Pipeline arrangement structure of valve integrated structure
By setting annular sealing blocks, raised blocks and inclined extrusion grooves on the air pipe connector and the air inlet joint, the problem of cumbersome operation of connecting the air pipe and the valve body is solved, quick connection and disassembly are achieved, and the efficiency of pipeline layout is improved.
Patent Information
- Application Number
- CN202422937684.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-11-29
AI Technical Summary
During the pipeline layout of the valve integrated structure, the connection operation between the air pipe and the valve body is cumbersome, resulting in a long connection time and affecting the layout efficiency.
A valve-integrated structure and pipeline layout structure is designed. By arranging annular sealing blocks, protruding blocks and inclined extrusion grooves on the trachea connector and the air intake joint, the rapid connection and disassembly of the trachea connector and the air intake joint can be achieved.
The connection and disassembly operations between the air pipe and the valve body are simplified, and the efficiency of the pipeline layout is improved.
Smart Images

Figure CN223359978U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of connection structures between valve bodies and air pipes, in particular to a valve component integrated structure and pipeline arrangement structure. Background Art
[0002] During the process of arranging the pipeline of the valve integrated structure, the staff needs to connect the air pipe and the valve body. During the process of arranging the pipeline of the valve integrated structure, the workload of connecting the air pipe and the valve body is relatively large.
[0003] After searching, the patent announcement number CN202215363U discloses a connection structure between an air receiving valve body and a bronchus, which belongs to the field of mechanical technology. It solves the problem that the existing air receiving valve body and the bronchus are directly connected by screws, resulting in poor heat dissipation performance, high heat conduction, and affecting the sensitivity of the sensor. The connection structure between the air receiving valve body and the bronchus includes an air receiving valve body connection part and a bronchus connection part. A rubber tube is connected between the air receiving valve body connection part and the bronchus connection part. Two fixing sleeves are installed on the outer wall of the rubber tube, and the two ends of the fixing sleeve are fixed together by bolts. The connection structure between the air receiving valve body and the bronchus has the advantages of simple structure, easy use and long service life.
[0004] At present, when staff arrange the pipeline of the valve integrated structure, when staff connect the air pipe and the valve body, the connection operation between the air pipe and the valve body is relatively cumbersome, resulting in the connection operation between the air pipe and the valve body taking a long time, affecting the efficiency of the valve integrated structure pipeline arrangement. Therefore, a valve integrated structure pipeline arrangement structure is designed. Utility Model Content
[0005] In response to the defects or shortcomings of the valve integrated structure pipeline layout structure, the purpose of the utility model is to provide a valve integrated structure pipeline layout structure, which is convenient for staff to perform disassembly operations between the trachea connector on the trachea and the air inlet connector on the valve body. The staff can quickly disassemble the trachea connector and the air inlet connector, thereby improving the efficiency of pipeline layout.
[0006] In order to achieve the above-mentioned purpose of the utility model, the utility model adopts the following technical solutions:
[0007] The utility model provides a valve component integrated structure pipeline arrangement structure, comprising a valve body, an air inlet joint for connecting to an air pipe is provided on the outer wall of the valve body, an air pipe connector is installed on the air inlet joint, and the air pipe connector is provided on the air pipe;
[0008] An annular mounting block and an annular sealing block are provided on the end wall of one end of the air inlet joint, and the annular sealing block is located on the inner side of the annular mounting block. A first mounting groove is formed at the top and bottom ends of the circumferential outer wall of the annular mounting block. The inner wall of one end of the first mounting groove is connected to the protruding block via a spring, and the other end of the protruding block passes through the first mounting groove and extends to the outside.
[0009] The end wall of one end of the trachea connector is provided with a second mounting groove and a sealing groove, and the sealing groove is located on the inner side of the second mounting groove, and second rectangular grooves are provided on both sides of the circumferential outer wall of one end of the trachea connector, and first rectangular grooves are provided on both sides of the second rectangular groove, and a through hole is provided between the first rectangular groove and the second rectangular groove, and first inclined extrusion grooves are provided on both sides of the second rectangular groove, and a second inclined extrusion groove is provided on one side of the through hole, the annular sealing block is installed in the sealing groove, and a sealing ring is provided between the end wall of one end of the annular sealing block and the inner wall of one end of the sealing groove.
[0010] Preferably, there is a clearance fit between the circumferential outer wall of the protruding block and the circumferential inner wall of the first mounting groove, and a limiting block is provided on both sides of the circumferential outer wall of the protruding block. The other end of the limiting block is installed in the limiting groove, and there is a clearance fit between the outer wall of the limiting block and the groove wall of the limiting groove, and the limiting groove is opened on both sides of the circumferential inner wall of the first mounting groove.
[0011] Preferably, the through hole and the first rectangular slot are both provided on the circumferential outer wall of the trachea connector, and the through hole, the first rectangular slot, the second rectangular slot and the second mounting slot are communicated with each other.
[0012] Preferably, the first inclined extrusion groove is communicated with the second rectangular groove, the first inclined extrusion groove is opened on the groove wall of the second mounting groove, and the through hole is communicated with the second inclined extrusion groove.
[0013] Preferably, the annular mounting block is installed in the second mounting groove, and there is a clearance fit between the outer wall of the annular mounting block and the groove wall of the second mounting groove.
[0014] Preferably, the groove width of the first inclined extrusion groove and the groove width of the second inclined extrusion groove are both equal to the outer diameter of the protruding block.
[0015] Preferably, the groove width of the first rectangular groove and the groove width of the second rectangular groove are both equal to the outer diameter of the protruding block.
[0016] Compared with the existing technology, one or more of the above technical solutions have the following beneficial effects:
[0017] 1. In the present utility model, through the coordinated arrangement of a series of structures, when the staff connects the air intake joint on the valve body and the trachea connector on the trachea, the staff only needs to insert the trachea connector into the air intake joint first, and make the raised block on the air intake joint be located in the second rectangular slot on the trachea connector. Then, the staff presses the raised block and rotates the trachea connector. When the trachea connector rotates, the raised block passes through the first inclined extrusion groove, and the first pair of inclined extrusion grooves squeezes the raised block. When the raised block moves to the position of the through hole, the raised block rebounds and penetrates the through hole and extends to the outside. At this time, the staff has completed the connection between the air intake joint and the trachea connector.
[0018] 2. In the present invention, through the coordinated arrangement of a series of structures, when the staff needs to disassemble the air intake joint and the trachea connector, the staff only needs to press the raised block and rotate the trachea connector. When the trachea connector rotates, the raised block will pass through the second inclined extrusion groove, and the second inclined extrusion groove will squeeze the raised block. When the raised block moves to the position of the first rectangular groove, the raised block rebounds and passes through the first rectangular groove and extends to the outside. At this time, the staff has completed the disassembly between the air intake joint and the trachea connector.
[0019] Therefore, from the above, it can be seen that the utility model facilitates the staff to perform disassembly operations between the trachea connector on the trachea and the air inlet connector on the valve body. The staff can quickly disassemble the trachea connector and the air inlet connector, thereby improving the efficiency of pipeline layout. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The drawings in the specification, which constitute a part of the present invention, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation on the present invention.
[0021] Figure 1 It is a structural diagram of the present utility model.
[0022] Figure 2 It is a schematic diagram of the connection and separation structure between the air pipe connector and the air intake joint of the utility model.
[0023] Figure 3 It is a cross-sectional view of the air intake connector of the utility model.
[0024] Figure 4 This utility model Figure 3 Schematic diagram of the local enlarged structure at point A in the figure.
[0025] Figure 5 It is a structural schematic diagram of the trachea connector of the utility model.
[0026] Figure 6It is a cross-sectional view of the trachea connector of the utility model.
[0027] In the picture:
[0028] Valve body; 110, air inlet connector;
[0029] 111, annular sealing block; 112, annular mounting block; 113, raised block; 114, limiting block; 115, limiting groove; 116, first mounting groove; 117, spring;
[0030] 200, tracheal connector; 210, first rectangular groove; 220, through hole; 230, second rectangular groove; 240, second mounting groove; 250, sealing groove; 260, first inclined extrusion groove; 270, second inclined extrusion groove;
[0031] 300. Sealing ring. DETAILED DESCRIPTION
[0032] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0033] It should be noted that the following detailed descriptions are exemplary and are intended to provide further explanation of the present invention. Unless otherwise specified, all technical and scientific terms used herein have the same meanings as those commonly understood by those skilled in the art to which the present invention belongs.
[0034] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present invention. As used herein, unless the context clearly indicates otherwise, the singular form is intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components and / or combinations thereof.
[0035] like Figure 1-6 As shown, a valve component integrated structure and pipeline arrangement structure includes a valve body 100, an air inlet connector 110 for connecting to an air pipe is provided on the outer wall of the valve body 100, an air pipe connector 200 is installed on the air inlet connector 110, and the air pipe connector 200 is provided on the air pipe;
[0036] An annular mounting block 112 and an annular sealing block 111 are provided on the end wall of one end of the air inlet connector 110. The annular sealing block 111 is located on the inner side of the annular mounting block 112. A first mounting groove 116 is defined at both the top and bottom ends of the circumferential outer wall of the annular mounting block 112. The inner wall of one end of the first mounting groove 116 is connected to the protruding block 113 via a spring 117. The other end of the protruding block 113 extends through the first mounting groove 116 and extends to the outside.
[0037] The end wall of one end of the trachea connector 200 is provided with a second mounting groove 240 and a sealing groove 250, and the sealing groove 250 is located on the inner side of the second mounting groove 240. A second rectangular groove 230 is provided on both sides of the circumferential outer wall of one end of the trachea connector 200. A first rectangular groove 210 is provided on both sides of the second rectangular groove 230, and a through hole 220 is provided between the first rectangular groove 210 and the second rectangular groove 230. A first inclined extrusion groove 260 is provided on both sides of the second rectangular groove 230, and a second inclined extrusion groove 270 is provided on one side of the through hole 220. The annular sealing block 111 is installed in the sealing groove 250. A sealing ring 300 is provided inside, and between the end wall of one end of the annular sealing block 111 and the inner wall of one end of the sealing groove 250. The coordinated arrangement of a series of structures such as the sealing ring 300, the annular sealing block 111, the sealing groove 250, etc. can seal the connection between the trachea connector 200 and the air inlet connector 110. The setting of the first inclined extrusion groove 260 and the second inclined extrusion groove 270, when the protruding block 113 rotates into the first inclined extrusion groove 260 or the second inclined extrusion groove 270, the first inclined extrusion groove 260 and the second inclined extrusion groove 270 will cause a certain amount of extrusion on the protruding block 113.
[0038] There is a clearance fit between the circumferential outer wall of the protruding block 113 and the circumferential inner wall of the first mounting groove 116. Limiting blocks 114 are provided on both sides of the circumferential outer wall of the protruding block 113. The other end of the limiting block 114 is installed in the limiting groove 115. There is a clearance fit between the outer wall of the limiting block 114 and the groove wall of the limiting groove 115, and the limiting groove 115 is provided on both sides of the circumferential inner wall of the first mounting groove 116. Since there is a clearance fit between the outer wall of the limiting block 114 and the groove wall of the limiting groove 115, it can play a limiting and guiding role in the compression and rebound movement of the protruding block 113.
[0039] The through hole 220 and the first rectangular groove 210 are both opened on the circumferential outer wall of the trachea connector 200 . The through hole 220 , the first rectangular groove 210 , the second rectangular groove 230 and the second mounting groove 240 are connected.
[0040] The first inclined extrusion groove 260 is communicated with the second rectangular groove 230 . The first inclined extrusion groove 260 is opened on the groove wall of the second installation groove 240 . The through hole 220 is communicated with the second inclined extrusion groove 270 .
[0041] The annular mounting block 112 is installed in the second mounting groove 240, and there is a clearance fit between the outer wall of the annular mounting block 112 and the groove wall of the second mounting groove 240. Because there is a clearance fit between the outer wall of the annular mounting block 112 and the groove wall of the second mounting groove 240, it is convenient to install the annular mounting block 112 into the second mounting groove 240 or remove it from the second mounting groove 240.
[0042] The groove width of the first inclined extrusion groove 260 and the groove width of the second inclined extrusion groove 270 are both equal to the outer diameter of the protruding block 113. Since the groove width of the first inclined extrusion groove 260 and the groove width of the second inclined extrusion groove 270 are both equal to the outer diameter of the protruding block 113, when the protruding block 113 moves in the first inclined extrusion groove 260 or the second inclined extrusion groove 270, it can play a role in limiting and guiding the movement of the protruding block 113.
[0043] The groove width of the first rectangular groove 210 and the groove width of the second rectangular groove 230 are both equal to the outer diameter of the protruding block 113 .
[0044] Working principle: When the staff connects the air inlet connector 110 on the valve body 100 and the trachea connector 200 on the trachea, the staff only needs to insert the trachea connector 200 into the air inlet connector 110 first, and make the raised block 113 on the air inlet connector 110 be located in the second rectangular groove 230 hole on the trachea connector 200. Then, the staff presses the raised block 113 and rotates the trachea connector 200. When the trachea connector 200 rotates, the raised block 113 passes through the first inclined extrusion groove 260. The first pair of inclined extrusion grooves squeezes the raised block 113. When the raised block 113 moves to the position where the through hole 220 is located, the raised block 113 rebounds and passes through the through hole 220 and extends to the outside. At this time, the staff has completed the connection between the air inlet connector 110 and the trachea connector 200. When the staff When it is necessary to disassemble the air intake connector 110 and the trachea connector 200, the staff only needs to press the raised block 113 and rotate the trachea connector 200. When the trachea connector 200 rotates, the raised block 113 will pass through the second inclined extrusion groove 270, and the second inclined extrusion groove 270 will squeeze the raised block 113. When the raised block 113 moves to the position of the first rectangular groove 210, the raised block 113 rebounds and passes through the first rectangular groove 210 and extends to the outside. At this time, the staff has completed the disassembly between the air intake connector 110 and the trachea connector 200. Therefore, the utility model makes it easy for the staff to perform the disassembly operation between the trachea connector 200 on the trachea and the air intake connector 110 on the valve body 100. The staff can quickly disassemble the trachea connector 200 and the air intake connector 110, thereby improving the efficiency of pipeline layout.
[0045] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. A valve component integrated structure and pipeline arrangement structure, comprising a valve body (100), characterized in that: An air intake connector (110) for connecting to an air pipe is provided on the outer wall of the valve body (100), an air pipe connector (200) is mounted on the air intake connector (110), and the air pipe connector (200) is provided on the air pipe; An end wall of one end of the air inlet connector (110) is provided with an annular mounting block (112) and an annular sealing block (111), and the annular sealing block (111) is located on the inner side of the annular mounting block (112), and a first mounting groove (116) is provided at the top and bottom ends of the circumferential outer wall of the annular mounting block (112), and the inner wall of one end of the first mounting groove (116) is connected to the protruding block (113) through a spring (117), and the other end of the protruding block (113) passes through the first mounting groove (116) and extends to the outside; The end wall of one end of the trachea connector (200) is provided with a second mounting groove (240) and a sealing groove (250), and the sealing groove (250) is located inside the second mounting groove (240). The circumferential outer wall of one end of the trachea connector (200) is provided with a second rectangular groove (230) on both sides, and the first rectangular groove (210) is provided on both sides of the second rectangular groove (230). A through hole (220) is provided between the first rectangular groove (210) and the second rectangular groove (230). The second rectangular groove (230) is provided with a first inclined extrusion groove (260) on both sides, and a second inclined extrusion groove (270) is provided on one side of the through hole (220). The annular sealing block (111) is installed in the sealing groove (250), and a sealing ring (300) is provided between the end wall of one end of the annular sealing block (111) and the inner wall of one end of the sealing groove (250).
2. The valve component integrated structure and pipeline arrangement structure according to claim 1, characterized in that: There is a clearance fit between the circumferential outer wall of the protruding block (113) and the circumferential inner wall of the first mounting groove (116), and a limiting block (114) is provided on both sides of the circumferential outer wall of the protruding block (113). The other end of the limiting block (114) is installed in the limiting groove (115), and there is a clearance fit between the outer wall of the limiting block (114) and the groove wall of the limiting groove (115), and the limiting groove (115) is provided on both sides of the circumferential inner wall of the first mounting groove (116).
3. The valve component integrated structure and pipeline arrangement structure according to claim 1, characterized in that: The through hole (220) and the first rectangular slot (210) are both provided on the circumferential outer wall of the trachea connector (200), and the through hole (220), the first rectangular slot (210), the second rectangular slot (230) and the second mounting slot (240) are connected.
4. The valve component integrated structure and pipeline arrangement structure according to claim 1, characterized in that: The first inclined extrusion groove (260) is connected to the second rectangular groove (230), the first inclined extrusion groove (260) is opened on the groove wall of the second installation groove (240), and the through hole (220) is connected to the second inclined extrusion groove (270).
5. The valve component integrated structure and pipeline arrangement structure according to claim 1, characterized in that: The annular mounting block (112) is installed in the second mounting groove (240), and a clearance fit is formed between the outer wall of the annular mounting block (112) and the groove wall of the second mounting groove (240).
6. The valve component integrated structure and pipeline arrangement structure according to claim 1, characterized in that: The groove width of the first inclined extrusion groove (260) and the groove width of the second inclined extrusion groove (270) are both equal to the outer diameter of the protruding block (113).
7. The valve component integrated structure and pipeline arrangement structure according to claim 1, characterized in that: The groove width of the first rectangular groove (210) and the groove width of the second rectangular groove (230) are both equal to the outer diameter of the protruding block (113).
Citation Information
Patent Citations
Connecting structure for gas connecting valve and branch gas pipe
CN202215363U