Automatic metal cable tie assembly device

CN224642884UActive Publication Date: 2026-08-18WENZHOU CHENGMING ELECTRIC CO LTD
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Patent Information

Application Number
CN202522070524.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-26
Publication Date
2026-08-18
Estimated Expiration
2035-09-26

AI Technical Summary

Technical Problem

[0003]现有金属扎带的生产方式有人工组装和机器组装两种方式,其中人工组装方式存在带体和带扣连接不可靠、生产效率低、产品一致性差的问题,而现有的机器组装在将带扣装配到带体的锁定端时,存在将带体的锁定端与带扣产生错误配合的问题(弯折结构完全卡入带扣内部),导致废品产生

Benefits of technology

本技术方案金属扎带自动组装设备整合了带体进料、带扣进料、带体冲裁、带体弯折、带体压平以及带体和带扣装配多个工序,并通过移送组件实现同步移送,统筹各个工序的生产节奏,整个工艺流程连续进行,避免了人工组件的停顿和延迟,从而大幅提高生产效率,并且机器组装替代人工后,每个步骤都由设备精确控制,提高了金属扎带的一致性和质量稳定性。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of metal cable ties automatic assembly equipment, equipment integrates with body feeding, band buckle feeding, with body blanking, with body bending, with body flattening and with body and band buckle assembly multiple processes, and synchronous transfer is realized through transfer assembly, the production rhythm of overall planning each process, whole technological process is carried out continuously, to greatly improve production efficiency, and machine assembly replaces manual work, each step is accurately controlled by equipment, improve the consistency and quality stability of metal cable ties, and through the cooperation of with body pressing piece in assembly component and assembly top piece, ensure that with body keeps flat advancing in the process of being pushed to band buckle, with body pressing piece dynamically presses with body in the assembly process of with body and band buckle, make with body force stable, avoid skew or misplacement, avoid with body bending structure completely clamped into the error cooperation of band buckle inside, this mechanical constraint design ensures that band buckle can only be correctly clamped into the predetermined position of locking end, significantly reduce waste product generation.
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Description

Technical Field

[0001] This utility model relates to the field of automation equipment technology, specifically to an automatic assembly equipment for metal cable ties. Background Technology

[0002] Metal cable ties are binding and securing devices made of metal, primarily used in harsh environments requiring high strength, high temperature resistance, corrosion resistance, and weather resistance. (See attached image) Figure 13 As shown, the metal cable tie includes a strap body a and a buckle b. The strap body includes a locking end a1 and a free end a2. The locking end a1 has a bent structure with barbs and locking holes. The buckle b is connected between the bent structures of the locking end a1. One-way locking can be achieved by passing the free end of the strap body a through the buckle b.

[0003] There are two existing production methods for metal cable ties: manual assembly and machine assembly. Manual assembly has problems such as unreliable connection between the strap body and buckle, low production efficiency, and poor product consistency. On the other hand, existing machine assembly has the problem of incorrect fit between the locking end of the strap body and the buckle when assembling the buckle to the locking end of the strap body (the bending structure is completely stuck inside the buckle), resulting in scrap.

[0004] In view of this, there is an urgent need to design an automatic metal cable tie assembly device to solve the technical defects of existing automatic metal cable tie assembly. Utility Model Content

[0005] To address the aforementioned problems, this utility model provides an automatic metal cable tie assembly device, comprising a frame and a support platform, a cable tie feeding assembly, a buckle feeding assembly, and a transfer assembly located on the frame. The buckle feeding assembly and the cable tie feeding assembly are both located at the feeding end of the support platform. The transfer assembly is used to transfer the cable tie and buckle from the support platform. A cable tie punching assembly is disposed between the cable tie feeding assembly and the support platform. The side of the support platform is along the transfer direction of the transfer assembly. The assembly is sequentially provided with a bending component, a flattening component, and an assembly component; the assembly component includes an assembly frame located beside the bearing platform, an assembly top material power source and an assembly base connected to the assembly frame, a belt pressing component connected to the assembly base, the belt pressing component including a hinge part and a pressing part, the hinge part being connected to the assembly base, the output end of the assembly top material power source being connected to an assembly top material, and the belt pressing component being located on the moving path of the assembly top material driven by the assembly top material power source.

[0006] In one possible implementation, the transfer assembly includes a horizontal transfer power source and a horizontal transfer plate driven by the horizontal transfer power source. The horizontal transfer plate is provided with a vertical transfer power source and a vertical transfer plate driven by the vertical transfer power source. The vertical transfer plate has a clamping slot at a position facing the support platform, and the clamping slot is used to clamp the belt or buckle on the support platform.

[0007] In one possible implementation, a bearing is connected to the clamping slot corresponding to the assembly assembly, and the bearing abuts against the buckle when the assembly assembly assembles the belt body and buckle on the bearing platform.

[0008] In one possible implementation, the pressing part has an assembly guide end face on the side near the assembly top material power source, the pressing part has a transfer guide end face on the side near the flattening component, and the assembly top material has an arc-shaped positioning notch at the end facing the bearing platform.

[0009] In one possible implementation, the assembly base is provided with a travel slot on the side near the assembly frame, and the assembly top material is movably connected within the travel slot.

[0010] In one possible implementation, the support platform includes a support base plate and a support cover plate, with a transfer gap between the support base plate and the support cover plate, and a buckle-type moving groove is provided on the support base plate.

[0011] In one possible implementation, the bending assembly includes a bending frame located beside the support platform, a bending power source located below the bending frame, a bending linkage driven by the bending power source, and a bending forming component located above the bending frame, with a bending forming gap provided between the bending forming component and the bending linkage component.

[0012] In one possible implementation, the bending linkage has a bending cavity, and a bending stroke member and a bending action member are connected within the bending cavity. The bending stroke member is movably connected within the bending cavity along the driving direction of the bending power source. A reset member is provided between the bending stroke member and the bending linkage. The bending action member is rotatably connected within the bending cavity via a pin. A bending linkage groove is provided on one side of the bending stroke member. The bending action member includes a driving part and a fastening part. The bending forming member includes a forming part. The fastening part is connected within the bending linkage groove. The forming part faces the bending stroke member. When the bending power source drives the bending linkage member to move into position towards the bending forming member, the fastening part moves towards the end face of the forming part.

[0013] In one possible implementation, the buckle feeding assembly includes a buckle feeding track and a buckle picking frame located beside the buckle feeding track. A buckle picking cylinder and a buckle limiting plate are connected to the buckle picking frame. The output end of the buckle picking cylinder is connected to a buckle picking component. The buckle picking component has a buckle picking position. The buckle limiting plate faces the buckle picking position. The buckle picking position is driven by the buckle picking cylinder to move between the discharge end of the buckle feeding track and the feed end of the support platform.

[0014] In one possible implementation, the strip punching assembly includes a strip punching frame, a punching power source connected to the strip punching frame, and a punching upper die driven by the punching power source. A punching bottom die is provided on the equipment frame, and the punching upper die is positioned opposite the punching bottom die. A strip through seat is provided on the side of the punching bottom die near the support platform, and a strip channel is opened on the strip through seat.

[0015] In one possible implementation, the flattening assembly includes a flattening frame located beside the support platform, a flattening power source connected to the flattening frame, and a flattening component driven by the flattening power source. The flattening frame has a flattening position, and the flattening component has a flattening slot at a position opposite to the flattening position.

[0016] The workflow of the automatic metal cable tie assembly equipment in this technical solution is as follows: the buckle feeding component delivers the buckle to the feeding position of the support platform; the strip feeding component feeds the strip into the feeding position of the support platform and passes it through the buckle; after the strip is inserted into place, the strip punching component punches, presses, and cuts the strip to obtain the punched strip; the transfer component simultaneously transfers the strip and buckle to the corresponding bending component station on the support platform; the bending component bends the end of the strip to obtain the bent strip; the transfer component simultaneously transfers the strip and buckle to the corresponding flattening component station on the support platform; the flattening component presses the bent part of the strip to form a locking end; the transfer component simultaneously transfers the strip and buckle to the corresponding assembly component station on the support platform; the assembly component pushes the strip to make the buckle snap into the locking end of the strip, obtaining the assembled metal cable tie; and the transfer component unloads the metal cable tie.

[0017] The specific operation of the assembly component of this utility model is as follows: the assembly top material power source pushes the assembly top material to move towards the bearing platform, the assembly top material pushes the locking end of the belt body and drives the belt body to move towards the buckle, the pressing part presses the belt body part near the locking end, so that the belt body is kept flat and pushed forward during the process of inserting into the buckle, the belt body and the assembly top material push open the belt body pressing part until the buckle is inserted into the locking end of the belt body, the assembly top material power source drives the assembly top material to reset, and the belt body pressing part is also reset accordingly.

[0018] Compared with the prior art, the technical solution provided by this utility model has the following advantages: This technical solution's automatic metal cable tie assembly equipment integrates multiple processes, including cable tie feeding, buckle feeding, cable tie punching, cable tie bending, cable tie flattening, and cable tie and buckle assembly. It achieves synchronous transfer through a transfer component, coordinating the production rhythm of each process. The entire process is carried out continuously, avoiding the interruptions and delays caused by manual assembly, thereby significantly improving production efficiency. Furthermore, after machine assembly replaces manual labor, each step is precisely controlled by the equipment, improving the consistency and quality stability of the metal cable ties.

[0019] This technical solution for an automatic metal cable tie assembly equipment utilizes the coordinated work of the cable tie pressing component and the assembly top component in the assembly assembly assembly to ensure that the cable tie is pushed smoothly towards the buckle. The cable tie pressing component dynamically presses down on the cable tie during the assembly process, ensuring stable force on the cable tie and preventing skewing or misalignment. It also prevents the cable tie from bending and getting completely stuck inside the buckle, resulting in an incorrect fit. This mechanical constraint design ensures that the buckle can only be correctly engaged in the predetermined position at the locking end, thereby significantly reducing the generation of scrap. Attached Figure Description

[0020] Figure 1 This is a perspective view of an automatic metal cable tie assembly device according to an embodiment of the present invention.

[0021] Figure 2 This is a perspective view of the automatic assembly mechanism for metal cable ties according to an embodiment of the present invention.

[0022] Figure 3 This is a perspective view of the carrying platform surface, transfer components, and assembly components of an embodiment of the present utility model.

[0023] Figure 4 This is a cross-sectional view of the carrying platform surface, transfer component, and assembly component of an embodiment of the present utility model.

[0024] Figure 5 This is a perspective view of the assembly components in an embodiment of the present utility model.

[0025] Figure 6 This is a perspective view of the vertical transfer power source and vertical transfer plate of the assembly components corresponding to the embodiments of this utility model.

[0026] Figure 7 This is a perspective view of the bending component according to an embodiment of the present utility model.

[0027] Figure 8 This is a cross-sectional view of the bending component according to an embodiment of the present utility model.

[0028] Figure 9 This is an exploded view of the bending linkage component, bending stroke component, and bending action component according to an embodiment of this utility model.

[0029] Figure 10 This is a perspective view of the buckle feeding assembly according to an embodiment of the present utility model.

[0030] Figure 11 This is a perspective view of the punching component according to an embodiment of the present utility model.

[0031] Figure 12 This is a perspective view of the flattening component according to an embodiment of the present utility model.

[0032] Figure 13 This is a 3D view of metal cable ties in the prior art. Detailed Implementation

[0033] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model. The accompanying drawings are for illustrative purposes only, representing schematic diagrams only, not actual object drawings, and should not be construed as limiting this patent. To better illustrate the embodiments of this utility model, some components in the drawings may be omitted, enlarged, or reduced, and do not represent the actual product dimensions. It is understandable to those skilled in the art that some well-known structures and their descriptions may be omitted in the drawings.

[0034] Combined with appendix Figure 1 To be continued Figure 12 This utility model provides an automatic assembly device for metal cable ties, comprising a frame 1 and a support platform 2, a cable tie feeding assembly 3, a buckle feeding assembly 4, and a transfer assembly 5 located on the frame 1. The buckle feeding assembly 3 and the cable tie feeding assembly 4 are both located at the feeding end of the support platform 2. The transfer assembly 5 is used to transfer the cable ties and buckles on the support platform 2. A cable tie punching assembly 6 is disposed between the cable tie feeding assembly 3 and the support platform 2. A bending assembly 7 and a pressing assembly 8 are sequentially disposed on the side of the support platform 2 along the transfer direction X of the transfer assembly 5. The assembly includes a flat component 8 and an assembly component 9; the assembly component 9 includes an assembly frame 91 located beside the bearing platform 2, an assembly top material power source 92 and an assembly base 93 connected to the assembly frame 91, a belt pressing component 94 connected to the assembly base 93, the belt pressing component 94 including a hinge portion 941 and a pressing portion 942, the hinge portion 941 being connected to the assembly base 93, the output end of the assembly top material power source 92 being connected to an assembly top material component 95, and the belt pressing component 94 being located on the moving path of the assembly top material component 95 driven by the assembly top material power source 92.

[0035] In this embodiment, as shown in the appendix Figure 2 As shown, the buckle feeding assembly 3 and the belt feeding assembly 4 are both located at the feeding end of the bearing platform 2. The buckle feeding assembly 3 is in the X direction of the buckle entering the bearing platform 2, and the belt feeding assembly 4 is in the Y direction of the belt entering the bearing platform 2. This allows the belt to be threaded through the buckle at the feeding end of the bearing platform 2, and the belt punching assembly 6 punches, presses, and cuts the belt to obtain the punched belt.

[0036] In this embodiment, the workflow of the automatic metal cable tie assembly equipment is as follows: the buckle feeding assembly 4 sends the buckle to the feeding position of the support platform 2, the strip feeding assembly 3 feeds the strip into the feeding position of the support platform 2 and passes through the buckle. After the strip is inserted into place, the strip punching assembly 6 punches, presses and cuts the strip to obtain the punched strip. The transfer assembly 5 simultaneously transfers the strip and buckle to the corresponding bending assembly 7 station of the support platform 2. The bending assembly 7 bends the end of the strip to obtain the bent strip. The transfer assembly 5 simultaneously transfers the strip and buckle to the corresponding flattening assembly 8 station of the support platform 2. The flattening assembly 8 presses the bent part of the strip to form a locking end. The transfer assembly 5 simultaneously transfers the strip and buckle to the corresponding assembly assembly 9 station of the support platform 2. The assembly assembly 9 pushes the strip so that the buckle is engaged with the locking end of the strip to obtain the assembled metal cable tie. The transfer assembly 5 then unloads the metal cable tie.

[0037] In this embodiment, the assembly component 9 operates as follows: the assembly top material power source 92 pushes the assembly top material 95 to move towards the bearing platform 2, the assembly top material 95 pushes the locking end of the belt body and drives the entire belt body to move towards the buckle, the pressing part 942 presses the belt body part near the locking end, so that the belt body remains flat and advances smoothly during the process of inserting into the buckle, the belt body and the assembly top material 95 push open the belt body pressing part 94 until the buckle is inserted into the locking end of the belt body, the assembly top material power source 92 drives the assembly top material 95 to reset, and the belt body pressing part 94 also resets accordingly.

[0038] In this embodiment, the belt pressing member 94 is hinged to the assembly base 93. It is lifted when subjected to the action of the belt and the assembly top member 95, and resets when the assembly top member 95 resets. This process is achieved by the counterweight of the belt pressing member 94 itself. Alternatively, a tension spring structure can be used to connect the belt pressing member 94 and the assembly base 93.

[0039] In this embodiment, as shown in the appendix Figure 3 To be continued Figure 6As shown, the transfer assembly 5 includes a horizontal transfer power source 51 and a horizontal transfer plate 52 driven by the horizontal transfer power source 51. The horizontal transfer plate 52 is provided with a vertical transfer power source 53 and a vertical transfer plate 54 driven by the vertical transfer power source 53. The vertical transfer plate 54 has a clamping slot 541 facing the support platform 2. The clamping slot 541 is used to clamp the belt or buckle on the support platform 2. The horizontal transfer power source 51 and the vertical transfer power source 53 work together to drive the vertical transfer plate 54 to move. The clamping slot 541 of the vertical transfer plate 54 clamps the belt or buckle, thereby moving it.

[0040] In another embodiment, the vertical transfer power source 53 and the vertical transfer plate 54 can also be set below the carrying platform 2 to improve the accuracy of the transfer of the belt body and buckle process.

[0041] In this embodiment, as shown in the appendix Figure 6 As shown, a bearing 542 is connected in the clamping slot 541 corresponding to the assembly component 9. When the assembly component 9 assembles the belt body and buckle on the bearing platform 2, the bearing 542 abuts against the buckle. When the assembly component 9 performs the assembly action, the bearing 542 abuts against the buckle, making the buckle fit more closely to the belt body, further improving the assembly accuracy and precision of the buckle and the locking end of the belt body.

[0042] In this embodiment, as shown in the appendix Figure 4 and attached Figure 5 As shown, the pressing part 942 has an assembly guide end face 943 on the side near the assembly top material power source 92, the pressing part 942 has a transfer guide end face 944 on the side near the flattening component 8, the assembly top material 95 has an arc-shaped positioning notch 951 on the end facing the bearing platform 2, the assembly base 93 has a stroke groove 931 on the side near the assembly frame 91, and the assembly top material 95 is movably connected in the stroke groove 931.

[0043] In this embodiment, the assembly guide end face 943 makes the pushing of the belt body more smooth when the belt is assembled with the buckle, the transfer guide end face 944 is used to guide the belt body when it moves from the processing station corresponding to the flattening component 8 to the processing station corresponding to the assembly component 9, the arc-shaped positioning notch 951 is adapted to the shape of the locking end of the belt body, and the force direction is accurate when the belt body is pushed, and the stroke groove 931 is used to keep the pushing direction of the belt body stable.

[0044] In this embodiment, as shown in the appendix Figure 3 and attached Figure 4As shown, the carrying platform 2 includes a carrying base plate 21 and a carrying cover plate 22. A transfer gap 23 is provided between the carrying base plate 21 and the carrying cover plate 22. A buckle moving groove 211 is provided on the carrying base plate 21. The transfer gap 23 is the moving space of the belt body on the carrying platform 2, and the buckle moving groove 211 is the moving path of the buckle on the carrying platform 2.

[0045] In this embodiment, as shown in the appendix Figure 7 To be continued Figure 9 As shown, the bending assembly 7 includes a bending frame 71 located beside the bearing platform 2, a bending power source 72 located below the bending frame 71, a bending linkage component 73 driven by the bending power source 72, and a bending forming component 74 located above the bending frame 71. A bending forming gap 75 is provided between the bending forming component 74 and the bending linkage component 73, and the bending forming gap 75 is used for the end of the belt to be introduced.

[0046] In this embodiment, as shown in the appendix Figure 7 To be continued Figure 9 As shown, the bending linkage 73 has a bending cavity 731, and a bending stroke member 76 and a bending action member 77 are connected inside the bending cavity 731. The bending stroke member 76 is movably connected to the bending cavity 731 along the driving direction Z of the bending power source 72. The bending stroke member 76 is provided with a first pin 762. The bending linkage 73 has a linkage stroke groove 732 for connecting the first pin 762. A reset member 78 is provided between the bending stroke member 76 and the bending linkage 73. The bending action member 77 is rotatable through a second pin 771. The bending action member 76 is dynamically connected within the bending cavity 731. A bending linkage groove 761 is provided on one side of the bending stroke member 76. The bending action member 77 includes a driving part 772 and a fastening part 773. The bending forming member 74 includes a forming part 741. The fastening part 773 is connected within the bending linkage groove 761. The forming part 741 faces the bending stroke member 76. When the bending power source 72 drives the bending linkage member 73 to move into position towards the bending forming member 74, the fastening part 773 moves towards the end face of the forming part 741, thereby bending the end of the belt.

[0047] In this embodiment, the bending power source 72 drives the bending linkage 73 to move toward the bending forming part 74, the bending stroke part 76 is in contact with the bending forming part 74, the reset part 78 is compressed, the bending stroke part 76 moves relative to the bending linkage 73, and the bending linkage groove 761 of the bending stroke part 76 drives the bending action part 77 to rotate, so that the fastening part 773 moves toward the end face of the forming part 741.

[0048] In this embodiment, as shown in the appendix Figure 10 As shown, the buckle feeding assembly 4 includes a buckle feeding track 41 and a buckle picking frame 42 located beside the buckle feeding track 41. A buckle picking cylinder 43 and a buckle limiting plate 44 are connected to the buckle picking frame 42. The output end of the buckle picking cylinder 43 is connected to a buckle picking component 45. The buckle picking component 45 is provided with a buckle picking position 451. The buckle limiting plate 44 is directly opposite the buckle picking position 451. The buckle picking position 451 is driven by the buckle picking cylinder 43 to move between the discharge end of the buckle feeding track 41 and the feed end of the bearing platform 2. The buckle limiting plate 44 is used to prevent the buckles in the buckle picking position 451 from falling off during the movement.

[0049] In this embodiment, as shown in the appendix Figure 11 As shown, the strip punching assembly 6 includes a strip punching frame 61, a punching power source 62 connected to the strip punching frame 61, and a punching upper die 63 driven by the punching power source 62. The equipment frame 1 is provided with a punching bottom die 64. The punching upper die 63 is set directly opposite the punching bottom die 64. The punching bottom die 64 is provided with a strip through seat 65 on the side near the bearing platform 2. The strip through seat 65 has a strip channel for guiding the material strip feeding. The strip punching assembly 6 performs punching, stamping, and cutting operations on the material strip.

[0050] In this embodiment, as shown in the appendix Figure 12 As shown, the flattening assembly 8 includes a flattening frame 81 located beside the bearing platform 2, a flattening power source 82 connected to the flattening frame 81, and a flattening component 83 driven by the flattening power source 82. The flattening frame 81 is provided with a flattening position 811, and the flattening component 83 is provided with a flattening slot 831 at the position opposite to the flattening position 811.

[0051] This embodiment of the automatic metal cable tie assembly equipment integrates multiple processes such as cable tie feeding, buckle feeding, cable tie punching, cable tie bending, cable tie flattening, and cable tie and buckle assembly. It achieves synchronous transfer through a transfer component, coordinates the production rhythm of each process, and the entire process is carried out continuously, avoiding the stoppage and delay of manual assembly, thereby greatly improving production efficiency. Furthermore, after the machine assembly replaces manual labor, each step is precisely controlled by the equipment, improving the consistency and quality stability of the metal cable ties.

[0052] In this embodiment, the automatic assembly equipment for metal cable ties works in concert with the cable body pressing component and the assembly top component in the assembly assembly to ensure that the cable body is pushed flat and advanced during the process of pushing towards the buckle. The cable body pressing component dynamically presses down on the cable body during the assembly process of the cable body and the buckle, so that the cable body is subjected to stable force and avoids skewing or misalignment. It also prevents the cable body bending structure from being completely stuck inside the buckle, resulting in an incorrect fit. This mechanical constraint design ensures that the buckle can only be correctly locked into the predetermined position of the locking end, thereby significantly reducing the generation of scrap.

[0053] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating this utility model, and are not intended to limit the implementation of this utility model. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model, or direct / indirect applications in other related technical fields, should be included within the scope of protection of the claims of this utility model.

Claims

1. An automatic assembly device for metal cable ties, comprising a device frame and a support platform, a cable tie feeding assembly, a buckle feeding assembly, and a transfer assembly located on the device frame, wherein the buckle feeding assembly and the cable tie feeding assembly are both located at the feeding end of the support platform, and the transfer assembly is used to transfer the cable tie and buckle on the support platform, characterized in that, A strip punching assembly is provided between the strip feeding assembly and the carrying platform. A bending assembly, a flattening assembly, and an assembly assembly are sequentially arranged on the side of the carrying platform along the conveying direction of the transfer assembly. The assembly assembly includes an assembly frame located on the side of the carrying platform. An assembly top material power source and an assembly base are connected to the assembly frame. A strip pressing component is connected to the assembly base. The strip pressing component includes a hinge part and a pressing part. The hinge part is connected to the assembly base. An assembly top material component is connected to the output end of the assembly top material power source. The strip pressing component is located on the moving path of the assembly top material component driven by the assembly top material power source.

2. The automatic assembly equipment for metal cable ties according to claim 1, characterized in that, The transfer assembly includes a horizontal transfer power source and a horizontal transfer plate driven by the horizontal transfer power source. The horizontal transfer plate is provided with a vertical transfer power source and a vertical transfer plate driven by the vertical transfer power source. The vertical transfer plate has a clamping slot at the position opposite to the support platform. The clamping slot is used to clamp the belt or buckle on the support platform.

3. The automatic assembly equipment for metal cable ties according to claim 2, characterized in that, A bearing is connected to the clamping slot corresponding to the assembly component. When the assembly component assembles the belt body and buckle on the bearing platform, the bearing abuts against the buckle.

4. The automatic assembly equipment for metal cable ties according to claim 2, characterized in that, The pressing part has an assembly guide end face on the side near the assembly top material power source, and the pressing part has a transfer guide end face on the side near the flattening component. The assembly top material has an arc-shaped positioning notch on the end facing the bearing platform. The assembly base has a stroke groove on the side near the assembly frame, and the assembly top material is movably connected in the stroke groove.

5. An automatic metal cable tie assembly device according to any one of claims 1 to 4, characterized in that, The support platform includes a support base plate and a support cover plate, with a transfer gap between the support base plate and the support cover plate, and a buckle-type moving groove is provided on the support base plate.

6. An automatic metal cable tie assembly device according to any one of claims 1 to 4, characterized in that, The bending assembly includes a bending frame located beside the bearing platform, a bending power source located below the bending frame, a bending linkage driven by the bending power source, and a bending forming component located above the bending frame. A bending forming gap is provided between the bending forming component and the bending linkage component.

7. The automatic assembly equipment for metal cable ties according to claim 6, characterized in that, The bending linkage component has a bending cavity, and a bending stroke component and a bending action component are connected inside the bending cavity. The bending stroke component is movably connected inside the bending cavity along the driving direction of the bending power source. A reset component is provided between the bending stroke component and the bending linkage component. The bending action component is rotatably connected inside the bending cavity by a pin. A bending linkage groove is provided on one side of the bending stroke component. The bending action component includes a driving part and a fastening part. The bending forming component includes a forming part. The fastening part is connected inside the bending linkage groove. The forming part faces the bending stroke component. When the bending power source drives the bending linkage component to move into position towards the bending forming component, the fastening part moves towards the end face of the forming part.

8. An automatic metal cable tie assembly device according to any one of claims 1 to 4, characterized in that, The buckle feeding assembly includes a buckle feeding track and a buckle picking frame located beside the buckle feeding track. A buckle picking cylinder and a buckle limiting plate are connected to the buckle picking frame. The output end of the buckle picking cylinder is connected to a buckle picking component. The buckle picking component has a buckle picking position. The buckle limiting plate is directly opposite the buckle picking position. The buckle picking position is driven by the buckle picking cylinder to move between the discharge end of the buckle feeding track and the feed end of the support platform.

9. An automatic metal cable tie assembly device according to any one of claims 1 to 4, characterized in that, The strip punching assembly includes a strip punching frame, a punching power source connected to the strip punching frame, and a punching upper die driven by the punching power source. A punching bottom die is provided on the equipment frame, and the punching upper die is positioned directly opposite the punching bottom die. A strip through seat is provided on the side of the punching bottom die near the bearing platform, and a strip channel is opened on the strip through seat.

10. An automatic metal cable tie assembly device according to any one of claims 1 to 4, characterized in that, The flattening assembly includes a flattening frame located next to the bearing platform, a flattening power source connected to the flattening frame, and a flattening component driven by the flattening power source. The flattening frame has a flattening position, and the flattening component has a flattening groove at the position opposite to the flattening position.