Auxiliary conveying mechanism for injection molding part material belt

By designing an adjustable auxiliary conveyor mechanism for injection molding material strips, the problem of poor compatibility of injection mold conveyor mechanisms was solved, enabling adaptability to various products and molds, reducing idle time and saving costs.

CN223820981UActive Publication Date: 2026-01-23江门塚田正川科技有限公司
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Patent Information

Application Number
CN202520311320.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-01-23
Estimated Expiration
2035-02-25

AI Technical Summary

Technical Problem

The existing injection mold conveying mechanism has poor compatibility and cannot adapt to changes in the position and spacing of the material strip for different products or molds, resulting in a high idle rate. Multiple sets of mechanisms need to be prepared as backups.

Method used

An auxiliary conveying mechanism for injection molded parts was designed, including a discharge pulling mechanism and a feeding guide mechanism. By combining the width adjustment component and the pulling component, the position and spacing of the conveying channel can be adjusted to adapt to various products and molds.

Benefits of technology

It improves the compatibility and utilization rate of the conveying mechanism, reduces the idle rate, saves costs, and enables simple adjustment operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an injection molding part material belt auxiliary conveying mechanism which comprises a discharging and pulling mechanism, the discharging and pulling mechanism comprises a first mounting frame, two pulling assemblies and two first width adjusting assemblies, and the two first width adjusting assemblies are arranged on the first mounting frame in the first direction; the two material pulling assemblies are arranged between the two first width adjusting assemblies in the second direction, the first direction is perpendicular to the second direction, the two material pulling assemblies are each provided with a first conveying channel, and the first conveying channels extend in the first direction; the two first width adjusting assemblies are connected with the corresponding material pulling assemblies correspondingly, the first width adjusting assemblies can drive the corresponding material pulling assemblies to move in the second direction, and then the positions of the first conveying channels in the second direction are adjusted, and / or the distance between the two first conveying channels is adjusted; the device has the advantages of being good in compatibility and easy and convenient to adjust and operate.
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Description

Technical Field

[0001] This utility model relates to the field of conveying equipment technology, specifically to an auxiliary conveying mechanism for injection molded parts. Background Technology

[0002] During the operation of injection molds, most injection molds employ a conveyor mechanism for material distribution. This mechanism pulls the material strip, enabling its feeding and discharge. The conveyor mechanism pulls the material strip intermittently at a certain step distance. After one injection cycle of the molded product is completed, the mold ejects the product, and the conveyor mechanism automatically pulls the material strip forward according to the step distance, achieving precise positioning and pulling of the material.

[0003] Some existing injection molds can produce two or more cavities in a single mold. During feeding, two or more material strips are required, meaning the conveyor mechanism can pull more than two strips simultaneously. However, existing conveyor mechanisms can only accommodate material strips for a single product, and the position of the strips and the spacing between adjacent strips are fixed. When changing products or injection molds, the position of the strips and the spacing between adjacent strips change, requiring a replacement conveyor mechanism. This necessitates having multiple conveyor mechanisms readily available for replacement, resulting in poor compatibility and a high rate of idle time. Summary of the Invention

[0004] The purpose of this invention is to provide an auxiliary conveying mechanism for injection molded parts that has good compatibility and is easy to adjust and operate.

[0005] To achieve the above objectives, this utility model provides an auxiliary conveying mechanism for injection molded parts, including a material feeding and pulling mechanism. The material feeding and pulling mechanism includes a first mounting frame, two material pulling components, and two first width adjusting components. The two first width adjusting components are arranged on the first mounting frame along a first direction, and the two material pulling components are arranged between the two first width adjusting components along a second direction. The first direction is perpendicular to the second direction. Each of the two material pulling components has a first conveying channel that extends along the first direction. The two first width adjusting components are respectively connected to the corresponding material pulling components. The first width adjusting components can drive the corresponding material pulling components to move along the second direction, thereby adjusting the position of the first conveying channel in the second direction and / or adjusting the spacing between the two first conveying channels.

[0006] As can be seen from the above scheme, by setting two first conveying channels to simultaneously convey two material strips; by setting a material pulling assembly to drive the material strips to move along the first direction; and by setting two first width adjusting assemblies to drive the corresponding material pulling assemblies to move along the second direction, the position of each first conveying channel can be adjusted to correspond to the cavity of the injection mold, and the spacing between two adjacent first conveying channels can also be adjusted. This is beneficial for compatibility with various products or different injection molds, and has the advantages of high compatibility and low idle rate, which helps to improve utilization and save costs.

[0007] A further embodiment is that the first width adjustment component includes a first width adjustment frame, a first guide component, a first adjustment component, and a first connector. The first guide component and the first adjustment component are arranged vertically on the first width adjustment frame. The material pulling component is connected to the first guide component. The upper and lower ends of the first connector are respectively connected to the material pulling component and the first adjustment component.

[0008] As can be seen from the above scheme, by setting the first guide component and the first adjustment component to be set up vertically, it is beneficial to arrange the space reasonably and reduce the area occupied by the first width adjustment component in the first direction; by setting the first connector, it is convenient for the first adjustment component to drive the material pulling component to move linearly through the first connector.

[0009] A further embodiment is that the first adjustment assembly includes a first adjustment handwheel, a first lead screw, and a first nut seat. The first lead screw is mounted on a first width adjustment frame, and the first nut seat is slidably connected between the two ends of the first lead screw. The lower part of the first connecting member is connected to the first nut seat. The first adjustment handwheel can drive the first lead screw to rotate around its own axis, thereby driving the first nut seat and the first connecting member to move along the second direction.

[0010] As can be seen from the above scheme, the above settings make it convenient for users to adjust the position of the first conveying channel, and have the advantages of simple and convenient operation; moreover, by driving the material pulling assembly to move linearly through the lead screw and nut seat, both large-distance adjustment and small-distance adjustment can be achieved, ensuring stepless adjustment, so that the first conveying channel can be accurately aligned with the mold cavity.

[0011] A further embodiment includes a material pulling assembly comprising a first fixed frame, a material pulling base plate, a material pulling top plate, a lifting frame, a lifting drive device, a material pulling wheel, and a material pulling drive device. The material pulling base plate is fixedly connected to the first fixed frame, the material pulling top plate is positioned above the material pulling base plate, a first conveying channel is positioned between the material pulling top plate and the material pulling base plate, the lifting frame is positioned on the first fixed frame, the lifting drive device drives the lifting frame to move up and down, the material pulling wheel is positioned on the lifting frame and below the material pulling base plate, the material pulling wheel has a circumferentially arranged actuating part, the actuating part passes through the material pulling base plate and extends into the first conveying channel, and the material pulling drive device drives the material pulling wheel to rotate around its own axis.

[0012] As can be seen from the above scheme, by setting up a material pulling wheel, the material belt is moved by the rotation of the material pulling wheel; by setting up a lifting drive device, the material pulling wheel is moved up and down, so that the agitating part can be inserted into the first conveying channel, and the depth of the agitating part inserted into the first conveying channel can be adjusted.

[0013] A further embodiment is that the upper part of the first connector is connected to the bottom plate of the material pulling device, the first connector is provided with a first locking device, the first locking device moves synchronously with the first connector, one end of the first locking device is provided with a first locking end, the first locking end extends to the first width adjusting frame; the first width adjusting frame is provided with a first mating part, the first mating part and the first locking end are detachably connected.

[0014] As can be seen from the above scheme, by setting it up, when the first conveying channel is adjusted to a suitable position, the first mating part is fixedly connected to the first locking end, so as to prevent the material pulling assembly from moving due to accidental contact during operation and to prevent the position of the first conveying channel from changing.

[0015] A further embodiment is that the injection molding part material strip auxiliary conveying mechanism also includes a feeding guide mechanism, the feeding guide mechanism and the discharge pulling mechanism are arranged along the first direction, and the feeding guide mechanism and the discharge pulling mechanism are spaced apart by a preset distance.

[0016] As can be seen from the above scheme, with the above settings, the injection mold can be set between the feeding guide mechanism and the discharge pulling mechanism, which facilitates the feeding and discharge of the material strip and helps to improve work efficiency.

[0017] A further embodiment is that the feeding guide mechanism includes a second mounting frame, two second width adjustment components, and two auxiliary guide components; the two second width adjustment components are arranged on the second mounting frame along a first direction, and the two auxiliary guide components are arranged on the second width adjustment components along a second direction. Each of the two auxiliary guide components has a second conveying channel, and the two second conveying channels correspond one-to-one with the two first conveying channels. The second width adjustment component can drive the corresponding auxiliary guide component to move along the second direction to adjust the position of the second conveying channel in the second direction, and / or adjust the spacing between the two second conveying channels.

[0018] As can be seen from the above scheme, by setting up a second conveying channel and placing the material strip inside the second conveying channel, it is beneficial to realize the auxiliary guiding function; by setting up a second width adjustment component to drive the auxiliary guiding component to move along the second direction, thereby adjusting the position of the second conveying channel and the spacing between the two second conveying channels, it is beneficial to be compatible with a variety of different products or injection molds, and to improve compatibility and save costs.

[0019] A further embodiment is that the second width adjustment component includes a second width adjustment frame, a second guide component, a second adjustment component, and a second connector. The second guide component and the second adjustment component are arranged vertically on the second width adjustment frame, and an auxiliary guide component is arranged on the second guide component. The upper and lower ends of the second connector are respectively connected to the auxiliary guide component and the second adjustment component.

[0020] As can be seen from the above scheme, by setting the second guide component and the second adjustment component vertically, it is beneficial to arrange the space reasonably and reduce the area occupied by the second width adjustment component in the first direction; by setting the second connector, it is convenient for the second adjustment component to drive the material pulling component to move linearly through the second connector.

[0021] A further embodiment is that the second adjustment assembly includes a second adjustment handwheel, a second lead screw, and a second nut seat. The second lead screw is mounted on the second width adjustment frame, and the second nut seat is slidably connected between the two ends of the second lead screw. The lower part of the second connecting member is connected to the second nut seat. The second adjustment handwheel can drive the second lead screw to rotate around its own axis, thereby driving the second nut seat and the second connecting member to move along the second direction. The auxiliary guide assembly includes a guide base plate and a guide top plate. The guide base plate is set on the second guide assembly, and the guide top plate is set on the guide base plate. The second conveying channel is set between the guide top plate and the guide base plate, and the upper part of the second connecting member is connected to the guide base plate.

[0022] A further embodiment is that the second connector is provided with a second locking member, which moves synchronously with the second connector. One end of the second locking member is provided with a second locking end, which extends to the second width adjustment frame. The second width adjustment frame is provided with a second mating part, which is detachably connected to the second locking end.

[0023] As can be seen from the above scheme, with the above settings, when the second conveying channel is adjusted to a suitable position, the second mating part is fixedly connected to the second locking end, so as to prevent the auxiliary guide component from moving due to accidental contact during operation and to prevent the position of the second conveying channel from changing. Attached Figure Description

[0024] Figure 1 This is a structural diagram of an embodiment of the present utility model.

[0025] Figure 2 This is a structural diagram of the material feeding and pulling mechanism from a first-view perspective in an embodiment of this utility model.

[0026] Figure 3 This is a structural diagram of the material feeding and pulling mechanism from a second perspective in an embodiment of this utility model.

[0027] Figure 4 This is a cross-sectional view of the material discharge and pulling mechanism in an embodiment of this utility model.

[0028] Figure 5 This is an exploded view of the material discharge and pulling mechanism in an embodiment of this utility model.

[0029] Figure 6 This is an exploded view of the material pulling assembly in an embodiment of this utility model.

[0030] Figure 7 This is a structural diagram of the feeding guide mechanism from a first-view perspective in an embodiment of this utility model.

[0031] Figure 8 This is a structural diagram of the feeding guide mechanism from a second perspective in an embodiment of this utility model.

[0032] Figure 9 This is an exploded view of the feeding guide mechanism in an embodiment of this utility model.

[0033] Figure 10 This is an exploded view of the auxiliary guide component in an embodiment of this utility model.

[0034] The present invention will be further described below with reference to the accompanying drawings and embodiments. Detailed Implementation

[0035] See Figure 1 The injection molding strip auxiliary conveying mechanism provided in this embodiment includes a feeding guide mechanism 10 and a discharge pulling mechanism 20. The feeding guide mechanism 10 and the discharge pulling mechanism 20 are arranged along a first direction X and spaced at a preset distance. The injection mold (not shown in the figure) is disposed between the feeding guide mechanism 10 and the discharge pulling mechanism 20. The strip 30 with metal inserts enters the injection mold from the feeding guide mechanism 10. After injection molding is completed, it is output from the discharge pulling mechanism 20. At this time, the outer side of the metal inserts is wrapped with plastic parts.

[0036] In this embodiment, two material strips 30 are arranged in parallel. One side of the material strip 30 is provided with a material pulling hole, and the other side of the material strip 30 is provided with a metal insert.

[0037] A feeding guide plate 40 is provided on the front side of the feeding guide mechanism 10, and a discharge plate 50 is provided on the rear side of the discharge pulling mechanism 20. Both the feeding plate 40 and the discharge plate 50 are provided on the conveying path of the material belt 30 to support the material belt 30.

[0038] For ease of explanation, in this embodiment, the conveying direction of the material belt 30 is set as the first direction X, the width direction of the material belt 30 is set as the second direction Y, and the up and down direction is set as the third direction Z.

[0039] See Figures 2 to 5 The material feeding and pulling mechanism 20 includes a first mounting frame 1, two material pulling components 2 and two first width adjusting components 3.

[0040] Two first width-adjusting components 3 are arranged along a first direction X on a first mounting frame 1, and the first width-adjusting components 3 extend along a second direction Y. Two material-pulling components 2 are arranged along the second direction Y between the two first width-adjusting components 3, and the upper part of the material-pulling components 2 extends over the two first width-adjusting components 3 and connects to them. The first direction X is perpendicular to the second direction Y. Each of the two material-pulling components 2 has a first conveying channel 4, which extends along the first direction X, and two material belts 30 are respectively arranged in the corresponding first conveying channel 4.

[0041] Two first width adjustment components 3 are respectively connected to the corresponding material pulling components 2. The first width adjustment components 3 can drive the corresponding material pulling components 2 to move along the second direction Y. On the one hand, the position of the first conveying channel 4 in the second direction Y can be adjusted, and on the other hand, the distance between the two first conveying channels 4 can be adjusted.

[0042] The first width adjustment assembly 3 includes a first width adjustment frame 31, a first guide assembly 32, a first adjustment assembly 33, and a first connector 34. The first width adjustment frame 31 extends along the second direction Y. The first guide assembly 32 and the first adjustment assembly 33 are arranged vertically on the first width adjustment frame 31 to save space in the first direction X. The material pulling assembly 2 is connected to the first guide assembly 32. The first guide assembly 32 includes a first guide rail and two first sliders. The first guide rail extends along the second direction Y. The two first sliders are slidably engaged on the first guide rail and are fixedly connected to the material pulling assembly 2.

[0043] The upper and lower ends of the first connector 34 are connected to the material pulling assembly 2 and the first adjustment assembly 33, respectively. The first adjustment assembly 33 drives the material pulling assembly 2 to move through the first connector 34.

[0044] The first adjustment assembly 33 includes a first adjustment handwheel 331, a first lead screw 332, and a first nut seat 333. The two ends of the first lead screw 332 are rotatably mounted on the lower ends of the first width adjustment frame 31. The first nut seat 333 is slidably connected between the two ends of the first lead screw 332. The lower part of the first connecting member 34 is fixedly connected to the first nut seat 333. The first adjustment handwheel 331 can drive the first lead screw 332 to rotate in both directions around its own axis, thereby causing the first nut seat 333 and the first connecting member 34 to move linearly back and forth.

[0045] Combination Figure 5 and Figure 6 The material pulling assembly 2 includes a first fixed frame 21, a material pulling base plate 22, a material pulling top plate 23, a lifting frame 24, a lifting drive device 25, a material pulling wheel 26, and a material pulling drive device 27.

[0046] The first fixed frame 21 is designed as an inverted U-shape, the material pulling bottom plate 22 is fixedly connected to the top of the first fixed frame 21, the material pulling top plate 23 is set above the material pulling bottom plate 22, and the first conveying channel 4 is set between the material pulling top plate 23 and the material pulling bottom plate 22.

[0047] The lifting frame 24 is located on the inner side of the middle of the first fixed frame 21. The lifting drive device 25 is located on the bottom wall of the first fixed frame 21 and connected to the lifting frame 24, used to drive the lifting frame 24 to move up and down. The material pulling wheel 26 and the material pulling drive device 27 are both located on the lifting frame 24 and below the material pulling base plate 22. The axis of the material pulling wheel 26 extends along the second direction Y. Multiple actuating parts 261 are arranged circumferentially on the material pulling wheel 26. The actuating parts 261 are evenly spaced. The actuating parts 261 can pass through the material pulling base plate 22 and extend into the material pulling holes of the first conveying channel 4 and the material belt 30. The material pulling drive device 27 drives the material pulling wheel 26 to rotate around its own axis, and then drives the material belt 30 to move backward along the first direction X through the actuating parts 261.

[0048] To prevent the distance between the two material pulling components 2 from changing during operation, this embodiment provides a first locking fastener 35 on the first connecting member 34. The first locking fastener 35 moves synchronously with the first connecting member 34. One end of the first locking fastener 35 is fixedly connected to the first connecting member 34, and the other end of the first locking fastener 35 is provided with a first locking end 351, which extends to the first width adjusting frame 31. The first width adjusting frame 31 is provided with a first mating part 311, which is detachably connected to the first locking end 351. When the position of the first conveying channel 4 in the second direction Y is adjusted to the correct position, the first mating part 311 is fixedly connected to the first locking end 351 to lock the current position of the material pulling component 2.

[0049] The first locking end 351 has a first mounting hole, which is an elongated hole extending along the second direction Y in the length direction. The first mating part 311 has three second mounting holes, which are arranged along the second direction Y. The first mounting hole communicates vertically with at least one of the second mounting holes, so that the first mating part 311 and the first locking end 351 can be fixed together by bolts or pins.

[0050] See Figures 7 to 10 The feeding guide mechanism 10 includes a second mounting bracket 5, two second width adjustment components 6 and two auxiliary guide components 7.

[0051] Two second width-adjusting components 6 are arranged parallel to each other on the second mounting bracket 5 along the first direction X. Two auxiliary guide components 7 are arranged on the second width-adjusting components 6 along the second direction Y, and extend along the first direction X. Each of the two auxiliary guide components 7 has a second conveying channel 8 extending along the first direction X, and the two second conveying channels 8 correspond one-to-one with the two first conveying channels 4. The two auxiliary guide components 7 are respectively mounted on the corresponding second width-adjusting components 6, and the second width-adjusting components 6 can drive the corresponding auxiliary guide components 7 to move along the second direction Y, thereby adjusting the position of the second conveying channel 8 in the second direction and the spacing between the two second conveying channels 8.

[0052] The second width adjustment assembly 6 includes a second width adjustment frame 61, a second guide assembly 62, a second adjustment assembly 63, and a second connector 64.

[0053] The second width-adjusting frame 61 extends along the second direction Y. The second guide assembly 62 and the second adjustment assembly 63 are vertically mounted on the second width-adjusting frame 61. The auxiliary guide assembly 7 is mounted on the second guide assembly 62. The upper and lower ends of the second connector 64 are connected to the auxiliary guide assembly 7 and the second adjustment assembly 63, respectively. The second adjustment assembly 63 drives the auxiliary guide assembly 7 to move along the second direction Y through the second connector 64.

[0054] The second adjustment assembly 63 includes a second adjustment handwheel 631, a second lead screw 632, and a second nut seat 633. The second lead screw 632 is rotatably mounted on the lower part of the second width adjustment frame 61, and the second nut seat 633 is slidably connected between the two ends of the second lead screw 632. The lower part of the second connecting member 64 is connected to the second nut seat 633. The second adjustment handwheel 631 can drive the second lead screw 632 to rotate around its own axis, thereby driving the second nut seat 633 and the second connecting member 64 to move linearly.

[0055] The auxiliary guide assembly 7 includes a guide base plate 71 and a guide top plate 72. The guide top plate 72 is disposed above the guide base plate 71, and the second conveying channel 8 is disposed between the guide top plate 72 and the guide base plate 71.

[0056] The upper part of the second connecting member 64 is fixedly connected to the guide base plate 71. A second locking member 65 is provided on the second connecting member 64, and the second locking member 65 moves synchronously with the second connecting member 64. One end of the second locking member 65 is provided with a second locking end 651, which extends to the second width adjusting frame 61. A second mating part 611 is provided on the second width adjusting frame 61, and the second mating part 611 is detachably connected to the first locking end 351. When the second conveying channel 8 is adjusted to a suitable position in the second direction Y, the second mating part 611 is fixedly connected to the second locking end 651 to lock the current position of the second conveying channel 8.

[0057] The connection structure between the second locking end 651 and the second mating part 611 is the same as the connection structure between the first locking end 351 and the first mating part 311, and will not be described again here.

[0058] In summary, this utility model, by setting two first conveying channels for simultaneously conveying two material strips, by setting a material pulling component for driving the material strips to move along a first direction, and by setting two first width adjusting components for driving the corresponding material pulling components to move along a second direction, can adjust the position of each first conveying channel to correspond to the cavity of the injection mold, and can also adjust the spacing between two adjacent first conveying channels. This is beneficial for compatibility with various products or different injection molds, and has the advantages of high compatibility and low idle rate, which helps to improve utilization and save costs.

[0059] Finally, it should be emphasized that the above are only preferred embodiments of the present utility model and are not intended to limit the present utility model. For those skilled in the art, the present utility model can have various changes and modifications. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. An auxiliary conveying mechanism for injection molded parts, including a material discharge and pulling mechanism, wherein the material discharge and pulling mechanism includes a first mounting frame and two pulling components, characterized in that: The material feeding and pulling mechanism further includes two first width adjustment components. The two first width adjustment components are arranged on the first mounting frame along a first direction. The two material pulling components are arranged between the two first width adjustment components along a second direction. The first direction is perpendicular to the second direction. Each of the two material pulling components has a first conveying channel, which extends along the first direction. The two first width adjustment components are respectively connected to the corresponding material pulling components. The first width adjustment components can drive the corresponding material pulling components to move along the second direction, thereby adjusting the position of the first conveying channel in the second direction, and / or adjusting the spacing between the two first conveying channels.

2. The auxiliary conveying mechanism for injection molded parts according to claim 1, characterized in that: The first width adjustment component includes a first width adjustment frame, a first guide component, a first adjustment component, and a first connector. The first guide component and the first adjustment component are arranged vertically on the first width adjustment frame. The material pulling component is connected to the first guide component. The upper and lower ends of the first connector are respectively connected to the material pulling component and the first adjustment component.

3. The auxiliary conveying mechanism for injection molded parts according to claim 2, characterized in that: The first adjustment assembly includes a first adjustment handwheel, a first lead screw, and a first nut seat. The first lead screw is mounted on the first width adjustment frame. The first nut seat is slidably connected between the two ends of the first lead screw. The lower part of the first connecting member is connected to the first nut seat. The first adjustment handwheel can drive the first lead screw to rotate around its own axis, thereby driving the first nut seat and the first connecting member to move along the second direction.

4. The auxiliary conveying mechanism for injection molded parts according to claim 2, characterized in that: The material pulling assembly includes a first fixed frame, a material pulling base plate, a material pulling top plate, a lifting frame, a lifting drive device, a material pulling wheel, and a material pulling drive device; The material pulling base plate is fixed to the first fixed frame, the material pulling top plate is disposed above the material pulling base plate, the first conveying channel is disposed between the material pulling top plate and the material pulling base plate, the lifting frame is disposed on the first fixed frame, the lifting drive device drives the lifting frame to move up and down, the material pulling wheel is disposed on the lifting frame and disposed below the material pulling base plate, the material pulling wheel is provided with a toggle part in the circumferential direction, the toggle part passes through the material pulling base plate and extends into the first conveying channel, and the material pulling drive device drives the material pulling wheel to rotate around its own axis.

5. The auxiliary conveying mechanism for injection molded parts according to claim 4, characterized in that: The upper part of the first connector is connected to the bottom plate of the material pulling. The first connector is provided with a first locking fastener. The first locking fastener moves synchronously with the first connector. One end of the first locking fastener is provided with a first locking end, which extends to the first width adjustment frame. The first width adjustment frame is provided with a first mating part, which is detachably connected to the first locking end.

6. The auxiliary conveying mechanism for injection molded parts according to any one of claims 1 to 5, characterized in that: The injection molding part material strip auxiliary conveying mechanism also includes a feeding guide mechanism. The feeding guide mechanism and the discharge pulling mechanism are arranged along a first direction, and the feeding guide mechanism and the discharge pulling mechanism are spaced apart by a preset distance.

7. The auxiliary conveying mechanism for injection molded parts according to claim 6, characterized in that: The feeding guide mechanism includes a second mounting frame, two second width adjustment components, and two auxiliary guide components. The two second width adjustment components are arranged on the second mounting frame along a first direction, and the two auxiliary guide components are arranged on the second width adjustment components along a second direction. Each of the two auxiliary guide components has a second conveying channel, and the two second conveying channels correspond one-to-one with the two first conveying channels. The second width adjustment component can drive the corresponding auxiliary guide component to move along the second direction to adjust the position of the second conveying channel in the second direction, and / or adjust the spacing between the two second conveying channels.

8. The auxiliary conveying mechanism for injection molded parts according to claim 7, characterized in that: The second width adjustment component includes a second width adjustment frame, a second guide component, a second adjustment component, and a second connector. The second guide component and the second adjustment component are arranged vertically on the second width adjustment frame. The auxiliary guide component is arranged on the second guide component. The upper and lower ends of the second connector are respectively connected to the auxiliary guide component and the second adjustment component.

9. The auxiliary conveying mechanism for injection molded parts according to claim 8, characterized in that: The second adjustment assembly includes a second adjustment handwheel, a second lead screw, and a second nut seat. The second lead screw is mounted on the second width adjustment frame. The second nut seat is slidably connected between the two ends of the second lead screw. The lower part of the second connecting member is connected to the second nut seat. The second adjustment handwheel can drive the second lead screw to rotate around its own axis, thereby driving the second nut seat and the second connecting member to move along the second direction. The auxiliary guiding assembly includes a guide base plate and a guide top plate. The guide base plate is disposed on the second guiding assembly, and the guide top plate is disposed on the guide base plate. The second conveying channel is disposed between the guide top plate and the guide base plate, and the upper part of the second connecting member is connected to the guide base plate.

10. The auxiliary conveying mechanism for injection molded parts according to claim 8, characterized in that: The second connector is provided with a second locking member, which moves synchronously with the second connector. One end of the second locking member is provided with a second locking end, which extends to the second width adjustment frame. The second width adjustment frame is provided with a second mating part, which is detachably connected to the second locking end.