Sliding plate body double-station gluing device
Through the design of the double-station glue coating device of the skateboard body, automatic glue coating and colloid smoothing are achieved, solving the problems of labor and high cost of traditional glue coating methods, and improving the efficiency and accuracy of glue coating.
Patent Information
- Application Number
- CN202422205971.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-10
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-09-10
AI Technical Summary
Traditional manual glue coating methods cannot accurately control the amount of glue coating and consume labor. The cost of robots and glue coating mechanisms is high and the control requirements are high, making it difficult to achieve balanced glue coating.
A double-station glue coating device for skateboard board body is designed, adopting a dual-station design, using the conveying component and the glue coating mechanism to cooperate with the glue coating mechanism to realize automatic glue coating and colloid smoothing. Through the reciprocating drive module and an adjustable convex column structure, it is suitable for different board widths, and combined with the guide plate guide correction, it achieves balanced glue coating.
Automatic glue coating and colloid smoothing are realized, saving manpower and cost, improving glue coating efficiency, adapting to different plate widths, and improving glue coating accuracy.
Smart Images

Figure CN223171207U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of skateboard processing equipment, and particularly relates to a double-station glue coating device for skateboard bodies. Background Art
[0002] A skateboard is a road skating sports equipment, mainly composed of a board surface and several wheels. The user provides power for the skateboard to slide by pedaling with feet and completes various actions during the sliding process.
[0003] Since the user needs to use the skateboard to perform various fancy actions, the strength requirement for the board body is relatively high. The board body is generally formed by hot pressing multiple composite boards during processing. Before pressing, the state is multiple board bodies of the same material or different materials, and after pressing, cutting is carried out; when multiple board bodies are pressed, in order to ensure the connection stability of each layer structure, it is necessary to coat the board body with glue, and then stack the layers of board bodies, and then carry out pressing and shaping for a certain period of time, and finally a multi-layer composite structure is formed, which is formed into a board body for skateboard production after cutting and grinding. When applying glue, the traditional manual glue application method not only cannot accurately control the glue application amount, but also consumes a lot of labor; while some methods of using a manipulator to cooperate with a glue coating mechanism for glue application have a high cost and high control requirements for the manipulator. Summary of the Utility Model
[0004] The purpose of the present application is to provide a double-station glue coating device for skateboard bodies to solve at least one of the above technical problems.
[0005] To solve the above technical problems, the present application provides a double-station glue coating device for skateboard bodies, including a working base;
[0006] There are three support plates, which are arranged at adjacent intervals along the first direction on the working base;
[0007] There are two sets of conveying components, and the two sets of conveying components are respectively located between adjacent two support plates. The conveying components are used to convey materials to move along the first direction;
[0008] The glue coating mechanism includes a cross plate, a sliding seat and a glue coating component. The cross plate extends along the second direction and is arranged on the support plate. The sliding seat is slidably arranged on the cross plate along the second direction. The glue coating component is arranged on the sliding seat;
[0009] There are two glue coating mechanisms, which are arranged adjacent to each other along the second direction. There is a first driving component between the two glue coating mechanisms. The first driving component includes a connecting rod and a reciprocating driving module. The connecting rod is arranged on both sides of the reciprocating driving module. The two connecting rods are respectively connected to the two sliding seats to drive the two sliding seats to reciprocate along the second direction;
[0010] Gluing mechanism, the gluing mechanism is arranged on the support plate and is located downstream of the gluing mechanism along the plate conveying direction;
[0011] In the above implementation process, the staff can place two plates on the working base at the same time. The conveying component will drive the two plates to move along the first direction under the gluing mechanism. The reciprocating driving module can drive two sliding seats to move synchronously through the connecting rod. The gluing component is arranged on the sliding seat and cooperates with the conveying component to drive the material to move along the first direction. When gluing, a wavy colloid shape can be formed on the plate, so as to achieve relatively uniform gluing. As the conveying component further conveys, the plate further reaches the gluing mechanism. The gluing mechanism levels the colloid coated on the plate, and then evenly applies it to the plate. This solution can realize automatic gluing and automatic leveling of the colloid, effectively save manpower and improve work efficiency. In addition, this solution can achieve relatively uniform gluing without a complex manipulator control mechanism, effectively saving costs. Further, this solution is a double-station gluing, so as to achieve double loading, which can further improve the gluing efficiency. And two gluing mechanisms are driven by one driving mechanism, which can save the number of driving mechanisms and reduce the manufacturing cost.
[0012] Preferably, the reciprocating driving module includes a mounting frame, a turntable, a rotary driving member, a convex column, a guiding member and a limiting seat;
[0013] The turntable is rotatably arranged on the mounting frame. The rotary driving member is arranged on the mounting frame and is adapted to drive the turntable to rotate. The convex column is arranged on the turntable. The guiding member is formed with a waist-shaped hole and is slidably matched with the convex column through the waist-shaped hole. The guiding member extends in the vertical direction and its two sides are respectively connected to the two connecting rods. The limiting seat is arranged on the mounting frame and is formed with a limiting hole along the second direction. The connecting rod is limited in the limiting hole;
[0014] In the above implementation process, the rotary driving member can drive the turntable to rotate. When rotating, it can drive the convex column located on the turntable to rotate. The convex column is limited at the waist-shaped hole of the guiding member, and the connecting rods are arranged on both sides of the guiding member. The connecting rods are limited in the limiting holes of the limiting seat. In this way, when the convex column rotates around the axis of the turntable, its position in the waist-shaped hole will change, and this change will be converted into the reciprocating lateral movement of the connecting rod. The reciprocating movement of the connecting rod can drive the sliding seat to move, and finally realize the movement of the gluing mechanism.
[0015] Preferably, a slide rail is arranged on the turntable along its radial direction, and a chute is formed on the slide rail; the convex column is slidably arranged in the chute;
[0016] A through hole is formed in the side wall of the slide rail along its length direction, and a locking member is further included. The locking member is adapted to pass through the through hole and lock the convex column in the chute;
[0017] In the above implementation process, the convex column in this solution is adjustable and can be adjusted in position along the radial direction of the turntable. After adjusting the position of the convex column, when the turntable rotates, it drives the sliding seat to move through the connecting rod, and the sliding seat will show different moving amplitudes. That is, when the convex column is located at the edge of the turntable and near the axis of the turntable, the sliding seat can show different reciprocating moving amplitudes. Thus, when applying glue, its amplitude will also change, so it can be applied to gluing plates of different widths and sizes, effectively improving the use compatibility of the device; when adjusting, the locking member can be loosened, and after adjusting to the appropriate position, the convex column can be locked and fixed in the chute by the locking member.
[0018] Preferably, a guide plate is provided on the side wall of the support plate;
[0019] In the above implementation process, the guide plate can guide and correct the deviation of the plate, thereby making its position more accurate and effectively improving the accuracy of subsequent gluing.
[0020] Preferably, the gluing assembly includes a glue applicator head, a material cylinder, and a material guide pipe; the glue applicator head is connected to the material cylinder, and the material guide pipe is communicated with the material cylinder and is adapted to convey glue into the material cylinder;
[0021] In the above implementation process, the external glue storage mechanism imports glue into the material cylinder through the material guide pipe, and the glue in the material cylinder is then exported through the glue applicator head; it can be understood that whether the glue applicator assembly discharges glue can be controlled, that is, it can control whether to discharge glue, rather than the glue applicator mechanism needs to achieve continuous glue discharge during the horizontal reciprocating movement.
[0022] Preferably, the glue spreading mechanism includes a fixing plate, a fixing frame, a pressing roller, and a lifting driving member; the fixing plate is provided on the support plate, the lifting driving member is provided on the fixing plate and its driving end is connected to the fixing frame, and the pressing roller is rotatably provided on the fixing frame;
[0023] In the above implementation process, the lifting driving member can drive the fixing frame to move downward, and then drive the pressing roller located on the fixing frame to move downward to abut against the plate, and smooth the glue on the plate as the plate moves, so that the glue can be evenly smeared on the plate to achieve automatic smoothing of the glue; when encountering plates of different thicknesses, the height of the pressing roller can be adjusted by the lifting driving member to adapt to different working conditions.
[0024] Preferably, the conveying assembly includes a conveying belt and a first driving member for driving the conveying belt to move.
[0025] Compared with the prior art, the beneficial effects of the present application are as follows: This solution can achieve automatic glue application and automatic smoothing of the glue, effectively saving labor and improving work efficiency; in addition, this solution can achieve relatively uniform glue application without a complex manipulator control mechanism, effectively saving costs; further, this solution is a two-station glue application, so that double loading can be realized, further improving the glue application efficiency, and the two glue application mechanisms are driven by one driving mechanism, which can save the number of driving mechanisms and reduce the manufacturing cost. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0027] Figure 1 is a schematic diagram of the overall structure of one embodiment of the present application;
[0028] Figure 2 is a schematic diagram of a partial structure of one embodiment of the present application;
[0029] Figure 3 is a schematic diagram of a partial structure of one embodiment of the present application;
[0030] Wherein: 10, working base; 11, support plate; 12, conveying assembly; 20, glue applicator mechanism; 21, cross plate; 22, sliding seat; 23, glue application assembly; 231, glue application head; 232, material cylinder; 233, guide pipe; 31, fixing plate; 32, lifting driving member; 33, fixing frame; 34, pressing roller; 40, reciprocating driving module; 41, mounting frame; 42, turntable; 421, slide rail; 43, convex column; 431, locking member; 44, guiding member; 441, waist-shaped hole; 45, limiting seat; 50, connecting rod; 60, guiding plate;
[0031] C1, first direction; C2, second direction. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0032] The following will disclose multiple embodiments of the present application in the form of drawings. For the sake of clarity, many practical details will be described together in the following description. However, it should be understood that these practical details are not used to limit the present application. That is to say, in some embodiments of the present application, these practical details are not necessary. In addition, for the purpose of simplifying the drawings, some conventional structures and components will be shown in a simple schematic manner in the drawings.
[0033] It should be noted that all directional indications such as up, down, left, right, front, back, etc. in the embodiments of the present application are only used to explain the relative position relationship, movement status, etc. between the various components in a certain specific posture as shown in the accompanying drawings. If the specific posture changes, the directional indication will also change accordingly.
[0034] In addition, in this application, descriptions such as "first" and "second" are only used for descriptive purposes and do not specifically refer to the order or ranking, nor are they used to limit this application. They are only used to distinguish components or operations described with the same technical terms, and cannot be understood as indicating or implying their relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined as "first" and "second" may explicitly or implicitly include at least one such feature. In addition, the technical solutions between the various embodiments can be combined with each other, but they must be based on the ability of ordinary technicians in this field to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by this application.
[0035] In order to further understand the content, features and effects of the utility model of the present application, the following embodiments are given as examples and described in detail with reference to the accompanying drawings:
[0036] Example
[0037] The skateboard body is generally formed by hot pressing multiple layers of composite boards during processing. Before pressing, the body is composed of multiple boards of the same or different materials, which are then cut after pressing. When pressing multiple boards together, in order to ensure the connection stability of each layer structure, it is necessary to apply glue on the board body, and then overlap each layer of board body, and then press and shape it for a certain period of time, finally forming a multi-layer composite structure. After cutting and polishing, it becomes a board body for skateboard production. When applying glue, the traditional manual application method not only cannot accurately control the amount of glue applied, but also consumes a lot of manpower. Some methods that use a robot in conjunction with a gluing mechanism for gluing are more expensive and require higher control of the robot. In order to solve the above technical problems, this embodiment provides the following technical solutions:
[0038] For details, see Figures 1-3 , this embodiment provides a double-station gluing device for a skateboard body, comprising a working base 10, a support plate 11, a conveying assembly 12, a gluing mechanism and a gluing mechanism;
[0039] Specifically, three support plates 11 are provided and are arranged on the work base 10 at adjacent intervals along the first direction;
[0040] Specifically, there are two sets of conveying components 12, and the two sets of conveying components 12 are respectively located between two adjacent support plates 11. The conveying components 12 are used to convey materials to move in the first direction;
[0041] Specifically, the gluing mechanism includes a cross plate 21, a sliding seat 22 and a gluing component 23. The cross plate 21 extends in the second direction and is arranged on the support plate 11. The sliding seat 22 is slidably arranged on the cross plate 21 in the second direction, and the gluing component 23 is arranged on the sliding seat 22;
[0042] Specifically, there are two gluing mechanisms, which are arranged adjacent to each other in the second direction. A first driving component is arranged between the two gluing mechanisms. The first driving component includes a connecting rod 50 and a reciprocating driving module 40. The connecting rod 50 is arranged on both sides of the reciprocating driving module 40, and the two connecting rods 50 are respectively connected to the two sliding seats 22 to drive the two sliding seats 22 to reciprocate along the second direction;
[0043] Specifically, the glue spreading mechanism is arranged on the support plate 11 and is located downstream of the gluing mechanism along the plate body conveying direction;
[0044] In the above solution, the staff can simultaneously place two plate bodies on the working base 10 respectively. The conveying component 12 will drive the two plate bodies to move along the first direction to be placed under the gluing mechanism. The reciprocating driving module 40 can drive the two sliding seats 22 to move synchronously through the connecting rod 50. The gluing component 23 is arranged on the sliding seat 22 and cooperates with the conveying component 12 to drive the material to move in the first direction. When gluing, a wavy colloid shape can be formed on the plate body, so as to achieve relatively uniform gluing; with the further conveying of the conveying component 12, the plate body further comes to the glue spreading mechanism, and the glue spreading mechanism levels the colloid coated on the plate body, and then evenly smears it on the plate body; this solution can realize automatic gluing and automatic leveling of the colloid, effectively save manpower and improve work efficiency; in addition, this solution can achieve relatively uniform gluing without a complex manipulator control mechanism, effectively saving costs; further, this solution is a two-station gluing, so as to realize double loading, which can further improve the gluing efficiency, and the two gluing mechanisms are driven by one driving mechanism, which can save the number of driving mechanisms and reduce the manufacturing cost.
[0045] It can be understood that the two gluing mechanisms can independently control whether to apply glue. Therefore, even if there is a deviation in the positions of the two plate bodies on different conveying components 12, it is also possible to achieve their respective gluing by controlling the different glue application times of the gluing mechanisms. Only the lateral reciprocating movements of the two gluing mechanisms are synchronous.
[0046] Specifically, please refer to Figure 2 , -3, the reciprocating driving module 40 includes a mounting frame 41, a turntable 42, a rotary driving member, a convex column 43, a guiding member 44 and a limiting seat 45;
[0047] Further, the turntable 42 is rotatably arranged on the mounting frame 41, the rotary driving member is arranged on the mounting frame 41 and is adapted to drive the turntable 42 to rotate, the convex column 43 is arranged on the turntable 42, a waist-shaped hole 441 is formed on the guide member 44 and is in sliding fit with the convex column 43 through the waist-shaped hole 441, the guide member 44 extends in the vertical direction and its two sides are respectively connected to two connecting rods 50, the limiting seat 45 is arranged on the mounting frame 41 and is formed with a limiting hole penetrating along the second direction, and the connecting rod 50 is limited in the limiting hole;
[0048] In the above solution, the rotary driving member can drive the turntable 42 to rotate. When rotating, it can drive the convex column 43 located on the turntable 42 to rotate. The convex column 43 is limited at the waist-shaped hole 441 of the guide member 44, and the connecting rods 50 are arranged on both sides of the guide member 44. The connecting rods 50 are limited in the limiting holes of the limiting seat 45. Thus, when the convex column 43 rotates around the axis of the turntable 42, its position in the waist-shaped hole 441 will change, and this change will be converted into the reciprocating lateral movement of the connecting rod 50. The reciprocating movement of the connecting rod 50 can drive the sliding seat 22 to move, and finally the movement of the gluing mechanism is realized.
[0049] Specifically, a slide rail 421 is arranged on the turntable 42 along its radial direction, and a chute is formed on the slide rail 421; the convex column 43 is slidably arranged in the chute;
[0050] Further, a through hole is opened on the side wall of the slide rail 421 along its length direction, and a locking member 431 is further included. The locking member 431 is adapted to pass through the through hole and lock the convex column 43 in the chute;
[0051] In the above solution, the convex column 43 in this solution is adjustable, and its position can be adjusted along the radial direction of the turntable 42. After adjusting the position of the convex column 43, when the turntable 42 rotates, it drives the sliding seat 22 to move through the connecting rod 50, and the sliding seat 22 will show different moving amplitudes, that is, when the convex column 43 is located at the edge of the turntable 42 and at a position close to the axis of the turntable 42, the sliding seat 22 can show different reciprocating moving amplitudes. Thus, when gluing, its amplitude will also change, so it can be applied to gluing plates of different widths and sizes, effectively improving the use compatibility of the device; when adjusting, the locking member 431 can be loosened, and after adjusting to the appropriate position, the convex column 43 is locked and fixed in the chute by the locking member 431.
[0052] Further, in some embodiments, the convex column 43 can be a roller, so as to reduce the relative friction between the convex column 43 and the inner wall of the waist-shaped hole 441; in other embodiments, the convex column 43 has a smooth outer wall surface.
[0053] Specifically, a guide plate 60 is arranged on the side wall of the support plate 11;
[0054] In the above solution, the guiding plate 60 can guide and correct the plate body, thereby making its position more accurate and effectively improving the accuracy of subsequent glue application. It can be understood that the guiding plate 60 can be connected to the side wall of the supporting plate 11 through a connecting rod.
[0055] Specifically, the glue application assembly 23 includes a glue application head 231, a material cylinder 232, and a material guiding pipe 233; the glue application head 231 is connected to the material cylinder 232, and the material guiding pipe 233 is communicated with the material cylinder 232 and is adapted to convey glue into the material cylinder 232;
[0056] In the above solution, the external glue storage mechanism introduces glue into the material cylinder 232 through the material guiding pipe 233, and the glue in the material cylinder 232 is then exported through the glue application head 231; it can be understood that the glue output of the glue application assembly 23 can be controlled, that is, it can control whether to output glue, rather than the glue application mechanism 20 needs to achieve continuous glue output during the horizontal reciprocating movement.
[0057] It should be noted that the glue application mechanism belongs to a relatively mature technology in the prior art. The above is only one implementation method, and this application does not limit it; however, it can be understood that it does not affect the overall understanding of this solution by those skilled in the art. The glue application mechanism is only a small part of it and is not the main improvement point of this solution.
[0058] Similarly, the above-mentioned conveying assembly 12 is the same. In some embodiments, the conveying assembly 12 includes a conveying belt and a first driving member for driving the conveying belt to move; the conveying belt transportation mechanism belongs to a relatively mature technology in the prior art and is widely used in multiple fields. Therefore, this application does not further elaborate on its specific working principle and mechanism, but it does not affect the overall understanding of this solution by those skilled in the art.
[0059] Specifically, the glue spreading mechanism includes a fixing plate 31, a fixing frame 33, a pressing roller 34, and a lifting driving member 32; the fixing plate 31 is arranged on the supporting plate 11, the lifting driving member 32 is arranged on the fixing plate 31 and its driving end is connected to the fixing frame 33, and the pressing roller 34 is rotatably arranged on the fixing frame 33;
[0060] In the above solution, the lifting driving member 32 can drive the fixing frame 33 to move downward, and then drive the pressing roller 34 located on the fixing frame 33 to move downward to abut against the plate body, and smooth the glue on the plate body as the plate body moves, so that the glue can be evenly applied on the plate body to achieve automatic smoothing of the glue; when encountering plate bodies of different thicknesses, the height of the pressing roller 34 can be adjusted by the lifting driving member 32 to adapt to different working conditions.
[0061] It should be noted that the above-mentioned lifting driving member 32 can be a lifting motor or a lifting driving cylinder; the above-mentioned rotation driving member and the first driving member can be rotation motors.
[0062] The above description is only for the preferred embodiments of the present application, and does not impose any formal restrictions on the present application. Any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present application all fall within the scope of the technical solution of the present application.
Claims
1. A double-station glue coating device for a skateboard board body, characterized in that: It includes a working base; Support plates, there are three support plates which are arranged adjacent to each other at intervals along the first direction on the working base; Conveying components, there are two groups of conveying components which are respectively located between two adjacent support plates, and the conveying components are used to convey materials to move along the first direction; Gluing mechanism, including a cross plate, a sliding seat and a gluing component, the cross plate extends along the second direction and is arranged on the support plate, the sliding seat is slidably arranged on the cross plate along the second direction, and the gluing component is arranged on the sliding seat; There are two gluing mechanisms which are arranged adjacent to each other along the second direction, and a first driving component is arranged between the two gluing mechanisms. The first driving component includes a connecting rod and a reciprocating driving module. The connecting rod is arranged on both sides of the reciprocating driving module, and the two connecting rods are respectively connected to the two sliding seats to drive the two sliding seats to reciprocate along the second direction; Gluing spreading mechanism, the gluing spreading mechanism is arranged on the support plate and is located downstream of the gluing mechanism along the conveying direction of the plate body.
2. The double-station glue coating device for the skateboard body according to claim 1, wherein: The reciprocating driving module includes a mounting frame, a turntable, a rotary driving part, a convex column, a guiding part and a limiting seat; The turntable is rotatably arranged on the mounting frame, the rotary driving part is arranged on the mounting frame and is adapted to drive the turntable to rotate, the convex column is arranged on the turntable, the guiding part is formed with a kidney-shaped hole and is slidably matched with the convex column through the kidney-shaped hole, the guiding part extends along the vertical direction and its two sides are respectively connected to the two connecting rods, the limiting seat is arranged on the mounting frame and is formed with a limiting hole along the second direction through which the connecting rod is limited.
3. The double-station glue coating device for the skateboard body according to claim 2, characterized in that: A slide rail is arranged on the turntable along its radial direction, and a chute is formed on the slide rail, and the convex column is slidably arranged in the chute; A through hole is formed in the side wall of the slide rail along its length direction, and a locking part is further included, and the locking part is adapted to pass through the through hole and lock the convex column in the chute.
4. The double-station glue coating device for the skateboard body according to any one of claims 1-3, characterized in that: A guiding plate is arranged on the side wall of the support plate.
5. The double-station glue coating device for the skateboard body according to claim 4, wherein: The gluing component includes a gluing head, a material cylinder and a guiding pipe; the gluing head is connected to the material cylinder, and the guiding pipe is communicated with the material cylinder and is adapted to convey glue to the material cylinder.
6. The double-station gluing device for the skateboard body according to claim 4, wherein: The gluing spreading mechanism includes a fixing plate, a fixing frame, a pressing roller and a lifting driving part; the fixing plate is arranged on the support plate, the lifting driving part is arranged on the fixing plate and its driving end is connected to the fixing frame, and the pressing roller is rotatably arranged on the fixing frame.
7. The double-station glue coating device for the skateboard body according to claim 4, wherein: The conveying component includes a conveying belt and a first driving part for driving the conveying belt to move.