Efficient-production road cone forming device
Through automated material plugging and mold release mechanism, efficient production of cone forming devices is achieved, solving the problem of low production efficiency caused by manual removal of molded products, and improving production efficiency and automation.
Patent Information
- Application Number
- CN202510905238.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-02
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-07-02
AI Technical Summary
The existing road cone forming devices need to manually remove the molded product during demolding, resulting in low production efficiency and manual intervention affecting continuous production.
An automated material plugging mechanism and mold release mechanism are adopted to automatically lift the residual material through the material plugging part, and the automatic mold release and collection of molded objects are achieved by using the clamping parts and angle adjustment mechanism, replacing traditional manual operations.
It significantly improves production efficiency, reduces manual intervention, ensures the continuity and automation of production, and avoids production stagnation.
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Figure CN120396237A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to a road cone forming device, in particular to a road cone forming device for high-efficiency production. Background Art
[0002] In the production of road safety equipment, traffic cones are typically injection molded using a mold and core. In existing processes, demolding requires first lifting the core to open the mold, and then manually removing the product for collection.
[0003] In the prior art, a road cone machine's lifting and demoulding mechanism (CN214926706U) discloses a technical solution. After the mold is opened, the molded product (including the slug and the finished product) must be manually removed and collected. Because this manual collection process is required, the next step cannot be performed until the product is collected. Consequently, production efficiency is severely impacted by the manual collection process, and any need for workers to temporarily leave their workstations can lead to production stagnation. Summary of the Invention
[0004] In view of the shortcomings of the prior art, the present invention aims to provide a road cone forming device with high efficiency, which can improve production efficiency, reduce the influence of human factors, and facilitate the processing of waste materials.
[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a road cone forming device for efficient production, comprising a conveying mechanism for conveying a mold, an injection mechanism for injecting material into the mold, a mold opening mechanism for opening the mold, and a demolding mechanism for demolding a molded object from the mold. The injection mechanism includes an injection head, a mold cover plate, and a blocking mechanism; an injection cavity is provided on the mold cover plate at a position corresponding to the mold, and a plurality of injection holes are provided on the mold at positions corresponding to the injection cavity. After the mold cover plate is attached to the mold, the injection cavity and the injection holes cooperate to guide the material to each injection hole; The blocking mechanism includes a driving member and a blocking member, wherein the driving member drives the blocking member to move axially; the blocking member is retractably connected to the mold cover plate, and the mold cover plate has an injection channel connected to the injection cavity, and the blocking member is used to open and close the injection channel; The injection head is used to inject material into the injection channel on the mold cover, and the blocking member can penetrate the mold cover and push the molded object in the injection cavity onto the mold through telescopic ejection; The demoulding mechanism includes a clamping component, an actuator 1 for driving the clamping component to move toward or away from the mold, and an angle adjustment mechanism for driving the actuator to switch the angle; the clamping component is used to clamp the molded object on the mold, and the angle adjustment mechanism adjusts the angle of the actuator 1 to stagger the molded object and the mold; The transfer mechanism also drives the mold to be transferred to the position corresponding to the clamping component.
[0006] As a further improvement of the present invention, a material guiding cavity is provided at a position on the mold corresponding to the mold cover plate. The injection cavity and the material guiding cavity cooperate to form a space for guiding the material into the injection hole. When the blocking member pushes down the molded product in the injection cavity, the molded product falls into the material guiding cavity and at least partially exposes the material guiding cavity for cooperating with the clamping component to clamp. As a further improvement of the present invention, a detachable docking head is provided on the mold cover plate, and the injection channel is located in the docking head. The blocking member opens and closes the injection channel in the docking head by axial movement.
[0007] As a further improvement of the present invention, a docking port is provided on the docking head. The docking port is concave and communicates with the injection channel. The shape of the docking port is adapted to the shape of the injection head for the injection head to be inserted and docked.
[0008] As a further improvement of the present invention, the angle adjustment mechanism includes a bracket, an actuator two rotatably connected to the bracket, and a connecting shaft rotatably connected to the bracket. The connecting shaft is fixedly connected to the actuator one and drives the connecting shaft to rotate through the actuator two to drive the actuator one to rotate.
[0009] As a further improvement of the present invention, an adjustment member for cooperating with the actuator two is provided on the connecting shaft. The adjustment member is fixedly connected to the connecting shaft, and a strip-shaped hole is provided at the position where it is connected to the actuator two. The actuator two is slidably connected to the strip-shaped hole at the position corresponding to the strip-shaped hole and can be positioned on the adjustment member through a fastener. The actuator two adjusts the swing angle of the actuator one by adjusting the connection position with the strip-shaped hole.
[0010] As a further improvement of the present invention, the strip-shaped hole is arc-shaped, and the concave surface of the arc corresponds to the actuator two. The arc of the strip-shaped hole matches the trajectory of one end of the actuator two corresponding to the strip-shaped hole when the actuator two rotates.
[0011] As a further improvement of the present invention, a rotating shaft is provided at one end of the actuator two corresponding to the strip-shaped hole. The rotating shaft is rotatably connected to the actuator two and is also fixedly connected to the strip-shaped hole through a fastener. The actuator two is positioned in the strip-shaped hole through the rotating shaft.
[0012] As a further improvement of the present invention, the adjustment member and the connecting shaft are clamped through a hoop structure and can be loosened to allow relative rotation between the adjustment member and the connecting shaft.
[0013] As a further improvement of the present invention, the number of the demolding mechanisms is at least two; the mold includes a first mold component and a second mold component. After the first mold component and the second mold component are combined, a cavity for molding a traffic cone or its semi-finished product is formed. The mold opening mechanism is used to lift the first mold component, separate the first mold component from the second mold component, and move the first mold component towards the corresponding demolding mechanism. This demolding mechanism clamps the molded product on the first mold component through a clamping component for demolding, and another demolding mechanism clamps the molded product in the second mold component through a clamping component for demolding; the second mold component approaches or moves away from the position of the corresponding demolding mechanism through a conveying mechanism, and the mold cover plate is used to cooperate with the first mold component, and the molded product knocked down by the material blocking member is located on the first mold.
[0014] The beneficial effects of the present invention are as follows: the material blocking mechanism automatically knocks down the residual material (material head), avoiding the cumbersome operation of manually processing the material head. At the same time, the automated actions of the demolding mechanism replace the traditional manual collection, solving the problem of production stagnation caused by relying on manual labor in the prior art and significantly improving the production efficiency. Brief Description of the Drawings
[0015] Figure 1 is the overall structural schematic diagram of the present invention; Figure 2 is the structural schematic diagram of the injection mechanism installation state of the present invention; Figure 3 is the structural schematic diagram of the injection mechanism of the present invention; Figure 4 is the sectional structural schematic diagram of the injection mechanism of the present invention; Figure 5 is the structural schematic diagram of the material blocking mechanism of the present invention Figure 6 is Figure 3 the enlarged view of part A in Figure 7 is Figure 4 the enlarged view of part B in Figure 8 is the schematic diagram of the demolding mechanism of the present invention; Figure 9 is the schematic diagram of another perspective of the demolding mechanism of the present invention; Figure 10 is Figure 8 the enlarged view of part C in Figure 11 is Figure 9 the enlarged view of part D in Figure 12 is the structural schematic diagram of the first mold component of the present invention.
[0016] Figure numbers: 1. Conveying mechanism; 2. Injection mechanism; 21. Injection head; 22. Mold cover; 221. Injection cavity; 222. Butt joint; 23. Blocking mechanism; 231. Driving member; 232. Blocking member; 24. Injection channel; 3. Mold opening mechanism; 4. Demolding mechanism; 41. Clamping member; 42. Actuator 1; 43. Angle adjustment mechanism; 431. Bracket; 432. Actuator 2; 433. Connecting shaft; 434. Rotating shaft; 44. Adjusting member; 441. Strip hole; 45. Hoop structure; 5. Mold; 51. First mold assembly; 52. Second mold assembly. DETAILED DESCRIPTION
[0017] The present invention will be further described below with reference to the embodiments shown in the accompanying drawings.
[0018] Reference Figure 1-12 As shown, A road cone forming device with high efficiency production includes a conveying mechanism 1 for conveying a mold 5, an injection mechanism 2 for injecting material into the mold 5, a mold opening mechanism 3 for opening the mold 5, and a demoulding mechanism 4 for demoulding the molded object of the mold 5. The injection mechanism 2 includes an injection head 21, a mold cover plate 22, and a blocking mechanism 23. An injection cavity 221 is provided on the mold cover plate 22 at a position corresponding to the mold 5, and a plurality of injection holes are provided on the mold 5 at positions corresponding to the injection cavity 221. After the mold cover plate 22 is attached to the mold 5, the injection cavity 221 cooperates with the injection holes to guide the material to each injection hole. The blocking mechanism 23 includes a driving member 231 and a blocking member 232. The driving member 231 drives the blocking member 232 to move axially. The blocking member 232 is retractably connected to the mold cover plate 22. The mold cover plate 22 has an injection channel 24 connected to the injection cavity 221. The blocking member 232 is used to open and close the injection channel 24. The injection head 21 is used to inject material into the injection channel 24 on the mold cover 22. The blocking member 232 can penetrate the mold cover 22 and push the molded object in the injection cavity 221 onto the mold 5 through telescopic ejection. The demolding mechanism 4 includes a gripping member 41, an actuator 42 for driving the gripping member 41 toward or away from the mold 5, and an angle adjustment mechanism 43 for driving the actuator to switch angles. The gripping member 41 is used to grip the molded object on the mold 5, and the angle adjustment mechanism 43 adjusts the angle of the actuator 42 to offset the position of the molded object from the mold 5. The conveying mechanism 1 also drives the mold 5 to be conveyed to a position corresponding to the clamping component 41 .
[0019] The transfer mechanism 1 drives the mold 5 to move to the injection station. The mold cover plate 22 fits with the mold 5, and the injection cavity 221 is aligned with the injection hole to form a material channel. The injection head 21 injects materials into the injection cavity 221 through the injection channel 24. The materials enter the cavity of the mold 5 through the injection hole for molding. The driving part 231 (such as a cylinder or a motor) drives the material blocking part 232 to move axially. The material blocking part 232 first closes the injection channel 24 to cut off the material supply. After molding is completed and when the mold 5 is to be opened, the material blocking part 232 continues to move axially and extend to push the residual molded product (such as a sprue) in the injection cavity 221 onto the surface of the mold 5. At this time, the transfer mechanism 1 transfers the mold 5 to the demolding station. The first actuator 42 drives the clamping part 41 to move to the position on the surface of the mold 5 and clamps the molded product (such as a sprue) through the clamping fixture part. After clamping, the first actuator 42 drives the clamping part 41 to retract. At the same time, the angle adjustment mechanism 43 drives the first actuator 42 to rotate an angle so that after the molded product is displaced from the position of the mold 5, the clamping fixture part is released. At this time, the molded product drops into the collection area. This structure automatically pushes out the residual materials through the material blocking mechanism 23, avoiding the cumbersome operation of manually handling the sprue. At the same time, the automated actions of the demolding mechanism 4 replace the traditional manual collection, solving the problem of production stagnation caused by dependence on manual labor in the prior art and significantly improving production efficiency; the cooperation between the injection cavity 221 and the injection hole guides the uniform distribution of materials, ensuring the molding quality.
[0020] The above mainly introduces the demolding, picking and collecting of the sprue. By adding the demolding mechanism 4, it is also possible to demold, pick and collect more molded products. For example, the number of the demolding mechanisms 4 is at least two; the mold 5 includes a first mold component 51 and a second mold component 52. After the first mold component 51 and the second mold component 52 are combined, they have a cavity for molding a traffic cone or its semi-finished product. The mold opening mechanism 3 is used to lift the first mold component 51, separate the first mold component 51 from the second mold component 52, and move the first mold component 51 towards the corresponding demolding mechanism 4. The demolding mechanism 4 demolds by clamping the molded product on the first mold component 51 through the clamping part 41, and another demolding mechanism 4 demolds by clamping the molded product in the second mold component 52 through the clamping part 41; the second mold component 52 approaches or moves away from the position of the corresponding demolding mechanism 4 through the transfer mechanism 1. The mold cover plate 22 is used to cooperate with the first mold component 51, and the molded product pushed out by the material blocking part 232 is located on the first mold component 51.
[0021] The mold opening mechanism 3 (such as a lifting air cylinder) lifts the first mold component 51 to separate it from the second mold component 52. At this time, the molded products are respectively located on the first mold component 51 and in the cavities of the second mold component 52. The two demolding mechanisms 4 act simultaneously / sequentially: The demolding mechanism 4 corresponding to the first mold component 51 moves to the target position with the mold opening mechanism 3, and the actuator 42 drives the clamping component 41 to reach the corresponding position, and the clamping component 41 clamps the molded product (runner) that has fallen off the first mold component 51. At the same time, the conveying mechanism 1 moves the second mold component 52 to the station of the other demolding mechanism 4, and the actuator 42 of this demolding mechanism 4 drives the clamping component 41 to the corresponding position to clamp the molded product (cone product or semi-finished product) in the second mold component 52. The design of the double demolding mechanism 4 realizes the synchronous / sequential demolding of the two mold components 5, avoiding the waiting time of single-station demolding and greatly shortening the production cycle; the cooperation of the conveying mechanism 1 with the mold opening mechanism 3 and the demolding mechanism 4 completely replaces manual operation, further improving the degree of production automation and efficiency, solving the problem of production stagnation caused by manual collection in the prior art, and meeting the requirements of long-time continuous production.
[0022] As an implementation manner that can facilitate the clamping of the clamping component 41, a material guiding cavity is provided at the position of the mold 5 corresponding to the mold cover plate 22. The injection cavity 221 cooperates with the material guiding cavity to form a space for guiding the material into the injection hole; when the blocking member 232 ejects the molded product in the injection cavity 221, the molded product falls into the material guiding cavity and at least partially exposes the material guiding cavity for cooperating with the clamping component 41 to clamp. When the mold cover plate 22 fits the mold 5, the injection cavity 221 is docked with the material guiding cavity to form a complete material channel, and the material flows into the injection hole through the injection cavity 221 and the material guiding cavity. The molded product (such as a runner) ejected by the blocking member 232 falls into the material guiding cavity. Due to the structural design of the material guiding cavity, the molded product is partially exposed, facilitating the accurate positioning and clamping of the clamping component 41. The material guiding cavity not only plays a role in guiding the material, but also provides a positioning space for the molded product, avoiding the clamping failure caused by the deviation of the falling position of the molded product, and further improving the demolding efficiency and stability; the design of the molded product exposing the material guiding cavity makes the clamping action more reliable, reduces the need for manual intervention, and continues the advantages of automated production.
[0023] For the convenience of replacement and maintenance, a detachable docking head 222 is provided on the mold cover plate 22, and the injection channel 24 is located in the docking head 222; the blocking member 232 opens and closes the injection channel 24 in the docking head 222 through axial movement.
[0024] The docking head 222 is installed on the mold cover plate 22 in a detachable manner such as by threading or snap - fitting. The injection material channel 24 runs through the docking head 222. When it is necessary to replace the injection head 21 or repair the injection material channel 24, the docking head 222 can be directly disassembled without replacing the entire mold cover plate 22. The blocking member 232 is inserted into the docking head 222 and is driven axially by the driving member 231 to open or close the injection material channel 24. The detachable design of the docking head 222 facilitates maintenance and replacement of vulnerable parts, reducing the equipment maintenance cost; at the same time, docking heads 222 of different specifications can be adapted to different models of injection heads 21, improving the versatility of the device and meeting the diverse production requirements.
[0025] For the convenience of docking and matching with the injection head 21, a docking port is provided on the docking head 222. The docking port is concave and communicates with the injection material channel 24. The shape of the docking port is adapted to the shape of the injection head 21 for the injection head 21 to be inserted for docking.
[0026] As an implementable way of the angle - adjusting mechanism 43, the angle - adjusting mechanism 43 includes a bracket 431, an actuator two 432 rotatably connected to the bracket 431, and a connecting shaft 433 rotatably connected to the bracket 431; the connecting shaft 433 is fixedly connected to the actuator one 42, and the connecting shaft 433 is driven to rotate by the actuator two 432 to drive the actuator one 42 to rotate.
[0027] The bracket 431 is fixed on the external equipment frame. One end of the actuator two 432 (such as a hydraulic cylinder or a rotary motor) is hinged to the bracket 431, and the other end is linked with the connecting shaft 433 through a connecting rod or a gear. The connecting shaft 433 is fixedly connected to the actuator one 42. When the actuator two 432 acts, it drives the connecting shaft 433 to rotate on the bracket 431, and then makes the actuator one 42 rotate around the axis of the connecting shaft 433. Through the angle - adjusting mechanism 43, the actuator one 42 can drive the clamping component 41 to switch between different angles, realizing the misalignment of the molded object and the mold 5, which is convenient for clamping and demolding. This structure realizes angle adjustment through mechanical transmission, with precise and stable movements, and can adapt to the demolding angle requirements of different molds 5, improving the flexibility and applicability of the demolding mechanism 4.
[0028] More specifically, an adjusting part 44 for cooperating with the actuator two 432 is arranged on the connecting shaft 433. The adjusting part 44 is fixedly connected to the connecting shaft 433, and a strip - shaped hole 441 is arranged at the position where it is connected to the actuator two 432. The actuator two 432 is slidably connected to the strip - shaped hole 441 at the corresponding position and can be positioned on the adjusting part 44 through a fastener; the actuator two 432 adjusts the swinging angle of the actuator one 42 by adjusting its connection position with the strip - shaped hole 441.
[0029] The adjusting member 44 is fixed on the connecting shaft 433 by a key or a bolt, and a strip-shaped hole 441 is formed on its surface. A connecting pin is arranged at the output end of the second actuator 432. The connecting pin passes through the strip-shaped hole 441 and is fixed by fasteners such as nuts. When it is necessary to adjust the swing angle of the first actuator 42, loosen the fasteners and move the position of the connecting pin in the strip-shaped hole 441 (such as sliding along the length direction of the strip-shaped hole 441), change the connection point between the second actuator 432 and the adjusting member 44, so as to adjust the rotation amplitude of the connecting shaft 433, and further change the swing angle of the first actuator 42. After the adjustment is completed, tighten the fasteners to fix the position. This design allows the demolding angle to be flexibly adjusted according to actual production requirements, adapts to the demolding requirements of different specifications of road cones, and improves the versatility of the device; the matching structure of the strip-shaped hole 441 and the connecting pin is simple, convenient to adjust, and reliable in positioning.
[0030] To facilitate adapting to the length of the second actuator 432, the strip-shaped hole 441 is arc-shaped, and the concave surface of the arc corresponds to the second actuator 432; the arc of the strip-shaped hole 441 matches the trajectory of one end of the strip-shaped hole 441 corresponding to the second actuator 432 when the second actuator 432 rotates. The center of the arc of the arc-shaped strip-shaped hole 441 coincides with the axis of the connecting shaft 433. When the second actuator 432 rotates, the connecting pin at its output end moves along the trajectory of the arc-shaped strip-shaped hole 441. Since the shape of the arc-shaped strip-shaped hole 441 matches the movement trajectory of the connecting pin, the resistance is small when the connecting pin slides in the strip-shaped hole 441, the movement is smooth, and the problems of jamming or stress concentration that may be caused by a straight strip-shaped hole 441 are avoided. When changing the swing angle of the first actuator 42, this structure makes the rotation of the second actuator 432 more stable and the angle adjustment process more accurate.
[0031] In a preferred solution, a rotating shaft 434 is arranged at one end of the second actuator 432 corresponding to the strip-shaped hole 441. The rotating shaft 434 is rotatably connected to the second actuator 432 and is also fixedly connected to the strip-shaped hole 441 by fasteners. The second actuator 432 is positioned in the strip-shaped hole 441 through the rotating shaft 434. One end of the rotating shaft 434 is hinged to the output end of the second actuator 432, and the other end penetrates into the arc-shaped strip-shaped hole 441 and is fixed to the adjusting member 44 by fasteners such as bolts or pin shafts. When the second actuator 432 acts, the position of the rotating shaft 434 in the strip-shaped hole 441 remains fixed, but it can rotate, and at the same time drives the second actuator 432 to swing around the hinge point. The rotational connection between the rotating shaft 434 and the second actuator 432 allows relative rotation between the two. This structure realizes the stable positioning of the second actuator 432 on the adjusting member 44 through the cooperation of the rotating shaft 434 and the fasteners, ensures that the position is fixed after the demolding angle is adjusted, avoids angle deviation caused by factors such as vibration, and ensures the consistency and reliability of the demolding action.
[0032] To further improve the angular adjustment flexibility of the first actuator 42, the adjusting member 44 and the connecting shaft 433 are clamped by a hoop structure 45, and relative rotation can occur between the adjusting member 44 and the connecting shaft 433 after loosening. The hoop structure 45 is sleeved on the connecting shaft 433. When fastened by bolts, the hoop clamps the adjusting member 44, fixedly connecting the adjusting member 44 and the connecting shaft 433. After loosening the bolts, the clamping force of the hoop on the adjusting member 44 is released, and the adjusting member 44 can rotate around the connecting shaft 433. When it is necessary to adjust the circumferential position of the adjusting member 44 on the connecting shaft 433 (such as changing the initial angle of the elongated hole 441), loosen the hoop, rotate the adjusting member 44 to the target position and then fasten it again. This design allows for fine angular adjustment of the adjusting member 44 relative to the connecting shaft 433, facilitating matching with the installation position of the second actuator 432, improving the installation flexibility and adaptability of the angular adjustment mechanism 43, ensuring precise cooperation of all components, and further optimizing the accuracy of the demolding action.
[0033] The above is only the preferred embodiment of the present invention, and the protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the concept of the present invention belong to the protection scope of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements should also be regarded as within the protection scope of the present invention.
Claims
1. A road cone forming device for efficient production, comprising a conveying mechanism for conveying a mold, an injection mechanism for injecting material into the mold, a mold opening mechanism for opening the mold, and a demoulding mechanism for demoulding a molded object from the mold, characterized in that: The injection mechanism includes an injection head, a mold cover plate, and a blocking mechanism; an injection cavity is provided on the mold cover plate at a position corresponding to the mold, and a plurality of injection holes are provided on the mold at positions corresponding to the injection cavity. After the mold cover plate is attached to the mold, the injection cavity and the injection holes cooperate to guide the material to each injection hole; The blocking mechanism includes a driving member and a blocking member, wherein the driving member drives the blocking member to move axially; the blocking member is retractably connected to the mold cover plate, and the mold cover plate has an injection channel connected to the injection cavity, and the blocking member is used to open and close the injection channel; The injection head is used to inject material into the injection channel on the mold cover, and the blocking member can penetrate the mold cover and push the molded object in the injection cavity onto the mold through telescopic ejection; The demoulding mechanism includes a clamping component, an actuator 1 for driving the clamping component to move toward or away from the mold, and an angle adjustment mechanism for driving the actuator to switch the angle; the clamping component is used to clamp the molded object on the mold, and the angle adjustment mechanism adjusts the angle of the actuator 1 to stagger the molded object and the mold; The conveying mechanism also drives the mold to be conveyed to a position corresponding to the clamping component.
2. The efficient production road cone forming device according to claim 1, wherein A material guide cavity is provided on the mold at a position corresponding to the mold cover plate, and the injection cavity and the material guide cavity cooperate to form a space for guiding the material into the injection hole; when the blocking member pushes the molded object in the injection cavity, the molded object falls into the material guide cavity and is at least partially exposed from the material guide cavity for cooperation with the clamping member to clamp it.
3. The efficient production road cone forming device according to claim 1, characterized in that, The mold cover plate is provided with a detachable butt joint, and the injection channel is located in the butt joint; the blocking member opens and closes the injection channel in the butt joint by axial movement.
4. The road cone forming device for efficient production according to claim 3, wherein The docking head is provided with a docking port, which is concave and communicated with the injection channel. The shape of the docking port is adapted to the shape of the injection head and is used for the injection head to be inserted into the docking port.
5. The efficient production road cone forming device according to claim 1 or 2 or 3 or 4, characterized in that, The angle adjustment mechanism includes a bracket, an actuator 2 rotatably connected to the bracket, and a connecting shaft rotatably connected to the bracket; the connecting shaft is fixedly connected to the actuator 1, and the connecting shaft is driven to rotate by the actuator 2 to drive the actuator 1 to rotate.
6. The efficient production road cone forming device according to claim 5, characterized in that, The connecting shaft is provided with an adjusting member for cooperating with the actuator 2. The adjusting member is fixedly connected to the connecting shaft, and a strip hole is provided at the position connected to the actuator 2. The position of the actuator 2 corresponding to the strip hole is slidably connected to the strip hole and can be positioned on the adjusting member by a fastener; the actuator 2 adjusts the swing angle of the actuator 1 by adjusting the connection position with the strip hole.
7. The road cone forming device for efficient production according to claim 6, characterized in that, The strip-shaped hole is arc-shaped, and the inner concave surface of the arc corresponds to the second actuator; the arc shape of the strip-shaped hole matches the trajectory of the end of the second actuator corresponding to the strip-shaped hole when the second actuator rotates.
8. The efficient production road cone forming device according to claim 6, characterized in that, One end of the second actuator corresponding to the strip hole is provided with a rotating shaft, the rotating shaft is rotatably connected to the second actuator and is also fixedly connected to the strip hole through a fastener, and the second actuator is positioned in the strip hole through the rotating shaft.
9. The road cone forming device for efficient production according to claim 7, wherein, The adjusting member and the connecting shaft are clamped through a hoop structure and can be loosened to allow relative rotation between the adjusting member and the connecting shaft.
10. The road cone forming device for efficient production according to claim 1, characterized in that The number of the demolding mechanisms is at least two; the mold includes a first mold assembly and a second mold assembly. After the first mold assembly and the second mold assembly are combined, a cavity for molding a traffic cone or its semi-finished product is formed. The mold opening mechanism is used to lift the first mold assembly, separate the first mold assembly from the second mold assembly, and move the first mold assembly towards the corresponding demolding mechanism. The demolding mechanism demolds the molded product on the first mold assembly through a clamping member, and another demolding mechanism demolds the molded product in the second mold assembly through a clamping member; the second mold assembly approaches or moves away from the position of the corresponding demolding mechanism through a conveying mechanism, and the mold cover plate is used to cooperate with the first mold assembly, and the molded product knocked down by the material blocking member is located on the first mold assembly.
Citation Information
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