Slide valve for a twin-screw compressor
11913453 ยท 2024-02-27
Assignee
- Johnson Controls Tyco IP Holdings Llp (Milwaukee, WI)
- Johnson Controls Air Conditioning and Refrigeration (Wuxi) Co., Ltd. (Jiangsu, CN)
Inventors
Cpc classification
F04C28/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K3/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03C4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C28/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present application provides a slide valve, wherein the slide valve is configured to regulate a load of a twin-screw compressor. The slide valve comprises a slide valve body, wherein the slide valve body has a connecting end and a free end, the connecting end is configured to connect to a slide valve connecting rod of the twin-screw compressor, and the slide valve is driven to slide by the slide valve connecting rod. A cavity is formed in the free end of the slide valve body, and the slide valve has a passage configured to fluidly couple the cavity with an external fluid to reduce air flow pulsations on a suction side of the twin-screw compressor and thereby reduce overall air flow pulsations in the twin-screw compressor.
Claims
1. A slide valve configured to regulate a load of a twin-screw compressor, comprising: a slide valve body of the slide valve, wherein the slide valve body has a connecting end and a free end, the connecting end is configured to connect to a slide valve connecting rod of the twin-screw compressor, the slide valve is configured to be driven by the slide valve connecting rod, the free end of the slide valve body comprises an end face configured to at least partially define an air return passage of the twin-screw compressor, a cavity is formed in the end face of the free end and extends into the slide valve body, the slide valve has at least one passage configured to fluidly couple the cavity to an external fluid to reduce air flow pulsations on a suction side of the twin-screw compressor, the at least one passage is configured to fluidly couple the cavity to the air return passage to enable flow of the external fluid from the air return passage into the cavity, the cavity is one of a plurality of cavities formed in the free end, and each cavity of the plurality of cavities has its own single passage.
2. The slide valve of claim 1, wherein the cavity and the at least one passage are formed directly in the end face of the free end of the slide valve body.
3. The slide valve of claim 1, wherein at least two respective passages corresponding to at least two cavities of the plurality of cavities comprise different sizes, different shapes, or both, relative to one another.
4. The slide valve of claim 1, wherein a first cavity of the plurality of cavities extends a first distance from the end face of the free end into the slide valve body, a second cavity of the plurality of cavities extends a second distance from the end face of the free end into the slide valve body, and the first distance and second distance are different from one another.
5. The slide valve of claim 1, wherein each single passage comprises a circular geometry.
6. The slide valve of claim 1, wherein the slide valve body is an integrally formed, one-piece structure.
7. The slide valve of claim 1, wherein the slide valve body comprises a first rotor contact surface and a second rotor contact surface, wherein the first rotor contact surface is configured to contact a first screw rotor of the twin-screw compressor, and the second rotor contact surface is configured to contact a second screw rotor of the twin-screw compressor.
8. A slide valve configured to regulate a load of a twin-screw compressor, comprising: a slide valve body of the slide valve, wherein the slide valve body has a connecting end and a free end, the connecting end is configured to connect to a slide valve connecting rod of the twin-screw compressor, the slide valve is configured to be driven by the slide valve connecting rod, a cavity is formed in the free end and extends into the slide valve body, the slide valve has at least one passage configured to fluidly couple the cavity to an external fluid to reduce air flow pulsations on a suction side of the twin-screw compressor, wherein the cavity and the at least one passage are formed directly in an end face of the free end of the slide valve body, wherein the cavity is one of a plurality of cavities formed in the free end, the plurality of cavities comprises a first set of cavities, each cavity of the first set of cavities having a single passage, and wherein the plurality of cavities comprises a second cavity, and wherein the second cavity is not in the first set of cavities, and the second cavity has a plurality of passages.
9. The slide valve of claim 8, wherein at least two single passages corresponding to at least two cavities of the first set of cavities comprise different sizes, different shapes, or both, relative to one another.
10. The slide valve of claim 8, wherein the second cavity is larger than each cavity of the first set of cavities.
11. The slide valve of claim 8, wherein the slide valve body is an integrally formed, one-piece structure.
12. A slide valve configured to regulate a load of a twin-screw compressor, comprising: a slide valve body of the slide valve, wherein the slide valve body has a connecting end and a free end, the connecting end is configured to connect to a slide valve connecting rod of the twin-screw compressor, the slide valve is configured to be driven by the slide valve connecting rod, a cavity is formed in the free end and extends into the slide valve body, the slide valve has at least one passage configured to fluidly couple the cavity to an external fluid to reduce air flow pulsations on a suction side of the twin-screw compressor, the free end of the slide valve body comprises an end face configured to at least partially define an air return passage of the twin-screw compressor, the cavity is formed in the end face, and the at least one passage is configured to fluidly couple the cavity to the air return passage to enable flow of the external fluid from the air return passage into the cavity.
13. The slide valve of claim 12, wherein the slide valve body comprises a plurality of cavities formed in the free end, the plurality of cavities comprises the cavity, the slide valve body comprises a plurality of passages, and the plurality of passages comprises the at least one passage.
14. The slide valve of claim 13, wherein at least two passages of the plurality of passages comprise different sizes, different shapes, or both, relative to one another.
15. The slide valve of claim 12, wherein the slide valve body is an integrally formed, one-piece structure.
16. The slide valve of claim 12, wherein the slide valve body comprises a first rotor contact surface and a second rotor contact surface, wherein the first rotor contact surface is configured to contact a first screw rotor of the twin-screw compressor, and the second rotor contact surface is configured to contact a second screw rotor of the twin-screw compressor.
Description
DESCRIPTION OF DRAWINGS
(1) These and other characteristics and advantages of the present disclosure can be better understood by reading the following description with reference to the drawings. In all the drawings, the same reference number represents the same component, wherein
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DETAILED DESCRIPTION
(13) The following will describe various specific implementation modes of the present disclosure by reference to the drawings which constitute a part of the present description. It should be understood that although the terms indicating directions, such as before, behind, above, below, left, and right are used in the present disclosure to describe various exemplified structural parts and components of the present disclosure, these terms are just used for the convenience of illustrations and are determined based on the exemplified directions in the drawings. Since the embodiments disclosed in the present disclosure can be set in different directions, these terms indicating directions are only used for illustrations, instead of restrictions. In the following drawings, the same components use the same reference numbers, and similar components use similar reference numbers so as to avoid repeated descriptions.
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(16) To more clearly show the relationship between the slide valve (100) and the screw rotors (92) of the twin-screw compressor (90),
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(18) As shown in
(19) To show the internal structure of the slide valve body (201),
(20) When air flow of the twin-screw compressor (90) pulsates, the cavity (220) accommodates the pulsating air flow by absorbing energy of the air flow pulsations and buffering the air flow. Thus, air flow pulsations are reduced, and vibrations and noise of the twin-screw compressor (90) are alleviated.
(21) As an exemplified embodiment, the cavity (220) can be an integral cavity (220), as shown in
(22) As another implementation of the present disclosure, no cover (223) may be provided on the end face (224) of the free end (205) of the slide valve body (201). As shown in
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(24) The slide valve body (201) can have different shapes, depending on the type of the twin-screw compressor (90) having the slide valve body (201). As an exemplified embodiment,
(25) The free end extension portion (408) has holes (429) on a surface of the free end extension portion (408). Specifically, as shown in
(26) Similar to
(27) The slide valve body (101) of the present disclosure can be integrally formed as a one piece structure, via the use of molds, or the slide valve body can be formed by machining a conventional slide valve body. The machining method is simple and easy to realize.
(28) Although some characteristics of the present disclosure are shown and described in the present discussion, those skilled in the art can make various improvements and modifications. Therefore, it should be understood that the attached claims are intended to cover the above-mentioned improvements and modifications within the spirit and scope of the present disclosure.