Bidirectional adjustable valve body capable of distributing and collecting flow
By designing a bidirectional adjustable valve body that can be split and collects current, and using a control rod and synchronous assembly to achieve bidirectional water flow regulation, the problems of complex operation and low efficiency in the prior art are solved, and more efficient and accurate flow control is achieved.
Patent Information
- Application Number
- CN202422330365.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-24
AI Technical Summary
When existing diverting current collectors need to control the water flow, multiple control mechanisms are required, resulting in complex operation and reducing working efficiency.
A bidirectional adjustable valve body that can be diverted and gathered is designed. The adjustment of bidirectional water flow can be achieved through a control rod. Synchronous components and guide blocks are used to achieve precise control and uniform distribution of flow.
It simplifies the operation process, reduces dependence on multiple control mechanisms, improves the stability and accuracy of work efficiency and flow regulation, and ensures even distribution and precise matching of flow.
Smart Images

Figure CN223035764U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of flow dividing and collecting valves, in particular to a bidirectional adjustable valve body capable of flow dividing and collecting. Background Technique
[0002] A flow dividing and collecting valve is a control valve used in a fluid system, and its main function is to regulate and distribute the fluid flow rate. In many industrial applications, such as hydraulic systems and pneumatic systems, flow dividing and collecting valves play an important role. They can distribute the fluid into multiple paths according to requirements, or converge the fluids from multiple paths into a common path.
[0003] A flow dividing and collecting valve usually consists of a valve body and multiple control mechanisms. Multiple flow channels are arranged inside the valve body, and the opening degree of the flow channels can be adjusted through the control mechanisms, so as to realize the distribution or convergence of the fluid. The control mechanism can be manual, electric or pneumatic, depending on the specific application requirements.
[0004] At present, most flow dividing and rapid flow valves need multiple control mechanisms to adjust a single pipeline when the water flow needs to be controlled. However, this adjustment method is relatively complex and reduces the work efficiency. Therefore, it does not meet the existing requirements. For this reason, we propose a bidirectional adjustable valve body capable of flow dividing and collecting. Content of the Utility Model
[0005] The utility model provides a bidirectional adjustable valve body capable of flow dividing and collecting, which has the beneficial effect that the operator only needs to adjust one control button to complete the adjustment of the flow rates of two liquid outlet pipes, reducing the operation complexity, and solves the problem that most of the current flow dividing and rapid flow valves need multiple control mechanisms to adjust a single pipeline when the water flow needs to be controlled, but this adjustment method is relatively complex and reduces the work efficiency mentioned in the above background technique.
[0006] The utility model provides the following technical solution: a bidirectional adjustable valve body capable of flow dividing and collecting, including a housing, a liquid collecting pipe, a first liquid outlet pipe and a second liquid outlet pipe. The liquid collecting pipe is inserted into the housing, the first liquid outlet pipe and the second liquid outlet pipe are both inserted into the bottom of the housing, the second liquid outlet pipe is located on the side of the first liquid outlet pipe, control plates for controlling the water flow size are movably inserted on both sides of the housing, through grooves for the water flow to pass through are opened on the control plates, control rods are installed at the ends of the control plates, an inner cavity is opened in the housing, a control block is arranged in the inner cavity, and a synchronization component is arranged in the control block.
[0007] As an alternative solution for a two-way adjustable valve body capable of flow diversion and collection according to the present utility model, wherein: a control groove corresponding to the control rod is provided in the outer shell, the control rod is movably inserted into the control groove, a control button is installed at the end of the control rod, and the control button is located outside the outer shell.
[0008] As an alternative solution for a two-way adjustable valve body capable of flow diversion and collection according to the present utility model, wherein: a cavity is provided in the control block, a slot corresponding to the control board is provided in the control block, the slot is communicated with the cavity, and the control board is inserted into the cavity through the slot.
[0009] As an alternative solution for a two-way adjustable valve body capable of flow diversion and collection according to the present utility model, wherein: the control board is divided into a first board body and a second board body, the first board body and the second board body are symmetrically arranged with the control block as the center, and the first board body is located above the first liquid outlet pipe, and the second board body is located above the second liquid outlet pipe.
[0010] As an alternative solution for a two-way adjustable valve body capable of flow diversion and collection according to the present utility model, wherein: the synchronization component includes a first rack installed at the bottom of the first board body and a second rack installed on the second board body, a gear is arranged in the cavity, and the first rack, the second rack and the gear are meshed.
[0011] As an alternative solution for a two-way adjustable valve body capable of flow diversion and collection according to the present utility model, wherein: a guide block for guiding water flow is installed in the inner cavity, there are two guide blocks, the two guide blocks are symmetrically arranged with the control block as the center, an activity groove corresponding to the control rod is provided in the guide block, and the control rod is inserted into the activity groove.
[0012] As an alternative solution for a two-way adjustable valve body capable of flow diversion and collection according to the present utility model, wherein: a fixed block is installed at the bottom of the control block, and guide inclined surfaces are provided on both the fixed block and the guide block.
[0013] As an alternative solution for a two-way adjustable valve body capable of flow diversion and collection according to the present utility model, wherein: sealing rubber strips are fixedly bonded in both the through groove and the slot, and the sealing rubber strips are set as rubber strips.
[0014] The present utility model has the following beneficial effects:
[0015] 1. The bidirectional adjustable valve body capable of diverting and collecting flow can adjust the bidirectional water flow through a control lever, reducing the dependence on multiple control mechanisms. The operation is simple and intuitive. The operator only needs to adjust a control button to complete the adjustment of the flow of the two liquid outlet pipes, reducing the complexity of the operation. The synchronization component allows the two control panels to be adjusted at the same time, which can quickly respond to the demand for water flow changes, adapt to flow changes more quickly, and improve work efficiency. Especially in applications where frequent water flow adjustment is required, the synchronous adjustment of the control panel ensures the uniform distribution of the flow. Through the setting of gears and racks, the first plate body and the second plate body are moved synchronously, and the flow of the two liquid outlet pipes can be accurately matched to achieve more accurate flow control. The symmetrical setting of the control panel and the cooperation of the synchronization component reduce the fluctuation in flow regulation and improve the stability and reliability of the system.
[0016] 2. The bidirectional adjustable valve body that can divert and collect flow enables the water to flow along the designed path through the setting of the guide block, reducing the flow turbulence, improving the water flow guidance efficiency and the overall performance of the valve body. At the same time, the guide block provides a stable guiding path to ensure the precise movement of the control rod in the movable groove, avoiding the deviation or shaking of the control rod, thereby improving the stability and accuracy of flow regulation. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the main three-dimensional structure of the utility model.
[0018] Figure 2 It is a schematic diagram of the main plane structure of the utility model.
[0019] Figure 3 It is a schematic diagram of the main body cutaway structure of the utility model.
[0020] Figure 4 For the utility model Figure 3 A in the figure is an enlarged structural diagram.
[0021] In the figure: 110, shell; 111, collecting pipe; 112, first liquid outlet pipe; 113, second liquid outlet pipe; 114, control board; 115, through groove; 116, control rod; 117, inner cavity; 118, control groove; 119, control button; 120, synchronization component; 121, first rack; 122, second rack; 123, gear; 124, control block; 130, cavity; 131, slot; 132, first plate body; 133, second plate body; 134, guide block; 135, movable groove; 136, fixed block; 137, guide slope; 138, sealing strip. DETAILED DESCRIPTION
[0022] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0023] Embodiment 1. The purpose of this embodiment is to facilitate the solution of the problem that when most current shunt jet valves need to control the water flow rate, multiple control mechanisms are required to adjust a single pipeline. However, this adjustment method is relatively complex and reduces work efficiency. Please refer to Figures 1-4 , a bidirectional adjustable valve body capable of shunting and collecting flow, including a housing 110, a liquid collecting pipe 111, a first liquid outlet pipe 112, and a second liquid outlet pipe 113. The liquid collecting pipe 111 is inserted into the housing 110, and both the first liquid outlet pipe 112 and the second liquid outlet pipe 113 are inserted into the bottom of the housing 110. The second liquid outlet pipe 113 is located on the side of the first liquid outlet pipe 112. Control plates 114 for controlling the water flow rate are movably inserted on both sides of the housing 110. Through slots 115 for water flow to pass through are opened on the control plates 114. Control rods 116 are installed at the ends of the control plates 114. An inner cavity 117 is opened in the housing 110, and a control block 124 is arranged in the inner cavity 117, and a synchronization component 120 is arranged in the control block 124.
[0024] A control slot 118 corresponding to the control rod 116 is opened in the housing 110. The control rod 116 is movably inserted into the control slot 118, and a control button 119 is installed at the end of the control rod 116. The control button 119 is located outside the housing 110.
[0025] A cavity 130 is opened in the control block 124, and a slot 131 corresponding to the control plate 114 is opened in the control block 124. The slot 131 communicates with the cavity 130, and the control plate 114 is inserted into the cavity 130 through the slot 131. The control plate 114 is divided into a first plate body 132 and a second plate body 133. The first plate body 132 and the second plate are symmetrically arranged with the control block 124 as the center, and the first plate body 132 is located above the first liquid outlet pipe 112, and the second plate body 133 is located above the second liquid outlet pipe 113.
[0026] The synchronization component 120 includes a first rack 121 installed at the bottom of the first plate body 132, and a second rack 122 installed on the second plate body 133. A gear 123 is arranged in the cavity 130, and the first rack 121, the second rack 122, and the gear 123 are meshed.
[0027] The operator adjusts the position of the control rod 116 through the external control button 119. The movement of the control rod 116 within the control groove 118 drives the synchronous movement of the control block 124 within the inner cavity 117. A cavity 130 is provided within the control block 124, and the control board 114 communicates with the cavity 130 through the slot 131. The movement of the control board 114 is driven by the synchronous component 120 of the control block 124.
[0028] The control board 114 is divided into a first board body 132 and a second board body 133, which are respectively located above the first liquid outlet pipe 112 and the second liquid outlet pipe 113. When operating the control rod 116, the control block 124 drives the gear 123 within the synchronous component 120 to rotate. The gear 123 meshes with the first rack 121 and the second rack 122, causing the first board body 132 and the second board body 133 to move symmetrically. The movement of the first board body 132 and the second board body 133 changes the opening area of the through groove 115, thereby adjusting the water flow rate through each liquid outlet pipe.
[0029] Through the gear 123 and rack system of the synchronous component 120, it is ensured that the control boards 114 on both sides are adjusted synchronously, guaranteeing the uniform distribution and stable control of the water flow. Due to the symmetrical setting of the control board 114, two-way adjustment can be achieved when adjusting the water flow, meeting different flow rate requirements. Adjusting the position of the control rod 116 can simultaneously affect the flow rates of the two liquid outlet pipes, making the functions of flow splitting and flow collection more efficient and accurate.
[0030] Two-way water flow adjustment can be achieved by controlling one control rod 116, reducing the dependence on multiple control mechanisms and simplifying the operation. Due to the synchronous function of the two-way adjustment, it can respond more quickly to changes in the flow rate, improving work efficiency. The synchronous component 120 ensures the synchronous movement of the control board 114, thereby achieving more precise flow control and enhancing the stability and reliability of the system.
[0031] In this embodiment: Adjustment of the two-way water flow can be achieved through one control rod 116, reducing the dependence on multiple control mechanisms. The operation is simple and intuitive. The operator only needs to adjust one control button 119 to complete the adjustment of the flow rates of the two liquid outlet pipes, reducing the operation complexity. The synchronous component 120 enables the simultaneous adjustment of the two control boards 114, capable of quickly responding to the water flow change requirements and adapting to the flow rate changes more rapidly, improving work efficiency. Especially in application scenarios where the water flow needs to be adjusted frequently, the synchronous adjustment of the control board 114 ensures the uniform distribution of the flow rate. Through the setting of the gear 123 and the rack, the synchronous movement of the first board body 132 and the second board body 133 is achieved, and the flow rates of the two liquid outlet pipes can be precisely matched, realizing more precise flow control. The combined effect of the symmetrical setting of the control board 114 and the synchronous component 120 reduces the fluctuations in flow rate adjustment and enhances the stability and reliability of the system.
[0032] Embodiment 2: This embodiment is intended to promote the solution of the problem that the flow of water in the valve body is uneven or turbulent, affecting the flow regulation effect of the valve body. This embodiment is an improvement made on the basis of embodiment 1. For details, please refer to Figures 1-4 A guide block 134 for guiding water flow is installed in the inner cavity 117 . Two guide blocks 134 are provided. The two guide blocks 134 are symmetrically arranged with the control block 124 as the center. A movable groove 135 corresponding to the control rod 116 is opened in the guide block 134 , and the control rod 116 is inserted in the movable groove 135 .
[0033] A fixing block 136 is installed at the bottom of the control block 124, and a guide slope 137 is provided on the fixing block 136 and the guide block 134. A sealing strip 138 is fixedly glued in the through groove 115 and the slot 131, and the sealing strip 138 is set as a rubber strip. The sealing strip 138 is fixedly glued in the through groove 115 and the slot 131, which can effectively fill the gap, prevent water leakage, and improve the sealing and reliability of the system.
[0034] In this embodiment: the setting of the guide block 134 allows the water flow to flow along the designed path, reducing the flow turbulence, improving the water flow guiding efficiency and the overall performance of the valve body, and at the same time, the guide block 134 provides a stable guiding path to ensure the precise movement of the control rod 116 in the movable groove 135, avoiding the deviation or shaking of the control rod 116, thereby improving the stability and accuracy of the flow regulation.
[0035] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0036] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the technical principle of the present invention. These improvements and modifications should also be regarded as the protection scope of the present invention.
Claims
1. A bidirectional adjustable valve body capable of dividing and collecting flow, comprising a housing (110), a liquid collecting pipe (111), a first liquid outlet pipe (112) and a second liquid outlet pipe (113), characterized in that: The collecting pipe (111) is plugged into the housing (110); the first liquid outlet pipe (112) and the second liquid outlet pipe (113) are both plugged into the bottom of the housing (110); the second liquid outlet pipe (113) is located on the side of the first liquid outlet pipe (112); control panels (114) for controlling the size of a water flow are movably plugged into both sides of the housing (110); a through slot (115) for water flow to pass through is provided on the control panel (114); a control rod (116) is installed at the end of the control panel (114); an inner cavity (117) is provided in the housing (110); a control block (124) is provided in the inner cavity (117); and a synchronization component (120) is provided in the control block (124).
2. A two-way adjustable valve body capable of dividing and combining flow according to claim 1, characterized in that: A control slot (118) corresponding to the control rod (116) is provided in the housing (110); the control rod (116) is movably inserted in the control slot (118); a control button (119) is installed at the end of the control rod (116); the control button (119) is located outside the housing (110).
3. A two-way adjustable valve body capable of dividing and combining flow according to claim 1, characterized in that: A cavity (130) is provided in the control block (124), a slot (131) corresponding to the control board (114) is provided in the control block (124), the slot (131) is communicated with the cavity (130), and the control board (114) is plugged into the cavity (130) through the slot (131).
4. A two-way adjustable valve body capable of dividing and combining flow according to claim 3, characterized in that: The control board (114) is divided into a first board body (132) and a second board body (133); the first board body (132) and the second board body (133) are symmetrically arranged with the control block (124) as the center; the first board body (132) is located on the upper side of the first liquid outlet pipe (112), and the second board body (133) is located on the upper side of the second liquid outlet pipe (113).
5. A two-way adjustable valve body capable of dividing and combining flow according to claim 4, characterized in that: The synchronization component (120) comprises a first rack (121) mounted on the bottom of the first plate (132), and a second rack (122) mounted on the second plate (133); a gear (123) is arranged in the cavity (130); the first rack (121) and the second rack (122) are meshed with the gear (123).
6. A two-way adjustable valve body capable of dividing and combining flow according to claim 1, characterized in that: A guide block (134) for guiding water flow is installed in the inner cavity (117), two guide blocks (134) are provided, and the two guide blocks (134) are symmetrically arranged with the control block (124) as the center. A movable groove (135) corresponding to the control rod (116) is opened in the guide block (134), and the control rod (116) is inserted into the movable groove (135).
7. A two-way adjustable valve body capable of dividing and combining flow according to claim 6, characterized in that: A fixing block (136) is installed at the bottom of the control block (124), and a guiding inclined surface (137) is provided on both the fixing block (136) and the guiding block (134).
8. The bidirectional adjustable valve body capable of dividing and combining flow according to claim 3, characterized in that: A sealing rubber strip (138) is fixedly glued inside the through groove (115) and the slot (131), and the sealing rubber strip (138) is configured as a rubber strip.