Compressor system including a plurality of compressors
10330093 ยท 2019-06-25
Assignee
Inventors
- Liang Fan (Tianjin, CN)
- David Genevois (Tianjin, CN)
- Shuguang Zhang (Tianjin, CN)
- Peng Liu (Tianjin, CN)
- Ying Dong (Tianjin, CN)
- Kongkham Lovan (Tianjin, CN)
Cpc classification
F25B43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B41/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B31/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0207
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0284
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0269
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/0751
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B41/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A compressor system includes: at least one variable-speed compressor, at least one fixed-speed compressor, a main suction pipe and a main discharge pipe; respective suction pipes of the variable-speed compressor and the fixed-speed compressor are connected to the main suction pipe in parallel, and respective discharge pipes of the variable-speed compressor and the fixed-speed compressor are connected to the main discharge pipe in parallel. The main suction pipe is configured with an oil-gas separation fitting structure, and the oil-gas separation fitting structure is designed to enable most oil of oil-gas mixture from the main suction pipe to move into the variable-speed compressor, and to make the variable-speed compressor stay in an oil-rich state.
Claims
1. A compressor system, comprising at least one variable-speed compressor, at least one fixed-speed compressor, a main suction pipe and a main discharge pipe; wherein respective suction pipes of the variable-speed compressor and the fixed-speed compressor are connected to the main suction pipe in parallel, and respective discharge pipes of the variable-speed compressor and the fixed-speed compressor are connected to the main discharge pipe in parallel; wherein the main suction pipe is configured with an oil-gas separation fitting structure, and the oil-gas separation fitting structure comprises: a first opening connected with the main suction pipe, configured to introduce oil-gas mixture from the main suction pipe into the oil-gas separation fitting structure; a second opening which is in communication with the fixed-speed compressor, configured to introduce gas of the oil-gas mixture from the main suction pipe into the fixed-speed compressor; a third opening which is only in communication with the variable-speed compressor, configured to introduce most of the oil of the oil-gas mixture from the main suction pipe only into the variable-speed compressor, and to make the variable-speed compressor stay in an oil-rich state; and the first opening, the second opening and the third opening are configured in such a way that the oil-gas mixture enters the first opening, passes the third opening and then flows to the second opening.
2. The compressor system of claim 1, wherein the second opening is configured to be connected with a first pipeline extending to the fixed-speed compressor; the third opening is configured to be connected with a second pipeline extending to the variable-speed compressor.
3. The compressor system of claim 2, wherein the first pipeline and the oil-gas separation fitting structure are made as a one-piece part, and/or the second pipeline and the oil-gas separation fitting structure are made as a one-piece part.
4. The compressor system of claim 2, wherein the first pipeline is configured to be welded to the oil-gas separation fitting structure, and/or the second pipeline is configured to be welded to the oil-gas separation fitting structure.
5. The compressor system of claim 2, wherein the oil-gas separation fitting structure comprises a main body, and an axis of the main body is in a horizontal direction; wherein the first pipeline is configured to extend along a direction of the axis of the main body; the second pipeline is configured to extend along a downward direction perpendicular to the axis of the main body, and to introduce most of the oil in the oil-gas mixture from the main suction pipe into the variable-speed compressor along sidewall of the second pipeline due to gravity.
6. The compressor system of claim 2, wherein the oil-gas separation fitting structure comprises a main body, and an axis of the main body is in a horizontal direction; wherein the first pipeline is configured to extend along an upward direction perpendicular to the axis of the main body; the second pipeline is configured to extend along a direction of the axis of the main body, and to introduce most of the oil in the oil-gas mixture from the main suction pipe into the variable-speed compressor along with a gas flow direction.
7. The compressor system of claim 2, wherein the oil-gas separation fitting structure comprises a main body, and an axis of the main body is in a horizontal direction; wherein the first pipeline is configured to extend along a downward direction perpendicular to the axis of the main body; the second pipeline is configured to extend along a direction of the axis of the main body; wherein the first pipeline is configured with a wedge or nozzle structure at an end of the first pipeline close to the second opening, and the wedge or nozzle structure has a shape for preventing oil entrance to the second opening so that most of the oil in the oil-gas mixture from the main suction pipe moves to the variable-speed compressor along with a gas flow direction.
8. The compressor system of claim 7, wherein the wedge structure comprises a first part and a second part; wherein the first part is at an end where the first pipeline inserts into the oil-gas separation fitting structure and which is at upstream of a gas flow direction; wherein the second part at the end where the first pipeline inserts into the oil-gas separation fitting structure and which is at downstream of the gas flow direction; wherein a length of the first part inside the oil-gas separation fitting structure is larger than a length of the second part inside the oil-gas separation fitting structure.
9. The compressor system of claim 2, wherein the oil-gas separation fitting structure comprises a main body, and an axis of the main body is in a vertical direction; wherein the first pipeline is configured to extend along a direction perpendicular to the axis of the main body; the second pipeline is configured to extend along a direction of the axis of the main body; wherein the first pipeline is configured with a wedge or nozzle structure at an end of the first pipeline closed to the second opening, and the wedge or nozzle structure has a shape for preventing oil entrance to the second opening so that most of the oil in the oil-gas mixture from the main suction pipe is introduced to the variable-speed compressor due to gas flow and gravity.
10. The compressor system of claim 9, wherein the wedge structure comprises a first part and a second part; wherein the first part is at an end where the first pipeline inserts into the oil-gas separation fitting structure and which is upstream in a gas flow direction; wherein the second part at the end where the first pipeline inserts into the oil-gas separation fitting structure and which is downstream in the gas flow direction; wherein a length of the first part inside the oil-gas separation fitting structure is larger than a length of the second part inside the oil-gas separation fitting structure.
11. The compressor system of claim 2, wherein an axis of the second opening is perpendicular to an axis of the third opening.
12. The compressor system of claim 1, wherein an axis of the second opening is perpendicular to an axis of the third opening.
13. The compressor system of claim 12, further comprising an oil-gas balancing pipe; wherein an end of the oil-gas balancing pipe is configured to connect to an oil sump of the variable-speed compressor, and an other end of the oil-gas balancing pipe is configured to connect to an oil sump of the fixed-speed compressor; wherein the oil-gas balancing pipe is configured to reduce a pressure difference between the variable-speed compressor and the fixed-speed compressor when the variable-speed compressor is working at a low frequency, to avoid too much oil from being transferred from the variable-speed compressor to the fixed-speed compressor via the oil-gas balancing pipe, and to implement oil and gas balance between the variable-speed compressor and the fixed-speed compressor.
14. The compressor system of claim 12, further comprising an oil balancing pipe and a gas balancing pipe; wherein an end of the oil balancing pipe is connected to an oil sump of the variable-speed compressor, and an other end of the oil balancing pipe is connected to an oil sump of the fixed-speed compressor; the oil balancing pipe is configured to balance respective oil levels of respective oil sumps in the variable-speed compressor and the fixed-speed compressor; wherein an end of the gas balancing pipe is connected to an upper part of the oil sump in the variable-speed compressor, and an other end of the gas balancing pipe is connected to an upper part of the oil sump in the fixed-speed compressor; the gas balancing pipe is configured to reduce pressure difference between the variable-speed compressor and the fixed-speed compressor when the variable-speed compressor is working at a low frequency, to avoid too much oil transferred from the variable-speed compressor to the fixed-speed compressor via the oil balancing pipe.
15. The compressor system of claim 12, wherein there is one variable-speed compressor and one fixed-speed compressor.
16. The compressor system of claim 1, further comprising an oil-gas balancing pipe; wherein an end of the oil-gas balancing pipe is configured to connect to an oil sump of the variable-speed compressor, and an other end of the oil-gas balancing pipe is configured to connect to an oil sump of the fixed-speed compressor; wherein the oil-gas balancing pipe is configured to reduce a pressure difference between the variable-speed compressor and the fixed-speed compressor when the variable-speed compressor is working at a low frequency, to avoid too much oil from being transferred from the variable-speed compressor to the fixed-speed compressor via the oil-gas balancing pipe, and to implement oil and gas balance between the variable-speed compressor and the fixed-speed compressor.
17. The compressor system of claim 16, wherein an axis of the oil-gas balancing pipe is at a position that corresponds to respective standard oil levels of respective oil sumps in the variable-speed compressor and the fixed-speed compressor, wherein the oil-gas balancing pipe is full with gas at an upper part and is full with oil at a lower part.
18. The compressor system of claim 1, further comprising an oil balancing pipe and a gas balancing pipe; wherein an end of the oil balancing pipe is connected to an oil sump of the variable-speed compressor, and an other end of the oil balancing pipe is connected to an oil sump of the fixed-speed compressor; the oil balancing pipe is configured to balance respective oil levels of respective oil sumps in the variable-speed compressor and the fixed-speed compressor; wherein an end of the gas balancing pipe is connected to an upper part of the oil sump in the variable-speed compressor, and an other end of the gas balancing pipe is connected to an upper part of the oil sump in the fixed-speed compressor; the gas balancing pipe is configured to reduce pressure difference between the variable-speed compressor and the fixed-speed compressor when the variable-speed compressor is working at a low frequency, to avoid too much oil transferred from the variable-speed compressor to the fixed-speed compressor via the oil balancing pipe.
19. The compressor system of claim 18, wherein the oil balancing pipe is arranged below respective standard oil levels of the variable-speed compressor and the fixed-speed compressor, and the gas balancing pipe is arranged above the respective standard oil levels.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be described in the description with reference to the embodiments in combination with the accompanying drawings, where:
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DETAILED DESCRIPTION
(10) The following further describes the technical solutions of the present invention in detail with reference to the embodiments and in combination with the accompanying drawings. In the specification, same or similar reference signs indicate same or similar components. The following description to implementation manners of the present invention with reference to the accompanying drawings is intended to explain the embodiments of the present invention, and should not be construed as a limitation to the present invention.
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(12) In addition, as shown in
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(14) In this embodiment, the first pipeline 7a1 and the oil-gas separation fitting structure 5a may be made as a one-piece part, and/or the second pipeline 8a1 and the oil-gas separation fitting structure 5a may be made as a one-piece part. Or the first pipeline 7a1 is welded to the oil-gas separation fitting structure 5a, and/or the second pipeline 8a1 is welded to the oil-gas separation fitting structure 5a.
(15) In this embodiment, as shown in
(16) The compressor system according to an embodiment of the present invention may further include an oil level switch (not shown). The oil level switch is configured at a position which is a security oil level of an oil sump of the variable-speed compressor 1, and is configured to detect an oil level of the variable-speed compressor 1. In addition to the oil-gas separation fitting structure, the oil level switch is used to monitor the oil level of the variable-speed compressor 1 so as to further ensure that the variable-speed compressor 1 always would stay in an oil-rich state.
(17) According to an embodiment of the present invention, the compressor system may further include an oil-gas balancing pipe 9. As shown in
(18) According to an embodiment of the present invention, an axial of the oil-gas balancing pipe 9 is at a position which is a standard oil level of respective oil sumps of the variable-speed compressor 1 and the fixed-speed compressor 2. Under a standard working condition, the oil-gas balancing pipe 9 is full with gas at an upper part and is full with oil at a lower part. During operation of the compressor system, the pressure difference may be balanced through the upper part of the oil-gas balancing pipe 9, and the oil may be balanced by the lower part of the oil-gas balancing pipe 9. Therefore, oil balance in a system including the variable-speed compressor and the fixed-speed compressor may be implemented more effectively to keep the variable-speed compressor in an oil-rich state.
(19) In another embodiment, the compressor system may include an oil balancing pipe and a gas balancing pipe (not shown). An end of the oil balancing pipe is connected to an oil sump of the variable-speed compressor 1, and the other end of the oil balancing pipe is connected to an oil sump of the fixed-speed compressor 2; the oil balancing pipe is configured to balance respective oil levels in respective oil sumps of the variable-speed compressor 2 and the fixed-speed compressor 1. An end of the gas balancing pipe is connected to an upper part of the oil sump of the variable-speed compressor 1, and the other end of the gas balancing pipe is connected to the upper part of the oil sump of the fixed-speed compressor 2. The gas balancing pipe is configured to reduce pressure difference between the variable-speed compressor and the fixed-speed compressor when the variable-speed compressor 1 is working at a low frequency, and thereby to avoid too much oil transferred from the variable-speed compressor 1 to the fixed-speed compressor 2 via the oil balancing pipe.
(20) In an implementation manner, the oil balancing pipe is lower than the standard oil position of the variable-speed compressor 1 and the fixed-speed compressor 2, and the gas balancing pipe is above the standard oil position.
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(22) As shown in
(23) As shown in
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(25) As shown in
(26) As shown in
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(28) As shown in
(29) As shown in
(30) A operating process of the compressor system will be briefly described hereinafter according to the foregoing embodiments.
(31) The oil-gas mixture from the main suction pipe is introduced into the oil-gas separation fitting structure via the first opening.
(32) As described above, oil and gas in the oil-gas mixture are separated in the oil-gas separation fitting structure due to the gas flow and/or the gravity, or because of the wedge or nozzle structure in the oil-gas separation fitting structure.
(33) The gas in the oil-gas mixture enters the first pipeline via the second opening, and is introduced into the fixed-speed compressor; and most of the oil in the oil-gas mixture enters the second pipeline via the third opening, and is introduced into the variable-speed compressor, so as to keep the variable-speed compressor in an oil-rich state. Because the variable-speed compressor can always stay in the oil-rich state, it can be ensured that the variable-speed compressor keeps in a normal working state, and it is thereby not necessary to frequently start and stop the variable-speed compressor. Consequently, a stable operation of the compressor system is ensured.
(34) In addition, the oil-gas balancing pipe can reduce the pressure difference between the variable-speed compressor and the fixed-speed compressor when the variable-speed compressor is working at a low frequency, thereby avoiding too much oil transferred from the variable-speed compressor to the fixed-speed compressor via the oil-gas balancing pipe. Oil and gas balance between the variable-speed compressor and the fixed-speed compressor can thereby be realized, and the variable-speed compressor can be kept in the rich oil state.
(35) Although the foregoing embodiments illustrate the present invention by using a compressor system including only one variable-speed compressor and one fixed-speed compressor as an example, it is obvious to persons skilled in the art that the foregoing embodiments can also be applied in a compressor system including multiple variable-speed compressors and multiple fixed-speed compressors.
(36) The above are only some exemplary embodiments of the present invention, persons of ordinary skill in the art may understand that modifications may be made to these embodiments without departing from the principal and spirit of the general conception of the present invention, and the scope of the present invention is limited by claims and their equivalents.
(37) While the present disclosure has been illustrated and described with respect to a particular embodiment thereof, it should be appreciated by those of ordinary skill in the art that various modifications to this disclosure may be made without departing from the spirit and scope of the present disclosure.