EXPANSION SWITCH VALVE
20190257560 ยท 2019-08-22
Assignee
Inventors
Cpc classification
F16K1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/0411
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/325
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2515
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/345
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B30/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
This disclosure discloses an expansion switch valve, including a valve body, where an inlet, an outlet, and an internal passage in communication between the inlet and the outlet are formed on the valve body, a first valve plug and a second valve plug are mounted on the internal passage, the first valve plug makes the inlet and the outlet in direct communication or out of communication, and the second valve plug makes the inlet and the outlet in communication through a throttle port or out of communication.
Claims
1. An expansion switch valve, comprising a valve body, wherein an inlet, an outlet, and an internal passage in communication between the inlet and the outlet are formed on the valve body, a first valve plug and a second valve plug are mounted on the internal passage, the first valve plug makes the inlet and the outlet in direct communication or out of communication, and the second valve plug makes the inlet and the outlet in communication through a throttle port or out of communication.
2. The expansion switch valve according to claim 1, wherein the internal passage comprises a first passage and a second passage that are separately in communication with the inlet, a first valve port fitting the first valve plug is formed on the first passage, the throttle port is formed on the second passage to form a second valve port fitting the second valve plug, and the first passage and the second passage converge downstream of the second valve port and are in communication with the outlet.
3. The expansion switch valve according to claim 2, wherein the second passage and the outlet are provided in a same direction, the first passage forms a first through hole perpendicular to the second passage, the inlet is in communication with the second passage through a second through hole provided in a sidewall of the second passage, and the first through hole is in communication with the second through hole and the inlet separately.
4. The expansion switch valve according to claim 1, wherein the inlet and the outlet are provided on the valve body perpendicularly to each other.
5. The expansion switch valve according to claim 2, wherein the first valve plug is disposed coaxially with the first valve port along a moving direction, to selectively plug up or detach from the first valve port.
6. The expansion switch valve according to claim 2, wherein the second valve plug is disposed coaxially with the second valve port along a moving direction, to selectively plug up or detach from the second valve port.
7. The expansion switch valve according to claim 5, wherein the first valve plug comprises a first valve stem and a first plug connected to an end portion of the first valve stem, and the first plug is used for pressing against an end face of the first valve in a sealing manner, to plug up the first passage.
8. The expansion switch valve according to claim 6, wherein the second valve plug comprises a second valve stem, an end portion of the second valve stem forms a conical head structure, and the second valve port forms a conical hole structure fitting the conical head structure.
9. An expansion switch valve according to claim 1, wherein the valve body comprises a valve base that forms the internal passage and a first valve housing and a second valve housing mounted on the valve base, a first electromagnetic drive portion used for driving the first valve plug is mounted inside the first valve housing, a second electromagnetic drive portion used for driving the second valve plug is mounted inside the second valve housing, the first valve plug extends from the first valve housing to the internal passage inside the valve base, and the second valve plug extends from the end proximal to the second valve housing to the internal passage inside the valve base.
10. The expansion switch valve according to claim 9, wherein the valve base is formed as a polyhedral structure, the first valve housing, the second valve housing, the inlet, and the outlet are separately disposed on different surfaces of the polyhedral structure, wherein installation directions of the first valve housing and the second valve housing are perpendicular to each other, and opening directions of the inlet and the outlet are perpendicular to each other.
11. The expansion switch valve according to claim 2, wherein the inlet and the outlet are provided on the valve body perpendicularly to each other.
12. The expansion switch valve according to claim 3, wherein the inlet and the outlet are provided on the valve body perpendicularly to each other.
13. The expansion switch valve according to claim 3, wherein the first valve plug is disposed coaxially with the first valve port along a moving direction, to selectively plug up or detach from the first valve port.
14. The expansion switch valve according to claim 3, wherein the second valve plug is disposed coaxially with the second valve port along a moving direction, to selectively plug up or detach from the second valve port.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Accompanying drawings are used to provide further understanding on this disclosure, constitute a part of this specification, and are used, together with the following specific implementations, to explain this disclosure, but do not constitute limitations to this disclosure, wherein:
[0017]
[0018]
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[0020]
[0021]
[0022]
[0023]
[0024]
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[0027]
DESCRIPTION OF THE REFERENCE SIGNS
[0028] 500: Valve body; 501: Inlet; 502: Outlet; [0029] 503: First valve plug; 513: First valve stem; 523: First plug; [0030] 504: Second valve plug; 514: Second valve stem; 505: Throttle port; [0031] 506: First passage; 516: First valve port; 526: First through hole; [0032] 507: Second passage; 517: Second valve port; 527: Second through hole; [0033] 510: Valve base; 511: First valve housing; 521: First electromagnetic drive portion; [0034] 512: Second valve housing; and 522: Second electromagnetic drive portion.
DETAILED DESCRIPTION
[0035] Specific implementations of this disclosure are described in detail below with reference to the accompanying drawings. It should be understood that the specific implementations described herein are merely used to describe and explain this disclosure rather than limit this disclosure.
[0036] In this disclosure, unless contrarily described, the used locality terms, such as up, down, left, and right, are usually relative to graphical directions of the accompanying drawings. Upstream and downstream are relative to a flowing direction of a medium such as a refrigerant. Specifically, being in a direction the same as a flowing direction of the refrigerant is being downstream, and being in a direction opposite to the flowing direction of the refrigerant is being upstream. Inside and outside indicate being inside and outside a contour of a component.
[0037] As shown in
[0038] The direct communication implemented by the first valve plug means that the refrigerant entered from the inlet 501 of the valve body 500 can bypass the first valve plug and directly flow to the outlet 502 of the valve body 500 through the internal passage without being affected, and the out of communication implemented by the first valve plug means that the refrigerant entered from the inlet 501 of the valve body 500 cannot bypass the first valve plug and cannot flow to the outlet 502 of the valve body 500 through the internal passage. The communication through a throttle port implemented by the second valve plug means that the refrigerant entered from the inlet 501 of the valve body 500 can bypass the second valve plug and flow to the outlet 502 of the valve body 500 after being throttled by a throttle port, and the out of communication implemented by the second valve plug means that the refrigerant entered from the inlet 501 of the valve body 500 cannot bypass the second valve plug and cannot flow to the outlet 502 of the valve body 500 through the throttle port 505.
[0039] In this way, the expansion switch valve in this disclosure can achieve at least three states of the refrigerant entered from the inlet 501 by controlling the first valve plug and the second valve plug: (1) a closed state; (2) a direct communication state by bypassing the first valve plug 503; and (3) a throttled communication manner by bypassing the second valve plug 504.
[0040] After being throttled by the throttle port 505, a high-temperature high-pressure liquid refrigerant may become a low-temperature low-pressure atomized liquid refrigerant. This creates a condition for evaporation of the refrigerant. That is, a cross sectional area of the throttle port 505 is smaller than a cross sectional area of the outlet 502, and an opening degree of the throttle port 505 may be adjusted by controlling the second valve plug, to control an amount of flow passing through the throttle port 505, thereby avoiding insufficient refrigeration caused by an excessively small amount of refrigerant and avoiding a liquid slugging phenomenon in the compressor that is caused by an excessively large amount of refrigerant. That is, cooperation between the second valve plug 504 and the valve body 500 can make the expansion switch valve have the expansion valve function.
[0041] In this way, an opening/closure control function and/or a throttle control function of the inlet 501 and the outlet 502 can be implemented by mounting the first valve plug 503 and the second valve plug 504 on the internal passage of the same valve body 500. A structure is simple, and production and installation are easy. In addition, when the expansion switch valve provided in this disclosure is applied to a heat pump system, a filling amount of refrigerant of the entire heat pump system is reduced, costs are reduced, pipeline connections are simplified, and oil return of the heat pump system is facilitated.
[0042] As an exemplary internal installation structure of the valve body 500, as shown in
[0043] A location of the first valve plug 503 can be easily controlled by controlling power-on or power-off of the first electromagnetic drive portion 521 (for example, an electromagnetic coil), to control direct-communication or out-of-communication between the inlet 501 and the outlet 502. A location of the second valve plug 504 can be easily controlled by controlling power-on or power-off of the second electromagnetic drive portion 522 (for example, an electromagnetic coil), to control whether the inlet 501 and the outlet 502 are in communication with the throttle port 505. In other words, an electronic expansion valve and an electromagnetic valve that share the inlet 501 and the outlet 502 are connected in parallel and mounted in the valve body 500. Therefore, automated control on opening/closure and/or throttling of the expansion switch valve can be implemented, and pipeline arrangement can be simplified.
[0044] To fully use spatial locations of the expansion switch valve in different directions and avoid connections between the expansion switch valve and different pipelines from interfering with each other, the valve base 510 is of a polyhedral structure, the first valve housing 511, the second valve housing 512, the inlet 501, and the outlet 502 are respectively disposed on different surfaces of the polyhedral structure, installation directions of the first valve housing 511 and the second valve housing 512 are perpendicular to each other, and opening directions of the inlet 501 and the outlet 502 are perpendicular to each other. In this way, inlet and outlet pipelines can be connected to the different surfaces of the polyhedral structure, thereby avoiding a problem of disordered and twisted pipeline arrangement.
[0045] As a typical internal structure of the electromagnetic expansion valve, as shown in
[0046] That is, the first valve port 516 is closed or opened by changing the location of the first valve plug 503, to control closure or opening of the first passage 506 in communication between the inlet 501 and the outlet 502, thereby implementing the opening or closure function of the electromagnetic valve described above. Similarly, the second valve port 517 is open or closed by changing the location of the second valve plug 504, thereby implementing the throttle function of the electronic expansion valve.
[0047] The first passage 506 and the second passage 507 can be respectively in communication with the inlet 501 and the outlet 502 in any suitable arrangement manner. To reduce an overall occupied space of the valve body 500, as shown in
[0048] To further reduce the overall occupied space of the valve body 500, as shown in
[0049] As shown in
[0050] To easily close and open the second valve port 517, the second valve plug 504 is disposed coaxially with the second valve port 517 along a moving direction, to selectively plug up or detach from the second valve port 517.
[0051] As shown in
[0052] To easily adjust the opening degree of the throttle port 505 of the expansion switch valve, as shown in
[0053] The opening degree of the throttle port 505 of the expansion switch valve may be adjusted by moving the second valve plug 504 upward and downward, and the upward and downward moving of the second valve plug 504 may be adjusted by using the second electromagnetic drive portion 522. If the opening degree of the throttle port 505 of the expansion switch valve is zero, as shown in
[0054] During use, when only the electromagnetic valve function of the expansion switch valve needs to be used, as shown in
[0055] It should be noted that in
[0056] When only the electronic expansion valve function of the expansion switch valve needs to be used, as shown in
[0057] It should be noted that in
[0058] When both the electromagnetic valve function and the electronic expansion valve function of the expansion switch valve need to be used, as shown in
[0059] Although preferred implementations of this disclosure are described in detail above with reference to the accompanying drawings, this disclosure is not limited to specific details in the foregoing implementations. Various simple variations can be made to the technical solutions of this disclosure within the scope of the technical idea of the present invention, and such simple variations all fall within the protection scope of this disclosure.
[0060] It should be further noted that the specific technical features described in the foregoing specific implementations can be combined in any appropriate manner provided that no conflict occurs. To avoid unnecessary repetition, various possible combination manners will not be described in the present invention.
[0061] In addition, various different implementations of this disclosure may alternatively be combined randomly. Such combinations should also be considered as the content disclosed in this disclosure provided that these combinations do not depart from the concept of this disclosure.