Multi-section sliding rail assembly line
By designing a multi-section slide rail assembly line, the mechanized synchronous conveying and assembly of slide rail components was achieved, solving the problem of low efficiency in manual assembly, improving assembly efficiency and stability, and increasing the yield rate of the production line.
Patent Information
- Application Number
- CN202423065964.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-11
AI Technical Summary
In the existing technology, the assembly of slide rail components mainly relies on manual labor, which leads to low efficiency and limited assembly accuracy, affecting the efficient operation of production.
Design a multi-section slide rail assembly line, including a first conveyor line, a second conveyor line, a third conveyor line, a first assembly mechanism, a second assembly mechanism, and a transfer mechanism. The slide rail components are synchronously conveyed and assembled through mechanization. The first and second assembly mechanisms are used to assemble the components of materials on different conveyor lines, and the transfer mechanism realizes the mutual assembly of multiple slide rail sections.
It enables rapid and efficient assembly of slide rail components, ensuring the stability and yield rate of the assembly line and enhancing economic value.
Smart Images

Figure CN223544603U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of slide rails, and in particular to a multi-section slide rail assembly line. Background Technology
[0002] As is well known, drawer slides are a common component in products such as drawers. Currently, the assembly of these slides is primarily done manually. However, manual assembly is not only inefficient but also has limited precision, thus hindering efficient production operations. Utility Model Content
[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes a multi-section slide rail assembly line, which can efficiently perform slide rail assembly operations.
[0004] A multi-section slide rail assembly line according to a first aspect of the present invention includes: a first conveyor line, a second conveyor line, a third conveyor line, a first assembly mechanism, a second assembly mechanism, and a transfer mechanism. The first, second, and third conveyor lines are all used for conveying materials. The second conveyor line is connected to the first conveyor line, and the third conveyor line is connected to either the first or second conveyor line. The first assembly mechanism is connected to at least two of the first, second, and third conveyor lines. The first assembly mechanism is used to install each component of a kinematic pair to at least one of the first, second, and third conveyor lines. The second assembly mechanism is connected to at least one of the first, second, and third conveyor lines; the second assembly mechanism is used to install the various components of the kinematic pair to the materials conveyed by at least two of the first, second, and third conveyor lines; the first and second assembly mechanisms are used to install different kinematic pairs; the transfer mechanism is capable of driving the material conveyed by one of the first, second, and third conveyor lines to move, and assembling it with the material conveyed by the other of the first, second, and third conveyor lines.
[0005] The multi-section slide rail assembly line according to the embodiments of this utility model has at least the following beneficial effects: A multi-section track needs to have multiple mutually sliding parts so that the relative movement between these parts can achieve the guiding effect of the slide rail on the movement. The first conveyor line, the second conveyor line, and the third conveyor line can respectively convey materials to different parts of the multi-section track. During this process, the first assembly mechanism and the second assembly mechanism can simultaneously assemble components of materials on different conveyor lines, thereby enabling the simultaneous assembly of components for each part of the multi-section track. Therefore, when the transfer mechanism assembles the various sections of the multi-section track together, the components at each section can be directly and quickly assembled into shape.
[0006] Because the materials in each section of the multi-section track are installed simultaneously, including components such as the first ball bearing assembly, the overall assembly can be completed directly and smoothly when each section is assembled in pairs. This results in faster and more efficient assembly. Furthermore, the mechanical assembly process effectively ensures the stability of the overall processing and assembly, thereby ensuring a higher yield rate for the assembly line and enhancing its economic value.
[0007] According to some embodiments of the present invention, the first conveyor line includes a first conveyor belt and a handling component that are connected to each other. The first assembly mechanism and the second assembly mechanism are both connected to the first conveyor line. The handling component is used to drive materials to the first assembly mechanism and the second assembly mechanism respectively.
[0008] According to some embodiments of the present invention, the first assembly mechanism includes a gear sleeve assembly, a detection assembly, and an oiling assembly. The conveying assembly can drive the material to move sequentially to the gear sleeve assembly, the detection assembly, and the oiling assembly. The gear sleeve assembly is used to drive the gear to move and install it onto the material. The detection assembly is used to detect the installation effect between the gear and the material. The oiling assembly is used to apply lubricating oil between the gear and the material.
[0009] According to some embodiments of the present invention, the second assembly mechanism includes a ball seat mounting assembly, a feeding assembly, and a rail mounting assembly. The ball seat mounting assembly is used to mount each ball to a ball seat for carrying the ball. The feeding assembly is used to convey the ball seat to the rail mounting assembly. The rail mounting assembly is used to drive the ball seat to move and mount the material onto the conveying assembly.
[0010] According to some embodiments of the present invention, the first conveyor line includes a stamping and forming assembly and a tail glue mounting assembly, the conveying assembly can drive the material to the stamping and forming assembly and the tail glue mounting assembly respectively; the transfer mechanism can drive the material leaving the tail glue mounting assembly to the third conveyor line.
[0011] According to some embodiments of the present invention, the second conveyor line includes a second conveyor belt, and both the first conveyor line and the second conveyor line are provided with a handling component. The second conveyor belt is connected to the handling component. The transfer mechanism reciprocates between the two handling components and is used to drive the material movement and for alignment installation.
[0012] According to some embodiments of the present invention, the first assembly mechanism includes a rack conveyor belt, a rack mounting assembly, and a riveting assembly. The rack conveyor belt is used to drive the rack to move to the rack mounting assembly. The conveying assembly can drive the material to move sequentially to the rack mounting assembly and the riveting assembly. The rack mounting assembly is used to install the rack onto the material. The riveting assembly is used to relatively press and shape the rack and the material.
[0013] According to some embodiments of the present invention, the conveying assembly includes a transverse cylinder, a push cylinder, and a support seat. The transverse cylinder is connected to the support seat and is used to drive it to move closer to or away from the transfer mechanism. The push cylinder is used to drive the support seat to move up or down. The support seat has multiple support positions, which are used to support and load materials.
[0014] According to some embodiments of the present invention, the third conveyor line includes a third conveyor belt, a handling component, a buffer mounting component, a bead assembly component, a riveting and forming component, and a discharge conveyor belt; the handling component is connected to the third conveyor line and can sequentially drive the material to the buffer mounting component, the bead assembly component, and the transfer mechanism; the handling component can assemble the material in the transfer mechanism and then drive the material to the riveting and forming component and the discharge conveyor belt.
[0015] According to some embodiments of the present invention, the transfer mechanism includes a linear drive, a lifting cylinder, and a transport gripper. The linear drive is connected to the transport gripper through the lifting cylinder and can drive it to reciprocate between the first conveyor line, the second conveyor line, and the third conveyor line. The linear drive is connected to at least one set of pushing cylinders, which are used to push the materials and make the materials clamp and assemble.
[0016] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0017] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0018] Figure 1 This is a schematic diagram of a multi-section slide rail assembly line according to an embodiment of the present invention;
[0019] Figure 2 for Figure 1 A schematic diagram of the first conveyor line of the multi-section slide rail assembly line is shown.
[0020] Figure 3 for Figure 1 A schematic diagram of the gear sleeve assembly of a multi-section slide rail assembly line is shown.
[0021] Figure 4 for Figure 1 A schematic diagram of the oiling assembly of a multi-section slide rail assembly line is shown.
[0022] Figure 5 for Figure 1 A schematic diagram of the ball bearing mounting assembly of a multi-section slide rail assembly line is shown.
[0023] Figure 6 for Figure 1 A schematic diagram of the feeding assembly of a multi-section slide rail assembly line is shown.
[0024] Figure 7 for Figure 1 A schematic diagram of the rail mounting assembly of a multi-section slide rail assembly line is shown.
[0025] Figure 8 for Figure 1 A schematic diagram of the stamping assembly of a multi-section slide rail assembly line is shown.
[0026] Figure 9 for Figure 1 A schematic diagram of the transport components of a multi-section slide rail assembly line is shown.
[0027] Figure 10 for Figure 1 A schematic diagram of the second conveyor line of the multi-section slide rail assembly line is shown;
[0028] Figure 11 for Figure 1 A schematic diagram of the rack and pinion assembly of a multi-section slide rail assembly line is shown.
[0029] Figure 12 for Figure 1 A schematic diagram of the riveting assembly of a multi-section slide rail assembly line is shown.
[0030] Figure 13 for Figure 1 A schematic diagram of the third conveyor line of the multi-section slide rail assembly line is shown;
[0031] Figure 14 for Figure 1 A schematic diagram of the ball bearing mounting assembly of a multi-section slide rail assembly line is shown.
[0032] Figure 15 for Figure 1 A schematic diagram of the transfer mechanism of the multi-section slide rail assembly line is shown;
[0033] Reference numerals: First conveyor line 100; First conveyor belt 110;
[0034] Second conveyor line 200; Second conveyor belt 210;
[0035] Third conveyor line 300; Third conveyor belt 310; Buffer mounting assembly 320; Riveting and forming assembly 330; First riveting group 335; Second riveting group 337; Unloading conveyor belt 390;
[0036] First assembly mechanism 400; gear sleeve assembly 410; gear vibratory plate 411; alignment cylinder assembly 412; gear mounting gripper 413; detection assembly 420; oiling assembly 430; oil dripping cylinder 435; rack conveyor belt 440; rack assembly 460; rack gripper 461; rack positioning table 462; riveting assembly 470; first riveting component 471; second riveting component 472;
[0037] Second assembly mechanism 500; rail mounting assembly 510; transfer table 513; ball seat mounting gripper 515; ball seat mounting assembly 520; ball seat vibratory feeder 521; ball vibratory feeder 522; first positioning cylinder 523; second positioning cylinder 524; ball seat detector 525; ball seat feed belt 530; ball seat assembly assembly 570; ball seat mounting top block 575; feed assembly 590;
[0038] Handling component 600; support base 610; support position 615; push cylinder 630; lateral movement cylinder 650;
[0039] Stamping forming component 710; punching and positioning die head 713; bending die 715; tail glue mounting component 720; tail glue vibratory plate 723; tail glue ejector cylinder 725;
[0040] Transfer mechanism 800; linear actuator 810; lifting cylinder 820; handling gripper 830; push cylinder 870;
[0041] 900 multi-axis displacement stage; Detailed Implementation
[0042] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0043] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0044] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If "first" or "second" is used in the description, it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0045] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0046] Reference Figure 1A multi-section slide rail assembly line includes: a first conveyor line 100, a second conveyor line 200, a third conveyor line 300, a first assembly mechanism 400, a second assembly mechanism 500, and a transfer mechanism 800. The first conveyor line 100, the second conveyor line 200, and the third conveyor line 300 are all used for conveying materials. The second conveyor line 200 is connected to the first conveyor line 100, and the third conveyor line 300 is connected to either the first conveyor line 100 or the second conveyor line 200. The first assembly mechanism 400 is connected to at least two of the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300. The first assembly mechanism 400 is used to install the various components of the kinematic pair onto the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300 respectively. The material conveyed by at least two of the three conveyor lines is 0; the second assembly mechanism 500 is connected to at least one of the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300; the second assembly mechanism 500 is used to install the various components of the kinematic pair to the material conveyed by at least two of the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300; the first assembly mechanism 400 and the second assembly mechanism 500 are used to install dissimilar kinematic pairs; the transfer mechanism 800 enables the material conveyed by one of the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300 to move, and to assemble it with the material conveyed by another of the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300. Multi-section tracks need to have multiple sliding parts so that the relative movement between the various parts can achieve the guiding effect of the slide rail on the movement. The first conveyor line 100, the second conveyor line 200, and the third conveyor line 300 can respectively transport materials to different parts of the multi-section track. During this process, the first assembly mechanism 400 and the second assembly mechanism 500 can simultaneously assemble components from materials on different conveyor lines, allowing for the simultaneous assembly of components at various points along the multi-section track. Therefore, when the transfer mechanism 800 assembles the various sections of the multi-section track together, the components at each section can be directly and quickly assembled. Because the materials in each section of the multi-section track undergo simultaneous installation of components such as the first and ball bearing pairs, the overall assembly can be completed directly and smoothly when assembling sections in pairs, resulting in faster and more efficient assembly. Furthermore, the mechanical assembly process effectively ensures the stability of the overall assembly, thereby ensuring a higher yield rate for the assembly line and enhancing its economic value.
[0047] Specifically, the first conveyor line 100 is used to transport the middle rail of the three-section rail, the second conveyor line 200 is used to transport the upper rail of the three-section rail, and the third conveyor line 300 is used to transport the lower rail of the three-section rail. Thus, when the transfer mechanism 800 transfers materials, it can achieve the effect of installing the upper, middle, and lower rails in pairs, thereby completing the assembly operation of the three-section rail.
[0048] It is foreseeable that sensors, probes, visual inspection cameras, and other components can be installed at each station of the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300 to facilitate the inspection of the processing effect at each station and to promptly remove unqualified parts. The specific implementation method is not unique and can be adjusted according to actual circumstances; therefore, no restrictions are imposed here.
[0049] In some embodiments, reference is made to Figure 2 The first conveyor line 100 includes a first conveyor belt 110 and a handling component 600 that are connected to each other. A first assembly mechanism 400 and a second assembly mechanism 500 are both connected to the first conveyor line 100. The handling component 600 is used to move materials to the first assembly mechanism 400 and the second assembly mechanism 500 respectively. After the first conveyor belt 110 conveys the materials to the handling component 600, the handling component 600 can move the materials to the first assembly mechanism 400 and the second assembly mechanism 500 respectively. This allows the first assembly mechanism 400 and the second assembly mechanism 500 to install the relevant components of the moving parts of the materials, thereby facilitating further installation of the materials with other materials in subsequent operations.
[0050] In some embodiments, reference is made to Figure 2 The first assembly mechanism 400 includes a gear sleeve assembly 410, a detection assembly 420, and an oiling assembly 430. The conveying assembly 600 can sequentially move materials to the gear sleeve assembly, detection assembly 420, and oiling assembly 430. The gear sleeve assembly 410 drives the gear to be installed onto the material. The detection assembly 420 detects the installation effect of the gear and material. The oiling assembly 430 applies lubricating oil between the gear and the material. The gear sleeve assembly 410 rotatably mounts the gear onto the material, allowing the gear to rotate on the material, thus directly and effectively completing the gear assembly operation, facilitating the movement of the track through the gear. The detection assembly 420 detects the installation effect of the gear, ensuring a sufficient yield rate for the finished product. The oiling assembly 430 applies lubricating oil between the material and the gear, ensuring smoother and more stable rotation between them.
[0051] In some embodiments, reference is made to Figure 3The gear sleeve assembly 410 includes a gear vibratory plate 411 and a multi-axis displacement stage 900. The output end of the gear vibratory plate 411 is equipped with a positioning cylinder group 412, which is used to position the gear sleeve. A gear mounting gripper 413 is movably disposed between the conveying assembly 600 and the positioning cylinder group 412. The multi-axis displacement stage 900 is connected to the gear mounting gripper 413, enabling it to move the gear from the positioning cylinder group 412 to the material location on the conveying assembly 600 for installation.
[0052] In some embodiments, reference is made to Figure 4 The oiling assembly 430 includes an oil dripping cylinder 435 movably disposed above the conveying assembly 600. The oil dripping cylinder 435 can move close to the material and drip oil onto the material, thereby applying lubricating oil between the material and the gear.
[0053] It is conceivable that the detection component 420 can consist of a sensor and a discharge gripper that are dynamically configured. After the sensor detects the material through its sensing effect, the discharge gripper can promptly remove unqualified material.
[0054] In some embodiments, reference is made to Figure 5 The second assembly mechanism 500 includes a ball seat mounting assembly 520, a feeding assembly 590, and a rail mounting assembly 510. The ball seat mounting assembly 520 is used to mount each ball to a ball seat for holding the ball. The feeding assembly 590 is used to convey the ball seat to the rail mounting assembly 510. The rail mounting assembly 510 is used to drive the ball seat to move and mount it onto the material on the conveying assembly 600. The ball seat mounting assembly 520 can mount one or more balls to the ball seat. Subsequently, after the ball seat is conveyed to the rail mounting assembly 510 by the feeding assembly 590, the rail mounting assembly 510 can mount the ball seat loaded with balls onto the material, so that the corresponding components of the ball pair can be mounted on the material, so that multiple sections of slide rail can move and cooperate through the ball pair.
[0055] In some embodiments, reference is made to Figure 5 The ball bearing mounting assembly 520 includes a ball bearing vibratory feeder 521 and a ball bearing vibratory feeder 522, both of which are connected to the feeding assembly 590. Further, see [link to documentation]. Figure 6The feeding assembly 590 includes a receiving platform for receiving the ball seat, and both the ball seat vibratory feeder 521 and the ball vibratory feeder 522 are connected to the receiving platform. The receiving platform is equipped with a first positioning cylinder 523, a second positioning cylinder 524, and a ball seat detector 525. The first positioning cylinder 523 is used to clamp and position the ball seat from both sides, and the second positioning cylinder 524 is used to push the balls into the ball seat. Afterwards, the ball seat is conveyed to the ball seat detector 525, which detects the installation status between the ball seat and the balls to ensure accurate installation.
[0056] In some embodiments, reference is made to Figure 7 The rail mounting assembly 510 includes a transfer table 513, a multi-axis displacement table 900, and a ball seat mounting gripper 515. After the ball seat with the ball bearings installed is transported from the receiving table to the transfer table 513, the multi-axis displacement table 900 can drive the ball seat mounting gripper 515 to pick up the ball seat and move it to the material location, thereby completing the ball seat installation operation.
[0057] In some embodiments, reference is made to Figure 2 The first conveyor line 100 includes a stamping and forming assembly 710 and a tail adhesive mounting assembly 720. A handling assembly 600 can move materials to the stamping and forming assembly 710 and the tail adhesive mounting assembly 720 respectively. A transfer mechanism 800 can move materials leaving the tail adhesive mounting assembly 720 to the third conveyor line 300. Materials on the first conveyor line 100 are assembled with materials on the second conveyor line 200 and the third conveyor line 300. After being conveyed by the handling assembly 600 to the stamping and forming assembly 710, the stamping and forming assembly 710 can stamp and form the materials, resulting in a tighter connection between them. The tail adhesive mounting assembly 720 can then attach a tail adhesive to the assembled materials, providing protection.
[0058] In some embodiments, reference is made to Figure 8 The stamping forming component 710 includes a punching and positioning die 713 and a bending die 715. The conveying component 600 can drive the material to the punching and positioning die 713 and the bending die 715 respectively, and perform positioning and bending effects on the material through the two respectively, so as to achieve a more stable connection between the materials. The tail rubber installation component 720 includes a tail rubber vibratory feeder 723 and a tail rubber ejector cylinder 725. After the tail rubber vibratory feeder 723 conveys the tail rubber to the tail rubber ejector cylinder 725, the tail rubber ejector cylinder 725 can push the tail rubber to the material, thereby completing the tail rubber assembly operation.
[0059] In some embodiments, reference is made to Figure 10The second conveyor line 200 includes a second conveyor belt 210. Both the first conveyor line 100 and the second conveyor line 200 are equipped with handling components 600, and the second conveyor belt 210 is connected to the handling components 600. The transfer mechanism 800 reciprocates between the two handling components 600 and is used to drive the material movement and alignment installation. After the second conveyor belt 210 transports the material to the handling component 600, the handling component 600 can drive the material to move, so that the material can achieve the component installation effect of the first installation component and the second installation component. After the first conveyor line 100 and the second conveyor line 200 have each performed component installation on the material, the transfer mechanism 800 can move between the two handling components 600, thereby driving the material from one of the first conveyor line 100 and the second conveyor line 200 to the other for mutual installation, thus completing the mutual installation operation of two sections of the multi-section track.
[0060] In some embodiments, referring to the figures, the first assembly mechanism 400 includes a rack and pinion conveyor belt 440, a rack and pinion assembly 460, and a riveting assembly 470. The rack and pinion conveyor belt 440 drives the rack to the rack and pinion assembly 460. The conveying assembly 600 can move the material sequentially to the rack and pinion assembly 460 and the riveting assembly 470. The rack and pinion assembly 460 is used to install the rack onto the material, and the riveting assembly 470 is used to relatively press and shape the rack and material. After the rack and pinion conveyor belt 440 conveys the rack to the rack and pinion assembly 460, the rack and pinion assembly 460 can install the rack onto the material, so that the material can guide the movement of the slide rail through the engagement of the rack and pinion pair. The riveting assembly 470 can rivet the rack and material together, so that a more stable connection can be obtained between the rack and material.
[0061] In some embodiments, reference is made to Figure 11 The rack and pinion assembly 460 includes a rack positioning table 462, a multi-axis displacement table 900, a rack and pinion gripper 461, and the rack positioning table 462. The rack and pinion conveyor belt 440 transports the rack to the rack positioning table 462, and the multi-axis displacement table 900 can then drive the rack on the rack positioning table 462 to move onto the material at the conveying assembly 600, thereby completing the assembly operation between the rack and the material.
[0062] In some embodiments, reference is made to Figure 12The riveting assembly 470 includes a first riveting member 471 and a second riveting member 472. Both the first riveting member 471 and the second riveting member 472 can move close to the material and rivet the material and the rack together. The first riveting member 471 is a straight strip, and multiple second riveting members 472 are arranged side-by-side. The first riveting member 471 is used to rivet the entire rack, while the second riveting members 472 can bend individual parts of the rack, thereby forming multiple locking positions on the rack and increasing the stability of the connection between the rack and the material.
[0063] In some embodiments, reference is made to Figure 9 The conveying assembly 600 includes a lateral cylinder 650, a push cylinder 630, and a support 610. The lateral cylinder 650 is connected to the support 610 and is used to move it closer to or away from the transfer mechanism 800. The push cylinder 630 is used to move the support 610 up or down. The support 610 has multiple support positions 615, which are used to support and load materials. After the material is conveyed to the support position 615 on the support 610, the lateral cylinder 650 can move the material through the support 610 to achieve the conveying effect. When the material reaches its position, the push cylinder 630 can move the material up or down, so that the material can smoothly dock with the first assembly mechanism 400 and the second assembly mechanism 500, thereby facilitating the assembly of the material into components. Multiple support positions 615 allow multiple materials to be mounted on the support seat 610, enabling multiple materials to be conveyed simultaneously, thus effectively improving conveying efficiency.
[0064] In some embodiments, reference is made to Figure 13The third conveyor line 300 includes a third conveyor belt 310, a handling component 600, a buffer mounting component 320, a ball bearing assembly component 570, a riveting and forming component 330, and a discharge conveyor belt 390. The handling component 600 connects to the third conveyor line 300 and sequentially moves the material to the buffer mounting component 320, the ball bearing assembly component 570, and the transfer mechanism 800. After the transfer mechanism 800 assembles the material, the handling component 600 moves the material sequentially to the riveting and forming component 330 and the discharge conveyor belt 390. After the third conveyor belt 310 transports the material to the handling component 600, the handling component 600 can move the material to the buffer mounting component 320, the ball bearing assembly component 570, and the riveting and forming component 330, allowing for the installation and fastening of various components. Subsequently, the transfer mechanism 800 transports another section of material to the handling component 600, enabling different sections of the multi-section track to be assembled together, thus completing the multi-section track assembly operation. After assembly, the handling component 600 will move the material to the unloading conveyor belt 390, so that the assembled material can be unloaded at the unloading conveyor belt 390.
[0065] Specifically, the buffer mounting assembly 320 includes a feed conveyor belt for the buffer and mounting grippers that move via a multi-axis displacement table 900.
[0066] Furthermore, referring to Figure 14 The ball seat assembly 570 includes the aforementioned ball vibratory plate 522, ball seat vibratory plate 521, and feeding assembly 590, and the ball seat is pushed and installed on the material by the ball seat mounting block 575 driven by the multi-axis displacement platform.
[0067] In some embodiments, reference is made to Figure 15The transfer mechanism 800 includes a linear actuator 810, a lifting cylinder 820, and a transport gripper 830. The linear actuator 810 is connected to the transport gripper 830 via the lifting cylinder 820 and can drive it to reciprocate between the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300. The linear actuator 810 is connected to at least one set of pushing cylinders 870, which are used to push materials and make them clamp and assemble. After the linear actuator 810 drives the lifting cylinder 820 and the transport gripper 830 to move, the transport gripper 830 can reciprocate between each pair of the first conveyor line 100, the second conveyor line 200, and the third conveyor line 300. Thus, the transport gripper 830 can move close to the material under the drive of the lifting cylinder 820 and perform gripping and transport operations. After the transport gripper 830 moves one section of the multi-section track to another section, the push cylinder 870 can push the two sections of track together, so that the two sections of track can be engaged and matched, thus ensuring that they can be smoothly assembled into a whole, and thus ensuring that the multi-section track can be assembled into a whole.
[0068] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0069] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.
Claims
1. A multi-section slide rail assembly line, characterized in that, include: The first conveyor line (100), the second conveyor line (200), and the third conveyor line (300) are all used for conveying materials; the second conveyor line (200) is connected to the first conveyor line (100), and the third conveyor line (300) is connected to either the first conveyor line (100) or the second conveyor line (200); A first assembly mechanism (400) is connected to at least two of the first conveyor line (100), the second conveyor line (200), and the third conveyor line (300); the first assembly mechanism (400) is used to install the various components of the kinematic pair to the materials conveyed by at least two of the first conveyor line (100), the second conveyor line (200), and the third conveyor line (300); A second assembly mechanism (500) is connected to at least one of the first conveyor line (100), the second conveyor line (200), and the third conveyor line (300); the second assembly mechanism (500) is used to install the various components of the kinematic pair to the materials conveyed by at least two of the first conveyor line (100), the second conveyor line (200), and the third conveyor line (300); the first assembly mechanism (400) and the second assembly mechanism (500) are used to install dissimilar kinematic pairs; The transfer mechanism (800) is capable of moving the material conveyed by one of the first conveyor line (100), the second conveyor line (200) and the third conveyor line (300), and assembling it with the material conveyed by the other of the first conveyor line (100), the second conveyor line (200) and the third conveyor line (300).
2. The multi-section slide rail assembly line as described in claim 1, characterized in that: The first conveyor line (100) includes a first conveyor belt (110) and a conveying assembly (600) that are connected to each other. The first assembly mechanism (400) and the second assembly mechanism (500) are both connected to the first conveyor line (100). The conveying assembly (600) is used to drive the material to the first assembly mechanism (400) and the second assembly mechanism (500) respectively.
3. The multi-section slide rail assembly line as described in claim 2, characterized in that: The first assembly mechanism (400) includes a gear sleeve assembly (410), a detection assembly (420), and an oiling assembly (430). The conveying assembly (600) can drive the material to move sequentially to the gear sleeve assembly (410), the detection assembly (420), and the oiling assembly (430). The gear sleeve assembly (410) is used to drive the gear to move and install it onto the material. The detection assembly (420) is used to detect the installation effect between the gear and the material. The oiling assembly (430) is used to apply lubricating oil between the gear and the material.
4. The multi-section slide rail assembly line as described in claim 2, characterized in that: The second assembly mechanism (500) includes a ball seat mounting assembly (520), a feeding assembly (590), and a rail mounting assembly (510). The ball seat mounting assembly (520) is used to mount each ball to a ball seat for carrying the ball. The feeding assembly (590) is used to convey the ball seat to the rail mounting assembly (510). The rail mounting assembly (510) is used to drive the ball seat to move and mount the material onto the conveying assembly (600).
5. The multi-section slide rail assembly line as described in claim 2, characterized in that: The first conveyor line (100) includes a stamping assembly (710) and a tail glue mounting assembly (720). The conveying assembly (600) can drive the material to the stamping assembly (710) and the tail glue mounting assembly (720) respectively. The transfer mechanism (800) can drive the material leaving the tail glue mounting assembly (720) to the third conveyor line (300).
6. The multi-section slide rail assembly line as described in claim 1, characterized in that: The second conveyor line (200) includes a second conveyor belt (210). Both the first conveyor line (100) and the second conveyor line (200) are provided with a handling component (600). The second conveyor belt (210) is connected to the handling component (600). The transfer mechanism (800) reciprocates between the two handling components (600) and is used to drive the material movement and positioning installation.
7. The multi-section slide rail assembly line as described in claim 6, characterized in that: The first assembly mechanism (400) includes a rack conveyor belt (440), a rack mounting assembly (460), and a riveting assembly (470). The rack conveyor belt (440) is used to drive the rack to the rack mounting assembly (460). The conveying assembly (600) can drive the material to the rack mounting assembly (460) and the riveting assembly (470) in sequence. The rack mounting assembly (460) is used to install the rack onto the material. The riveting assembly (470) is used to relatively press and shape the rack and the material.
8. The multi-section slide rail assembly line as described in claim 6, characterized in that: The conveying assembly (600) includes a transverse cylinder (650), a push cylinder (630), and a support (610). The transverse cylinder (650) is connected to the support (610) and is used to move it closer to or away from the transfer mechanism (800). The push cylinder (630) is used to move the support (610) to rise or fall. The support (610) has multiple support positions (615) for supporting and loading materials.
9. The multi-section slide rail assembly line as described in claim 1, characterized in that: The third conveyor line (300) includes a third conveyor belt (310), a handling assembly (600), a buffer mounting assembly (320), a ball seat assembly assembly (570), a riveting and forming assembly (330), and a discharge conveyor belt (390). The handling assembly (600) is connected to the third conveyor line (300) and can sequentially drive the material to the buffer mounting assembly (320), the ball seat assembly assembly (570), and the transfer mechanism (800). After the material is assembled by the transfer mechanism (800), the handling assembly (600) can drive the material to sequentially move to the riveting and forming assembly (330) and the discharge conveyor belt (390).
10. The multi-section slide rail assembly line as described in claim 1, characterized in that: The transfer mechanism (800) includes a linear actuator (810), a lifting cylinder (820), and a transport gripper (830). The linear actuator (810) is connected to the transport gripper (830) through the lifting cylinder (820) and can drive it to reciprocate between the first conveyor line (100), the second conveyor line (200), and the third conveyor line (300). The linear actuator (810) is connected to at least one set of push cylinders (870), which are used to push the materials and make the materials clamp and assemble.