Automatic injection molding blanking equipment
By designing automatic injection molding and cutting equipment, and using the turret to achieve accurate station switching, the traditional two-color injection molding equipment requires multiple mold opening, transfer of fixtures and manual intervention, and the synchronization of the four processes of injection molding, cooling, secondary injection molding and cutting is achieved, improving production efficiency and equipment automation level.
Patent Information
- Application Number
- CN202510566123.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2025-06-27
AI Technical Summary
Traditional two-color injection molding equipment requires multiple mold opening, transfer of fixtures and manual intervention to complete two-color injection molding and cutting, resulting in extended production cycle, easy product damage, and complex structural parts are prone to shutdown and cleanup due to sticking to mold when they are demolded.
An automatic injection molding and cutting equipment is designed, including front and rear formwork that can be opened and closed up and down, and a turret that can be lifted and lowered up and down, and a turret that can be rotated up and down. The station is accurately switched through the turret, and the four stations simultaneously perform the continuous process of primary injection molding → cooling → secondary injection molding → cutting.
Break through the traditional serial production model of injection molding machines, and realize the synchronous progress of four processes: injection molding, cooling, secondary injection molding and cutting, improving production efficiency, shortening the production cycle, and reducing the risks of manual intervention and equipment shutdown.
Smart Images

Figure CN120206736A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of automated equipment processing, and particularly relates to an automatic injection molding and blanking device. Background Art
[0002] In actual production, injection molding technology, as the core process for plastic product processing, places higher requirements on the multi-station coordination ability and automation level of equipment in fields such as two-color injection molding and insert molding. Traditional two-color injection molding equipment mostly adopts single-station molds or split turntable structures, and multiple mold openings, transfer fixtures, and manual intervention are required to complete two-color injection molding and blanking, presenting the following technical bottlenecks: In the traditional process, after the first injection molding, it is necessary to manually or use a robotic arm to transfer the semi-finished product to the second injection molding station. The cooling and molding processes cannot be carried out simultaneously, the production cycle is extended, and it relies on manual demolding or a simple ejection mechanism, which is likely to cause product damage. Moreover, when demolding complex structural parts, it is easy to cause downtime for cleaning due to sticking to the mold. In addition, the layout of multi-station equipment is loose, and the angular distribution of turntable stations is unreasonable, making it difficult to meet the requirements of a compact production line. Summary of the Invention
[0003] (1) Technical Problems to be Solved
[0004] The present invention discloses an automatic injection molding and blanking device, aiming to solve the problem that two-color injection molding and blanking in secondary injection molding need to be completed through multiple mold openings, transfer fixtures, and manual intervention.
[0005] (2) Technical Solutions
[0006] The present invention discloses an automatic injection molding and blanking device, including a frame. A front template and a rear template that can be opened and closed up and down are provided on the frame. A turret that can be lifted and rotated up and down is also provided on the frame. The turret includes a main rotating shaft, a rotating member that drives the main rotating shaft to rotate, a lifting assembly that drives the main rotating shaft to lift, a rotating disk coaxially connected to the main rotating shaft, and a fixture connected to the rotating disk.
[0007] The turret sequentially passes through the front template and the rear template, and the fixture is arranged between the front template and the rear template;
[0008] An injection molding position one, an injection molding position two, and a pushing position are sequentially arranged around the turret between the front template and the rear template. Injection molding modules are arranged in both the injection molding position one and the injection molding position two. The injection molding module includes a fixed mold arranged on the front template and a moving mold arranged on the rear template. When the rear template and the front template are closed, the fixed mold and the moving mold form an injection cavity; when the mold is closed, at least part of the fixture passes through the injection molding module and extends into the injection cavity;
[0009] A pushing mechanism corresponding to the pushing position is further provided on the frame. The pushing mechanism includes a first driving member and a pushing assembly. The output shaft of the first driving member is connected to the pushing assembly to drive the pushing assembly to move and push materials.
[0010] Furthermore, a transition position is provided between the front template and the rear template. The transition position is located between the first injection position and the second injection position, and the transition position is arranged on the opposite side of the pushing position.
[0011] Furthermore, four fixtures are provided on the rotating disk, and the four fixtures respectively correspond to the first injection position, the transition position, the second injection position, and the pushing position.
[0012] Furthermore, a number of extension rods are provided on the fixture, and a number of injection cavities are provided in the injection module, which are respectively arranged in one-to-one correspondence with the extension rods.
[0013] Furthermore, the lifting assembly includes a moving plate, and a lifting member is provided on the moving plate. The output shaft of the lifting member is fixedly connected to the rear template.
[0014] Furthermore, two lifting members are provided, and they are symmetrically arranged on the moving plate.
[0015] Furthermore, the lifting assembly further includes a bracket. One end of the bracket is connected to the moving plate, and the other end is fixedly connected to the rotating member. The main rotating shaft passes through the bracket and is fixedly connected to the output shaft of the rotating member.
[0016] Furthermore, the lifting assembly further includes a limiting plate. The limiting plate is arranged in parallel correspondence with the moving plate. A connecting column is provided on the limiting plate, and the connecting column passes through the moving plate and is fixedly connected to the rear template.
[0017] Furthermore, the pushing assembly includes a pushing plate, a connecting plate arranged in parallel correspondence with the pushing plate, and a first guide post and a second guide post arranged in parallel to connect the pushing plate and the connecting plate. The pushing plate, the connecting plate, the first guide post, and the second guide post enclose an avoidance area, and the main rotating shaft is arranged in the avoidance area.
[0018] Furthermore, a groove adapted to the extension rod is provided on the pushing plate.
[0019] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0020] The circumferential layout of the first injection position, the transition position, the second injection position, and the pushing position realizes precise switching of work positions through a turret. The four work positions synchronously execute a continuous process of injection → cooling → secondary injection → blanking once, breaking through the traditional serial production mode of injection molding machines and improving work efficiency. Description of the Drawings
[0021] Figure 1 This is the overall structural schematic diagram of the present invention.
[0022] Figure 2 This is the overall exploded view of the present invention.
[0023] Figure 3 This is the schematic diagram of the state during the injection molding process of the present invention Figure 1 .
[0024] Figure 4 This is the schematic diagram of the turret of the present invention.
[0025] Figure 5 This is the exploded view of the turret of the present invention.
[0026] Figure 6 This is the schematic diagram of the fixture and the turntable of the present invention.
[0027] Figure 7 This is the schematic diagram of the injection molding position of the present invention.
[0028] Figure 8 This is the schematic diagram of the lifting assembly of the present invention.
[0029] Figure 9 This is the sectional view of the connection of the connecting column of the present invention.
[0030] Figure 10 This is the sectional view of the connection between the bracket and the moving plate of the present invention.
[0031] Figure 11 This is the moving schematic diagram of the lifting assembly of the present invention.
[0032] Figure 12 This is the schematic diagram of the pushing mechanism of the present invention.
[0033] Figure 13 This is the top view state diagram of the use of the pushing mechanism of the present invention.
[0034] Reference numerals: 1 - frame, 11 - injection molding position one, 12 - transition position, 13 - injection molding position two, 14 - pushing position, 15 - injection molding module, 151 - fixed mold, 152 - moving mold, 16 - injection cavity, 2 - turret, 21 - rotating part, 22 - main rotating shaft, 23 - lifting assembly, 231 - moving plate, 232 - lifting part, 233 - bracket, 234 - limiting plate, 235 - connecting column, 24 - rotating disk, 25 - fixture, 26 - extension rod, 3 - front template, 4 - rear template, 5 - pushing mechanism, 51 - driving part one, 52 - pushing assembly, 521 - pushing plate, 5211 - groove, 522 - connecting plate, 523 - guide post one, 524 - guide post two, 525 - avoidance area, 526 - mounting seat, 6 - product. Detailed implementation manners
[0035] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all of them. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present invention.
[0036] As Figures 1-3 shown, the present invention discloses an automatic injection molding and blanking device, including a frame 1. A front template 3 and a rear template 4 that can be opened and closed up and down are provided on the frame 1. A turret 2 that can be lifted and rotated up and down is also provided on the frame 1. The turret 2 includes a main rotating shaft 22, a rotating member 21 that drives the main rotating shaft 22 to rotate, a lifting assembly 23 that drives the main rotating shaft 22 to lift, a rotating disk 24 coaxially connected to the main rotating shaft 22, and a jig 25 connected to the rotating disk 24.
[0037] During use, the turret 2 sequentially passes through the front template 3 and the rear template 4 under the action of the lifting assembly 23, and the jig 25 is arranged between the front template 3 and the rear template 4.
[0038] An injection molding position one 11, an injection molding position two 13, and a material pushing position 14 are sequentially arranged around the turret 2 between the front template 3 and the rear template 4. Injection molding modules 15 are provided in both the injection molding position one 11 and the injection molding position two 13. The injection molding module 15 includes a fixed mold 151 and a movable mold 152. The fixed mold 151 is arranged on the rear template 4, and the movable mold 152 is arranged on the front template 3. The fixed mold 151 and the movable mold 152 are closed under the action of a driving member to form an injection molding cavity 16. When closing the mold, at least part of the jig 25 passes through the injection molding module 15 and extends into the injection molding cavity 16 to be integrally formed with the product 6. The output shaft of the rotating member 21 rotates to drive the jig 25 to rotate among the injection molding position one 11, the injection molding position two 13, and the material pushing position 14. After the jig 25 is integrally formed with the product 6, the mold is opened. The jig 25 rotates with the rotating member 21, and the jig 25 after being integrally formed with the product 6 reaches the material pushing position 14. A material pushing mechanism 5 corresponding to the material pushing position 14 is also provided on the frame 1. The material pushing mechanism 5 includes a driving member one 51 and a material pushing assembly 52. The output shaft of the driving member one 51 is connected to the material pushing assembly 52 to drive the material pushing assembly 52 to move and push the material. During use, the material pushing assembly 52 separates the product 6 integrally formed with the jig 25 located at the material pushing position 14 from the jig 25 to obtain the product 6.
[0039] Preferably, the rotating member 21 is a motor in this embodiment. In this embodiment, the first driving member 51 is a motor, and it can also be set as a cylinder or a lead screw.
[0040] Specifically, as Figures 3-6 shown, a transition position 12 is further provided between the front template 3 and the rear template 4. The transition position 12 is located between the first injection position 11 and the second injection position 13, and the transition position 12 is arranged on the opposite side of the material pushing position 14. During use, the rotating member 21 drives the rotating disk 24 to rotate successively at the first injection position 11, the transition position 12, the second injection position 13, and the material pushing position 14 to perform a production process of one injection, cooling after the first injection, second injection, and blanking. Specifically: the rotating member 21 drives the fixture 25 to be located at the first injection position 11, the lifting assembly 23 drives the fixture 25 to reach the fixed mold 151, the fixed mold 151 and the moving mold 152 are closed for injection to form a first injection finished product. The fixed mold 151 and the moving mold 152 are separated by the driving member, and the fixture 25 is lifted by the lifting assembly 23 to be separated from the fixed mold 151, so that the first injection finished product integrally formed with the fixture 25 is located between the fixed mold 151 and the moving mold 152. Subsequently, the rotating member 21 rotates the first injection finished product to the transition position 12 for cooling. Then, the rotating member 21 rotates the first injection finished product to the second injection position 13 between the second group of fixed mold 151 and the moving mold 152. The lifting assembly 23 descends the first injection finished product integrally formed with the fixture 25 onto the fixed mold 151. The fixed mold 151 and the moving mold 152 are closed for injection to perform a second injection to form a second injection finished product, that is, the product 6. Then, the mold is opened. The lifting assembly 23 raises the product 6 integrally formed with the fixture 25 to be separated from the fixed mold 151. The rotating member 21 rotates the fixture 25 fixed with the product 6 to the material pushing position 14 for blanking, achieving a continuous automatic production effect. By setting the transition position 12, the finished product after the first injection is fully cooled before entering the second injection position 13 for the second injection, resulting in a better forming effect. The rotating disk 24 rotates once to complete multiple steps of one product 6, realizing the synchronous progress of four processes: one injection molding, cooling and shaping, second injection, and ejection and blanking, improving the production rhythm, greatly improving the production efficiency, and optimizing the space utilization to achieve continuous production.
[0041] Furthermore, as Figure 6 and Figure 7As shown, there are four fixtures 25 provided on the rotating disk 24, and the four fixtures 25 respectively correspond to the first injection position 11, the transition position 12, the second injection position 13, and the material pushing position 14, enabling simultaneous operation of multiple stations. The first injection position 11 is performing the first injection, and at the same time, the transition position 12 can cool the finished product after the first injection; the second injection position 13 performs the second injection, while the material pushing position 14 completes the material discharging operation. This multi-station parallel operation significantly shortens the production cycle and improves the overall production efficiency.
[0042] Preferably, as Figure 6 shown, there are several extension rods 26 provided on the fixture 25, and several injection cavities 16 are provided in the injection module 15, which are respectively arranged in one-to-one correspondence with the extension rods 26, enabling the injection molding of multiple products 6 simultaneously, significantly improving the production efficiency; by injecting multiple products 6 simultaneously, the production time of a single product 6 is reduced, thereby shortening the overall production cycle; each extension rod 26 corresponds to one injection cavity 16, ensuring uniform distribution of injection pressure and temperature, thereby improving the molding quality of each product 6; through the precise correspondence relationship, defects caused by uneven injection pressure or uneven material distribution, such as air bubbles and sink marks, can be reduced.
[0043] It should be noted that the extension rod 26 is made of a material that is resistant to high temperature and wear. In the injection process, the integrated molding design of the extension rod 26 and the product 6 needs to consider temperature changes and mechanical stresses, improve positioning accuracy, enhance system rigidity, reduce vibration and noise, and improve load capacity, etc.
[0044] It should be noted that in order to ensure that the front template 3 and the rear template 4 are closely fitted when clamping the mold, and to avoid flash or cavity offset caused by pressure fluctuations, in this embodiment, the clamping of the front template 3 and the rear template 4 adopts a hydraulic drive method, and through the synchronous operation of the double injection ports and the turret 2-station cycle, the production capacity per unit time is increased.
[0045] Specifically, as Figure 8 shown, the lifting assembly 23 includes a moving plate 231, and a lifting member 232 is provided on the moving plate 231. The output shaft of the lifting member 232 is fixedly connected to the rear template 4. During use, the lifting member 232 is fixed on the moving plate 231. When injection operation is required, the output shaft of the lifting member 232 moves upward, and the lifting member 232 is fixedly connected to the rear template 4 and acts on the moving plate 231 in the opposite direction to make the moving plate 231 descend. When it is necessary to separate the product 6 from the fixed mold 151, the lifting member 232 drives the moving plate 231 to move upward.
[0046] Furthermore, in order to ensure that the lifting member 232 drives the movable plate 231 to move smoothly, two lifting members 232 are provided and symmetrically arranged on the movable plate 231 to ensure uniform distribution of force during the lifting process, avoid tilting or instability of the movable plate 231 caused by unilateral force, reduce vibration generated during the lifting process, and improve the stability of equipment operation.
[0047] Furthermore, if Figure 9 As shown, in order to realize the rotation and lifting of the turret 2, the lifting assembly 23 also includes a bracket 233, one end of the bracket 233 is connected to the moving plate 231, and the other end is fixedly connected to the rotating member 21, the main shaft 22 passes through the bracket 233 and is fixedly connected to the output shaft of the rotating member 21, the main shaft 22 is rotatably connected to the bracket 233, the bracket 233 is connected to the moving plate 231, and the moving plate 231 rises and falls, thereby driving the main shaft 22 to rise and fall, so that the fixture 25 is movably connected in the space between the fixed mold 151 and the movable mold 152, the shell of the rotating member 21 is fixed to the bracket 233, the output shaft of the rotating member 21 is fixedly connected to the main rotating shaft 22 to drive the main rotating shaft 22 to rotate, and then drive the fixture 25 to rotate and rotate between the injection position 11, the transition position 12, the injection position 2 13 and the pushing position 14. Through the connection of the bracket 233, the lifting and rotating actions of the main rotating shaft 22 can be more accurately controlled to ensure the precise movement of the fixture 25 between different stations.
[0048] Furthermore, if Figures 10-11 As shown, the lifting assembly 23 also includes a limit plate 234, and the limit plate 234 is arranged parallel to the movable plate 231. A connecting column 235 is provided on the limit plate 234, and the connecting column 235 passes through the movable plate 231 and is fixedly connected to the rear template 4. The limit plate 234 is fixedly connected to the lower part of the rear template 4 by setting the connecting column 235, and the limit plate 234 is located below the movable plate 231. By setting the connecting column 235, the movable plate 231 provides guidance and maintains stability when approaching or moving away from the limit plate 234, thereby preventing the movable plate 231 from deflecting or shaking during the lifting process, and ensuring that the jig 25 accurately reaches the injection cavity 16 during injection molding.
[0049] Specifically, Figure 12As shown, the pusher assembly 52 includes a pusher plate 521, a connecting plate 522 parallel to and corresponding to the pusher plate 521, and a first guide post 523 and a second guide post 524 arranged in parallel to connect the pusher plate 521 and the connecting plate 522. The pusher plate 521, the connecting plate 522, the first guide post 523, and the second guide post 524 enclose an avoidance area 525. The main rotating shaft 22 is arranged in the avoidance area 525, so that when the pusher plate 521 pushes the product 6 under the action of the first driving member 51, it can avoid colliding with the main rotating shaft 22. During use, the output shaft of the first driving member 51 is fixedly connected to the connecting plate 522 to drive the connecting plate 522 to move, thereby driving the first guide post 523, the second guide post 524, and the pusher plate 521 to move. When the product 6 moves to the pusher plate 521, the first driving member 51 drives the pusher plate 521 to push out, separating the product 6 from the fixture 25. Subsequently, the first driving member 51 drives the pusher plate 521 to retract and wait for the product 6 to arrive for the next pushing.
[0050] Furthermore, the pusher assembly 52 further includes a mounting seat 526. The mounting seat 526 is arranged between the pusher plate 521 and the connecting plate 522. The mounting seat 526 is fixedly arranged on the rear template 4. The main rotating shaft 22 separates the mounting seat 526 and the connecting plate 522 on both sides of the main rotating shaft 22. The first guide post 523 and the second guide post 524 penetrate through the mounting seat 526 and are fixedly connected to the pusher plate 521 and the connecting plate 522 at both ends respectively. By setting the mounting seat 526, the first guide post 523 and the second guide post 524 can be kept stable during movement to prevent deviation or wobbling, thereby ensuring the smooth movement of the pusher plate 521, enabling the fixture 25 to correspond to the pusher plate 521 and better push out the product 6. At the same time, the mounting seat 526 is arranged on one side of the pusher plate 521, so that when the first driving member 51 drives the pusher plate 521 to return to its position, it can avoid excessive return and cause the pusher plate 521 to collide with the main rotating shaft 22, ensuring the safe operation of the equipment.
[0051] Preferably, as Figures 12-13 shown, the pusher plate 521 is provided with a groove 5211 adapted to the extension rod 26. During use, when the extension rod 26 reaches the groove 5211, it matches with the groove 5211. By designing the groove 5211, the positioning can be ensured to be accurate, the deviation can be reduced, and it is convenient for the extension rod 26 to disengage from the product 6. This design reduces the disengagement of the product 6 and the extension rod 26 during the ejection process.
[0052] The working principle of the present invention is described in detail as follows;
[0053] The rotating member 21 drives the jig 25 to be located at the first injection position 11. The lifting assembly 23 drives the jig 25 to reach the fixed mold 151. The fixed mold 151 and the moving mold 152 are closed for injection molding to form a primary injection molded product. The fixed mold 151 and the moving mold 152 are separated by a driving member. The lifting assembly 23 raises the jig 25 to separate it from the fixed mold 151, so that the primary injection molded product integrally formed with the jig 25 is located between the fixed mold 151 and the moving mold 152. Subsequently, the rotating member 21 rotates the primary injection molded product to the transition position 12 for cooling. Then, the rotating member 21 rotates the primary injection molded product to the second injection position 13 located between the second set of fixed mold 151 and the moving mold 152. The lifting assembly 23 lowers the primary injection molded product integrally formed with the jig 25 onto the fixed mold 151. The fixed mold 151 and the moving mold 152 are closed for injection molding to perform secondary injection molding to form a secondary injection molded product, i.e., the product 6. Subsequently, the mold is opened. The lifting assembly 23 raises the product 6 integrally formed with the jig 25 to separate it from the fixed mold 151. The rotating member 21 rotates the jig 25 fixed with the product 6 to the pushing position 14 for blanking. The integrally formed product 6 and the jig 25 move to the groove 5211. The first driving member 51 drives the pushing plate 521 to push out, thereby pushing out the product 6, so that the product 6 is separated from the extension rod 26 to obtain the product 6. This process is repeated continuously to achieve a continuous and automatic production effect.
[0054] The innovation of the present invention lies in the circumferential layout of the first injection position, the transition position, the second injection position, and the pushing position. The turret is used to achieve precise switching of work positions, and the four work positions synchronously execute a continuous process of primary injection molding → cooling → secondary injection molding → blanking, breaking through the traditional serial production mode of injection molding machines and improving work efficiency.
[0055] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other implementations that can be understood by those skilled in the art.
[0056] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, it is intended to include all changes falling within the meaning and scope of the equivalent elements of the claims in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed rights.
Claims
1. An automatic injection molding blanking equipment, characterized in that: The invention comprises a frame (1), wherein the frame (1) is provided with a front template (3) and a rear template (4) which can be opened and closed up and down, and the frame (1) is also provided with a turret (2) which can be lifted up and down and rotated, and the turret (2) comprises a main rotating shaft (22), a rotating member (21) driving the main rotating shaft (22) to rotate, a lifting assembly (23) driving the main rotating shaft (22) to lift and lower, a rotating disk (24) coaxially connected to the main rotating shaft (22), and a fixture (25) connected to the rotating disk (24). The turret (2) is sequentially inserted into the front template (3) and the rear template (4), and the jig (25) is arranged between the front template (3) and the rear template (4); An injection molding position 1 (11), an injection molding position 2 (13) and a material pushing position (14) are sequentially arranged between the front mold plate (3) and the rear mold plate (4) around the turret (2); an injection molding position 1 (11) and an injection molding position 2 (13) are both provided with an injection molding mold group (15); the injection molding mold group (15) comprises a fixed mold (151) arranged on the front mold plate (3) and a movable mold (152) arranged on the rear mold plate (4); when the rear mold plate (4) and the front mold plate (3) are closed, the fixed mold (151) and the movable mold (152) form an injection molding cavity (16); when the molds are closed, at least a portion of the jig (25) passes through the injection molding mold group (15) and extends into the injection molding cavity (16); The frame (1) is also provided with a material pushing mechanism (5) corresponding to the material pushing position (14), and the material pushing mechanism (5) comprises a driving member (51) and a material pushing assembly (52), and the output shaft of the driving member (51) is connected to the material pushing assembly (52) to drive the material pushing assembly (52) to move and push the material.
2. The automatic injection molding blanking equipment according to claim 1, characterized in that: A transition position (12) is also provided between the front template (3) and the rear template (4), and the transition position (12) is located between the first injection position (11) and the second injection position (13), and the transition position (12) is arranged on the opposite side of the material pushing position (14).
3. The automatic injection molding blanking equipment according to claim 2, characterized in that: The rotating disk (24) is provided with four jigs (25), and the four jigs (25) respectively correspond to the injection position 1 (11), the transition position (12), the injection position 2 (13) and the material pushing position (14).
4. The automatic injection molding blanking equipment according to claim 3, characterized in that: The jig (25) is provided with a plurality of extension rods (26), and the injection mold (15) is provided with a plurality of injection cavities (16), which are respectively arranged in one-to-one correspondence with the extension rods (26).
5. The automatic injection molding blanking equipment according to claim 1, characterized in that: The lifting assembly (23) comprises a movable plate (231), a lifting member (232) is provided on the movable plate (231), and an output shaft of the lifting member (232) is fixedly connected to the rear template (4).
6. The automatic injection molding blanking equipment according to claim 5, characterized in that: The lifting members (232) are provided in two numbers and are symmetrically arranged on the moving plate (231).
7. The automatic injection molding blanking equipment according to claim 5, characterized in that: The lifting assembly (23) further comprises a bracket (233), one end of the bracket (233) being connected to the movable plate (231), and the other end of the bracket being fixedly connected to the rotating member (21), and the main rotating shaft (22) passing through the bracket (233) and being fixedly connected to the output shaft of the rotating member (21).
8. The automatic injection molding blanking equipment according to claim 7, characterized in that: The lifting assembly (23) further comprises a limit plate (234), the limit plate (234) being arranged in parallel with the movable plate (231), the limit plate (234) being provided with a connecting column (235), the connecting column (235) penetrating the movable plate (231) and being fixedly connected to the rear template (4).
9. The automatic injection molding blanking equipment according to claim 4, characterized in that: The pusher assembly (52) comprises a pusher plate (521), a connecting plate (522) parallel to and corresponding to the pusher plate (521), and a guide column 1 (523) and a guide column 2 (524) arranged in parallel to connect the pusher plate (521) and the connecting plate (522); the pusher plate (521), the connecting plate (522), the guide column 1 (523) and the guide column 2 (524) are combined to form an avoidance area (525); the main shaft (22) is arranged in the avoidance area (525).
10. The automatic injection molding material discharging equipment according to claim 9, characterized in that: The push plate (521) is provided with a groove (5211) adapted to the extension rod (26).