Welding equipment for splicing mesh material belts

By designing welding equipment for splicing wire mesh strips, automated welding and collection of wire mesh strips were achieved, solving the problems of large space occupation and inconvenient welding during the transportation of metal substrates, and improving welding efficiency and transportation safety.

CN223557503UActive Publication Date: 2025-11-18DONGGUAN BOLIN TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422588745.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-11-18
Estimated Expiration
2034-10-25

AI Technical Summary

Technical Problem

In the existing technology, the stacking and transportation of metal substrates during the wire mesh production process is space-consuming and inconvenient, making efficient welding and transportation difficult.

Method used

Design a welding device for splicing wire mesh strips, including a hopper, a translation mechanism, a welding structure, and a winding device. The device uses suction cups for adsorption, positioning components for fixing, and a laser welding head for welding wire mesh strips, thereby achieving automated welding and collection.

Benefits of technology

It improves the welding precision and efficiency of wire mesh strips, reduces transportation space requirements, and enhances transportation safety.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223557503U_ABST
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Abstract

The utility model discloses welding equipment for splicing a mesh material belt, which comprises a stock bin, the stock bin is provided with a lower rack, the stock bin is arranged on the lower rack, the stock bin comprises a material belt supporting plate, and the material belt supporting plate is used for placing the mesh material belt; the translation mechanism is mounted on the lower rack, the translation mechanism comprises a plurality of suction cups and a moving assembly, the suction cups are fixedly connected through suction cup connecting plates, the suction cups are used for adsorbing a mesh material belt, the suction cups are connected with the moving assembly, and the moving assembly is used for driving the suction cups to move; the welding structure is installed on the lower rack, the welding structure comprises a positioning assembly and a welding assembly, the positioning assembly is used for positioning a mesh material belt, and the welding assembly is used for welding the mesh material belt; and the winding device comprises a discharging mechanism and a winding assembly, the discharging mechanism is used for moving the mesh strip, and the winding assembly is used for collecting the mesh strip.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the technical field of mesh welding, and specifically relates to a welding equipment for mesh material belt splicing. BACKGROUND

[0002] The mesh material belt is a mesh with very small mesh holes and fine structures, and is usually used for embedding a whole piece of metal mesh into the surface of a ceramic base body to make a new type of heating body in the electronic cigarette industry. The ceramic core using the metal mesh heats more evenly, has a larger heating area, and heats faster. The smoke liquid is fully atomized instantaneously, resulting in a large amount of smoke, a more pure and full taste, and a stronger throat impact.

[0003] In the use process of the electronic cigarette, the smoke oil is injected into the electronic cigarette atomization tube by selection, the coil in the electronic cigarette atomization tube is heated and treated, the smoke oil is atomized, and the customer has the feeling of smoking. In the prior art, a small piece of metal base material is usually formed by punching, and a plurality of small meshes are formed in the metal base material. During transportation, the plurality of metal base materials are usually stacked and placed, and a special tray is required for placement and fixation, which occupies a lot of space and is not convenient for transportation. CONTENT OF THE UTILITY MODEL

[0004] The utility model aims to provide a welding equipment for mesh material belt splicing to solve the problems in the background art.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:

[0006] A welding equipment for mesh material belt splicing comprises

[0007] A stock bin is provided with a lower rack, the stock bin is installed on the lower rack, the stock bin comprises a material belt support plate, and the material belt support plate is used for placing the mesh material belt;

[0008] A translation mechanism is installed on the lower rack, the translation mechanism comprises a plurality of suction cups and a moving assembly, the plurality of suction cups are fixedly connected through a suction cup connecting plate, the suction cups are used for adsorbing the mesh material belt, the suction cups are connected with the moving assembly, and the moving assembly is used for driving the suction cups to move;

[0009] A welding structure is installed on the lower rack, the welding mechanism comprises a positioning assembly and a welding assembly, the positioning assembly is used for positioning the mesh material belt, and the welding assembly is used for welding the mesh material belt;

[0010] A winding device comprises a material feeding mechanism and a winding assembly, the material feeding mechanism is used for moving the mesh material belt, and the winding assembly is used for collecting the mesh material belt.

[0011] Further technical solutions, the welding assembly includes a vertical plate and a laser welding head, the vertical plate is vertically arranged on the lower rack, the vertical plate is provided with a vertical linear module one and a sliding block one, the sliding block one is slidably connected with the linear module one, the sliding block one is fixedly connected with the laser welding head through a laser fixing frame, and the laser welding head faces the welding position of the mesh material belt.

[0012] Further technical solutions, the positioning assembly includes a support frame, a plurality of positioning pins and a plurality of driving devices one, the support frame is used for placing the mesh material belt, the support frame is provided with a plurality of positioning holes, the driving device one is used for driving the positioning pin to move up and down, and the positioning pin can be clamped with the mesh hole of the mesh material belt through the positioning hole.

[0013] Further technical solutions, the support frame movably provided with a pressing block, the pressing block can move up and down relative to the mesh material belt, the pressing block is located at the welding position of the mesh material belt, the pressing block is used for pressing the welding position of the two mesh material belts, the pressing block is provided with a light-avoiding groove, the laser of the laser welding head passes through the light-avoiding groove, and the lower rack is fixedly provided with a pressing cylinder, one end of a piston shaft of the pressing cylinder is connected with the pressing block.

[0014] Further technical solutions, one end of the piston shaft of the pressing cylinder is provided with a floating joint, and the floating joint is rotatably connected with the pressing block.

[0015] Further technical solutions, two light-avoiding holes are formed in the pressing block, the two light-avoiding holes are oppositely arranged, the light-avoiding holes are communicated with the positioning holes, and the positioning pin can pass through the light-avoiding holes.

[0016] Further technical solutions, the blanking mechanism includes a linear module two, a sliding block two and a pushing assembly, the linear module two and the sliding block two are slidably connected in the horizontal direction, the sliding block two is fixedly connected with the pushing assembly through a pushing frame, and the pushing assembly can be used to move the mesh material belt.

[0017] Further technical solutions, the pushing assembly includes a pushing needle and a pushing cylinder, one end of the pushing cylinder is fixedly connected with the pushing frame, and one end of a piston shaft of the pushing cylinder is connected with the pushing needle.

[0018] Further technical solutions, the hopper further includes a push plate and a plurality of guide shafts, the guide shafts are vertically arranged on the push plate, the guide shafts are fixedly connected with the hopper support plate, and the lower rack is fixedly provided with a driving device two, and the driving device two is used to drive the push plate to move up and down.

[0019] Further technical solutions, the moving assembly includes linear module three, slide plate and driving device three, the linear module three is provided with a load-bearing column, one end of the load-bearing column is fixedly connected with the lower rack, the other end of the load-bearing column is detachably connected with the linear module three, the linear module three is horizontally arranged, the slider part of the linear module three is fixedly connected with the slide plate, the driving device three is used for driving the slider part of the linear module three to move, the slide plate is provided with a driving motor two, the output shaft of the driving motor two is coaxially fixedly connected with the screw rod two through the slide plate, the other end of the screw rod is rotationally connected with the suction disc connecting plate.

[0020] The beneficial effects of the present application are as follows:

[0021] The present application places the mesh material belt on the material belt supporting plate of the stock bin, and absorbs the mesh material belt by the suction disc, and drives the suction disc to move by the moving assembly, so as to drive the mesh material belt to move, thereby completing the feeding of the mesh material belt. After the mesh material belt is conveyed to the welding structure placed on the lower rack, the mesh material belt is fixed by the positioning assembly, and then the mesh material belt is welded by the welding assembly, so that the present application can realize automatic welding of the mesh material belt, improve the welding precision and welding efficiency of the mesh material belt, and then move the mesh material belt to the specified position by the discharging mechanism, and collect the welded satellite mesh by the winding assembly. The longer mesh material belt composed of multiple small mesh material belts improves the transportation efficiency, and the safety of the mesh material belt during transportation is enhanced after the mesh material belt is spliced and wound.

[0022] Other features and advantages of the present application will be described in detail in the following specific embodiment part. BRIEF DESCRIPTION OF DRAWINGS

[0023] Figure 1 The overall structure of the present application.

[0024] Figure 2 The overall structure of the present application after the hidden part Figure 1 .

[0025] Figure 3 The A part of the present application Figure 2 is enlarged.

[0026] Figure 4 The structure diagram of the welding assembly of the present application.

[0027] Figure 5 The B part of the present application Figure 4 is enlarged.

[0028] Figure 6 The overall structure of the present application after the hidden part Figure 2 .

[0029] Figure 7 The utility model discares Figure 6 The C part enlarged view of

[0030] Figure 8 The structure diagram of the pushing assembly of the utility model discares

[0031] Figure 9 The structure diagram of the stock bin and the translation mechanism of the utility model discares

[0032] Figure 10 The overall structure front view of the hidden part of the utility model discares

[0033] Figure 11 The overall structure rear view of the hidden part of the utility model discares

[0034] Reference signs: 1, lower rack;2, stock bin;21, material belt support plate;22, push plate;23, guide shaft;3, mesh material belt;4, translation mechanism;41, suction cup;42, moving assembly;421, linear module three;422, sliding plate;423, driving device three;424, driving motor two;5, suction cup connecting plate;6, welding mechanism;61, positioning assembly;611, support frame;612, positioning thimble;613, driving device one;62, welding assembly;621, vertical plate;622, laser welding head;623, linear module one;624, sliding block one;7, welding position;9, compression block;10, light-avoiding groove;11, position-avoiding hole;12, compression cylinder;13, floating joint;14, blanking mechanism;141, linear module two;142, sliding block two;143, pushing assembly;1431, pushing needle;1432, pushing cylinder;15, L-shaped plate;16, inverted L-shaped connecting plate;17, support;18, support plate;19, driving device two;20, load-bearing column DETAILED DESCRIPTION

[0035] The technical scheme in the utility model embodiment will be described clearly and completely below with reference to the drawings in the utility model embodiment.

[0036] Please refer to Figures 1-11 ;

[0037] A kind of welding equipment for mesh material belt splicing, refer to Figure 1 and Figure 2, including the lower rack 1, the lower rack 1 is installed with the hopper 2, the hopper 2 includes the material belt support plate 21, the material belt support plate 21 is used to place the mesh material belt 3, the material belt support plate 21 is horizontally placed, and because the mesh material belt 3 used for electronic cigarette atomizer production is long strip type, therefore in the embodiment, the material belt support plate 21 is cuboid shape, the material belt support plate 21 can move up and down in the vertical direction, accordingly, the device also includes the translation mechanism 4, the translation mechanism 4 is installed on the lower rack 1, and the translation mechanism 4 is installed on one side of the hopper 2, the translation mechanism 4 includes a plurality of suction cups 41 and moving assemblies 42, a plurality of suction cups 41 are fixedly connected with each other through the suction cup connecting plate 5, the suction cup 41 is used to adsorb the mesh material belt 3, the suction cup 41 is vertically arranged, and the suction cup head of the suction cup 41 faces the mesh material belt 3, it is worth noting that in the initial state, that is, when the operator places the mesh material belt 3 to be welded, the suction cup 41 keeps a certain distance from the mesh material belt 3; the moving assembly 42 is connected with the suction cup 41, and the moving assembly 42 can drive the suction cup 41 to move, in the embodiment, the moving assembly 42 is located on one side of the hopper 2, so as to facilitate the suction cup 41 to adsorb the mesh material belt 3; the device also includes a welding mechanism 6, the welding mechanism is also installed on the lower rack 1, the welding mechanism 6 includes a positioning assembly 61 and a welding assembly 62, when the moving assembly 42 transports the mesh material belt 3 adsorbed by the suction cup 41 to the positioning assembly 61, the positioning assembly 61 can position the mesh material belt 3, and the welding assembly 62 is used to weld the mesh material belt 3; in addition, the device also includes a collecting device, the collecting device is located on the lower rack, and the collecting device includes a discharging mechanism 14 and a collecting assembly, the discharging mechanism 14 can move the mesh material belt which has been welded to a specified position, and the collecting assembly can collect the mesh material belt which has been welded.

[0038] Specifically, in the initial state, the suction cup 41 keeps a certain distance from the material belt support plate 21, the operator places the mesh material belt 3 to be welded on the material belt support plate 21 of the hopper 2, then the moving assembly 42 drives the suction cup 41 to move downward until the suction cup 41 adsorbs the mesh material belt 3, then the moving assembly 42 drives the suction cup 41 to move to the positioning assembly 61, at the same time, the mesh material belt 3 is moved to the positioning assembly 61 and abuts against another mesh material belt 3 to be welded which has been placed on the positioning assembly 61, the positioning assembly 61 fixes the mesh material belt 3, and the welding assembly 62 welds the abutment of the two mesh material belts 3 to be welded; compared with the traditional manual welding, the device for welding the mesh material belt 3 improves the efficiency and precision, the discharging mechanism 14 can move the mesh material belt which has been welded to a specified position, and after the mesh material belt moves to the specified position, the collecting assembly can collect the mesh material belt which has been welded.

[0039] In the embodiment, referring to Figure 2 、 Figure 4 andFigure 5 The welding assembly 62 includes a vertical plate 621 and a laser welding head 622. The vertical plate 621 is vertically mounted on the lower frame 1. In this embodiment, the vertical plate 621 is provided with a vertically mounted linear module 623 and a slider 624. The slider 624 and the linear module 623 are slidably connected in the vertical direction by a lead screw pair. The lead screw pair can be connected to a drive motor or a hand crank. Since the slider 624 and the laser welding head 622 are fixedly connected by a laser fixing frame in this embodiment, the position of the laser welding head 622 does not need to be changed frequently. Therefore, a hand crank is preferred. The laser welding head 622 is used to emit laser to weld the connection between the two mesh strips 3. Therefore, the laser welding head 622 faces the welding position 7 of the mesh strip 3.

[0040] Specifically, the operator fixes the two mesh strips 3 to be welded using the positioning component 61, and then adjusts the position of the laser welding head 622 by hand-cranking the wheel to change the distance between the laser emitted by the laser welding head 622 and the welding position 7 to an appropriate position. Then, the laser welding head 622 is opened to weld the connection between the two mesh strips 3. The linear module 623 and the slider 624 are connected in a vertical direction, which further restricts the horizontal swing of the laser welding head 622 and improves the accuracy of the laser welding head 622 in welding.

[0041] In this embodiment, refer to Figure 2 , Figure 3 and Figure 7 The positioning component 61 includes a support frame 611, several positioning pins 612, and several driving devices 613. The support frame 611 includes a support plate, several upright plates 621, and several bases for the upright plates 621. The support plate is horizontally arranged, the bases of the upright plates 621 are fixedly connected to the lower frame 1, and the upright plates 621 are vertically arranged. One end of the upright plate 621 is fixedly connected to the base of the upright plate 621, and the other end of the upright plate 621 is fixedly connected to the lower surface of the support plate. The upper surface of the support plate is used to place the mesh strip 3. Several positioning holes are provided on the support plate. In this embodiment, six positioning holes are provided on the support plate. The drive device 613 is located under the support plate and between the two upright plates 621. The drive device 613 is preferably a cylinder. One end of the cylinder is fixedly installed on the lower frame 1, and the other end of the piston shaft of the cylinder is connected to the positioning pin 612, so that the extension and retraction of the piston shaft of the cylinder can be used to drive the positioning pin 612 to move up and down. The positioning pin 612 can pass through the positioning hole and engage with the mesh hole of the wire mesh 3. It is worth noting that the end of the positioning pin 612 away from the cylinder is set with a conical surface so that the positioning pin 612 can better engage with the mesh hole of the wire mesh 3.

[0042] Specifically, in the initial state, the mesh material belt 3 is located on one end of the supporting frame 611, the piston shaft of the cylinder under the supporting frame 611 is extended, and the positioning pin 612 passes through the positioning hole and is clamped with the mesh hole of the mesh material belt 3. The piston shaft of the cylinder under the supporting frame 611 at the other end is in a retracted state, and the positioning pin 612 does not pass through the positioning hole. When the moving assembly 42 places the mesh material belt 3 on the empty supporting frame 611 through the suction cup 41, and at this time the mesh material belt 3 and the mesh material belt 3 are abutted at the welding position 7, the piston shaft of the cylinder under the supporting frame 611 is extended, and the positioning pin 612 is clamped with the mesh hole of the mesh material belt 3.

[0043] It is worth noting that, with reference to Figure 6 and Figure 7 , there is a cylinder under the supporting frame 611 at the welding position 7 of the mesh material belt 3 and the mesh material belt 3. The piston shaft of the cylinder is connected to the positioning pin fixed block at one end, and four positioning pins are fixedly arranged on the positioning pin fixed block. Two of the positioning pins are clamped with the mesh holes of the mesh material belt 3, and the other two are clamped with the mesh holes of the mesh material belt 3. When the moving assembly 42 places the mesh material belt 3 on the empty supporting frame 611 through the suction cup 41, and the mesh material belt 3 and the mesh material belt 3 are abutted at the welding position 7, the piston shaft of the cylinder is extended, and the four positioning pins 612 are clamped with the mesh holes of the mesh material belt 3 and the mesh material belt 3, further fixing the mesh material belt 3 and the mesh material belt 3.

[0044] In this embodiment, with reference to Figure 6 and Figure 7 , the upper surface of the supporting frame 611 is movably provided with a pressing block 9, and the pressing block 9 is located at the welding position 7 of the mesh material belt 3. The pressing block 9 is used to press the welding position of the two mesh material belts 3. The pressing block 9 is provided with a light-avoiding groove 10. The laser of the laser welding head 622 passes through the light-avoiding groove 10 to weld the two mesh material belts 3. The light-avoiding groove 10 is a long strip-shaped light-avoiding groove 10, and the groove shape of the light-avoiding groove 10 can completely expose the abutted position between the two mesh material belts 3, so as to facilitate the laser emitted by the laser welding head 622 to weld the two mesh material belts 3. The pressing block 9 is provided with two position-avoiding holes 11, and the two position-avoiding holes 11 are oppositely arranged on both sides of the light-avoiding groove 10. The position-avoiding hole 11 is in communication with the positioning hole, and the positioning pin 612 can pass through the position-avoiding hole 11. The lower rack 1 is fixedly provided with a pressing cylinder 12, and one end of the piston shaft of the pressing cylinder 12 is provided with a floating joint 13. The floating joint is rotatably connected with the pressing block 9.

[0045] Specifically, in the initial state, the clamping block 9 maintains an appropriate distance from the wire mesh strip 3. When the moving component 42 places the second wire mesh strip 3 onto the support plate of the support frame 611 via the suction cup 41, and the second wire mesh strip 3 and the first wire mesh strip 3 abut at the welding position 7, the operator rotates the clamping block 9 until the center line of the clearance groove is collinear with the center line of the laser welding head 622. Then, the piston shaft of the clamping cylinder 12 retracts, causing the clamping block 9 to move towards the two wire mesh strips 3 until the clamping block 9 clamps the two wire mesh strips 3. It is worth noting that at this time, the clamping block 9 exposes the connection point of the two wire mesh strips 3. Then, the piston shaft of the cylinder extends and retracts, driving the positioning pin fixing block to move, which in turn drives the positioning pin 612 to pass through the positioning hole and the clearance hole 11 and engage with the mesh of the wire mesh strip 3, further fixing the two wire mesh strips 3. The two wire mesh strips 3 are then welded by laser irradiation emitted by the laser welding head 622. Afterward, the piston shaft of the cylinder extends and retracts, driving the positioning pin fixing block to move in the opposite direction, which in turn drives the positioning pin 612 to move in the opposite direction. By retracting the piston shaft of the pressing cylinder 12, the pressing block 9 is driven to move away from the two wire mesh strips 3, thereby maintaining an appropriate distance between the pressing block 9 and the wire mesh strip 3.

[0046] In this embodiment, refer to Figure 2 and Figure 8 The feeding mechanism 14 includes a linear module 141, a slider 142, and a feeding assembly 143. The linear module 141 is horizontally arranged, and the linear module 141 and the slider 142 are slidably connected in the horizontal direction. The slider 142 is fixedly connected to the feeding assembly 143 via a feeding frame. The feeding frame is an "L-shaped plate 15". The bottom plate of the "L-shaped plate 15" is fixedly connected to the slider 142, and the side plate of the "L-shaped plate 15" is fixedly connected to the feeding assembly 143. Specifically, the feeding assembly 143 includes a feeding pin 1431 and a feeding cylinder 1432. One end of the feeding cylinder 1432 is fixedly connected to the side plate of the "L-shaped plate 15". One end of the piston shaft of cylinder 2 is connected to the pusher needle 1431. One end of the piston shaft of the pusher cylinder 1432 can be directly fixedly connected to the pusher needle 1431. The piston shaft of the pusher cylinder 1432 extends and retracts downward, pushing the pusher needle 1431 to move up and down. One end of the piston shaft of the pusher cylinder 1432 and the pusher can be connected through a pusher connecting plate. The pusher connecting plate is an inverted L-shaped connecting plate 16, that is, the top plate of the inverted L-shaped connecting plate 16 is fixedly connected to the piston shaft of the cylinder, and the bottom end of the side plate of the inverted L-shaped connecting plate 16 is fixedly connected to the pusher needle 1431. In this embodiment, it is preferable that one end of the piston shaft of the pusher cylinder 1432 and the pusher are connected through a pusher connecting plate.

[0047] In the embodiment, the collecting assembly comprises a bearing plate and a discharging fixing plate, the bearing plate is vertically arranged, the upper end of the bearing plate is fixedly connected with the horizontally arranged discharging fixing plate, one end of the discharging fixing plate is rotatably connected with two paper wheel stop edges, a gap is formed between the two paper wheel stop edges, the other end of the discharging fixing plate is rotatably connected with two rotating discs, a gap is also formed between the two rotating discs, a rotating motor is further arranged on the end of the discharging fixing plate close to the rotating disc, the output shaft of the rotating motor passes through the hole on the discharging fixing plate to drive the rotating disc to rotate, the mesh belt is located in the gap of the rotating disc and the gap of the paper wheel stop edge, so that the paper wheel stop edge can be driven to rotate through the rotation of the rotating disc, thereby completing the collection of the mesh belt which has been welded.

[0048] In the embodiment, referring to Figure 2 and Figure 9 , the hopper 2 further comprises a push plate 22 and a plurality of guide shafts 23, in the embodiment, the guide shafts 23 are preferably two, and the two guide shafts 23 are respectively located on the two sides of the push plate 22, the guide shafts 23 are vertically arranged on the push plate 22, and the guide shafts 23 are fixedly connected with the support plate 18 of the hopper 2, it is worth noting that in the embodiment, the lower rack 1 is further provided with a support 17, the support 17 is provided with a horizontally arranged support plate 18, and two shaft avoiding holes are formed in the support plate 18, the guide shafts 23 pass through the shaft avoiding holes and are fixedly connected with the mesh belt support plate 21, the driving device two 19 is fixedly arranged in the lower rack 1, and the driving device two 19 is used to drive the push plate 22 to move up and down, in the embodiment, the driving device two 19 comprises a driving motor one and a lead screw, the driving motor one is located in the lower rack 1, and the output shaft of the driving motor one is coaxially fixedly connected with the lead screw through the lower rack 1.

[0049] In the embodiment, referring to Figure 2 and Figure 9 , the moving assembly 42 comprises a linear module three 421, a sliding plate 422 and a driving device three 423, the linear module three 421 is provided with a bearing column 20, one end of the bearing column 20 is fixedly connected with the lower rack 1, the other end of the bearing column 20 is detachably connected with the linear module three 421, the linear module three 421 is horizontally arranged, the sliding block part of the linear module three 421 is fixedly connected with the sliding plate 422, the driving device three 423 is used to drive the sliding block part of the linear module three 421 to move, the driving motor two 424 is arranged on the sliding plate 422, the output shaft of the driving motor two 424 is coaxially fixedly connected with the lead screw two through the sliding plate 422, and the other end of the lead screw is rotatably connected with the suction disc connecting plate 5.

[0050] Specifically, after the operator places the mesh material belt 3 on the material belt support plate 21, the second driving motor 424 is driven to rotate, thereby driving the suction disc connecting plate 5 to move downward, and the suction disc 41 adsorbs the mesh material belt 3, then the third driving device 423 drives the slider part of the third linear module 421 to move, thereby driving the sliding plate 422 to move, and further driving the suction disc connecting plate 5 to move, and further placing the mesh material belt 3 on the support frame 611.

[0051] It is apparent for those skilled in the art that the present application is not limited to the details of the above-described exemplary embodiments, but can be implemented in other concrete forms without departing from the spirit or essential characteristics of the present application. Therefore, the embodiments should be considered in all aspects as illustrative and not restrictive, and the scope of the present application is defined by the appended claims rather than the above description, and it is intended to embrace all changes falling within the meaning and range of equivalents of the claims. Any reference signs in the claims should not be considered as limiting the claims involved.

[0052] In addition, it should be understood that, although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the description of the specification is only for the sake of clarity, and those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be properly combined to form other embodiments that those skilled in the art can understand.

Claims

1. A welding device for splicing wire mesh strips, characterized in that, include: The hopper (2) is provided with a lower frame (1) and is installed on the lower frame (1). The hopper (2) includes a material belt support plate (21) for placing the wire mesh material belt (3). Translation mechanism (4), the translation mechanism (4) is installed on the lower frame (1), the translation mechanism (4) includes a plurality of suction cups (41) and a moving component (42), the plurality of suction cups (41) are fixedly connected by suction cup connecting plate (5), the suction cups (41) are used to adsorb the mesh strip (3), the suction cups (41) are connected to the moving component (42), and the moving component (42) is used to drive the suction cups (41) to move; A welding structure is installed on the lower frame (1). The welding structure (6) includes a positioning component (61) and a welding component (62). The positioning component (61) is used to position the wire mesh strip (3), and the welding component (62) is used to weld the wire mesh strip (3). The winding device includes a feeding mechanism (14) and a winding assembly. The feeding mechanism is used to move the wire mesh strip, and the winding assembly is used to collect the wire mesh strip.

2. The welding equipment for splicing wire mesh strips according to claim 1, characterized in that, The welding assembly (62) includes a vertical plate (621) and a laser welding head (622). The vertical plate (621) is vertically mounted on the lower frame (1). The vertical plate (621) is provided with a vertically mounted linear module (623) and a slider (624). The slider (624) is slidably connected to the linear module (623). The slider (624) and the laser welding head (622) are fixedly connected by a laser fixing frame. The laser welding head (622) faces the welding position (7) of the mesh strip (3).

3. The welding equipment for splicing wire mesh strips according to claim 2, characterized in that, The positioning component (61) includes a support frame (611), a plurality of positioning pins (612) and a plurality of driving devices (613). The support frame (611) is used to place the mesh strip (3). The support frame (611) has a plurality of positioning holes. The driving device (613) is used to drive the positioning pins (612) to move up and down. The positioning pins (612) can pass through the positioning holes and engage with the mesh holes of the mesh strip (3).

4. The welding equipment for splicing wire mesh strips according to claim 3, characterized in that, A clamping block (9) is movably mounted on the support frame (611). The clamping block (9) can move up and down relative to the mesh strip (3). The clamping block (9) is located at the welding position (7) of the mesh strip (3). The clamping block (9) is used to clamp the welding joint of the two mesh strips (3). A light-shielding groove (10) is provided on the clamping block (9). The laser of the laser welding head (622) passes through the light-shielding groove (10). A clamping cylinder (12) is fixedly mounted on the lower frame (1). One end of the piston shaft of the clamping cylinder (12) is connected to the clamping block (9).

5. The welding equipment for splicing wire mesh strips according to claim 4, characterized in that, The piston shaft of the clamping cylinder (12) is provided with a floating joint (13) at one end, and the floating joint is rotatably connected to the clamping block (9).

6. The welding equipment for splicing wire mesh strips according to claim 4, characterized in that, The clamping block (9) has two clearance holes (11) which are arranged opposite to each other. The clearance holes (11) are connected to the positioning hole, and the positioning pin (612) can pass through the clearance holes (11).

7. The welding equipment for splicing wire mesh strips according to claim 1, characterized in that, The feeding mechanism (14) includes a second linear module (141), a second slider (142), and a feeding assembly (143). The second linear module (141) and the second slider (142) are slidably connected in the horizontal direction. The second slider (142) is fixedly connected to the feeding assembly (143) through a feeding frame. The feeding assembly (143) can be used to move the mesh strip (3).

8. The welding equipment for splicing wire mesh strips according to claim 7, characterized in that, The feeding assembly (143) includes a feeding pin (1431) and a feeding cylinder (1432). One end of the feeding cylinder (1432) is fixedly connected to the feeding frame, and one end of the piston shaft of the feeding cylinder (1432) is connected to the feeding pin (1431).

9. The welding equipment for splicing wire mesh strips according to claim 1, characterized in that, The hopper (2) also includes a push plate (22) and several guide shafts (23). The guide shafts (23) are vertically arranged on the push plate (22). The guide shafts (23) are fixedly connected to the support plate (18) of the hopper (2). A second drive device (19) is fixedly arranged inside the lower frame (1). The second drive device (19) is used to drive the push plate (22) to move up and down.

10. The welding equipment for splicing wire mesh strips according to claim 9, characterized in that, The moving component (42) includes a linear module three (421), a sliding plate (422), and a driving device three (423). The linear module three (421) is provided with a load-bearing column (20). One end of the load-bearing column (20) is fixedly connected to the lower frame (1), and the other end of the load-bearing column (20) is detachably connected to the linear module three (421). The linear module three (421) is horizontally arranged. The slider part of the linear module three (421) is fixedly connected to the sliding plate (422). The driving device three (423) is used to drive the slider part of the linear module three (421) to move. A driving motor two (424) is provided on the sliding plate (422). The output shaft of the driving motor two (424) passes through the sliding plate (422) and is coaxially fixedly connected to the lead screw two. The other end of the lead screw is rotatably connected to the suction cup connecting plate (5).