Die shunting conveying line
By driving the mold diversion conveyor line with an output source motor that rotates in one direction, the reciprocating blocking of the two conveyor lines is achieved, which solves the problems of complex structure, slow response speed and high maintenance cost in the existing technology, and realizes efficient and reliable mold diversion.
Patent Information
- Application Number
- CN202520490204.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-20
AI Technical Summary
Existing mold diversion and conveying line devices are complex in structure, slow in response speed, high in energy consumption and high in maintenance cost, and multiple drive mechanisms increase the complexity of the system.
The output source motor drives the rotating shaft with unidirectional rotation. The two conveying lines are reciprocated and blocked by the diverter plate on the rotating shaft. The interference fit and threaded connection ensure stable rotation and reduce the use of additional drive mechanisms.
It reduces manufacturing and maintenance costs, improves system response speed and reliability, and simplifies the drive structure.
Smart Images

Figure CN223950160U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to mould conveying technical field, concretely relates to mould shunt conveying line. BACKGROUND
[0002] In modern industrial production, the mould shunt conveying line is an important equipment for realizing efficient and orderly transportation of moulds, and the main function of the shunt conveying line is to shunt the moulds to different production lines or workstations according to production needs in the mould production process. The existing shunt conveying line technology usually adopts mechanical or pneumatic plugging devices. These devices need to physically block a certain conveying line at the shunt point during the shunting process to ensure that the moulds can be shunted along the predetermined path. However, these traditional plugging methods have some limitations, such as complex structure, slow response speed, high energy consumption, and high maintenance cost.
[0003] Specifically, in the existing shunt conveying line technology, the plugging device often needs multiple independent driving mechanisms to realize the plugging action, which not only increases the complexity of the system but also leads to an increase in cost.
[0004] To solve the above problems, the utility model provides a novel mould shunt conveying line. UTILITY MODEL CONTENTS
[0005] The utility model aims to provide a mould shunt conveying line, which can realize reciprocating plugging of two conveying lines by only rotating the output source motor in a single direction without adding additional driving mechanisms, thereby reducing manufacturing and maintenance costs and improving the response speed and reliability of the system.
[0006] The technical scheme adopted by the utility model is as follows:
[0007] The mould shunt conveying line comprises a conveying line, a main conveying platform is arranged on one side of the top of the conveying line, two branch conveying platforms are arranged on the other side of the top of the conveying line, and the two branch conveying platforms are in communication with the main conveying platform;
[0008] A rotating shaft is rotatably connected to the top of the conveying line between the two branch conveying platforms, a shunt plate is fixed to the side of the rotating shaft close to the main conveying platform, an installation plate is fixed to the bottom of the conveying line, a driving mechanism is installed on the installation plate, and the driving mechanism is used to drive the shunt plate to swing left and right.
[0009] The driving mechanism includes a rotating frame rotatably connected to the top of a mounting plate. A rotating column is installed at the center of the top of the rotating frame. A first arc-shaped rack is provided on the outer side of the rotating column, and a second arc-shaped rack is provided on the inner side of the rotating frame. The second arc-shaped rack and the first arc-shaped rack are symmetrically arranged. An annular rack is fixed on the outer side of the rotating shaft at a position corresponding to the first and second arc-shaped racks. The annular rack is meshed with both the second and first arc-shaped racks. A motor is installed at the bottom of the mounting plate, and the output end of the motor passes through the mounting plate and is connected to the rotating frame.
[0010] The rotating shaft and the conveyor line are interference-fitted.
[0011] The bottom of the rotating column is provided with a threaded groove, and a fixing block is fixed at the center of the top of the rotating frame. A threaded wire is fixed on the outside of the fixing block and near the top, and the threaded wire is threadedly connected to the threaded groove.
[0012] The thread direction of the threaded groove and the threaded wire is opposite to the rotation direction of the rotating frame and the rotating column.
[0013] The outside of the diverter plate is covered with a soft pad.
[0014] The technical effects achieved by this utility model are as follows:
[0015] This invention enables reciprocating blocking of two conveying lines without adding an extra drive mechanism, simply by rotating the output source motor in one direction. This reduces manufacturing and maintenance costs while improving the system's response speed and reliability. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of this utility model;
[0017] Figure 2 This is a schematic diagram of the structure between the motor, the rotating frame, and the diverter plate in this utility model;
[0018] Figure 3 This is a schematic diagram of the structure between the rotating frame, the rotating column, and the rotating shaft in this utility model;
[0019] Figure 4 This is a schematic diagram of the structure between the motor, the fixed block, and the rotating column in this utility model.
[0020] The attached diagram lists the components represented by each number as follows:
[0021] 1. Conveyor line; 2. Main conveyor platform; 3. Sub-conveyor platform; 4. Rotating shaft; 5. Diverter plate; 6. Mounting plate; 7. Rotating frame; 8. Rotating column; 9. Motor; 10. First arc-shaped rack; 11. Fixing block; 12. Threaded wire; 13. Threaded groove; 14. Annular rack; 15. Second arc-shaped rack. Detailed Implementation
[0022] To make the objectives and advantages of this utility model clearer, the following detailed description is provided in conjunction with embodiments. It should be understood that the following text is merely used to describe one or more specific embodiments of this utility model and does not strictly limit the scope of protection specifically claimed by this utility model.
[0023] like Figures 1-4 As shown, the mold distribution conveyor line includes a conveyor line 1, a main conveyor platform 2 is provided on one side of the top of the conveyor line 1, and two sub-conveyor platforms 3 are provided on the other side of the top of the conveyor line 1, and both sub-conveyor platforms 3 are connected to the main conveyor platform 2.
[0024] A rotating shaft 4 is rotatably connected to the top of the conveyor line 1 and located between the two sub-conveying platforms 3. Furthermore, the rotating shaft 4 and the conveyor line 1 are interference-fitted. With this setting, after the rotating shaft 4 rotates to a certain position, it will not easily rotate without a large external force. A diverter plate 5 is fixed to the side of the rotating shaft 4 near the main conveyor platform 2. Furthermore, the outside of the diverter plate 5 is covered with a soft pad. With this setting, when the diverter plate 5 swings to contact the inner wall of the conveyor line 1, the impact force of the diverter plate 5 swinging is reduced. The diverter plate 5 is used to swing with the rotation of the rotating shaft 4. When the diverter plate 5 swings, it can block one of the two sub-conveying platforms 3, so that the mold is transported from the other sub-conveying platform 3. A mounting plate 6 is fixed to the bottom of the conveyor line 1. A drive mechanism is installed on the mounting plate 6. The drive mechanism is used to drive the diverter plate 5 to swing left and right.
[0025] See attached document Figure 2 -Appendix Figure 3 The drive mechanism includes a rotating frame 7 rotatably connected to the top of the mounting plate 6. A rotating column 8 is installed at the center of the top of the rotating frame 7. A first arc-shaped rack 10 is provided on the outer side of the rotating column 8, and a second arc-shaped rack 15 is provided on the inner side of the rotating frame 7. The second arc-shaped rack 15 and the first arc-shaped rack 10 are symmetrically arranged. An annular rack 14 is fixed on the outer side of the rotating shaft 4 at a position corresponding to the first arc-shaped rack 10 and the second arc-shaped rack 15. The annular rack 14 is meshed with both the second arc-shaped rack 15 and the first arc-shaped rack 10. A motor 9 is installed at the bottom of the mounting plate 6. The output end of the motor 9 passes through the mounting plate 6 and is connected to the rotating frame 7.
[0026] When the motor 9 drives, the rotating frame 7 is driven to rotate, and the rotating column 8 is fixed at the center position of the rotating frame 7, so the rotating column 8 rotates with the rotating frame 7, and when the rotating frame 7 rotates to the second arc-shaped rack 15 meshes with the ring-shaped rack 14, the ring-shaped rack 14 drives the rotating shaft 4 to rotate to one side, and then drives the shunt plate 5 on the rotating shaft 4 to block one of the sub-conveying platforms 3, and the mold flows through the position of the other sub-conveying platform 3, and when the rotating frame 7 rotates to the first arc-shaped rack 10 meshes with the ring-shaped rack 14, the ring-shaped rack 14 drives the rotating shaft 4 to rotate to the other side, and then drives the shunt plate 5 on the rotating shaft 4 to block the other sub-conveying platform 3, and the mold flows through the position of the previously blocked sub-conveying platform 3, thereby completing the shunting process of the mold conveying, and the output end of the motor 9 only needs to rotate in one direction, avoiding repeated left and right rotation of the motor 9, thereby ensuring the service life of the motor 9.
[0027] Referring to the drawings Figure 4 The bottom of the rotating column 8 is provided with a threaded groove 13, the center position of the top of the rotating frame 7 is fixed with a fixed block 11, the outer side of the fixed block 11 and close to the top end is fixed with a threaded wire 12, and the threaded wire 12 is threadedly connected with the threaded groove 13, when the first arc-shaped rack 10 is worn and needs to be replaced, the rotating column 8 can be screwed, and the rotating column 8 is gradually separated from the connection between the fixed block 11 through the threaded connection of the threaded groove 13 and the threaded wire 12, and then the rotating column 8 can be disassembled, thereby realizing the replacement of the rotating column 8, and further, the screw rotation direction of the threaded groove 13 and the threaded wire 12 is opposite to the rotating direction of the rotating frame 7 and the rotating column 8, through this setting, when the first arc-shaped rack 10 meshes with the ring-shaped rack 14, the rotating column 8 only rotates tighter on the fixed block 11, and will not be loose.
[0028] The above only describes the preferred embodiments of the present application, and it should be pointed out that for ordinary skilled in the art, without departing from the principles of the present application, a number of improvements and refinements can be made, and these improvements and refinements should be considered as the protection scope of the present application. The structures, devices and operation methods not specifically described and explained in the present application are implemented according to the conventional means in the art, unless otherwise specified and limited.
Claims
1. Mould distribution conveyor line comprising a conveyor line (1), characterised in that: One side of the top of the conveying line (1) is provided with a main conveying platform (2), the other side of the top of the conveying line (1) is provided with two sub-conveying platforms (3), and the two sub-conveying platforms (3) are communicated with the main conveying platform (2); The top of the conveying line (1) and between the two sub-conveying platforms (3) are rotatably connected with a rotating shaft (4), one side of the rotating shaft (4) close to the main conveying platform (2) is fixed with a flow distribution plate (5), the bottom of the conveying line (1) is fixed with a mounting plate (6), the mounting plate (6) is installed with a driving mechanism, and the driving mechanism is used for driving the flow distribution plate (5) to swing left and right.
2. The mold split delivery line of claim 1, wherein: The driving mechanism comprises a rotating frame (7) rotatably connected with the top of the mounting plate (6), a rotating column (8) installed at the center position of the top of the rotating frame (7), a first arc-shaped rack (10) arranged on the outer side of the rotating column (8), a second arc-shaped rack (15) arranged on the inner side of the rotating frame (7), and the second arc-shaped rack (15) and the first arc-shaped rack (10) are symmetrically arranged, an annular rack (14) fixed on the outer side of the rotating shaft (4) and corresponding to the first arc-shaped rack (10) and the second arc-shaped rack (15), and the annular rack (14) is meshed with the second arc-shaped rack (15) and the first arc-shaped rack (10), and a motor (9) installed at the bottom of the mounting plate (6), the output end of the motor (9) passes through the mounting plate (6) and is connected with the rotating frame (7).
3. The mold split transfer line of claim 2, wherein: The rotating shaft (4) and the conveying line (1) are in interference fit.
4. The mold split delivery line of claim 2, wherein: The bottom of the rotating column (8) is provided with a threaded groove (13), the top of the rotating frame (7) is fixed with a fixed block (11) at the center position, the outer side of the fixed block (11) and close to the top end is fixed with a threaded wire (12), and the threaded wire (12) is threadedly connected with the threaded groove (13).
5. The mold split delivery line of claim 4, wherein: The screw thread direction of the threaded groove (13) and the threaded wire (12) is opposite to the rotating direction of the rotating frame (7) and the rotating column (8).
6. The mold split delivery line of claim 1, wherein: The outer side of the flow distribution plate (5) is wrapped with a layer of soft cushion.