Centrifugal motor-compressor unit
09644633 ยท 2017-05-09
Assignee
Inventors
- Pierre Laboube (Saint Sernin-du-Bois, FR)
- Patrick Friez (Le Creusot, FR)
- Jean-Marc Pugnet (Le Creusot, FR)
- Patrice Bonnefoi (Le Creusot, FR)
Cpc classification
F04D29/584
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D17/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/0606
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0489
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A centrifugal compressor unit includes a driving means for rotatably driving a rotor, and at least one compressor including a statoric body and an arrangement of blade wheels mounted on a shaft which is rotatably driven by the rotor in the statoric body. The group formed by the motor and/or each compressor being mounted in a common housing is sealed from the gas used by the compressor. The compressor unit also includes an arrangement of active bearings for axially and radially guiding the rotor and the driven shaft, and a means for cooling the driving means and the guiding bearings by withdrawing the gas used by the compressor at the outlet of a first compression stage. The cooling means includes a set of internal conduits for supplying the driving means and the bearings with cooling gas. The cooling gas flow in the motor and the cooling gas flow in the bearing is separated and then converge upstream of the first compression stage.
Claims
1. A centrifugal compressor unit comprising: a motor means rotationally driving a rotor; and at least one compressor comprising: a stator body; and a set of impeller wheels which are mounted on a driven shaft rotationally driven by the rotor in the stator body; wherein the motor and the at least one compressor is mounted in a common housing sealed against the gas handled by the compressor unit; a set of active bearings for axially and radially guiding the rotor and the driven shaft; and cooling means for cooling the motor means and the guide bearings by tapping off some of the gas handled by the compressor at an outlet from a first compression stage, passing the gas through the motor means and through the bearings and reinjecting the gas into an inlet side of one of the at least one compressor, wherein the cooling means are equipped with filtering means for filtering the gas handled by the compressor, wherein the cooling means comprises a set of internal passages for feeding the motor means and the bearings with cooling gas which are formed in the compressor unit, and wherein the flow of cooling gas in the motor means is separate from the flow of cooling gas in the bearings, and wherein the flow of cooling gas converges upstream of the first compression stage.
2. The centrifugal compressor unit of claim 1, wherein the cooling means further comprises a set of external lines collecting the gas on the outlet side of the first compression stage and feeding the internal passages in parallel.
3. The centrifugal compressor unit of claim 2, wherein the internal passages for feeding the motor means are fed in parallel with the internal passages for feeding the bearings with cooling gas.
4. The centrifugal compressor unit of claim 1, wherein, with the driven shaft of the compressor supported by two end radial bearings, the cooling means comprise an axial passage running from one bearing to the other and fed at one of its ends by the external lines, and wherein the axial passage globally running longitudinally and radially externally through the compressor.
5. The centrifugal compressor unit of claim 1, wherein the internal passages for feeding the bearings comprise a set of directional passages directed radially externally in the compressor, and wherein each internal passage feeds one bearing.
6. The centrifugal compressor unit of claim 1, wherein the motor is fed with cooling gas via an orifice formed in an end cover and in communication with an external line.
7. The centrifugal compressor unit of claim 1, wherein the internal passages for feeding the bearings comprise a set of directional passages directed radially externally in the compressor, and wherein each internal passage feeds one bearing, and wherein the motor is fed with cooling gas via an orifice formed in an end cover and in communication with an external line, and wherein the flow of cooling gas is mixed with the flow of cooling gas leaving the bearings cooled by the gas coming from the internal passages.
8. The centrifugal compressor unit of claim 1, further comprising means for regulating a refrigeration flow rate for the motor and for each bearing.
9. The centrifugal compressor unit of claim 1, further comprising means for collecting flows of cooling gas from members situated on a same side as an equalizing piston.
10. The centrifugal compressor unit of claim 2, wherein the external lines are equipped with filtering means for filtering the gas handled by the compressor.
11. The centrifugal compressor unit of claim 10, wherein, with the driven shaft of the compressor supported by two end radial bearings, the cooling means comprise an axial passage running from one bearing to the other and fed at one of its ends by the external lines, and wherein the axial passage globally running longitudinally and radially externally through the compressor.
12. The centrifugal compressor unit of claim 11, wherein the internal passages for feeding the bearings comprise a set of directional passages directed radially externally in the compressor, and wherein each internal passage feeds one bearing.
13. The centrifugal compressor unit of claim 12, wherein the motor is fed with cooling gas via an orifice formed in an end cover and in communication with an external line.
14. The centrifugal compressor unit of claim 13, wherein the flow of cooling gas is mixed with the flow of cooling gas leaving the bearings cooled by the gas coming from the internal passages.
15. The centrifugal compressor unit of claim 10, further comprising means for regulating a refrigeration flow rate for the motor and for each bearing.
16. The centrifugal compressor unit of claim 10, further comprising means for collecting flows of cooling gas from members situated on a same side as an equalizing piston.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other objects, features and advantages of the invention will become apparent from reading the following description, given solely by way of a nonlimiting example and made with reference to the attached drawings in which:
(2)
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DETAILED DESCRIPTION OF EMBODIMENTS
(8)
(9) The compressor unit illustrated in this
(10) The impeller wheel 56 draws in a compressed gas delivered from an intake pipe 68 to increase its static pressure and thus increase its kinetic energy. A diffuser 70 (
(11) As shown in
(12) As can be seen in
(13) To cool the motor 50 and the end bearings 60 and 62 supporting the rotor 52, the corresponding end cover 90 closing the casing 86 is provided with an orifice 92 which communicates with the corresponding external pipe 80-1. Part of this cooling flow is used to cool the bearing 60. This flow is then collected for cooling the motor, by passing it through the motor air gap. Another part of this flow is used directly to cool the motor. A second internal passage 94 is fed from the external lines to cool the second bearing 62 of the motor. Downstream, the flow of cooling gas used to cool the bearings 60 and 62 and the motor 50 is collected in a cavity 95 in which the flexible coupling 58 is located and which is closed off by sealed blanking means 96. Downstream, as depicted by the arrows F, the gas is collected by the internal passage 88 to be reinjected upstream of the first compression stage 56.
(14) Furthermore, in some embodiments, the bearings and the thrust bearing are cooled using a flow of cooling gas delivered through an end cover 98 blanking off the corresponding end of the casing 86. In
(15) In the embodiment illustrated in
(16) For maintenance, in an embodiment, the sealed blanking means 96 allows access to the flexible coupling 58. Extracting the rotor from the motor is, for its part, done by removing the end cover 90, which for example is bolted on to the casing. Removal of the internal part of the compressor is, for its part, done by extracting the corresponding cover 98, which for example is fixed to the casing by a shear ring 110. In an embodiment, the entity is arranged in such a way that the rotor-diaphragms assembly, that is to say the entirety of the compressor, can be withdrawn from the casing at the same time as the cover 98 without having to detach the casing from its baseplate and from the process gas pipework and the cooling lines. It will be noted that, during these assembly-disassembly phases, the rotors rest on their bearing, which makes the coupling and uncoupling operations easier, without the risk of damaging the rotating parts and the stator parts which might otherwise come into contact with the rotors during these operations.
(17) It will be noted that the invention is not restricted to the embodiments described. Specifically, whereas
(18) In these various embodiments, use is made of means for cooling the motor and the bearings that use parallel flows of cooling gas. As will be appreciated, separate fluids for cooling the motor and the bearings are not required. Furthermore, the electric motor, the bearings and the magnetic thrust bearing are cooled autonomously with the flow rate needed for each distributed to each, these various flows then being collected to be reinjected into the inlet side of the first compression stage. These features make it possible to minimize the size of the machine and to simplify the installation. Furthermore, producing internal passages makes it possible to limit the space required for the external lines.
(19) In some embodiments, it is possible to limit gas leaks to the outside. The reliability is also improved in that integrated filtration of the motor cooling gas. Furthermore, the use of several filter cartridges arranged in parallel and associated with a set of valves allows these cartridges to be changed during running.
(20) In the description given hereinabove, the filtering means are produced in the form of cartridges mounted on the external pipes, however, it is equally possible, as a variant, to mount the cartridges within the compressor unit housing, at a location that makes them readily accessible, in this instance, for example, in the cavity 95 that provides access to the coupling, preferably mounting them on the blanking means.