical components 78 mounted therein.
  • the electrical components 78 may be selected from electromagnets, permanent magnets and windings such that when power is supplied to the electrical components 78 mounted to the shroud 74, a magnetic field is generated.
  • the total number of electrical components 78 mounted to the shroud 74 may vary based on the desired performance of the compressor 22.
  • the electrical components 78 are arranged generally circumferentially about the shroud 74 and are located at a position in overlapping arrangement with a portion of the adjacent impeller 54.
  • the rotor assembly 76 of the motor 52 includes one or more interactive components 80, such as permanent magnets or windings or laminations for example, mounted to the impeller 54 and configured to interact with the magnetic field created by the stator assembly 72.
  • the interactive components 80 are arranged about the impeller 54 such that the one or more interactive components 80 are vertically aligned with the at least one electrical component 78 of the stator assembly 72.
  • the interactive components 80 are integrally formed with the impeller 54, such as via an additive manufacturing process for example.
  • the interactive components 80 may be removably mounted to the impeller 54.
  • the interactive components 80 may be partially or fully embedded with the impeller 54, such as within one or more complementary openings (not shown) formed therein.
  • the interactive components 80 are generally positioned circumferentially about the exterior surface of the impeller 54, concentric with the impeller shaft 64.
  • the interactive components 80 may, but need not be, equidistantly spaced about the impeller 54. In other embodiments, the interactive components 80 may be placed at a position between circumferential and axial.
  • the interactive components 80 do not include an external electrical connection independent from the stator assembly 72.
  • the interactive components 80 require an electrical connection, such as for a squirrel cage for example are also contemplated herein.
  • the interactive components 80 mounted to the impeller 54 are operable to drive rotation of the impeller 54 are also contemplated herein.
  • wiring associated with the electrical components 78 may be located within an interior of the impeller shaft 64.
  • the type and number of electrical components 78 of the stator assembly 72 and interactive components 80 of the rotor assembly 76 may vary based on the desired performance of the compressor 22. Accordingly, to increase the amount of interactive components 80 of the rotor assembly 76, the impeller 54 may have an elongated conical shape resulting in an increased axial flow distance relative to conventional compressors.
  • the spatial positioning between the electrical components 78 of the stator assembly 72 and the adjacent interactive components 80 of the rotor assembly 76 is defined by the shape and size of not only the impeller 54, but also the shroud 74.
  • the gap or clearance 82 between the electrical components 78 of the stator assembly 76 and the interactive components 80 of the rotor assembly 76 may be generally constant for ease of manufacturing. However, embodiments where the clearance 82 varies, such as about the periphery of impeller 54 and/or along an axial length of the impeller 54 for example, are also contemplated herein.
  • Integrating the electric motor 52 into the impeller 54 results in a compressor 22 having a more compact foot print.
  • the complexity and weight, as well as the costs associated with the compressor 22 are reduced relative to more traditional compressor systems.
  • friction and windage losses may be reduced by eliminating the frictional losses of a motor separate from the impeller.

Abstract

An impeller of a centrifugal compressor comprising an impeller body (54) rotatable about an impeller axis (l)and a motor operable to drive said impeller about said impeller axis. The motor includes a stator assembly (72) and a rotor assembly (76). The rotor assembly is associated with said impeller body.

Description

IMPELLER INTEGRATED MOTOR FOR CENTRIFUGAL COMPRESSOR
BACKGROUND
[0001] Embodiments of this disclosure relate generally to a centrifugal compressors and, more particularly, to an electric motor for driving a centrifugal compressor.
[0002] In a compression system, a motor is provided for driving a compressor mechanism. The size and type of the motor required is dependent upon several factors, including the capacity of the compressor and the operating environment of the compression system. Centrifugal compressors are often used in refrigeration systems. Centrifugal compressors are usually driven by electric motors that are commonly included in a housing that encases both the motor and the compressor. Such motors typically have an overhung arrangement where an unsupported end of the rotor is easily accessible within the housing. The overhung configuration not only results in asymmetric and increased loads on the motor shaft but also increases the size, complexity, and manufacturing cost of the compressor.
SUMMARY
[0003] According to a first embodiment, an impeller of a centrifugal compressor comprising includes an impeller body rotatable about an impeller axis and a motor operable to drive said impeller about said impeller axis. The motor includes a stator assembly and a rotor assembly. The rotor assembly being associated with said impeller body.
[0004] In addition to one or more of the features described above, or as an alternative, in further embodiments said rotor assembly further comprises at least one interactive component configured to interact with a magnetic field generated by said stator assembly to drive said impeller about said impeller axis.
[0005] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one interactive component is not coupled to an electrical source separate from said stator assembly.
[0006] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one interactive component is integrally formed with said impeller body.
[0007] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one interactive component is removably coupled to said impeller body. [0008] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one interactive component is coupled to an exterior surface of said impeller body.
[0009] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one interactive component is at least partially embedded within said impeller body.
[0010] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one interactive component comprises a plurality of interactive components positioned about a periphery of said impeller body.
[0011] In addition to one or more of the features described above, or as an alternative, in further embodiments said stator assembly includes at least one electrical component operable to generate a magnetic field when power is applied thereto.
[0012] In addition to one or more of the features described above, or as an alternative, in further embodiments comprising a shroud arranged adjacent said impeller body, said stator assembly being associated with said shroud.
[0013] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one electrical component is positioned in vertical alignment with said at least one interactive component.
[0014] In addition to one or more of the features described above, or as an alternative, in further embodiments a clearance between said at least one electrical component and said at least one interactive component is uniform about said impeller body.
[0015] In addition to one or more of the features described above, or as an alternative, in further embodiments a clearance between said at least one electrical component and said at least one interactive component varies about said impeller body.
[0016] According to another embodiment, a centrifugal compressor includes a housing having a suction port and a discharge port. An impeller is rotatable relative to said housing to draw a fluid in through said suction port and discharge said fluid through said discharge port. A motor is operably coupled to said impeller to rotate said impeller about an impeller axis. The motor includes a stator assembly and a rotor assembly. The rotor assembly being associated with said impeller.
[0017] In addition to one or more of the features described above, or as an alternative, in further embodiments comprising a shroud arranged adjacent said impeller, said stator assembly being associated with said shroud. [0018] In addition to one or more of the features described above, or as an alternative, in further embodiments said rotor assembly further comprises at least one interactive component configured to interact with a magnetic field generated by said stator assembly to drive said impeller about said impeller axis.
[0019] In addition to one or more of the features described above, or as an alternative, in further embodiments said at least one interactive component is not coupled to an electrical source separate from said stator assembly.
[0020] According to another embodiment, a chiller refrigeration system includes a condenser, evaporator, and compressor arranged in fluid communication to form a refrigeration circuit. The compressor is a centrifugal compressor including a housing having a suction port and a discharge port. An impeller is rotatable relative to said housing to draw a fluid in through said suction port and discharge said fluid through said discharge port. A motor is operably coupled to said impeller to rotate said impeller about an impeller axis. The motor includes a stator assembly and a rotor assembly, said rotor assembly being associated with said impeller.
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The subject matter, which is regarded as the present disclosure, is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
[0022] FIG. 1 is schematic diagram of an example of a chiller system;
[0023] FIG. 2 is a cross-sectional schematic diagram of a centrifugal compressor; and
[0024] FIG. 3 is a cross-sectional schematic diagram of a centrifugal compressor according to an embodiment.
[0025] The detailed description explains embodiments of the present disclosure, together with advantages and features, by way of example with reference to the drawings.
DETAILED DESCRIPTION
[0026] Referring now to FIG. 1, an example of a chiller refrigeration system 20 is illustrated. As shown, the chiller refrigeration system 20 includes a compressor 22, a condenser 24, and a cooler or evaporator 26 fluidly coupled to form a circuit. A first conduit 28 extends from adjacent the outlet 30 of the cooler 26 to the inlet 32 of the compressor 22. The outlet 34 of the compressor is coupled by a conduit 36 to an inlet 38 of the condenser 24. In one embodiment, the condenser 24 includes a first chamber 40 and a second chamber 42, the second chamber 42 being accessible only from the interior of the first chamber 40. A float valve 44 within the second chamber 42 is connected to an inlet 46 of the cooler 26 by another conduit 48. Depending on the size of the chiller system 20, the compressor 22 may include a rotary, screw, or reciprocating compressor for small systems, or a screw compressor or a centrifugal compressor for larger systems.
[0027] The refrigeration cycle of the chiller refrigeration system 20 may be described as follows. The compressor 22 receives a refrigerant vapor from the e aporator/cooler 26 and compresses it to a higher temperature and pressure, with the relatively hot vapor then passing into the first chamber 40 of the condenser 24 where it is cooled and condensed to a liquid state by a heat exchange relationship with a cooling medium, such as water or air for example. Because the second chamber 42 has a lower pressure than the first chamber 40, a portion of the liquid refrigerant flashes to vapor, thereby cooling the remaining liquid. The refrigerant vapor within the second chamber 42 is re-condensed by the cool heat exchange medium. The refrigerant liquid then drains into the second chamber 42 located between the first chamber 40 and the cooler 26. The float valve 44 forms a seal to prevent vapor from the second chamber 42 from entering the cooler 26. As the liquid refrigerant passes through the float valve 44, the refrigerant is expanded to a low temperature two phase liquid/vapor state as it passed into the cooler 26. The cooler 26 is a heat exchanger which allows heat energy to migrate from a heat exchange medium, such as water for example, to the refrigerant gas. When the gas returns to the compressor 22, the refrigerant is at both the temperature and the pressure at which the refrigeration cycle began. The chiller refrigeration system 20 and refrigeration cycle illustrated and described herein are intended as an example only.
[0028] An example of a typical centrifugal compressor, such as compressor 22 of the chiller system 20, is shown in more detail in FIG. 2. The compressor 22 includes a housing 50 containing an electric motor 52 and an impeller 54 drivable by the electric motor 52. The motor 52 is arranged within a motor compartment 56 of the housing 50. The motor stator 58 is fixedly mounted to the housing 50 within the compartment 56, and the motor rotor 60 is arranged at least partially within the stator 58 and is rotatable about a rotor axis R. In the illustrated, non- limiting embodiment, the rotor 60 is coupled to a shaft 62 mounted to the housing 50 via one or more mechanical and/or electromagnetic bearings (not shown).
[0029] As shown, the impeller 54 is coupled to an impeller shaft 64. The impeller shaft 64 is mounted to the housing 50 via one or more mechanical and/or electromagnetic bearings (not shown) and is rotatable about an impeller axis I. The impeller axis I is offset from the motor axis R thereby requiring a transmission assembly 66 to operabiy couple the motor shaft 62 and the impeller shaft 64. However, embodiments of the compressor 22 that do not include a transmission assembly 66 because the impeller 54 is directly mounted to the motor shaft 62 are also within the scope of the disclosure. The impeller 54 is operable to draw fluid in through the suction port or inlet 32, compress the fluid, and discharge the fluid from the discharge port or outlet 34 (shown in FIG. 1). After the refrigerant vapor is accelerated to a high velocity by the impeller 54, a diffuser 68 (FIG. 1) may be used to decelerate the refrigerant to a low velocity while converting kinetic energy to pressure energy, and a discharge plenum (not shown) in the form of a volute collects the discharge vapor for subsequent flow to a condenser 24.
[0030] Positioned near the inlet 32 of the compressor 30 is an inlet guide vane assembly 70. Because a fluid flowing from the cooler 26 to the compressor 22 must first pass through the inlet guide vane assembly 70 before entering the impeller 54, the inlet guide vane assembly 70 may be used to control the fluid flow into the compressor 22. The inlet guide vanes of the inlet guide vane assembly 70 are generally triangular in plan form and are mounted for synchronized rotation about an associated vane axis between a maximally closed position and a maximally open condition.
[0031] To reduce the overall size of the compressor 22, the electric motor 52 may be integrated with the impeller 54. With reference now to FIG. 3, the electric motor 52 operable to drive rotation of the impeller 54 about the impeller axis I includes a stator assembly 72 coupled to a shroud 74 and a rotor assembly 76 associated with the impeller 54 and configured to rotate about the impeller axis I. The shroud 74 is a composite or laminate structure having one or more electrical components 78 mounted therein. The electrical components 78 may be selected from electromagnets, permanent magnets and windings such that when power is supplied to the electrical components 78 mounted to the shroud 74, a magnetic field is generated. The total number of electrical components 78 mounted to the shroud 74 may vary based on the desired performance of the compressor 22. The electrical components 78 are arranged generally circumferentially about the shroud 74 and are located at a position in overlapping arrangement with a portion of the adjacent impeller 54.
[0032] The rotor assembly 76 of the motor 52 includes one or more interactive components 80, such as permanent magnets or windings or laminations for example, mounted to the impeller 54 and configured to interact with the magnetic field created by the stator assembly 72. As shown, the interactive components 80 are arranged about the impeller 54 such that the one or more interactive components 80 are vertically aligned with the at least one electrical component 78 of the stator assembly 72. In an embodiment, the interactive components 80 are integrally formed with the impeller 54, such as via an additive manufacturing process for example. Alternatively, the interactive components 80 may be removably mounted to the impeller 54. For example, the interactive components 80 may be partially or fully embedded with the impeller 54, such as within one or more complementary openings (not shown) formed therein. The interactive components 80 are generally positioned circumferentially about the exterior surface of the impeller 54, concentric with the impeller shaft 64. The interactive components 80 may, but need not be, equidistantly spaced about the impeller 54. In other embodiments, the interactive components 80 may be placed at a position between circumferential and axial.
[0033] The interaction between the interactive components 80 mounted to the impeller 54 and the magnetic field generated when the electric components 78 of the stator assembly 72 are energized causes the impeller 54 including the rotor assembly 76 to rotate about the impeller axis I with respect to the stator assembly 72 and the shroud 74. Accordingly, any type of motor suitable for use with the topology described, such as a switch reluctance motor, permanent magnet motor, flux switching permanent magnet motor, and an induction motor for example, are contemplated herein.
[0034] In the embodiments illustrated and described herein, the interactive components 80 do not include an external electrical connection independent from the stator assembly 72. However, it should be understood that embodiments where the interactive components 80 require an electrical connection, such as for a squirrel cage for example are also contemplated herein. In addition, embodiments where the interactive components 80 mounted to the impeller 54 are operable to drive rotation of the impeller 54 are also contemplated herein. In such embodiments, wiring associated with the electrical components 78 may be located within an interior of the impeller shaft 64.
[0035] As previously suggested, the type and number of electrical components 78 of the stator assembly 72 and interactive components 80 of the rotor assembly 76 may vary based on the desired performance of the compressor 22. Accordingly, to increase the amount of interactive components 80 of the rotor assembly 76, the impeller 54 may have an elongated conical shape resulting in an increased axial flow distance relative to conventional compressors. The spatial positioning between the electrical components 78 of the stator assembly 72 and the adjacent interactive components 80 of the rotor assembly 76 is defined by the shape and size of not only the impeller 54, but also the shroud 74. The gap or clearance 82 between the electrical components 78 of the stator assembly 76 and the interactive components 80 of the rotor assembly 76 may be generally constant for ease of manufacturing. However, embodiments where the clearance 82 varies, such as about the periphery of impeller 54 and/or along an axial length of the impeller 54 for example, are also contemplated herein.
[0036] Integrating the electric motor 52 into the impeller 54 results in a compressor 22 having a more compact foot print. By eliminating the components associated with a separate electrical motor, such as the transmission, rotor shaft, and bearing for example, the complexity and weight, as well as the costs associated with the compressor 22 are reduced relative to more traditional compressor systems. Further, friction and windage losses may be reduced by eliminating the frictional losses of a motor separate from the impeller.
[0037] While the disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the disclosure is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the disclosure. Additionally, while various embodiments of the disclosure have been described, it is to be understood that aspects of the disclosure may include only some of the described embodiments. Accordingly, the disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.

Claims

CLAIMS What is claimed is:
1. An impeller of a centrifugal compressor comprising:
an impeller body rotatable about an impeller axis; and
a motor operable to drive said impeller about said impeller axis, said motor including a stator assembly and a rotor assembly, said rotor assembly being associated with said impeller body.
2. The compressor of claim 1, wherein said rotor assembly further comprises at least one interactive component configured to interact with a magnetic field generated by said stator assembly to drive said impeller about said impeller axis.
3. The compressor of claim 2, wherein said at least one interactive component is not coupled to an electrical source separate from said stator assembly.
4. The compressor of either claim 2 or claim 3, wherein said at least one interactive component is integrally formed with said impeller body.
5. The compressor of any of either claim 2 or claim 3, wherein said at least one interactive component is removably coupled to said impeller body.
6. The compressor of any of claims 2, 3, and 5, wherein said at least one interactive component is coupled to an exterior surface of said impeller body.
7. The compressor of any of claims 2, 3, and 5, wherein said at least one interactive component is at least partially embedded within said impeller body.
8. The compressor of any of claims 2-7, wherein said at least one interactive component comprises a plurality of interactive components positioned about a periphery of said impeller body.
9. The compressor of any of claims 2-8, wherein said stator assembly includes at least one electrical component operable to generate a magnetic field when power is applied thereto.
10. The compressor of claim 9, further comprising a shroud arranged adjacent said impeller body, said stator assembly being associated with said shroud.
11. The compressor of either claim 9 or claim 10, wherein said at least one electrical component is positioned in vertical alignment with said at least one interactive component.
12. The compressor of any of claims 9-11, wherein a clearance between said at least one electrical component and said at least one interactive component is uniform about said impeller body.
13. The compressor of any of claims 9-11, wherein a clearance between said at least one electrical component and said at least one interactive component varies about said impeller body.
14. A centrifugal compressor comprising:
a housing having a suction port and a discharge port;
an impeller rotatable relative to said housing to draw a fluid in through said suction port and discharge said fluid through said discharge port; and
a motor operably coupled to said impeller to rotate said impeller about an impeller axis, said motor including a stator assembly and a rotor assembly, said rotor assembly being associated with said impeller.
15. The centrifugal compressor of claim 14, further comprising a shroud arranged adjacent said impeller, said stator assembly being associated with said shroud.
16. The centrifugal compressor of any of either claim 14 or claim 15, wherein said rotor assembly further comprises at least one interactive component configured to interact with a magnetic field generated by said stator assembly to drive said impeller about said impeller axis.
17. The compressor of claim 16, wherein said at least one interactive component is not coupled to an electrical source separate from said stator assembly.
18. A chiller refrigeration system comprising:
a condenser, evaporator, and compressor arranged in fluid communication to form a refrigeration circuit, the compressor being a centrifugal compressor including:
a housing having a suction port and a discharge port;
an impeller rotatable relative to said housing to draw a fluid in through said suction port and discharge said fluid through said discharge port; and
a motor operably coupled to said impeller to rotate said impeller about an impeller axis, said motor including a stator assembly and a rotor assembly, said rotor assembly being associated with said impeller.
EP17822968.8A 2016-12-14 2017-12-13 Impeller integrated motor for centrifugal compressor Pending EP3555479A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201662434113P 2016-12-14 2016-12-14
PCT/US2017/065991 WO2018111986A1 (en) 2016-12-14 2017-12-13 Impeller integrated motor for centrifugal compressor

Publications (1)

Publication Number Publication Date
EP3555479A1 true EP3555479A1 (en) 2019-10-23

Family

ID=60888729

Family Applications (1)

Application Number Title Priority Date Filing Date
EP17822968.8A Pending EP3555479A1 (en) 2016-12-14 2017-12-13 Impeller integrated motor for centrifugal compressor

Country Status (4)

Country Link
US (1) US20200011337A1 (en)
EP (1) EP3555479A1 (en)
CN (1) CN110073111A (en)
WO (1) WO2018111986A1 (en)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11220922B1 (en) 2020-06-17 2022-01-11 Honeywell International Inc. Monolithic diffuser and deswirl flow structure for gas turbine engine

Family Cites Families (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5112202A (en) * 1990-01-31 1992-05-12 Ntn Corporation Turbo pump with magnetically supported impeller
IT1245466B (en) * 1991-03-19 1994-09-20 Iveco Fiat ELECTRIC PUMP FOR THE CIRCULATION OF A LIQUID, FOR EXAMPLE IN AN INTERNAL COMBUSTION ENGINE
US5547350A (en) * 1994-12-15 1996-08-20 Dresser-Rand Company Modular shaftless compressor
DE19608602A1 (en) * 1996-03-06 1997-09-11 Peter Dipl Ing Mette Glandless flow machine with radial rotor e.g. centrifugal pump for chemical materials
JPH1162877A (en) * 1997-08-07 1999-03-05 Kobe Steel Ltd Turbomachine with motor built-in
FR2787527B1 (en) * 1998-12-22 2001-03-09 Jeumont Ind MOTORIZED DEVICE WITH CENTRIFUGAL FLUID CIRCULATION, SUCH AS A MOTOR PUMP OR A MOTOR COMPRESSOR
JP2001342954A (en) * 2000-05-31 2001-12-14 Sanyo Electric Co Ltd Electric compressor and cooling system using the same
US6616421B2 (en) * 2000-12-15 2003-09-09 Cooper Cameron Corporation Direct drive compressor assembly
JP2008089222A (en) * 2006-09-29 2008-04-17 Hitachi Plant Technologies Ltd Control method of turbo refrigerating machine
GB2511082B (en) * 2013-02-22 2016-06-22 Imra Europe S A S Reluctance machines
DE102013217261A1 (en) * 2013-08-29 2015-03-05 Robert Bosch Gmbh compressor
ITFI20130283A1 (en) * 2013-11-22 2015-05-23 Nuovo Pignone Srl "MOTOR-COMPRESSOR WITH STAGE IMPELLERS INTEGRATED IN THE MOTOR-ROTORS"
DE202015101916U1 (en) * 2015-04-01 2015-05-06 Ford Global Technologies, Llc Two-stage rechargeable internal combustion engine with turbocharger

Also Published As

Publication number Publication date
US20200011337A1 (en) 2020-01-09
CN110073111A (en) 2019-07-30
WO2018111986A1 (en) 2018-06-21

Similar Documents

Publication Publication Date Title
US7704056B2 (en) Two-stage vapor cycle compressor
EP1961972A2 (en) Two-stage vapor cycle compressor
KR101410438B1 (en) Motor cooling applications
US9657747B2 (en) Motor rotor and air gap cooling
US8061151B2 (en) Refrigerant compressor
JP7132238B2 (en) Induction motor and vapor compression system with magnetic bearings
JP2000303986A (en) Integral motor pump
JP5929157B2 (en) Centrifugal compressor
US20200011337A1 (en) Impeller integrated motor for centrifugal compressor
JP7407836B2 (en) Heating, ventilation, air conditioning and/or refrigeration systems with compressor motor cooling systems
JP2010501783A (en) A block-type rotary airfoil oil rotary vacuum pump or vane compressor with a disk armature-type synchronous motor overhanging and supported
US1960324A (en) Electric motor unit
JP2013122331A (en) Refrigerator
RU157678U1 (en) TWO-STAGE CENTRIFUGAL COMPRESSOR
KR100343711B1 (en) Cooling system of turbo compressor
RU157236U1 (en) TWO-STAGE CENTRIFUGAL COMPRESSOR
EP4361438A1 (en) Heat pump compressor
EP4034768B1 (en) Integrated motor-compressor unit having a cooling circuit and a depressurization system configured to reduce pressure of the cooling fluid
US3689202A (en) Absorption refrigeration system
EA043513B1 (en) INTEGRATED COMPRESSOR UNIT WITH ENGINE, HAVING A COOLING CIRCUIT AND A PRESSURE REDUCING SYSTEM, CAPABLE OF REDUCING THE PRESSURE OF THE COOLING FLUID
KR100273399B1 (en) Driving motor for turbo compressor
CA2477382C (en) A centrifugal compressor
CN114857041A (en) Refrigerant compressor and refrigerant system
KR19990054847A (en) Drive motor of turbo compressor
JP2013209925A (en) Electric compressor

Legal Events

Date Code Title Description
STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: UNKNOWN

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE

PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE

17P Request for examination filed

Effective date: 20190711

AK Designated contracting states

Kind code of ref document: A1

Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

AX Request for extension of the european patent

Extension state: BA ME

DAV Request for validation of the european patent (deleted)
DAX Request for extension of the european patent (deleted)
STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: EXAMINATION IS IN PROGRESS

17Q First examination report despatched

Effective date: 20211202