Three-way groove with manual control material distribution function
By introducing a manual control material distribution function into the three-way channel and utilizing the design of the rotating shaft and valve plate, the problem of random material distribution was solved, thereby improving the stability and efficiency of the material conveying system.
Patent Information
- Application Number
- CN202520290373.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2035-02-24
AI Technical Summary
The existing three-way channel structure makes it difficult to achieve precise material distribution control, resulting in a decrease in the stability and efficiency of the material conveying system.
A three-way channel with manual control of material distribution function was designed. By setting a valve plate and a manual distribution mechanism on the rotating shaft, the operator can precisely control the proportion of material flow to the two outlets by adjusting the angle of the valve plate.
It achieves precise control of material distribution, improves the stability and efficiency of the material conveying system, reduces the complexity and failure rate of the equipment, and has strong adaptability.
Smart Images

Figure CN223703906U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of conveying equipment technology, specifically to a three-way trough with manual control of material distribution function. Background Technology
[0002] The three-way chute structure, widely used in material conveying systems, is characterized by its one-inlet, two-outlet design, making it particularly suitable for situations where the conveying route needs to turn in two different directions. This structure not only operates stably in indoor environments but also adapts to complex and changing outdoor conditions, demonstrating its wide applicability and flexibility.
[0003] In traditional three-way chute structures, an air conveying chute connects to the two discharge ports. This design utilizes aerodynamic principles, using airflow to propel material through the three-way chute and ultimately guide it to the two outlets. However, in practical applications, the flow of material within the three-way chute is influenced by various factors, such as airflow velocity, material properties, and chute structure. This results in randomness and uncertainty in the material's flow towards the two outlets, making precise control of the amount of material flowing to each outlet difficult and thus affecting the stability and efficiency of the entire material conveying system. Utility Model Content
[0004] The purpose of this invention is to provide a three-way trough with manual control of material distribution, so as to solve the problem that the existing three-way trough structure is difficult to achieve precise material distribution control, which affects the stability and efficiency of the entire material conveying system.
[0005] A three-way trough with manual control of material distribution function includes a three-way trough body, an inlet and two outlets on the side wall of the three-way trough body, a rotating shaft rotatably mounted on the bottom of the inner cavity of the three-way trough body via a bushing, a valve plate fixedly welded to the shaft body of the rotating shaft, the valve plate being located at the inlet, the top of the rotating shaft penetrating the three-way trough body and extending out of the three-way trough body, and a material distribution mechanism capable of adjusting the angle of the valve plate being provided at the top of the rotating shaft.
[0006] Preferably, the material distribution mechanism includes a handle located at the top of the rotating shaft, a fixed arc plate is provided at the top of the three-way groove, the fixed arc plate is provided with a plurality of fixing holes, and the surface of the handle is provided with a limiting hole that matches the fixing holes.
[0007] Preferably, a sealing device is provided between the rotating shaft and the top of the three-way groove.
[0008] Preferably, the handle sidewall is provided with multiple anti-slip textures.
[0009] The advantages of this utility model are as follows: This utility model provides a three-way trough with manual control of material distribution. By setting a manually operated material distribution mechanism and manually adjusting the handle, the angle of the valve plate can be adjusted, allowing the operator to accurately control the proportion of material flow to the two discharge ports. This solves the problem of randomness and uncertainty in material distribution in traditional three-way troughs, improves the stability and efficiency of the material conveying system, and can adjust the angle of the valve plate to adapt to different material distribution ratios according to different material properties and conveying requirements. It has strong adaptability. The three-way trough as a whole is easy to install and maintain, while also reducing the complexity and failure rate of the equipment. Attached Figure Description
[0010] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0011] Figure 2 This is a schematic diagram of the internal structure of this utility model.
[0012] Among them, 100 is the handle; 101 is the rotating shaft; 102 is the sealing device; 103 is the three-way groove body; 104 is the fixed arc plate; 105 is the valve plate; and 106 is the bushing. Detailed Implementation
[0013] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0014] like Figures 1 to 2 As shown, a three-way trough with manual control of material distribution function includes a three-way trough body 103. The side wall of the three-way trough body 103 has an inlet and two outlets. The bottom of the inner cavity of the three-way trough body 103 is rotatably provided with a rotating shaft 101 through a bushing 106. A valve plate 105 is fixedly welded to the shaft of the rotating shaft 101. The valve plate 105 is located at the inlet. The top of the rotating shaft 101 passes through the three-way trough body 103 and extends to the outside of the three-way trough body 103. The top of the rotating shaft 101 is provided with a material distribution mechanism that can adjust the angle of the valve plate 105.
[0015] In this embodiment, the material distribution mechanism includes a handle 100 located on the top of the rotating shaft 101, a fixed arc plate 104 located on the top of the three-way groove 103, a plurality of fixing holes on the fixed arc plate 104, and a limiting hole on the surface of the handle 100 that matches the fixing holes.
[0016] Material enters the three-way trough body 103 through the feed inlet. By holding the handle 100, the operator rotates the handle 100 according to the required material distribution ratio, driving the rotating shaft 101 and the valve plate 105 fixed on the rotating shaft 101 to rotate. The rotation angle of the valve plate 105 determines the proportion of material flowing to the two discharge ports. When rotated to the appropriate position, the limiting hole on the handle 100 can be aligned with a fixing hole on the fixed arc plate 104, and the handle 100 can be fixed by a pin to keep the angle of the valve plate 105 unchanged, thereby achieving stable material distribution. By manually adjusting the angle of the valve plate 105, the operator can accurately control the proportion of material flowing to the two discharge ports, solving the problem of randomness and uncertainty in material distribution in traditional three-way troughs, improving the stability and efficiency of the material conveying system. It can adapt to different material distribution ratios by adjusting the angle of the valve plate 105 according to different material properties and conveying requirements, and has strong adaptability. The manually operated material distribution mechanism is easy to install and maintain, and also reduces the complexity and failure rate of the equipment.
[0017] In this embodiment, a sealing device 102 is provided between the rotating shaft 101 and the top of the three-way groove body 103.
[0018] By setting a sealing device 102 between the rotating shaft 101 and the top of the three-way groove body 103, material leakage and air pollution are effectively prevented, ensuring the cleanliness and safety of material conveying.
[0019] In this embodiment, the handle 100 has multiple anti-slip textures on its sidewall.
[0020] By setting multiple anti-slip textures on the side wall of the handle 100, the operator can rotate the handle more easily and stably, improving the convenience and safety of operation.
[0021] Working process and principle: When using this device, the three-way trough body 103 is correctly installed and connected to the material conveying system. Material enters the three-way trough body 103 through the feed inlet. To control the proportion of material flow to the two discharge outlets, the operator can manually operate the material distribution mechanism. By holding the handle 100, the operator rotates the handle 100 according to the required material distribution ratio, thereby driving the rotating shaft 101 and the valve plate 105 fixed on the rotating shaft 101 to rotate. The rotation angle of the valve plate 105 determines the proportion of material flow to the two discharge outlets. When rotated to the appropriate position, the handle 100 can be turned off. The limiting hole on the valve plate 105 is aligned with a fixed hole on the fixed arc plate 104, and the handle 100 is fixed by a pin to keep the angle of the valve plate 105 unchanged, thereby achieving stable material distribution. By manually adjusting the angle of the valve plate 105, the operator can accurately control the proportion of material flow to the two outlets, which solves the problem of randomness and uncertainty in material distribution in traditional three-way channels, improves the stability and efficiency of the material conveying system, and can adapt to different material distribution ratios by adjusting the angle of the valve plate 105 according to different material properties and conveying requirements, thus having strong adaptability.
[0022] As is known from common technical knowledge, this utility model can be implemented through other embodiments that do not depart from its spirit or essential characteristics. Therefore, the disclosed embodiments described above are merely illustrative in all respects and are not the only ones. All modifications within the scope of this utility model or its equivalents are included in this utility model.
Claims
1. A three-way trough with manual control of material dispensing function, characterized in that: The device includes a three-way groove body (103), which has an inlet and two outlets on its side wall. A rotating shaft (101) is rotatably mounted on the bottom of the inner cavity of the three-way groove body (103) via a bushing (106). A valve plate (105) is fixedly welded to the shaft of the rotating shaft (101). The valve plate (105) is located at the inlet. The top of the rotating shaft (101) passes through the three-way groove body (103) and extends to the outside of the three-way groove body (103). A material distribution mechanism that can adjust the angle of the valve plate (105) is provided on the top of the rotating shaft (101).
2. A three-way trough with manual control for material distribution as described in claim 1, characterized in that: The material distribution mechanism includes a handle (100) located on the top of the rotating shaft (101), a fixed arc plate (104) on the top of the three-way groove (103), a plurality of fixing holes on the fixed arc plate (104), and a limiting hole on the surface of the handle (100) that matches the fixing holes.
3. A three-way trough with manual control of material distribution function according to claim 2, characterized in that: A sealing device (102) is provided between the rotating shaft (101) and the top of the three-way groove body (103).
4. A three-way trough with manual control for material distribution according to claim 2, characterized in that: The handle (100) has multiple anti-slip textures on its side wall.