Fully automated welding production equipment for wire mesh processing

CN122559705APending Publication Date: 2026-08-14LONGKOU SHUNSHENG IND & TRADE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-05
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0003]然而现有技术依然存在一下问题:因全自动焊接生产设备采用滚轮传输网片进行加工,没有拉扯力,但常规滚筒都是点状、线状局部支撑,网片悬空段会摆动、扭曲,焊点受交变应力,并且焊接点位因焊后焊点高温、金相未完全固化,受输送震动、交变应力等原因导致易虚焊、开裂、脱点的问题,进而导致网片焊接质量底下,因此,我们提出了用于网片加工的全自动焊接生产设备

Benefits of technology

[0018] According to one embodiment of the present invention, multiple cooling fans drive a following component to achieve lifting and lowering motion. After rising to a certain height, the cooling fans partially surround the welding point and move with it. Furthermore, the multiple cooling fans simultaneously use air cooling for cooling. Therefore, the semi-enclosed method is used to cool the welding point, which accelerates the curing process and avoids the stress that causes the mesh to sink downward due to gaps between adjacent sets of rollers, resulting in twisting and a decrease in welding quality.

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Abstract

This invention discloses a fully automatic welding production equipment for wire mesh processing, including a frame. A welding mechanism is located at one end of the upper surface of the frame, and a cutting mechanism is located at the other end. A roller conveying mechanism is also located on the upper surface of the frame. The equipment further includes a synchronous cooling mechanism, comprising multiple sets of such mechanisms, with a linkage mechanism between adjacent sets. The synchronous cooling mechanism includes two sets of drive and follower components, multiple sets of cooling components, and transmission components. Through the design of the synchronous cooling mechanism, this invention achieves a gradual and stable cooling effect on the welding point, resulting in rapid solidification and improved welding quality. Furthermore, the design of the follower support mechanism and the airflow adjustment mechanism further enhances the applicability and practicality of the synchronous cooling mechanism.
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Description

Technical Field

[0001] This invention relates to a welding process for wire mesh, and more specifically, to a fully automated welding production equipment for wire mesh processing. Background Technology

[0002] Welded wire mesh is a building material made of high-quality low-carbon steel wire and stainless steel wire. It has strong corrosion resistance and oxidation resistance and is widely used in industries such as industry, agriculture, construction and transportation. Its external hot-dip galvanization can be used as perforated mesh, marine protection mesh in high-salinity areas, shelving and heavy-duty shelving mesh, etc. Welded wire mesh consists of horizontal and vertical metal wires that cross vertically and are fixed together by resistance spot welding at the intersections to form a mesh plate. It is commonly referred to in the industry as welded wire mesh, steel mesh, or square mesh. During the production of wire mesh, welding machines are usually used to weld the mesh structure into one piece.

[0003] However, existing technologies still have the following problems: because fully automatic welding production equipment uses rollers to transport the mesh for processing, there is no tensile force. However, conventional rollers provide local support in a point or line manner, and the suspended section of the mesh will swing and twist. The weld points are subjected to alternating stress, and the weld points are prone to problems such as incomplete welding, cracking, and detachment due to the high temperature of the weld points after welding and the incomplete metallographic curing. This leads to poor welding quality of the mesh. Therefore, we have proposed a fully automatic welding production equipment for mesh processing. Summary of the Invention

[0004] One object of the present invention is to provide a new technical solution for a fully automated welding production equipment for wire mesh processing.

[0005] According to a first aspect of the present invention, a fully automated welding production equipment for wire mesh processing is provided, comprising a frame, a welding mechanism disposed at one end of the upper surface of the frame, a cutting mechanism disposed at the other end of the upper surface of the frame, and a roller conveying mechanism disposed on the upper surface of the frame, and further comprising:

[0006] The synchronous cooling mechanism is provided in multiple sets, and a linkage mechanism is provided between two adjacent sets of synchronous cooling mechanisms, so that the multiple sets of synchronous cooling mechanisms are mutually driven through the linkage mechanism.

[0007] The synchronous cooling mechanism includes two sets of drive-following components, multiple sets of cooling components, and transmission components. The two sets of drive-following components are symmetrically arranged at the bottom of the frame, and the multiple sets of cooling components are arranged between the two sets of drive-following components.

[0008] The multiple cooling components each include a cooling fan and a support plate. The multiple cooling fans are arranged close to or far from each other through a transmission component. The multiple support plates are arranged in a rectangular circular sliding configuration through a drive and following component.

[0009] Optionally, the outer side of the support plate is provided with multiple sets of extension plates, the cooling fan is slidably disposed on the upper surface of the extension plates through transmission components, and the linkage mechanism is disposed between two adjacent sets of transmission components, so that the two adjacent sets of transmission components are mutually driven through the linkage mechanism.

[0010] Optionally, the transmission component includes a transmission bevel gear and multiple sets of driven bevel gears. A transmission groove is provided inside the support plate, and the transmission bevel gear is rotatably installed inside the transmission groove. Multiple sets of connecting holes communicating with the inside of the transmission groove are provided around the outer side of the support plate. The multiple sets of driven bevel gears are meshed with the transmission bevel gear, and a transmission rod is fixedly installed on one side of each set of driven bevel gears. The transmission rod is rotatably installed in the connecting hole and is connected to the cooling fan.

[0011] Optionally, a sliding groove is provided on the upper surface of the extension plate, and a transmission screw is rotatably connected inside the sliding groove. One end of the transmission screw is fixedly connected to a transmission rod, and a transmission seat is threadedly connected to the outside of the transmission screw. The lower end of the transmission seat is slidably installed inside the sliding groove, and the cooling fan is disposed on the upper surface of the transmission seat.

[0012] Optionally, the drive following component includes a drive housing, a support side plate at the bottom of the drive housing, a fixedly mounted upper surface of the drive housing on the bottom of the frame, and the drive housing is positioned between two sets of rollers. A guide groove is provided on one side of the drive housing, and a sliding seat is slidably mounted inside the guide groove. A drive component is fixedly mounted at one end of the sliding seat, and the drive component is connected to a set of transmission bevel gears near the sliding seat.

[0013] Optionally, a servo motor is provided inside the drive housing, and a rotating groove is provided on the other side of the drive housing. A side panel is provided inside the rotating groove, and a guide groove is formed between the side panel and the inner wall of the rotating groove. One end of the output shaft of the drive motor passes through the other side of the drive housing to the inside of the rotating groove, and one end of the output shaft of the servo motor is connected to a first telescopic rod. One end of the movable part of the first telescopic rod is rotatably connected to the sliding seat.

[0014] Optionally, the driving component includes a linkage gear and a positioning side plate. The positioning side plate is fixedly connected to the sliding seat. A linkage hole is provided on the outer side of the positioning side plate. The linkage gear is rotatably installed inside the linkage hole. A bevel gear transmission structure is driven to the bottom of the linkage gear. A first shrink tube is driven to the end of the bevel gear transmission structure. A first extension rod is slidably connected to one end of the first shrink tube. The first extension rod is driven to a set of transmission bevel gears near the sliding seat. Tooth grooves are provided at both ends of one side of the driving housing. The linkage gear meshes with the tooth grooves.

[0015] Optionally, a through hole communicating with the inside of the transmission groove is provided on the outer side of a set of bearing plates near the sliding seat. One end of the first extension rod is rotatably installed inside the through hole, and one end of the first extension rod is connected to another set of bevel gear transmission structures. The other set of bevel gear transmission structures is meshed with a transmission bevel gear.

[0016] Optionally, the linkage mechanism includes a second extension rod, a second contraction tube is slidably sleeved on the outer side of the second extension rod, and the second extension rod and the second contraction tube are rotatably installed between two adjacent sets of bearing plates.

[0017] Optionally, a linkage bevel gear is fixedly installed at the ends of the second extension rod and the second contraction tube that are far apart from each other. A linkage groove is opened on the opposite side of the two adjacent sets of bearing plates. The linkage bevel gear is rotatably installed inside the linkage groove and meshes with the transmission bevel gear. The linkage bevel gear is located between the two adjacent sets of driven bevel gears.

[0018] According to one embodiment of the present invention, multiple cooling fans drive a following component to achieve lifting and lowering motion. After rising to a certain height, the cooling fans partially surround the welding point and move with it. Furthermore, the multiple cooling fans simultaneously use air cooling for cooling. Therefore, the semi-enclosed method is used to cool the welding point, which accelerates the curing process and avoids the stress that causes the mesh to sink downward due to gaps between adjacent sets of rollers, resulting in twisting and a decrease in welding quality.

[0019] Secondly, through the design of the transmission components, multiple cooling fans gradually approach and synchronously move away from each other. This allows the multiple cooling fans to initially maintain a relatively large distance from the welding point between the two sets of rollers for air cooling, and then gradually approach each other, achieving a gradual increase in the air cooling effect and thus a gradual decrease in temperature. Instead of using direct air cooling, this avoids sudden cooling that could cause the weld skin to peel off, affecting the weld strength. Therefore, the transmission components enable gradual cooling, which can effectively improve the quality of the weld.

[0020] Through the design of the air direction adjustment mechanism, multiple cooling fans approach each other and gradually get closer to the welding point. The air direction adjustment mechanism can repeatedly swing up and down the air outlet of the cooling fan, thereby increasing the air blowing area of ​​the cooling fan. This allows for effective cooling and curing of welding points of different welding specifications, thus effectively improving the practicality of the fully automatic welding equipment.

[0021] In addition, through the design of the linkage mechanism and the following support mechanism, the following support mechanism can realize the equidistant adjustment of multiple cooling components. At the same time, multiple cooling components can be driven to each other through the linkage mechanism, so that when multiple cooling fans in one cooling component move closer or further away from each other, multiple cooling fans on other cooling components can move synchronously.

[0022] Furthermore, following the support mechanism, the position of the cooling fan in multiple cooling components can be adjusted according to the position of the welding points of different specifications of mesh, thereby effectively improving the practicality of the fully automatic mesh welding production equipment.

[0023] Other features and advantages of the invention will become clear from the following detailed description of exemplary embodiments of the invention with reference to the accompanying drawings. Attached Figure Description

[0024] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments of the invention and, together with their description, serve to explain the principles of the invention.

[0025] Figure 1 This is a schematic diagram of the overall structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0026] Figure 2 This is a schematic diagram of the support side plate structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0027] Figure 3 This is a schematic diagram of the support structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0028] Figure 4 This is a schematic diagram of the side panel structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0029] Figure 5 The invention relates to a fully automated welding production equipment for wire mesh processing. Figure 4 A magnified structural diagram at point A;

[0030] Figure 6 This is a schematic diagram of the cooling fan structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0031] Figure 7 This is a schematic diagram of the support plate structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0032] Figure 8 This is a schematic diagram of the transmission bevel gear structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0033] Figure 9A schematic diagram of the transmission screw structure of the fully automated welding production equipment used for wire mesh processing in the invention;

[0034] Figure 10 This is a schematic diagram of the air regulating plate structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0035] Figure 11 The invention relates to a fully automated welding production equipment for wire mesh processing. Figure 10 A magnified structural diagram at point B;

[0036] Figure 12 This is a schematic diagram of the second extension rod structure of the fully automated welding production equipment used for wire mesh processing in the invention;

[0037] Figure 13 This is a schematic diagram of the support structure of the fully automated welding production equipment used for wire mesh processing in the invention.

[0038] The diagram shows the following components: 1. Synchronous cooling mechanism; 2. Support side plate; 3. Welding mechanism; 4. Roller conveying mechanism; 5. Cutting mechanism; 6. Following support mechanism; 7. Linkage mechanism; 8. Gear; 9. Airflow adjustment mechanism; 10. Frame; 11. Rotary gear; 12. Gear housing; 13. Connecting column; 14. Side panel; 101. Drive following component; 1011. Drive housing; 1012. Servo motor; 1013. First telescopic rod; 1014. Sliding seat; 1015. Guide groove; 102. Cooling component; 1021. Cooling fan; 1022. Bearing plate; 1023. Extension plate; 103. Transmission component; 1031. Transmission rod; 1032. Driven bevel gear; 1033. Transmission bevel gear; 1034. Transmission... 1035. Lead screw; 104. Transmission seat; 104. Drive component; 1041. Positioning side plate; 1042. Linkage gear; 1043. Bevel gear transmission structure; 1044. First extension rod; 1045. First contraction tube; 601. Support seat; 602. Second telescopic rod; 603. Guide base; 604. Pitch-changing component; 6041. Bearing seat; 6042. Adjustment plate; 6043. Electric push rod; 6044. Cross guide frame; 6045. Guide rod; 6046. Pitch-changing hole; 701. Linkage bevel gear; 702. Second extension rod; 703. Second contraction tube; 901. Air duct; 902. Air regulating plate; 903. Rocking rod; 904. Sliding base; 905. Positioning rod; 906. Linkage rod; 907. Synchronization mechanism. Detailed Implementation

[0039] Various exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It should be noted that, unless otherwise specifically stated, the relative arrangement, numerical expressions, and values ​​of the components and steps set forth in these embodiments do not limit the scope of the invention.

[0040] The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the invention or its application or use.

[0041] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and equipment should be considered part of the specification.

[0042] In all the examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values.

[0043] like Figures 1 to 13 As shown, the fully automatic welding production equipment for wire mesh processing includes a frame 10, a welding mechanism 3 is provided at one end of the upper surface of the frame 10, a cutting mechanism 5 is provided at the other end of the upper surface of the frame 10, and a roller conveying mechanism 4 is provided on the upper surface of the frame 10. It also includes:

[0044] Synchronous cooling mechanism 1, multiple sets of synchronous cooling mechanism 1 are provided, and a linkage mechanism 7 is provided between two adjacent sets of synchronous cooling mechanism 1, so that multiple sets of synchronous cooling mechanism 1 are mutually driven through the linkage mechanism 7.

[0045] The synchronous cooling mechanism 1 includes two sets of drive-following components 101, multiple sets of cooling components 102, and transmission components 103. The two sets of drive-following components 101 are symmetrically arranged at the bottom of the frame 10, and the multiple sets of cooling components 102 are arranged between the two sets of drive-following components 101.

[0046] like Figures 1 to 13 As shown, by setting multiple cooling components 102 between two sets of drive following components 101, the multiple cooling components 102 can achieve more stable lifting and lowering motion and follow the movement of the welding point through the symmetrically arranged drive following components 101.

[0047] Each of the multiple cooling components 102 includes a cooling fan 1021 and a support plate 1022. The multiple cooling fans 1021 are arranged close to or far from each other through a transmission component 103. The multiple support plates 1022 are arranged in a rectangular circular sliding manner through a drive following component 101.

[0048] It should be noted that the multiple cooling fans 1021 mentioned above are arranged in a ring at equal intervals, so that the support plate 1022 can be aligned vertically with the welding point, and the multiple cooling fans 1021 can partially surround the outside of the welding point to achieve multi-point air cooling operation and accelerate the curing of the welding point.

[0049] like Figures 1 to 13As shown, through the design of multiple cooling fans 1021 and transmission components 103, the multiple cooling fans 1021 can move closer or further away from each other. When the power of the multiple cooling fans 1021 is consistent, they approach the welding point from far to near, so that the temperature gradually decreases. This can avoid sudden cooling and effectively protect the welding point, thereby effectively improving the quality of the welding point.

[0050] Furthermore, multiple sets of extension plates 1023 are provided on the outer side of the support plate 1022, and the cooling fan 1021 is slidably arranged on the upper surface of the extension plate 1023 through the transmission component 103. The linkage mechanism 7 is arranged between two adjacent sets of transmission components 103, so that the two adjacent sets of transmission components 103 are mutually driven through the linkage mechanism 7.

[0051] like Figures 1 to 13 As shown, through the design of multiple sets of extension plates 1023, the cooling fan 1021 can slide on the support plate 1022 through the extension distance of the extension plate 1023, so that multiple sets of cooling fans 1021 can perform air cooling operation on the welding point from far to near.

[0052] It should be noted that, due to the design of the two adjacent sets of transmission components 103 being interconnected through the linkage mechanism 7, only one set of transmission components 103 needs to be controlled to achieve synchronous control of the cooling fan 1021 to move towards or relative to each other.

[0053] Furthermore, the transmission component 103 includes a transmission bevel gear 1033 and multiple sets of driven bevel gears 1032. A transmission groove is formed inside the support plate 1022, and the transmission bevel gear 1033 is rotatably mounted inside the transmission groove. Multiple sets of connecting holes communicating with the inside of the transmission groove are formed around the outer circumference of the support plate 1022. All sets of driven bevel gears 1032 are meshed with the transmission bevel gear 1033, and a transmission rod 1031 is fixedly mounted on one side of each set of driven bevel gears 1032. 1031 is rotatably installed in the connecting hole, and the transmission rod 1031 is connected to the cooling fan 1021 in a transmission connection; the upper surface of the extension plate 1023 is provided with a sliding groove, and the transmission screw 1034 is rotatably connected inside the sliding groove. One end of the transmission screw 1034 is fixedly connected to the transmission rod 1031, and the outer side of the transmission screw 1034 is connected to the transmission seat 1035 by a thread. The lower end of the transmission seat 1035 is slidably installed inside the sliding groove, and the cooling fan 1021 is set on the upper surface of the transmission seat 1035;

[0054] like Figures 1 to 13As shown, through the design of the transmission component 103, when one set of driven bevel gears 1032 rotates, the remaining sets of driven bevel gears 1032 rotate synchronously through the transmission bevel gear 1033, thereby realizing the synchronous rotation of multiple sets of transmission screws 1034. The transmission screws 1034 can control the transmission seat 1035 to slide inside the sliding groove through the thread principle, ultimately realizing that multiple sets of cooling fans 1021 move closer or further away synchronously, achieving the effect of stable and gradual cooling of the welding point, and avoiding the occurrence of sudden cooling.

[0055] Specifically, such as Figures 1 to 13 As shown, the cooling fan 1021 is equipped with an air direction adjustment mechanism 9 at its air outlet.

[0056] Specifically, such as Figures 1 to 13 As shown, the airflow adjustment mechanism 9 mentioned above includes an air duct 901 and an air regulating plate 902. The air duct 901 is connected to the air outlet of the cooling fan 1021. The air regulating plate 902 is rotatably installed inside the air duct 901, and the same end on both sides of the air regulating plate 902 is inclined. Both ends of the outer side of the air duct 901 are rotatably installed with swing rods 903, and the ends of the swing rods 903 pass through the outer side of the air duct 901 to the inside and are fixedly connected to the air regulating plate 902. The lower end of the outer side of the swing rod 903 has a movable hole. The extension plate 1023 is movably connected to a linkage rod 906. One end of the linkage rod 906 is rotatably connected to a sliding base 904. A mounting groove is provided on one side of the sliding base 904. A synchronization mechanism 907 is provided inside the mounting groove. One end of the synchronization mechanism 907 is connected to one end of the linkage rod 906. Positioning rods 905 are fixedly installed on both sides of the extension plate 1023. The sliding base 904 is slidably sleeved on the outer surface of the positioning rods 905. The other end of the synchronization mechanism 907 is engaged with the upper surface of the positioning rods 905 for transmission.

[0057] It should be noted that the synchronization mechanism 907 described above uses a structure of two sets of synchronous pulleys and a synchronous belt to achieve synchronous transmission. However, using synchronous pulleys and a synchronous belt to achieve synchronous transmission is still a mature existing technology. Those skilled in the art should know how to install and use the synchronization mechanism 907, so that one set of synchronous pulleys has a gear groove on its outer side that meshes with the upper surface of the positioning rod 905. When the sliding base 904 slides on the outside of the sliding positioning rod 905, the two sets of synchronous pulleys drive each other, driving the linkage rod 906 to rotate. This allows one end of the linkage rod 906 to slide inside the movable hole, thereby causing the swing rod 903 to drive the air regulating plate 902 to repeatedly rotate up and down inside the air duct 901, so that the air outlet direction of the cooling fan 1021 continuously swings up and down, increasing the cooling area. Therefore, this invention will not be described in detail here.

[0058] Furthermore, the drive following component 101 includes a drive housing 1011, a support side plate 2 is provided at the bottom of the drive housing 1011, the upper surface of the drive housing 1011 is fixedly installed at the bottom of the frame 10, and the drive housing 1011 is disposed between two sets of rollers. A guide groove 1015 is provided on one side of the drive housing 1011, a sliding seat 1014 is slidably installed inside the guide groove 1015, a drive component 104 is fixedly installed at one end of the sliding seat 1014, and the drive component 104 is connected to a set of transmission bevel gears 1033 near the sliding seat 1014.

[0059] like Figures 1 to 13 As shown, by designing the drive housing 1011 between the two sets of rollers, when the mesh is just welded from the welding mechanism 3, it will first pass through the two rollers of the first set. The drive housing 1011 is positioned between the two rollers of the first set, which can immediately cool the welding point. This can prevent the gap between the two rollers from causing the mesh welding point to sink downwards and loosen.

[0060] Furthermore, a servo motor 1012 is provided inside the drive housing 1011, and a rotating groove is provided on the other side of the drive housing 1011. A side panel 14 is provided inside the rotating groove, and a guide groove 1015 is formed between the side panel 14 and the inner wall of the rotating groove. One end of the output shaft of the drive motor passes through the other side of the drive housing 1011 to the inside of the rotating groove, and one end of the output shaft of the servo motor 1012 is connected to a first telescopic rod 1013. One end of the movable rod of the first telescopic rod 1013 is rotatably connected to the sliding seat 1014.

[0061] Specifically, such as Figures 1 to 13 As shown, the four corners inside the guide groove 1015 are all inclined, and the four corners outside the sliding seat 1014 are correspondingly inclined. Secondly, the first telescopic rod 1013 has a telescopic function. When the first telescopic rod 1013 rotates and drives the sliding seat 1014 to slide inside the guide groove 1015, the sliding seat 1014 can slide along the rectangular opening of the guide groove 1015 by utilizing the rotational characteristics of the first telescopic rod 1013 and the guiding action of the guide groove 1015. This allows the bearing plate 1022 to move horizontally after driving the multiple cooling fans 1021 to rise and fall. When rising, it can move with the mesh. When falling, the moving direction of the bearing plate 1022 is reset by rotation, so that the welding points of the mesh can be repeatedly cooled.

[0062] It should be noted that the starting frequency and the rotation speed of the motor output shaft of the servo motor 1012 mentioned above are the same as the stopping frequency and conveying speed of the roller conveying mechanism 4. The start and stop of the servo motor 1012 and the rotation speed of the motor can be adjusted. The ability to adjust the servo motor 1012 is still a mature existing technology. Therefore, those skilled in the art should know how to install and use the servo motor 1012, so this invention will not elaborate on it here.

[0063] Specifically, such as Figures 1 to 13 As shown, a connecting column 13 is fixedly installed in the middle of the side panel 14 near the inside of the rotating groove, and a gear housing 12 is rotatably sleeved on the outer side of one end of the connecting column 13. One end of the connecting column 13 is fixedly connected to the inner wall of the rotating groove. A servo motor 1012 is set on the outer side of the other end of the connecting column 13. A rotating gear 11 is fixedly installed on one end of the output shaft of the servo motor 1012, and the rotating gear 11 is meshed with the outer side of the gear housing 12. The first telescopic rod 1013 is fixedly installed on the outer side of the gear housing 12.

[0064] Furthermore, the driving component 104 includes a linkage gear 1042 and a positioning side plate 1041. The positioning side plate 1041 is fixedly connected to the sliding seat 1014. A linkage hole is provided on the outer side of the positioning side plate 1041. The linkage gear 1042 is rotatably installed inside the linkage hole. A bevel gear transmission structure 1043 is drivenly connected to the bottom of the linkage gear 1042. A first contraction tube 1045 is drivenly connected to the end of the bevel gear transmission structure 1043. A first extension rod 1044 is slidably connected to one end of the first contraction tube 1045. The first extension rod 1044 is connected to the sliding seat 1014. A set of transmission bevel gears 1033 are connected to the sliding seat 1014. Both ends of the drive housing 1011 are provided with tooth grooves 8, and the linkage gear 1042 is meshed with the tooth grooves 8. A set of bearing plates 1022 near the sliding seat 1014 have through holes on their outer sides that communicate with the inside of the transmission groove. One end of the first extension rod 1044 is rotatably installed inside the through hole, and one end of the first extension rod 1044 is connected to another set of bevel gear transmission structures 1043. The other set of bevel gear transmission structures 1043 is meshed with the transmission bevel gears 1033.

[0065] like Figures 1 to 13As shown, through the design of the drive component 104, the linkage gear 1042 can mesh with the tooth groove 8 when the sliding seat 1014 slides inside the guide groove 1015, thus achieving rotation. The linkage gear 1042 can control the rotation of the first extension rod 1044 and the first contraction tube 1045 through one set of bevel gear transmission structure 1043, while the first extension rod 1044 can control the rotation of the transmission bevel gear 1033 through another set of bevel gear transmission structure 1043. Multiple sets of driven bevel gears 1032 can achieve synchronous rotation. Therefore, through the design of the drive component 104, when multiple sets of cooling fans 1021 follow the welding point through the drive following component 101, the multiple sets of cooling fans 1021 can automatically approach the welding point from far to near, achieving a gradual cooling effect.

[0066] Specifically, such as Figures 1 to 13 As shown, by using two sets of toothed grooves 8 opened in the drive housing 1011, one set of toothed grooves 8 is opened on the upper outer side of the drive housing 1011, and the other set of toothed grooves 8 is opened on the lower side of the side panel 14, so that when the sliding seat 1014 slides to the bottom of the guide groove 1015, the linkage gear 1042 can rotate in the opposite direction through the lower toothed groove 8 and the upper meshing toothed groove 8, so that multiple sets of cooling fans 1021 can be moved away from each other and reset, which facilitates the gradual cooling operation of the subsequent welding points.

[0067] Furthermore, the linkage mechanism 7 includes a second extension rod 702, and a second contraction tube 703 is slidably sleeved on the outer side of the second extension rod 702. The second extension rod 702 and the second contraction tube 703 are rotatably installed between two adjacent sets of bearing plates 1022. A linkage bevel gear 701 is fixedly installed at the ends of the second extension rod 702 and the second contraction tube 703 that are far apart from each other. A linkage groove is opened on the opposite side of the two adjacent sets of bearing plates 1022. The linkage bevel gear 701 is rotatably installed inside the linkage groove, and the linkage bevel gear 701 is meshed with the transmission bevel gear 1033. The linkage bevel gear 701 is located between two adjacent sets of driven bevel gears 1032.

[0068] like Figures 1 to 13 As shown, through the design of the second extension rod 702 and the second contraction tube 703, the two adjacent sets of transmission bevel gears 1033 can drive each other, so that the transmission component 103, which is far away from the drive component 104, can also enjoy the transmission of the drive component 104, so that multiple cooling components 102 can perform the same cooling operation.

[0069] Specifically, such as Figures 1 to 13 As shown, a following support mechanism 6 is provided between the two sets of support side plates 2, and the following support mechanism 6 includes a support base 601 and a pitch-changing component 604. Multiple sets of guide bases 603 are fixedly installed on the upper surface of the support base 601, and a second telescopic rod 602 is slidably installed on the upper surface of the guide base 603.

[0070] The pitch-changing component 604 includes a support 6041 and an adjusting plate 6042. One end of the movable rod of multiple sets of second telescopic rods 602 is fixedly connected to the bottom of the support 6041. The adjusting plate 6042 is slidably installed on the upper surface of the support 6041. A cross guide frame 6044 is provided between the two ends of one side of the upper surface of the support 6041 and the adjusting plate 6042. An electric push rod 6043 is provided in the middle of one side of the upper surface of the support 6041. One end of the movable rod of the electric push rod 6043 is fixedly connected to the adjusting plate 6042. Multiple sets of pitch-changing holes 6046 are opened on the upper surface of the adjusting plate 6042. The multiple sets of pitch-changing holes 6046 are gradually inclined from the two ends to the middle with a gradually decreasing angle. A guide rod 6045 is fixedly installed at the bottom center of multiple sets of support plates 1022. The guide rod 6045 is slidably installed inside the pitch-changing hole 6046.

[0071] Through the coordinated design of the pitch-changing component 604, the second telescopic rod 602, and the guide base 603, the distance between two adjacent sets of bearing plates 1022 can be adjusted, thereby enabling multiple sets of bearing plates 1022 to be equidistantly adjusted. Furthermore, the position of the bearing plate 1022 can be adjusted according to the welding points on the mesh of different specifications, thereby effectively improving the practicality of the cooling component 102.

[0072] Through the design of the second telescopic rod 602 and the guide base 603, the bearing seat 6041 can move along the guide groove 1015 following the bearing plate 1022, so that the variable pitch structure can always be adjusted and used.

[0073] It should be noted that, since the first extension rod 1044, the first contraction tube 1045, the second extension rod 702, and the second contraction tube 703 are used in conjunction for telescopic movement, they can be adjusted without affecting the pitch. Furthermore, the sliding structure of the first extension rod 1044, the first contraction tube 1045, the second extension rod 702, and the second contraction tube 703 is rectangular, which enables telescopic movement and rotational transmission.

[0074] For example, the bevel gear transmission structure 1043 described above uses meshing bevel gears. Using meshing bevel gears for transmission is a mature existing technology. Those skilled in the art should know how to install and use the bevel gear transmission structure 1043 to enable the linkage gear 1042 to drive the transmission bevel gear 1033 to rotate. Therefore, the present invention will not elaborate on this.

[0075] While specific embodiments of the invention have been described in detail by way of examples, those skilled in the art should understand that the examples are for illustrative purposes only and not intended to limit the scope of the invention. Those skilled in the art should understand that modifications can be made to the above embodiments without departing from the scope and spirit of the invention. The scope of the invention is defined by the appended claims.

Claims

1. A fully automatic welding production equipment for wire mesh processing, comprising a frame (10), wherein a welding mechanism (3) is provided at one end of the upper surface of the frame (10), a cutting mechanism (5) is provided at the other end of the upper surface of the frame (10), and a roller conveying mechanism (4) is provided on the upper surface of the frame (10), characterized in that: Also includes: Synchronous cooling mechanism (1), the synchronous cooling mechanism (1) is provided in multiple sets, and a linkage mechanism (7) is provided between two adjacent sets of synchronous cooling mechanisms (1), so that multiple sets of synchronous cooling mechanisms (1) are mutually driven through the linkage mechanism (7); The synchronous cooling mechanism (1) includes two sets of drive following components (101), multiple sets of cooling components (102) and transmission components (103). The two sets of drive following components (101) are symmetrically arranged at the bottom of the frame (10), and the multiple sets of cooling components (102) are arranged between the two sets of drive following components (101). Multiple cooling components (102) each include a cooling fan (1021) and a support plate (1022). The multiple cooling fans (1021) are arranged close to or far from each other through a transmission component (103). The multiple support plates (1022) are arranged in a rectangular circular sliding manner through a drive following component (101).

2. The fully automatic welding production equipment for wire mesh processing according to claim 1, characterized in that: Multiple sets of extension plates (1023) are provided on the outer side of the bearing plate (1022). The cooling fan (1021) slides on the upper surface of the extension plate (1023) through the transmission component (103). The linkage mechanism (7) is provided between two adjacent sets of transmission components (103), so that the two adjacent sets of transmission components (103) are mutually driven through the linkage mechanism (7).

3. The fully automatic welding production equipment for wire mesh processing according to claim 2, characterized in that: The transmission component (103) includes a transmission bevel gear (1033) and multiple sets of driven bevel gears (1032). The bearing plate (1022) has a transmission groove inside. The transmission bevel gear (1033) is rotatably installed inside the transmission groove. Multiple sets of connecting holes communicating with the inside of the transmission groove are opened around the outer side of the bearing plate (1022). The multiple sets of driven bevel gears (1032) are meshed with the transmission bevel gear (1033). A transmission rod (1031) is fixedly installed on one side of each set of driven bevel gears (1032). The transmission rod (1031) is rotatably installed in the connecting hole. The transmission rod (1031) is connected to the cooling fan (1021) in a transmission connection.

4. The fully automatic welding production equipment for wire mesh processing according to claim 3, characterized in that: The upper surface of the extension plate (1023) is provided with a sliding groove, and a transmission screw (1034) is rotatably connected inside the sliding groove. One end of the transmission screw (1034) is fixedly connected to the transmission rod (1031). A transmission seat (1035) is threadedly connected to the outside of the transmission screw (1034). The lower end of the transmission seat (1035) is slidably installed inside the sliding groove. The cooling fan (1021) is disposed on the upper surface of the transmission seat (1035).

5. The fully automatic welding production equipment for wire mesh processing according to claim 4, characterized in that: The drive following component (101) includes a drive housing (1011), a support side plate (2) is provided at the bottom of the drive housing (1011), the upper surface of the drive housing (1011) is fixedly installed at the bottom of the frame (10), and the drive housing (1011) is located between two sets of rollers. A guide groove (1015) is provided on one side of the drive housing (1011), and a sliding seat (1014) is slidably installed inside the guide groove (1015). A drive component (104) is fixedly installed at one end of the sliding seat (1014), and the drive component (104) is connected to a set of transmission bevel gears (1033) near the sliding seat (1014).

6. The fully automatic welding production equipment for wire mesh processing according to claim 5, characterized in that: A servo motor (1012) is provided inside the drive housing (1011). A rotating groove is provided on the other side of the drive housing (1011). A side panel (14) is provided inside the rotating groove. A guide groove (1015) is formed between the side panel (14) and the inner wall of the rotating groove. One end of the output shaft of the drive motor passes through the other side of the drive housing (1011) to the inside of the rotating groove. One end of the output shaft of the servo motor (1012) is connected to a first telescopic rod (1013). One end of the movable rod of the first telescopic rod (1013) is rotatably connected to the sliding seat (1014).

7. The fully automatic welding production equipment for wire mesh processing according to claim 6, characterized in that: The driving component (104) includes a linkage gear (1042) and a positioning side plate (1041). The positioning side plate (1041) is fixedly connected to the sliding seat (1014). A linkage hole is provided on the outer side of the positioning side plate (1041). The linkage gear (1042) is rotatably installed inside the linkage hole. A bevel gear transmission structure (1043) is connected to the bottom of the linkage gear (1042). A first shrink tube (1045) is connected to the end of the bevel gear transmission structure (1043). A first extension rod (1044) is slidably connected to one end of the first shrink tube (1045). The first extension rod (1044) is connected to a set of transmission bevel gears (1033) near the sliding seat (1014). Tooth grooves (8) are provided at both ends of one side of the driving housing (1011). The linkage gear (1042) meshes with the tooth grooves (8).

8. The fully automatic welding production equipment for wire mesh processing according to claim 7, characterized in that: The outer side of a set of bearing plates (1022) near the sliding seat (1014) is provided with a through hole communicating with the inside of the transmission groove. One end of the first extension rod (1044) is rotatably installed inside the through hole, and one end of the first extension rod (1044) is connected to another set of bevel gear transmission structures (1043). The other set of bevel gear transmission structures (1043) is meshed with the transmission bevel gear (1033).

9. The fully automatic welding production equipment for wire mesh processing according to claim 8, characterized in that: The linkage mechanism (7) includes a second extension rod (702), and a second contraction tube (703) is slidably sleeved on the outside of the second extension rod (702). The second extension rod (702) and the second contraction tube (703) are rotatably installed between two adjacent sets of bearing plates (1022).

10. The fully automatic welding production equipment for wire mesh processing according to claim 9, characterized in that: The second extension rod (702) and the second contraction tube (703) are both fixedly installed with a linkage bevel gear (701) at their ends that are far apart from each other. The two adjacent sets of bearing plates (1022) are provided with linkage grooves on opposite sides. The linkage bevel gear (701) is rotatably installed inside the linkage groove, and the linkage bevel gear (701) is meshed with the transmission bevel gear (1033). The linkage bevel gear (701) is located between the two adjacent sets of driven bevel gears (1032).