Economized Centrifugal Compressor
A compressor (22; 260; 300; 400) has a housing assembly (140) with a suction port (24), a discharge port (26), and an economizer port (58). An impeller (154) is mounted to be driven in at least a first condition so as to draw a main flow of fluid through the suction port and discharge the fluid from the discharge port. A diffuser (220; 302; 402) has a plurality of diffuser passages (222; 310, 308; 403). Each diffuser passage has an inlet (224) positioned to receive fluid from the impeller and an outlet (220) downstream of the inlet in the first condition. One or more passages (230, 231, 232, 234, 236, 268; 320, 330, 332; 412) are positioned to draw an economizer flow of fluid from the economizer port and deliver the economizer flow downstream of the impeller inlet (212) but upstream of the diffuser passage outlets (226).
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Benefit is claimed of U.S. patent application Ser. No. 61/492,109, filed Jun. 1, 2011, and entitled “Economized Centrifugal Compressor”, the disclosure of which is incorporated by reference herein in its entirety as if set forth at length.
BACKGROUNDThe disclosure relates to compressors. More particularly, the disclosure relates to electric motor-driven hermetic or semi-hermetic compressors.
One particular use of electric motor-driven compressors is liquid chillers. An exemplary liquid chiller uses a hermetic centrifugal compressor. The exemplary unit comprises a standalone combination of the compressor, the cooler unit, the chiller unit, the expansion device, and various additional components. The exemplary compressor includes a transmission intervening between the motor rotor and the impeller to drive the impeller at a faster speed than the motor.
Chiller centrifugal compressors include both two-stage models and single-stage models. U.S. Pat. No. 5,145,317, U.S. Pat. No. 5,445,496, U.S. Pat. No. 6,547,520, and U.S. Pat. No. 6,814,540, disclose single stage models. The interstage of a two-stage model may be communicated with an economizer port. An economized single stage compressor has been proposed wherein refrigerant is injected along the impeller.
SUMMARYOne aspect of the disclosure involves a compressor having a housing assembly with a suction port, a discharge port, and an economizer port. An impeller is mounted to be driven in at least a first condition so as to draw a main flow of fluid through the suction port and discharge the fluid from the discharge port. A diffuser has a plurality of diffuser passages. Each diffuser passage has an inlet positioned to receive fluid from the impeller and an outlet downstream of the inlet in the first condition. One or more passages are positioned to draw an economizer flow of fluid from the economizer port and deliver the economizer flow downstream of the impeller inlet but upstream of the diffuser passage outlets.
The details of one or more embodiments are set forth in the accompanying drawings and the description below. Other features, objects, and advantages will be apparent from the description and drawings, and from the claims.
Like reference numbers and designations in the various drawings indicate like elements.
DETAILED DESCRIPTIONThe system further includes a second heat exchanger 30 (in the normal mode a heat absorption heat exchanger or evaporator). In the exemplary system, the heat exchanger 30 is a refrigerant-water heat exchanger for chilling a chilled water flow within a chiller (or cooler) unit 31. An expansion device 32 is downstream of the heat rejection heat exchanger and upstream of the heat absorption heat exchanger along the normal mode refrigerant flowpath 34 (the flowpath being partially surrounded by associated piping, etc.). The exemplary expansion device 32 is formed by a distributor of the cooler unit 31.
A flash tank economizer 40 is located along the flowpath 34 between a refrigerant outlet 42 of the condenser and a refrigerant inlet 44 of the cooler. The economizer has a primary refrigerant inlet 46, a primary refrigerant outlet 48, and a secondary refrigerant outlet 50. In normal operation, a liquid refrigerant accumulation is maintained in the tank 52 via a float valve 54 controlling flow through the outlet 48. An economizer flowpath branch 56 extends from the secondary outlet 50 to an economizer port 58 of the compressor.
An exemplary compressor (
The housing defines a motor compartment 160 containing a stator 162 of the motor within the compartment. A rotor 164 of the motor is partially within the stator and is mounted for rotation about a rotor axis 500. The exemplary mounting is via one or more bearing systems 166, mounting a shaft 170 of the rotor to the housing assembly. The exemplary impeller 154 is mounted to its own shaft 172 to rotate about an axis 502. An exemplary bearing system 174 mounts an intermediate portion of the shaft 172 to an intermediate wall 178 of the housing assembly.
The outlet 214 of the impeller is surrounded by a diffuser 220. The diffuser has a circumferential array of passageways 222 extending from inlets 224 to outlets 226. Each passageway is a partial tangential orientation and has a cross-sectional area increasing from upstream/inboard to downstream/outboard. The outlets are along a discharge plenum 228.
The exact location of the intersection of the economizer flowpath and the main flowpath may be chosen based upon anticipated system conditions. As noted above, a convenient location is exactly between the impeller outlet and diffuser inlet. However, locations more downstream within the diffuser are possible (e.g., between 0% and 70% of a length from the diffuser inlet to the diffuser outlet, more narrowly, 0-50% or 10-50%).
Although shown implemented in the context of pipe diffusers, such economizer flow introduction may be similarly implemented to vaned diffusers. Additionally, such economizer introduction may be applied to vaneless diffusers.
Although an embodiment is described above in detail, such description is not intended for limiting the scope of the present disclosure. It will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. For example, when applied to the reengineering of an existing compressor or a compressor in an existing application, details of the existing compressor or application may influence details of any particular implementation. Accordingly, other embodiments are within the scope of the following claims.
Claims
1. A centrifugal compressor comprising:
- a housing assembly having a suction port, a discharge port, and an economizer port;
- an impeller mounted to be driven in at least a first condition so as to draw a main flow of fluid in through the suction port and discharge said fluid out from the discharge port;
- a diffuser having one or more diffuser passages each having an inlet positioned to receive fluid from the impeller and an outlet downstream of the inlet in the first condition; and
- one or more passages positioned to draw an economizer flow of fluid from the economizer port and deliver the economizer flow between the impeller and the diffuser passage inlets.
2. The compressor of claim 1 further comprising:
- an electric motor having: a stator within a motor compartment of the case; and a rotor within the stator, the rotor being mounted for rotation about a rotor axis.
3. The compressor of claim 1 wherein:
- the one or more passages are positioned to deliver said economizer flow of fluid through a gap between an impeller shroud and the diffuser.
4. The compressor of claim 1 wherein:
- the impeller shroud is a portion of the housing assembly between the impeller and the diffuser passage inlets.
5. The compressor of claim 1 wherein:
- the compressor is a single-stage compressor.
6. The compressor of claim 1 wherein:
- the one or more passages are further positioned to pass said economizer flow of fluid through a chamber along an outboard portion of an impeller shroud.
7. A vapor compression system comprising:
- the compressor of claim 1;
- a first heat exchanger coupled to the discharge port to receive refrigerant driven in a downstream direction in the first operational condition of the compressor;
- an expansion device downstream of the first heat exchanger;
- a second heat exchanger downstream of the expansion device and coupled to the suction port to return refrigerant in the first operating condition; and
- wherein an economizer flowpath branches off between the first heat exchanger and the expansion device and passes through the economizer port.
8. The system of claim 7 wherein the economizer flowpath passes:
- through an economizer expansion device; and then through a leg of an economizer heat exchanger, the leg in heat transfer relation with another leg upstream of the expansion device along the main flowpath.
9. The system of claim 8 wherein:
- the first heat exchanger is a heat rejection heat exchanger; and
- the second heat exchanger is a heat absorption heat exchanger.
10. A method for operating the compressor of claim 1 comprising:
- driving the motor to draw the main flow of fluid in through the suction port and discharge the fluid from the discharge port;
- drawing the economizer flow of fluid through the one or more passages; and
- passing the economizer flow of fluid through the diffuser to merge with the main flow of fluid.
11. The method of claim 10 wherein:
- the compressor is used in a vapor compression system having a heat rejection heat exchanger, an expansion device, and a heat absorption heat exchanger, wherein:
- the main flow of fluid is drawn through the suction port from the heat absorption heat exchanger;
- the discharge flow of fluid is discharged from the discharge port to the heat rejection heat exchanger;
- fluid from the heat rejection heat exchanger is expanded in the expansion device;
- fluid expanded in the expansion device is delivered to the heat absorption heat exchanger; and
- a portion of the fluid delivered to the heat rejection heat exchanger bypasses the heat absorption heat exchanger and passes as said economizer flow of fluid.
12. The method of claim 10 wherein:
- there is a single-stage of compression.
13. The compressor of claim 1 wherein:
- the compressor is a single-stage compressor.
14. The compressor of claim 1 wherein:
- the diffuser surrounds the impeller.
15. The compressor of claim 1 wherein:
- the one or more diffuser passages is a circumferential array of diffuser passages.
16. The compressor of claim 1 wherein:
- the diffuser is a pipe diffuser or vaned diffuser.
Type: Application
Filed: May 31, 2012
Publication Date: Jul 3, 2014
Applicant: Carrier Corporation (Farmington, CT)
Inventors: Vishnu M. Sishtla (Manlius, NY), Joost Brasz (Fayetteville, NY)
Application Number: 14/006,326
International Classification: F25B 1/053 (20060101); F04D 25/06 (20060101); F04D 29/44 (20060101);