(19)
(11) EP 4 034 768 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
01.05.2024 Bulletin 2024/18

(21) Application number: 19780025.3

(22) Date of filing: 23.09.2019
(51) International Patent Classification (IPC): 
F04D 17/10(2006.01)
F04D 29/58(2006.01)
F04D 25/06(2006.01)
F04D 17/12(2006.01)
(52) Cooperative Patent Classification (CPC):
F04D 29/5806; F04D 25/06; F04D 17/12
(86) International application number:
PCT/IB2019/058026
(87) International publication number:
WO 2021/058995 (01.04.2021 Gazette 2021/13)

(54)

INTEGRATED MOTOR-COMPRESSOR UNIT HAVING A COOLING CIRCUIT AND A DEPRESSURIZATION SYSTEM CONFIGURED TO REDUCE PRESSURE OF THE COOLING FLUID

INTEGRIERTE MOTORKOMPRESSOREINHEIT MIT EINEM KÜHLKREISLAUF UND EINEM DRUCKENTLASTUNGSSYSTEM ZUM REDUZIEREN DES DRUCKES DES KÜHLFLUIDS

UNITÉ DE MOTEUR-COMPRESSEUR INTÉGRÉE AYANT UN CIRCUIT DE REFROIDISSEMENT ET UN SYSTÈME DE DÉPRESSURISATION CONÇU POUR RÉDUIRE LA PRESSION DU FLUIDE DE REFROIDISSEMENT


(84) Designated Contracting States:
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

(43) Date of publication of application:
03.08.2022 Bulletin 2022/31

(73) Proprietor: Thermodyn
71200 Le Creusot (FR)

(72) Inventors:
  • DEFOY, Benjamin
    71200 Le Creusot (FR)
  • GUILLEMIN, Sylvain
    71200 Le Creusot (FR)
  • ALBAN, Thomas
    71200 Le Creusot (FR)
  • NAWROCKI, Gilles
    71200 Le Creusot (FR)

(74) Representative: Novagraaf Group 
Chemin de l'Echo 3
1213 Onex / Geneva
1213 Onex / Geneva (CH)


(56) References cited: : 
WO-A1-2014/130530
US-A1- 2007 271 956
WO-A1-2017/017202
   
       
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description

    Background



    [0001] The field of the invention relates to integrated motor-compressor units for processing a working fluid, and more particularly to an integrated motor-compressor having a cooling system.

    [0002] Generally, a motor-compressor unit comprises a centrifugal compressor and a motor integrated in a common housing.

    [0003] A centrifugal compressor with multiple compression stages generally comprises a plurality of impellers supported by a driven shaft coupled to a rotor driven by a motor or a turbine in order to generate a flow of compressed process gas.

    [0004] The shaft used to directly drive such a centrifugal compressor is required to rotate at relatively high speeds which generate heat. Furthermore, operating the motor-compressor at high speeds increases windage frictional losses resulting from components operating in pressurized gas.

    [0005] If this heat is not properly dissipated, it may negatively affect the performance of the motor, as well as damage the electrical insulation of the stator. Increased temperatures can also adversely affect the rotor-bearing systems of both the compressor and motor, thus leading to bearing damage and/or failure.

    [0006] In order to regulate the heat and cool such an integrated motor-compressor unit, it is known to use a cooling circuit which may be an open loop cooling circuit or a quasi-closed loop cooling circuit where gas is drawn from the process stream at some point in the compression process. The process gas is then circulated through the motor and the bearings to absorb heat.

    [0007] For example, only a small amount of process gas is fed into the cooling circuit from the process stream. The cooling gas may be driven by a pressure difference between the source of the cooling gas and the place where the gas is allowed to flow to.

    [0008] Alternatively, it is known to use a blower located before the cooling loop to circulate the cooling gas in said cooling circuit and thus improve the fan compression efficiency. However, such solution increases significantly the windage losses, even more when the machine works at high pressure.

    [0009] Reference can be made to document US 9, 200, 643 - B2 which describes a system for cooling a motor-compression with a closed-loop cooling circuit. However, the motor is sealed from the compressor processed gas by dry gas seal or carbon rings in order to avoid contamination, which increases the maintenance of the seals. WO 2017/017202 A1 discloses a motorcompressor. US 2007/271956 A1 discloses reducing windage losses in compressor motors.

    Brief Description of Invention



    [0010] The present invention is defined in the accompanying claims.

    [0011] One benefit afforded by embodiments of the integrated motor-compressor unit described herein is to reduce windage losses.

    [0012] Indeed, the high speed motor, the coupling and the bearings being immerged in the process gas, windage losses may be high, especially for compressors with high suction pressure.

    [0013] It is therefore proposed a depressurization system for an integrated motor-compressor unit according to claim 1, having a motor and a compressor coupled to said motor. The depressurization system is configured to depressurize the pressure of the motor.

    [0014] It is further proposed an integrated motor-compressor unit according to claim 4 configured to process a working fluid, such as for example gas, and comprising a motor and a compressor coupled to said motor via a rotatable shaft and mounted in a single common housing, a cooling fluid is circulated throughout said housing in a cooling circuit.

    Summary



    [0015] The integrated motor-compressor unit comprises a depressurization system configured to depressurize the pressure of the motor.

    [0016] The depressurization system is thus configured to reduce pressure of the cooling fluid circulating in the cooling circuit.

    [0017] Such a depressurization system creates a significant pressure drop of at least 10 bars. The efficiency of the motor is thus significantly increased.

    [0018] According to an embodiment, the depressurization system comprises an expansion device before the cooling circuit, and an auxiliary compressor after the cooling circuit, configured to recover the suction pressure.

    [0019] The expansion device is a cooling expansion valve configured to receive the working fluid via a main compressor suction inlet of the compressor and to transmit expanded cooled fluid to the cooling circuit, and the auxiliary compressor is configured to receive the cooling fluid after having cooled notably the motor and/or the bearings and to compress the cooling fluid.

    [0020] In an embodiment of operation of the integrated motor-compressor unit the motor rotates the shaft and thereby drives the compressor. A process gas to be compressed is introduced via a main compressor suction inlet provided in the housing. The compressor then compresses the process gas through successive stages of impellers to thereby produce a compressed process gas. The compressed process gas then exits the compressor via a process discharge outlet provided in the housing.

    Brief Description of the Drawings



    [0021] Other aims, features and advantages of embodiments of the invention will become apparent on reading the following description, given purely as a nonlimiting example, and with reference to the attached drawings in which:
    • Figure 1 very schematically represents an integrated motor-compressor unit according to a first embodiment of the invention;
    • Figure 2 very schematically represents an integrated motor-compressor unit according to a second embodiment not belonging to the claimed invention;
    • Figure 3 very schematically represents an integrated motor-compressor unit according to a third embodiment not belonging to the claimed invention; and
    • Figure 4 very schematically represents an integrated motor-compressor unit according to a fourth embodiment not belonging to the claimed invention.

    Detailed description



    [0022] The Figures very schematically illustrate an integrated motor-compressor unit 10 configured to process a working fluid, such as gas. The integrated motor-compressor unit 10 comprises a motor 12 and a compressor 14 coupled to said motor 12 via a rotatable shaft 16 and mounted in a single common housing 18 configured to circulate a cooling fluid in a cooling circuit 27.

    [0023] The integrated motor-compressor unit 10 further comprises a depressurization system 30 configured to depressurize the pressure of the motor 12 and thus configured to reduce pressure of the cooling circulating in the cooling circuit.

    [0024] Such a depressurization system 30 creates a significant pressure drop of at least 10 bars. The efficiency of the motor 12 is thus significantly increased thanks to such pressure drop.

    [0025] The shaft extends substantially the whole length of the housing 18 and comprises a motor section 17 coupled to the motor 12 and a driven section 19 coupled to the compressor 14. The motor section 17 and the driven section 19 of the rotatable shaft 16 are connected via a coupling 20, such as for example a flexible or rigid coupling.

    [0026] As illustrated, the motor section 17 and the driven section 19 are supported at each end, respectively, by one or more radial bearings 22. As way of a non-limitative example, four sets of radial bearings 22 are shown. The bearings 22 may be directly or indirectly supported by the housing 18.

    [0027] The motor 12 may be an electric motor, such as a permanent magnet motor having permanent magnets mounted on the rotor (not depicted on the figures) and a stator (not depicted on the figures). As an alternative, other types of electric motors, such as for example synchronous, induction, brushed DC motors, etc... may be used.

    [0028] The compressor 14 may be a multi-stage centrifugal compressor with one or more compressor stage impellers (not shown).

    [0029] In order to cool or otherwise regulate the temperature of the motor 12 and the bearings 22, a cooling gas is circulated throughout the housing 18 in the cooling circuit 27 having cooling conducts 28 and hot conducts 29.

    [0030] The depressurization system 30 comprises an expansion device 32 before the cooling circuit 27 and an auxiliary compressor 34 after the cooling circuit 27 configured to recover the suction pressure.

    [0031] A first embodiment of the depressurization system 30 according to the claimed invention is shown on Figure 1. In this embodiment, the expansion device 32 is a cooling expansion valve receiving process gas via the main compressor suction inlet 24 and transmitting expanded cooled process gas to the cooling circuit 27. The auxiliary compressor 34 receives the cooling fluid after having cooled the bearings 22 and the motor 12 and compresses it before transmitting to the main compressor suction inlet 24.

    [0032] The embodiment of Figure 2, where the same elements bear the same reference differs from the embodiment of Figure 1 by the structure of the expansion device 32. In this embodiment, the expansion device 32 is an expansion wheel mounted on the motor shaft end. Alternatively, the expansion wheel may be mounted on the compressor shaft end, between bearings or on a dedicated turbo-expander. The auxiliary compressor 34 is, in this embodiment, mounted on the compressor shaft end. Alternatively, the auxiliary compressor 34 may be mounted on the motor shaft end, between bearings, on a dedicated turbo-expander, or on a dedicated compressor.

    [0033] The embodiment of Figure 3, where the same elements bear the same reference differs from the embodiment of Figure 1 by the structure of the expansion device 32. In this embodiment, the expansion is created by voluntary compressor 14 leakages that are compressed by the auxiliary compressor 34. In other words, calibrated gas leakages on the compressor end 14 are used to generate the cooling flow. In this embodiment, and as a non-limitative example, the auxiliary compressor 34 is mounted on the motor shaft end.

    [0034] The embodiment of Figure 4, where the same elements bear the same reference differs from the embodiment of Figure 1 by the structure of the depressurization system 30. In this embodiment, the depressurization system 30 comprises a blower device 36 mounted upstream the compressor 14 and configured to circulate the cooling fluid in a closed loop cooling circuit 27. The depressurization system 30 further comprises a depressurization auxiliary compressor 34 configured to compensate for the main compressor gas leakages. The depressurization system 30 also comprises a cooler 38 mounted on the cooling circuit 27 after the blower device 36.

    [0035] The depressurization auxiliary compressor 34 may be a low pressure compressor or a dedicated equipment.

    [0036] In an embodiment of operation of the integrated motor-compressor unit 10, the motor 12 rotates the shaft 16 and thereby drives the compressor 14. A process gas to be compressed is introduced via a main compressor suction inlet 24 provided in the housing 18. The compressor 14 then compresses the process gas through successive stages of impellers to thereby produce a compressed process gas. The compressed process gas then exits the compressor 14 via a process discharge outlet 26 provided in the housing 18.

    [0037] Thanks to the depressurization system of the invention, windage losses are reduced in the integrated motor-compressor unit, especially in compressors having high suction pressure.


    Claims

    1. A depressurization system (30) for an integrated motor-compressor unit (10) having a motor (12) and a compressor (14) coupled to said motor (12), wherein the depressurization system (30) is configured to depressurize the motor (12), said system comprising an expansion device (32) and an auxiliary compressor (34) configured to recover the suction pressure, wherein the expansion device (32) is a cooling expansion valve configured to receive the working fluid via a main compressor suction inlet (24) of the compressor (14) and to transmit expanded cooled fluid to a cooling circuit (27) of the integrated motor-compressor unit (10), and wherein the auxiliary compressor (34) is configured to receive the cooling fluid after having cooled notably the motor (12) and to compress the cooling fluid.
     
    2. Integrated motor-compressor unit (10) having a motor (12) and a compressor (14) coupled to said motor (12) via a rotatable shaft (16) and mounted in a single common housing (18) configured to circulate a cooling circuit (27), wherein the integrated motor-compressor unit (10) comprises : a depressurization system (30) according to claim 1 configured to depressurize the pressure of the motor (12).
     
    3. Integrated motor-compressor unit (10) according to claim 2, wherein the rotatable shaft (16) is supported at each end by at least one bearing (22).
     


    Ansprüche

    1. Druckentlastungssystem (30) für eine integrierte Motor-Kompressor-Einheit (10), die einen Motor (12) und einen Verdichter (14) aufweist, der mit dem Motor (12) gekoppelt ist, wobei das Druckentlastungssystem (30) konfiguriert ist, um den Motor (12) drucklos zu machen, das System umfassend eine Expansionsvorrichtung (32) und einen Hilfsverdichter (34), der konfiguriert ist, um den Saugdruck wiederherzustellen, wobei die Expansionsvorrichtung (32) ein Kühlexpansionsventil ist, das konfiguriert ist, um das Arbeitsfluid über einen Hauptverdichtersaugeinlass (24) des Verdichters (14) aufzunehmen und um expandiertes gekühltes Fluid zu einem Kühlkreislauf (27) der integrierten Motor-Kompressor-Einheit (10) zu übertragen, und wobei der Hilfsverdichter (34) konfiguriert ist, um das Kühlfluid aufzunehmen, nachdem es insbesondere den Motor (12) abgekühlt hat, und um das Kühlfluid zu verdichten.
     
    2. Integrierte Motor-Kompressor-Einheit (10), die einen Motor (12) und einen Verdichter (14) aufweist, der über eine drehbare Welle (16) mit dem Motor (12) gekoppelt ist und in einem einzelnen gemeinsamen Gehäuse (18) montiert ist, das konfiguriert ist, um einen Kühlkreislauf (27) zu zirkulieren, wobei die integrierte Motor-Kompressor-Einheit (10) umfasst: ein Druckentlastungssystem (30) nach Anspruch 1, das konfiguriert ist, um den Druck des Motors (12) drucklos zu machen.
     
    3. Integrierte Motor-Kompressor-Einheit (10) nach Anspruch 2, wobei die drehbare Welle (16) an jedem Ende durch mindestens ein Lager (22) gestützt wird.
     


    Revendications

    1. Système de dépressurisation (30) pour un groupe motocompresseur intégré (10) ayant un moteur (12) et un compresseur (14) couplé audit moteur (12), dans lequel le système de dépressurisation (30) est configuré pour dépressuriser le moteur (12), ledit système comprenant un dispositif de détente (32) et un compresseur auxiliaire (34) configuré pour récupérer la pression d'aspiration, dans lequel le dispositif de détente (32) est un détendeur de refroidissement configuré pour recevoir le fluide de travail via une entrée d'aspiration de compresseur principale (24) du compresseur (14) et pour transmettre un fluide refroidi détendu à un circuit de refroidissement (27) de l'unité motocompresseur intégré (10) et dans lequel le compresseur auxiliaire (34) est configuré pour recevoir le fluide de refroidissement après avoir refroidi notamment le moteur (12) et pour comprimer le fluide de refroidissement.
     
    2. Groupe motocompresseur intégré (10) ayant un moteur (12) et un compresseur (14) couplé audit moteur (12) par l'intermédiaire d'un arbre rotatif (16) et monté dans un logement commun unique (18) configuré pour faire circuler un circuit de refroidissement (27), dans lequel l'unité motocompresseur intégré (10) comprend : un système de dépressurisation (30) selon la revendication 1 configuré pour dépressuriser la pression du moteur (12).
     
    3. Groupe motocompresseur intégré (10) selon la revendication 2, dans lequel l'arbre rotatif (16) est supporté à chaque extrémité par au moins un palier (22).
     




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    Cited references

    REFERENCES CITED IN THE DESCRIPTION



    This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.

    Patent documents cited in the description